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Chlorine

Chlorine is a chemical element with the symbol Cl and atomic number 17. The second-lightest of the halogens, it appears between fluorine and bromine in the periodic table and its properties are mostly intermediate between them. Chlorine is a yellow-green gas at room temperature. It is an extremely reactive element and a strong oxidising agent: among the elements, it has the highest electron affinity and the third-highest electronegativity on the revised Pauling scale, behind only oxygen and fluorine.

Chlorine, 17Cl
Chlorine
Pronunciation/ˈklɔːrn, -n/ (KLOR-een, -⁠eyen)
Appearancepale yellow-green gas
Standard atomic weight Ar°(Cl)
  • [35.44635.457]
  • 35.45±0.01 (abridged)[1]
Chlorine in the periodic table
Hydrogen Helium
Lithium Beryllium Boron Carbon Nitrogen Oxygen Fluorine Neon
Sodium Magnesium Aluminium Silicon Phosphorus Sulfur Chlorine Argon
Potassium Calcium Scandium Titanium Vanadium Chromium Manganese Iron Cobalt Nickel Copper Zinc Gallium Germanium Arsenic Selenium Bromine Krypton
Rubidium Strontium Yttrium Zirconium Niobium Molybdenum Technetium Ruthenium Rhodium Palladium Silver Cadmium Indium Tin Antimony Tellurium Iodine Xenon
Caesium Barium Lanthanum Cerium Praseodymium Neodymium Promethium Samarium Europium Gadolinium Terbium Dysprosium Holmium Erbium Thulium Ytterbium Lutetium Hafnium Tantalum Tungsten Rhenium Osmium Iridium Platinum Gold Mercury (element) Thallium Lead Bismuth Polonium Astatine Radon
Francium Radium Actinium Thorium Protactinium Uranium Neptunium Plutonium Americium Curium Berkelium Californium Einsteinium Fermium Mendelevium Nobelium Lawrencium Rutherfordium Dubnium Seaborgium Bohrium Hassium Meitnerium Darmstadtium Roentgenium Copernicium Nihonium Flerovium Moscovium Livermorium Tennessine Oganesson
F

Cl

Br
sulfurchlorineargon
Atomic number (Z)17
Groupgroup 17 (halogens)
Periodperiod 3
Block  p-block
Electron configuration[Ne] 3s2 3p5
Electrons per shell2, 8, 7
Physical properties
Phase at STPgas
Melting point(Cl2) 171.6 K ​(−101.5 °C, ​−150.7 °F)
Boiling point(Cl2) 239.11 K ​(−34.04 °C, ​−29.27 °F)
Density (at STP)3.2 g/L
when liquid (at b.p.)1.5625 g/cm3[2]
Critical point416.9 K, 7.991 MPa
Heat of fusion(Cl2) 6.406 kJ/mol
Heat of vaporisation(Cl2) 20.41 kJ/mol
Molar heat capacity(Cl2)
33.949 J/(mol·K)
Vapour pressure
P (Pa) 1 10 100 1 k 10 k 100 k
at T (K) 128 139 153 170 197 239
Atomic properties
Oxidation states−1, +1, +2, +3, +4, +5, +6, +7 (a strongly acidic oxide)
ElectronegativityPauling scale: 3.16
Ionisation energies
  • 1st: 1251.2 kJ/mol
  • 2nd: 2298 kJ/mol
  • 3rd: 3822 kJ/mol
  • (more)
Covalent radius102±4 pm
Van der Waals radius175 pm
Spectral lines of chlorine
Other properties
Natural occurrenceprimordial
Crystal structureorthorhombic
Speed of sound206 m/s (gas, at 0 °C)
Thermal conductivity8.9×10−3 W/(m⋅K)
Electrical resistivity>10 Ω⋅m (at 20 °C)
Magnetic orderingdiamagnetic[3]
Molar magnetic susceptibility−40.5×10−6 cm3/mol[4]
CAS NumberCl2: 7782-50-5
History
Discovery and first isolationCarl Wilhelm Scheele (1774)
Recognized as an element byHumphry Davy (1808)
Main isotopes of chlorine
Iso­tope Decay
abun­dance half-life (t1/2) mode pro­duct
35Cl 76% stable
36Cl trace 3.01×105 y β 36Ar
ε 36S
37Cl 24% stable
 Category: Chlorine
| references

Chlorine played an important role in the experiments conducted by medieval alchemists, which commonly involved the heating of chloride salts like ammonium chloride (sal ammoniac) and sodium chloride (common salt), producing various chemical substances containing chlorine such as hydrogen chloride, mercury(II) chloride (corrosive sublimate), and hydrochloric acid (in the form of aqua regia). However, the nature of free chlorine gas as a separate substance was only recognised around 1630 by Jan Baptist van Helmont. Carl Wilhelm Scheele wrote a description of chlorine gas in 1774, supposing it to be an oxide of a new element. In 1809, chemists suggested that the gas might be a pure element, and this was confirmed by Sir Humphry Davy in 1810, who named it after the Ancient Greek χλωρός (khlōrós, "pale green") because of its colour.

Because of its great reactivity, all chlorine in the Earth's crust is in the form of ionic chloride compounds, which includes table salt. It is the second-most abundant halogen (after fluorine) and twenty-first most abundant chemical element in Earth's crust. These crustal deposits are nevertheless dwarfed by the huge reserves of chloride in seawater.

Elemental chlorine is commercially produced from brine by electrolysis, predominantly in the chlor-alkali process. The high oxidising potential of elemental chlorine led to the development of commercial bleaches and disinfectants, and a reagent for many processes in the chemical industry. Chlorine is used in the manufacture of a wide range of consumer products, about two-thirds of them organic chemicals such as polyvinyl chloride (PVC), many intermediates for the production of plastics, and other end products which do not contain the element. As a common disinfectant, elemental chlorine and chlorine-generating compounds are used more directly in swimming pools to keep them sanitary. Elemental chlorine at high concentration is extremely dangerous, and poisonous to most living organisms. As a chemical warfare agent, chlorine was first used in World War I as a poison gas weapon.

In the form of chloride ions, chlorine is necessary to all known species of life. Other types of chlorine compounds are rare in living organisms, and artificially produced chlorinated organics range from inert to toxic. In the upper atmosphere, chlorine-containing organic molecules such as chlorofluorocarbons have been implicated in ozone depletion. Small quantities of elemental chlorine are generated by oxidation of chloride ions in neutrophils as part of an immune system response against bacteria.

History

The most common compound of chlorine, sodium chloride, has been known since ancient times; archaeologists have found evidence that rock salt was used as early as 3000 BC and brine as early as 6000 BC.[5]

Early discoveries

Around 900, the authors of the Arabic writings attributed to Jabir ibn Hayyan (Latin: Geber) and the Persian physician and alchemist Abu Bakr al-Razi (c. 865–925, Latin: Rhazes) were experimenting with sal ammoniac (ammonium chloride), which when it was distilled together with vitriol (hydrated sulfates of various metals) produced hydrogen chloride.[6] However, it appears that in these early experiments with chloride salts, the gaseous products were discarded, and hydrogen chloride may have been produced many times before it was discovered that it can be put to chemical use.[7] One of the first such uses was the synthesis of mercury(II) chloride (corrosive sublimate), whose production from the heating of mercury either with alum and ammonium chloride or with vitriol and sodium chloride was first described in the De aluminibus et salibus ("On Alums and Salts", an eleventh- or twelfth century Arabic text falsely attributed to Abu Bakr al-Razi and translated into Latin in the second half of the twelfth century by Gerard of Cremona, 1144–1187).[8] Another important development was the discovery by pseudo-Geber (in the De inventione veritatis, "On the Discovery of Truth", after c. 1300) that by adding ammonium chloride to nitric acid, a strong solvent capable of dissolving gold (i.e., aqua regia) could be produced.[9] Although aqua regia is an unstable mixture that continually gives off fumes containing free chlorine gas, this chlorine gas appears to have been ignored until c. 1630, when its nature as a separate gaseous substance was recognised by the Brabantian chemist and physician Jan Baptist van Helmont.[10][en 1]

 
Carl Wilhelm Scheele, discoverer of chlorine

Isolation

The element was first studied in detail in 1774 by Swedish chemist Carl Wilhelm Scheele, and he is credited with the discovery.[11][12] Scheele produced chlorine by reacting MnO2 (as the mineral pyrolusite) with HCl:[10]

4 HCl + MnO2 → MnCl2 + 2 H2O + Cl2

Scheele observed several of the properties of chlorine: the bleaching effect on litmus, the deadly effect on insects, the yellow-green color, and the smell similar to aqua regia.[13] He called it "dephlogisticated muriatic acid air" since it is a gas (then called "airs") and it came from hydrochloric acid (then known as "muriatic acid").[12] He failed to establish chlorine as an element.[12]

Common chemical theory at that time held that an acid is a compound that contains oxygen (remnants of this survive in the German and Dutch names of oxygen: sauerstoff or zuurstof, both translating into English as acid substance), so a number of chemists, including Claude Berthollet, suggested that Scheele's dephlogisticated muriatic acid air must be a combination of oxygen and the yet undiscovered element, muriaticum.[14][15]

In 1809, Joseph Louis Gay-Lussac and Louis-Jacques Thénard tried to decompose dephlogisticated muriatic acid air by reacting it with charcoal to release the free element muriaticum (and carbon dioxide).[12] They did not succeed and published a report in which they considered the possibility that dephlogisticated muriatic acid air is an element, but were not convinced.[16]

In 1810, Sir Humphry Davy tried the same experiment again, and concluded that the substance was an element, and not a compound.[12] He announced his results to the Royal Society on 15 November that year.[10] At that time, he named this new element "chlorine", from the Greek word χλωρος (chlōros, "green-yellow"), in reference to its color.[17] The name "halogen", meaning "salt producer", was originally used for chlorine in 1811 by Johann Salomo Christoph Schweigger.[18] This term was later used as a generic term to describe all the elements in the chlorine family (fluorine, bromine, iodine), after a suggestion by Jöns Jakob Berzelius in 1826.[19][20] In 1823, Michael Faraday liquefied chlorine for the first time,[21][22][23] and demonstrated that what was then known as "solid chlorine" had a structure of chlorine hydrate (Cl2·H2O).[10]

Later uses

Chlorine gas was first used by French chemist Claude Berthollet to bleach textiles in 1785.[24][25] Modern bleaches resulted from further work by Berthollet, who first produced sodium hypochlorite in 1789 in his laboratory in the town of Javel (now part of Paris, France), by passing chlorine gas through a solution of sodium carbonate. The resulting liquid, known as "Eau de Javel" ("Javel water"), was a weak solution of sodium hypochlorite. This process was not very efficient, and alternative production methods were sought. Scottish chemist and industrialist Charles Tennant first produced a solution of calcium hypochlorite ("chlorinated lime"), then solid calcium hypochlorite (bleaching powder).[24] These compounds produced low levels of elemental chlorine and could be more efficiently transported than sodium hypochlorite, which remained as dilute solutions because when purified to eliminate water, it became a dangerously powerful and unstable oxidizer. Near the end of the nineteenth century, E. S. Smith patented a method of sodium hypochlorite production involving electrolysis of brine to produce sodium hydroxide and chlorine gas, which then mixed to form sodium hypochlorite.[26] This is known as the chloralkali process, first introduced on an industrial scale in 1892, and now the source of most elemental chlorine and sodium hydroxide.[27] In 1884 Chemischen Fabrik Griesheim of Germany developed another chloralkali process which entered commercial production in 1888.[28]

Elemental chlorine solutions dissolved in chemically basic water (sodium and calcium hypochlorite) were first used as anti-putrefaction agents and disinfectants in the 1820s, in France, long before the establishment of the germ theory of disease. This practice was pioneered by Antoine-Germain Labarraque, who adapted Berthollet's "Javel water" bleach and other chlorine preparations (for a more complete history, see below).[29] Elemental chlorine has since served a continuous function in topical antisepsis (wound irrigation solutions and the like) and public sanitation, particularly in swimming and drinking water.[13]

Chlorine gas was first used as a weapon on April 22, 1915, at Ypres by the German Army.[30][31] The effect on the allies was devastating because the existing gas masks were difficult to deploy and had not been broadly distributed.[32][33]

Properties

 
Chlorine, liquefied under a pressure of 7.4 bar at room temperature, displayed in a quartz ampule embedded in acrylic glass.
 
Solid chlorine at −150 °C

Chlorine is the second halogen, being a nonmetal in group 17 of the periodic table. Its properties are thus similar to fluorine, bromine, and iodine, and are largely intermediate between those of the first two. Chlorine has the electron configuration [Ne]3s23p5, with the seven electrons in the third and outermost shell acting as its valence electrons. Like all halogens, it is thus one electron short of a full octet, and is hence a strong oxidising agent, reacting with many elements in order to complete its outer shell.[34] Corresponding to periodic trends, it is intermediate in electronegativity between fluorine and bromine (F: 3.98, Cl: 3.16, Br: 2.96, I: 2.66), and is less reactive than fluorine and more reactive than bromine. It is also a weaker oxidising agent than fluorine, but a stronger one than bromine. Conversely, the chloride ion is a weaker reducing agent than bromide, but a stronger one than fluoride.[34] It is intermediate in atomic radius between fluorine and bromine, and this leads to many of its atomic properties similarly continuing the trend from iodine to bromine upward, such as first ionisation energy, electron affinity, enthalpy of dissociation of the X2 molecule (X = Cl, Br, I), ionic radius, and X–X bond length. (Fluorine is anomalous due to its small size.)[34]

All four stable halogens experience intermolecular van der Waals forces of attraction, and their strength increases together with the number of electrons among all homonuclear diatomic halogen molecules. Thus, the melting and boiling points of chlorine are intermediate between those of fluorine and bromine: chlorine melts at −101.0 °C and boils at −34.0 °C. As a result of the increasing molecular weight of the halogens down the group, the density and heats of fusion and vaporisation of chlorine are again intermediate between those of bromine and fluorine, although all their heats of vaporisation are fairly low (leading to high volatility) thanks to their diatomic molecular structure.[34] The halogens darken in colour as the group is descended: thus, while fluorine is a pale yellow gas, chlorine is distinctly yellow-green. This trend occurs because the wavelengths of visible light absorbed by the halogens increase down the group.[34] Specifically, the colour of a halogen, such as chlorine, results from the electron transition between the highest occupied antibonding πg molecular orbital and the lowest vacant antibonding σu molecular orbital.[35] The colour fades at low temperatures, so that solid chlorine at −195 °C is almost colourless.[34]

Like solid bromine and iodine, solid chlorine crystallises in the orthorhombic crystal system, in a layered lattice of Cl2 molecules. The Cl–Cl distance is 198 pm (close to the gaseous Cl–Cl distance of 199 pm) and the Cl···Cl distance between molecules is 332 pm within a layer and 382 pm between layers (compare the van der Waals radius of chlorine, 180 pm). This structure means that chlorine is a very poor conductor of electricity, and indeed its conductivity is so low as to be practically unmeasurable.[34]

Isotopes

Chlorine has two stable isotopes, 35Cl and 37Cl. These are its only two natural isotopes occurring in quantity, with 35Cl making up 76% of natural chlorine and 37Cl making up the remaining 24%. Both are synthesised in stars in the oxygen-burning and silicon-burning processes.[36] Both have nuclear spin 3/2+ and thus may be used for nuclear magnetic resonance, although the spin magnitude being greater than 1/2 results in non-spherical nuclear charge distribution and thus resonance broadening as a result of a nonzero nuclear quadrupole moment and resultant quadrupolar relaxation. The other chlorine isotopes are all radioactive, with half-lives too short to occur in nature primordially. Of these, the most commonly used in the laboratory are 36Cl (t1/2 = 3.0×105 y) and 38Cl (t1/2 = 37.2 min), which may be produced from the neutron activation of natural chlorine.[34]

The most stable chlorine radioisotope is 36Cl. The primary decay mode of isotopes lighter than 35Cl is electron capture to isotopes of sulfur; that of isotopes heavier than 37Cl is beta decay to isotopes of argon; and 36Cl may decay by either mode to stable 36S or 36Ar.[37] 36Cl occurs in trace quantities in nature as a cosmogenic nuclide in a ratio of about (7–10) × 10−13 to 1 with stable chlorine isotopes: it is produced in the atmosphere by spallation of 36Ar by interactions with cosmic ray protons. In the top meter of the lithosphere, 36Cl is generated primarily by thermal neutron activation of 35Cl and spallation of 39K and 40Ca. In the subsurface environment, muon capture by 40Ca becomes more important as a way to generate 36Cl.[38][39]

Chemistry and compounds

Halogen bond energies (kJ/mol)[35]
X XX HX BX3 AlX3 CX4
F 159 574 645 582 456
Cl 243 428 444 427 327
Br 193 363 368 360 272
I 151 294 272 285 239

Chlorine is intermediate in reactivity between fluorine and bromine, and is one of the most reactive elements. Chlorine is a weaker oxidising agent than fluorine but a stronger one than bromine or iodine. This can be seen from the standard electrode potentials of the X2/X couples (F, +2.866 V; Cl, +1.395 V; Br, +1.087 V; I, +0.615 V; At, approximately +0.3 V). However, this trend is not shown in the bond energies because fluorine is singular due to its small size, low polarisability, and inability to show hypervalence. As another difference, chlorine has a significant chemistry in positive oxidation states while fluorine does not. Chlorination often leads to higher oxidation states than bromination or iodination but lower oxidation states than fluorination. Chlorine tends to react with compounds including M–M, M–H, or M–C bonds to form M–Cl bonds.[35]

Given that E°(1/2O2/H2O) = +1.229 V, which is less than +1.395 V, it would be expected that chlorine should be able to oxidise water to oxygen and hydrochloric acid. However, the kinetics of this reaction are unfavorable, and there is also a bubble overpotential effect to consider, so that electrolysis of aqueous chloride solutions evolves chlorine gas and not oxygen gas, a fact that is very useful for the industrial production of chlorine.[40]

Hydrogen chloride

 
Structure of solid deuterium chloride, with D···Cl hydrogen bonds

The simplest chlorine compound is hydrogen chloride, HCl, a major chemical in industry as well as in the laboratory, both as a gas and dissolved in water as hydrochloric acid. It is often produced by burning hydrogen gas in chlorine gas, or as a byproduct of chlorinating hydrocarbons. Another approach is to treat sodium chloride with concentrated sulfuric acid to produce hydrochloric acid, also known as the "salt-cake" process:[41]

NaCl + H2SO4 150 °C NaHSO4 + HCl
NaCl + NaHSO4 540–600 °C Na2SO4 + HCl

In the laboratory, hydrogen chloride gas may be made by drying the acid with concentrated sulfuric acid. Deuterium chloride, DCl, may be produced by reacting benzoyl chloride with heavy water (D2O).[41]

At room temperature, hydrogen chloride is a colourless gas, like all the hydrogen halides apart from hydrogen fluoride, since hydrogen cannot form strong hydrogen bonds to the larger electronegative chlorine atom; however, weak hydrogen bonding is present in solid crystalline hydrogen chloride at low temperatures, similar to the hydrogen fluoride structure, before disorder begins to prevail as the temperature is raised.[41] Hydrochloric acid is a strong acid (pKa = −7) because the hydrogen bonds to chlorine are too weak to inhibit dissociation. The HCl/H2O system has many hydrates HCl·nH2O for n = 1, 2, 3, 4, and 6. Beyond a 1:1 mixture of HCl and H2O, the system separates completely into two separate liquid phases. Hydrochloric acid forms an azeotrope with boiling point 108.58 °C at 20.22 g HCl per 100 g solution; thus hydrochloric acid cannot be concentrated beyond this point by distillation.[42]

Unlike hydrogen fluoride, anhydrous liquid hydrogen chloride is difficult to work with as a solvent, because its boiling point is low, it has a small liquid range, its dielectric constant is low and it does not dissociate appreciably into H2Cl+ and HCl
2
ions – the latter, in any case, are much less stable than the bifluoride ions (HF
2
) due to the very weak hydrogen bonding between hydrogen and chlorine, though its salts with very large and weakly polarising cations such as Cs+ and NR+
4
(R = Me, Et, Bun) may still be isolated. Anhydrous hydrogen chloride is a poor solvent, only able to dissolve small molecular compounds such as nitrosyl chloride and phenol, or salts with very low lattice energies such as tetraalkylammonium halides. It readily protonates electrophiles containing lone-pairs or π bonds. Solvolysis, ligand replacement reactions, and oxidations are well-characterised in hydrogen chloride solution:[43]

Ph3SnCl + HCl ⟶ Ph2SnCl2 + PhH (solvolysis)
Ph3COH + 3 HCl ⟶ Ph
3
C+
HCl
2
+ H3O+Cl (solvolysis)
Me
4
N+
HCl
2
+ BCl3Me
4
N+
BCl
4
+ HCl (ligand replacement)
PCl3 + Cl2 + HCl ⟶ PCl+
4
HCl
2
(oxidation)

Other binary chlorides

 
Hydrated nickel(II) chloride, NiCl2(H2O)6.

Nearly all elements in the periodic table form binary chlorides. The exceptions are decidedly in the minority and stem in each case from one of three causes: extreme inertness and reluctance to participate in chemical reactions (the noble gases, with the exception of xenon in the highly unstable XeCl2 and XeCl4); extreme nuclear instability hampering chemical investigation before decay and transmutation (many of the heaviest elements beyond bismuth); and having an electronegativity higher than chlorine's (oxygen and fluorine) so that the resultant binary compounds are formally not chlorides but rather oxides or fluorides of chlorine.[44] Even though nitrogen in NCl3 is bearing a negative charge, the compound is usually called nitrogen trichloride.

Chlorination of metals with Cl2 usually leads to a higher oxidation state than bromination with Br2 when multiple oxidation states are available, such as in MoCl5 and MoBr3. Chlorides can be made by reaction of an element or its oxide, hydroxide, or carbonate with hydrochloric acid, and then dehydrated by mildly high temperatures combined with either low pressure or anhydrous hydrogen chloride gas. These methods work best when the chloride product is stable to hydrolysis; otherwise, the possibilities include high-temperature oxidative chlorination of the element with chlorine or hydrogen chloride, high-temperature chlorination of a metal oxide or other halide by chlorine, a volatile metal chloride, carbon tetrachloride, or an organic chloride. For instance, zirconium dioxide reacts with chlorine at standard conditions to produce zirconium tetrachloride, and uranium trioxide reacts with hexachloropropene when heated under reflux to give uranium tetrachloride. The second example also involves a reduction in oxidation state, which can also be achieved by reducing a higher chloride using hydrogen or a metal as a reducing agent. This may also be achieved by thermal decomposition or disproportionation as follows:[44]

EuCl3 + 1/2 H2 ⟶ EuCl2 + HCl
ReCl5 at "bp" ReCl3 + Cl2
AuCl3 160 °C AuCl + Cl2

Most metal chlorides with the metal in low oxidation states (+1 to +3) are ionic. Nonmetals tend to form covalent molecular chlorides, as do metals in high oxidation states from +3 and above. Both ionic and covalent chlorides are known for metals in oxidation state +3 (e.g. scandium chloride is mostly ionic, but aluminium chloride is not). Silver chloride is very insoluble in water and is thus often used as a qualitative test for chlorine.[44]

Polychlorine compounds

Although dichlorine is a strong oxidising agent with a high first ionisation energy, it may be oxidised under extreme conditions to form the [Cl2]+ cation. This is very unstable and has only been characterised by its electronic band spectrum when produced in a low-pressure discharge tube. The yellow [Cl3]+ cation is more stable and may be produced as follows:[45]

Cl2 + ClF + AsF5 −78 °C [Cl3]+[AsF6]

This reaction is conducted in the oxidising solvent arsenic pentafluoride. The trichloride anion, [Cl3], has also been characterised; it is analogous to triiodide.[46]

Chlorine fluorides

The three fluorides of chlorine form a subset of the interhalogen compounds, all of which are diamagnetic.[46] Some cationic and anionic derivatives are known, such as ClF
2
, ClF
4
, ClF+
2
, and Cl2F+.[47] Some pseudohalides of chlorine are also known, such as cyanogen chloride (ClCN, linear), chlorine cyanate (ClNCO), chlorine thiocyanate (ClSCN, unlike its oxygen counterpart), and chlorine azide (ClN3).[46]

Chlorine monofluoride (ClF) is extremely thermally stable, and is sold commercially in 500-gram steel lecture bottles. It is a colourless gas that melts at −155.6 °C and boils at −100.1 °C. It may be produced by the direction of its elements at 225 °C, though it must then be separated and purified from chlorine trifluoride and its reactants. Its properties are mostly intermediate between those of chlorine and fluorine. It will react with many metals and nonmetals from room temperature and above, fluorinating them and liberating chlorine. It will also act as a chlorofluorinating agent, adding chlorine and fluorine across a multiple bond or by oxidation: for example, it will attack carbon monoxide to form carbonyl chlorofluoride, COFCl. It will react analogously with hexafluoroacetone, (CF3)2CO, with a potassium fluoride catalyst to produce heptafluoroisopropyl hypochlorite, (CF3)2CFOCl; with nitriles RCN to produce RCF2NCl2; and with the sulfur oxides SO2 and SO3 to produce ClSO2F and ClOSO2F respectively. It will also react exothermically with compounds containing –OH and –NH groups, such as water:[46]

H2O + 2 ClF ⟶ 2 HF + Cl2O

Chlorine trifluoride (ClF3) is a volatile colourless molecular liquid which melts at −76.3 °C and boils at 11.8 °C. It may be formed by directly fluorinating gaseous chlorine or chlorine monofluoride at 200–300 °C. One of the most reactive chemical compounds known, the list of elements it sets on fire is diverse, containing hydrogen, potassium, phosphorus, arsenic, antimony, sulfur, selenium, tellurium, bromine, iodine, and powdered molybdenum, tungsten, rhodium, iridium, and iron. It will also ignite water, along with many substances which in ordinary circumstances would be considered chemically inert such as asbestos, concrete, glass, and sand. When heated, it will even corrode noble metals as palladium, platinum, and gold, and even the noble gases xenon and radon do not escape fluorination. An impermeable fluoride layer is formed by sodium, magnesium, aluminium, zinc, tin, and silver, which may be removed by heating. Nickel, copper, and steel containers are usually used due to their great resistance to attack by chlorine trifluoride, stemming from the formation of an unreactive layer of metal fluoride. Its reaction with hydrazine to form hydrogen fluoride, nitrogen, and chlorine gases was used in experimental rocket engine, but has problems largely stemming from its extreme hypergolicity resulting in ignition without any measurable delay. Today, it is mostly used in nuclear fuel processing, to oxidise uranium to uranium hexafluoride for its enriching and to separate it from plutonium, as well as in the semiconductor industry, where it is used to clean chemical vapor deposition chambers.[48] It can act as a fluoride ion donor or acceptor (Lewis base or acid), although it does not dissociate appreciably into ClF+
2
and ClF
4
ions.[49]

Chlorine pentafluoride (ClF5) is made on a large scale by direct fluorination of chlorine with excess fluorine gas at 350 °C and 250 atm, and on a small scale by reacting metal chlorides with fluorine gas at 100–300 °C. It melts at −103 °C and boils at −13.1 °C. It is a very strong fluorinating agent, although it is still not as effective as chlorine trifluoride. Only a few specific stoichiometric reactions have been characterised. Arsenic pentafluoride and antimony pentafluoride form ionic adducts of the form [ClF4]+[MF6] (M = As, Sb) and water reacts vigorously as follows:[50]

2 H2O + ClF5 ⟶ 4 HF + FClO2

The product, chloryl fluoride, is one of the five known chlorine oxide fluorides. These range from the thermally unstable FClO to the chemically unreactive perchloryl fluoride (FClO3), the other three being FClO2, F3ClO, and F3ClO2. All five behave similarly to the chlorine fluorides, both structurally and chemically, and may act as Lewis acids or bases by gaining or losing fluoride ions respectively or as very strong oxidising and fluorinating agents.[51]

Chlorine oxides

 
Yellow chlorine dioxide (ClO2) gas above a solution containing chlorine dioxide.[clarification needed]
 
Structure of dichlorine heptoxide, Cl2O7, the most stable of the chlorine oxides

The chlorine oxides are well-studied in spite of their instability (all of them are endothermic compounds). They are important because they are produced when chlorofluorocarbons undergo photolysis in the upper atmosphere and cause the destruction of the ozone layer. None of them can be made from directly reacting the elements.[52]

Dichlorine monoxide (Cl2O) is a brownish-yellow gas (red-brown when solid or liquid) which may be obtained by reacting chlorine gas with yellow mercury(II) oxide. It is very soluble in water, in which it is in equilibrium with hypochlorous acid (HOCl), of which it is the anhydride. It is thus an effective bleach and is mostly used to make hypochlorites. It explodes on heating or sparking or in the presence of ammonia gas.[52]

Chlorine dioxide (ClO2) was the first chlorine oxide to be discovered in 1811 by Humphry Davy. It is a yellow paramagnetic gas (deep-red as a solid or liquid), as expected from its having an odd number of electrons: it is stable towards dimerisation due to the delocalisation of the unpaired electron. It explodes above −40 °C as a liquid and under pressure as a gas and therefore must be made at low concentrations for wood-pulp bleaching and water treatment. It is usually prepared by reducing a chlorate as follows:[52]

ClO
3
+ Cl + 2 H+ ⟶ ClO2 + 1/2 Cl2 + H2O

Its production is thus intimately linked to the redox reactions of the chlorine oxoacids. It is a strong oxidising agent, reacting with sulfur, phosphorus, phosphorus halides, and potassium borohydride. It dissolves exothermically in water to form dark-green solutions that very slowly decompose in the dark. Crystalline clathrate hydrates ClO2·nH2O (n ≈ 6–10) separate out at low temperatures. However, in the presence of light, these solutions rapidly photodecompose to form a mixture of chloric and hydrochloric acids. Photolysis of individual ClO2 molecules result in the radicals ClO and ClOO, while at room temperature mostly chlorine, oxygen, and some ClO3 and Cl2O6 are produced. Cl2O3 is also produced when photolysing the solid at −78 °C: it is a dark brown solid that explodes below 0 °C. The ClO radical leads to the depletion of atmospheric ozone and is thus environmentally important as follows:[52]

Cl• + O3 ⟶ ClO• + O2
ClO• + O• ⟶ Cl• + O2

Chlorine perchlorate (ClOClO3) is a pale yellow liquid that is less stable than ClO2 and decomposes at room temperature to form chlorine, oxygen, and dichlorine hexoxide (Cl2O6).[52] Chlorine perchlorate may also be considered a chlorine derivative of perchloric acid (HOClO3), similar to the thermally unstable chlorine derivatives of other oxoacids: examples include chlorine nitrate (ClONO2, vigorously reactive and explosive), and chlorine fluorosulfate (ClOSO2F, more stable but still moisture-sensitive and highly reactive).[53] Dichlorine hexoxide is a dark-red liquid that freezes to form a solid which turns yellow at −180 °C: it is usually made by reaction of chlorine dioxide with oxygen. Despite attempts to rationalise it as the dimer of ClO3, it reacts more as though it were chloryl perchlorate, [ClO2]+[ClO4], which has been confirmed to be the correct structure of the solid. It hydrolyses in water to give a mixture of chloric and perchloric acids: the analogous reaction with anhydrous hydrogen fluoride does not proceed to completion.[52]

Dichlorine heptoxide (Cl2O7) is the anhydride of perchloric acid (HClO4) and can readily be obtained from it by dehydrating it with phosphoric acid at −10 °C and then distilling the product at −35 °C and 1 mmHg. It is a shock-sensitive, colourless oily liquid. It is the least reactive of the chlorine oxides, being the only one to not set organic materials on fire at room temperature. It may be dissolved in water to regenerate perchloric acid or in aqueous alkalis to regenerate perchlorates. However, it thermally decomposes explosively by breaking one of the central Cl–O bonds, producing the radicals ClO3 and ClO4 which immediately decompose to the elements through intermediate oxides.[52]

Chlorine oxoacids and oxyanions

Standard reduction potentials for aqueous Cl species[40]
E°(couple) a(H+) = 1
(acid)
E°(couple) a(OH) = 1
(base)
Cl2/Cl +1.358 Cl2/Cl +1.358
HOCl/Cl +1.484 ClO/Cl +0.890
ClO
3
/Cl
+1.459
HOCl/Cl2 +1.630 ClO/Cl2 +0.421
HClO2/Cl2 +1.659
ClO
3
/Cl2
+1.468
ClO
4
/Cl2
+1.277
HClO2/HOCl +1.701 ClO
2
/ClO
+0.681
ClO
3
/ClO
+0.488
ClO
3
/HClO2
+1.181 ClO
3
/ClO
2
+0.295
ClO
4
/ClO
3
+1.201 ClO
4
/ClO
3
+0.374

Chlorine forms four oxoacids: hypochlorous acid (HOCl), chlorous acid (HOClO), chloric acid (HOClO2), and perchloric acid (HOClO3). As can be seen from the redox potentials given in the adjacent table, chlorine is much more stable towards disproportionation in acidic solutions than in alkaline solutions:[40]

Cl2 + H2O ⇌ HOCl + H+ + Cl Kac = 4.2 × 10−4 mol2 l−2
Cl2 + 2 OH ⇌ OCl + H2O + Cl Kalk = 7.5 × 1015 mol−1 l

The hypochlorite ions also disproportionate further to produce chloride and chlorate (3 ClO ⇌ 2 Cl + ClO
3
) but this reaction is quite slow at temperatures below 70 °C in spite of the very favourable equilibrium constant of 1027. The chlorate ions may themselves disproportionate to form chloride and perchlorate (4 ClO
3
⇌ Cl + 3 ClO
4
) but this is still very slow even at 100 °C despite the very favourable equilibrium constant of 1020. The rates of reaction for the chlorine oxyanions increases as the oxidation state of chlorine decreases. The strengths of the chlorine oxyacids increase very quickly as the oxidation state of chlorine increases due to the increasing delocalisation of charge over more and more oxygen atoms in their conjugate bases.[40]

Most of the chlorine oxoacids may be produced by exploiting these disproportionation reactions. Hypochlorous acid (HOCl) is highly reactive and quite unstable; its salts are mostly used for their bleaching and sterilising abilities. They are very strong oxidising agents, transferring an oxygen atom to most inorganic species. Chlorous acid (HOClO) is even more unstable and cannot be isolated or concentrated without decomposition: it is known from the decomposition of aqueous chlorine dioxide. However, sodium chlorite is a stable salt and is useful for bleaching and stripping textiles, as an oxidising agent, and as a source of chlorine dioxide. Chloric acid (HOClO2) is a strong acid that is quite stable in cold water up to 30% concentration, but on warming gives chlorine and chlorine dioxide. Evaporation under reduced pressure allows it to be concentrated further to about 40%, but then it decomposes to perchloric acid, chlorine, oxygen, water, and chlorine dioxide. Its most important salt is sodium chlorate, mostly used to make chlorine dioxide to bleach paper pulp. The decomposition of chlorate to chloride and oxygen is a common way to produce oxygen in the laboratory on a small scale. Chloride and chlorate may comproportionate to form chlorine as follows:[54]

ClO
3
+ 5 Cl + 6 H+ ⟶ 3 Cl2 + 3 H2O

Perchlorates and perchloric acid (HOClO3) are the most stable oxo-compounds of chlorine, in keeping with the fact that chlorine compounds are most stable when the chlorine atom is in its lowest (−1) or highest (+7) possible oxidation states. Perchloric acid and aqueous perchlorates are vigorous and sometimes violent oxidising agents when heated, in stark contrast to their mostly inactive nature at room temperature due to the high activation energies for these reactions for kinetic reasons. Perchlorates are made by electrolytically oxidising sodium chlorate, and perchloric acid is made by reacting anhydrous sodium perchlorate or barium perchlorate with concentrated hydrochloric acid, filtering away the chloride precipitated and distilling the filtrate to concentrate it. Anhydrous perchloric acid is a colourless mobile liquid that is sensitive to shock that explodes on contact with most organic compounds, sets hydrogen iodide and thionyl chloride on fire and even oxidises silver and gold. Although it is a weak ligand, weaker than water, a few compounds involving coordinated ClO
4
are known.[54]

Chlorine oxidation state −1 +1 +3 +5 +7
Name chloride hypochlorite chlorite chlorate perchlorate
Formula Cl ClO ClO
2
ClO
3
ClO
4
Structure          

Organochlorine compounds

 
Suggested mechanism for the chlorination of a carboxylic acid by phosphorus pentachloride to form an acyl chloride

Like the other carbon–halogen bonds, the C–Cl bond is a common functional group that forms part of core organic chemistry. Formally, compounds with this functional group may be considered organic derivatives of the chloride anion. Due to the difference of electronegativity between chlorine (3.16) and carbon (2.55), the carbon in a C–Cl bond is electron-deficient and thus electrophilic. Chlorination modifies the physical properties of hydrocarbons in several ways: chlorocarbons are typically denser than water due to the higher atomic weight of chlorine versus hydrogen, and aliphatic organochlorides are alkylating agents because chloride is a leaving group.[55]

Alkanes and aryl alkanes may be chlorinated under free-radical conditions, with UV light. However, the extent of chlorination is difficult to control: the reaction is not regioselective and often results in a mixture of various isomers with different degrees of chlorination, though this may be permissible if the products are easily separated. Aryl chlorides may be prepared by the Friedel-Crafts halogenation, using chlorine and a Lewis acid catalyst.[55] The haloform reaction, using chlorine and sodium hydroxide, is also able to generate alkyl halides from methyl ketones, and related compounds. Chlorine adds to the multiple bonds on alkenes and alkynes as well, giving di- or tetra-chloro compounds. However, due to the expense and reactivity of chlorine, organochlorine compounds are more commonly produced by using hydrogen chloride, or with chlorinating agents such as phosphorus pentachloride (PCl5) or thionyl chloride (SOCl2). The last is very convenient in the laboratory because all side products are gaseous and do not have to be distilled out.[55]

Many organochlorine compounds have been isolated from natural sources ranging from bacteria to humans.[56][57] Chlorinated organic compounds are found in nearly every class of biomolecules including alkaloids, terpenes, amino acids, flavonoids, steroids, and fatty acids.[56][58] Organochlorides, including dioxins, are produced in the high temperature environment of forest fires, and dioxins have been found in the preserved ashes of lightning-ignited fires that predate synthetic dioxins.[59] In addition, a variety of simple chlorinated hydrocarbons including dichloromethane, chloroform, and carbon tetrachloride have been isolated from marine algae.[60] A majority of the chloromethane in the environment is produced naturally by biological decomposition, forest fires, and volcanoes.[61]

Some types of organochlorides, though not all, have significant toxicity to plants or animals, including humans. Dioxins, produced when organic matter is burned in the presence of chlorine, and some insecticides, such as DDT, are persistent organic pollutants which pose dangers when they are released into the environment. For example, DDT, which was widely used to control insects in the mid 20th century, also accumulates in food chains, and causes reproductive problems (e.g., eggshell thinning) in certain bird species.[62] Due to the ready homolytic fission of the C–Cl bond to create chlorine radicals in the upper atmosphere, chlorofluorocarbons have been phased out due to the harm they do to the ozone layer.[52]

Occurrence and production

 
Liquid chlorine analysis

Chlorine is too reactive to occur as the free element in nature but is very abundant in the form of its chloride salts. It is the twenty-first most abundant element in Earth's crust and makes up 126 parts per million of it, through the large deposits of chloride minerals, especially sodium chloride, that have been evaporated from water bodies. All of these pale in comparison to the reserves of chloride ions in seawater: smaller amounts at higher concentrations occur in some inland seas and underground brine wells, such as the Great Salt Lake in Utah and the Dead Sea in Israel.[63]

Small batches of chlorine gas are prepared in the laboratory by combining hydrochloric acid and manganese dioxide, but the need rarely arises due to its ready availability. In industry, elemental chlorine is usually produced by the electrolysis of sodium chloride dissolved in water. This method, the chloralkali process industrialized in 1892, now provides most industrial chlorine gas.[27] Along with chlorine, the method yields hydrogen gas and sodium hydroxide, which is the most valuable product. The process proceeds according to the following chemical equation:[64]

2 NaCl + 2 H2O → Cl2 + H2 + 2 NaOH

The electrolysis of chloride solutions all proceed according to the following equations:

Cathode: 2 H2O + 2 e → H2 + 2 OH
Anode: 2 Cl → Cl2 + 2 e

In diaphragm cell electrolysis, an asbestos (or polymer-fiber) diaphragm separates a cathode and an anode, preventing the chlorine forming at the anode from re-mixing with the sodium hydroxide and the hydrogen formed at the cathode.[65] The salt solution (brine) is continuously fed to the anode compartment and flows through the diaphragm to the cathode compartment, where the caustic alkali is produced and the brine is partially depleted. Diaphragm methods produce dilute and slightly impure alkali, but they are not burdened with the problem of mercury disposal and they are more energy efficient.[27]

Membrane cell electrolysis employs permeable membrane as an ion exchanger. Saturated sodium (or potassium) chloride solution is passed through the anode compartment, leaving at a lower concentration. This method also produces very pure sodium (or potassium) hydroxide but has the disadvantage of requiring very pure brine at high concentrations.[66]

 
Membrane cell process for chloralkali production

In the Deacon process, hydrogen chloride recovered from the production of organochlorine compounds is recovered as chlorine. The process relies on oxidation using oxygen:

4 HCl + O2 → 2 Cl2 + 2 H2O

The reaction requires a catalyst. As introduced by Deacon, early catalysts were based on copper. Commercial processes, such as the Mitsui MT-Chlorine Process, have switched to chromium and ruthenium-based catalysts.[67] The chlorine produced is available in cylinders from sizes ranging from 450 g to 70 kg, as well as drums (865 kg), tank wagons (15 tonnes on roads; 27–90 tonnes by rail), and barges (600–1200 tonnes).[68]

Applications

Sodium chloride is the most common chlorine compound, and is the main source of chlorine for the demand by the chemical industry. About 15000 chlorine-containing compounds are commercially traded, including such diverse compounds as chlorinated methane, ethanes, vinyl chloride, polyvinyl chloride (PVC), aluminium trichloride for catalysis, the chlorides of magnesium, titanium, zirconium, and hafnium which are the precursors for producing the pure form of those elements.[13]

Quantitatively, of all elemental chlorine produced, about 63% is used in the manufacture of organic compounds, and 18% in the manufacture of inorganic chlorine compounds.[69] About 15,000 chlorine compounds are used commercially.[70] The remaining 19% of chlorine produced is used for bleaches and disinfection products.[68] The most significant of organic compounds in terms of production volume are 1,2-dichloroethane and vinyl chloride, intermediates in the production of PVC. Other particularly important organochlorines are methyl chloride, methylene chloride, chloroform, vinylidene chloride, trichloroethylene, perchloroethylene, allyl chloride, epichlorohydrin, chlorobenzene, dichlorobenzenes, and trichlorobenzenes. The major inorganic compounds include HCl, Cl2O, HOCl, NaClO3, chlorinated isocyanurates, AlCl3, SiCl4, SnCl4, PCl3, PCl5, POCl3, AsCl3, SbCl3, SbCl5, BiCl3, and ZnCl2.[68]

Sanitation, disinfection, and antisepsis

Combating putrefaction

In France (as elsewhere), animal intestines were processed to make musical instrument strings, Goldbeater's skin and other products. This was done in "gut factories" (boyauderies), and it was an odiferous and unhealthy process. In or about 1820, the Société d'encouragement pour l'industrie nationale offered a prize for the discovery of a method, chemical or mechanical, for separating the peritoneal membrane of animal intestines without putrefaction.[71][72] The prize was won by Antoine-Germain Labarraque, a 44-year-old French chemist and pharmacist who had discovered that Berthollet's chlorinated bleaching solutions ("Eau de Javel") not only destroyed the smell of putrefaction of animal tissue decomposition, but also actually retarded the decomposition.[72][29]

Labarraque's research resulted in the use of chlorides and hypochlorites of lime (calcium hypochlorite) and of sodium (sodium hypochlorite) in the boyauderies. The same chemicals were found to be useful in the routine disinfection and deodorization of latrines, sewers, markets, abattoirs, anatomical theatres, and morgues.[73] They were successful in hospitals, lazarets, prisons, infirmaries (both on land and at sea), magnaneries, stables, cattle-sheds, etc.; and they were beneficial during exhumations,[74] embalming, outbreaks of epidemic disease, fever, and blackleg in cattle.[71]

Disinfection

Labarraque's chlorinated lime and soda solutions have been advocated since 1828 to prevent infection (called "contagious infection", presumed to be transmitted by "miasmas"), and to treat putrefaction of existing wounds, including septic wounds.[75] In his 1828 work, Labarraque recommended that doctors breathe chlorine, wash their hands in chlorinated lime, and even sprinkle chlorinated lime about the patients' beds in cases of "contagious infection". In 1828, the contagion of infections was well known, even though the agency of the microbe was not discovered until more than half a century later.

During the Paris cholera outbreak of 1832, large quantities of so-called chloride of lime were used to disinfect the capital. This was not simply modern calcium chloride, but chlorine gas dissolved in lime-water (dilute calcium hydroxide) to form calcium hypochlorite (chlorinated lime). Labarraque's discovery helped to remove the terrible stench of decay from hospitals and dissecting rooms, and by doing so, effectively deodorised the Latin Quarter of Paris.[76] These "putrid miasmas" were thought by many to cause the spread of "contagion" and "infection" – both words used before the germ theory of infection. Chloride of lime was used for destroying odors and "putrid matter". One source claims chloride of lime was used by Dr. John Snow to disinfect water from the cholera-contaminated well that was feeding the Broad Street pump in 1854 London,[77] though three other reputable sources that describe that famous cholera epidemic do not mention the incident.[78][79][80] One reference makes it clear that chloride of lime was used to disinfect the offal and filth in the streets surrounding the Broad Street pump – a common practice in mid-nineteenth century England.[78]: 296 

Semmelweis and experiments with antisepsis

Perhaps the most famous application of Labarraque's chlorine and chemical base solutions was in 1847, when Ignaz Semmelweis used chlorine-water (chlorine dissolved in pure water, which was cheaper than chlorinated lime solutions) to disinfect the hands of Austrian doctors, which Semmelweis noticed still carried the stench of decomposition from the dissection rooms to the patient examination rooms. Long before the germ theory of disease, Semmelweis theorized that "cadaveric particles" were transmitting decay from fresh medical cadavers to living patients, and he used the well-known "Labarraque's solutions" as the only known method to remove the smell of decay and tissue decomposition (which he found that soap did not). The solutions proved to be far more effective antiseptics than soap (Semmelweis was also aware of their greater efficacy, but not the reason), and this resulted in Semmelweis's celebrated success in stopping the transmission of childbed fever ("puerperal fever") in the maternity wards of Vienna General Hospital in Austria in 1847.[81]

Much later, during World War I in 1916, a standardized and diluted modification of Labarraque's solution containing hypochlorite (0.5%) and boric acid as an acidic stabilizer was developed by Henry Drysdale Dakin (who gave full credit to Labarraque's prior work in this area). Called Dakin's solution, the method of wound irrigation with chlorinated solutions allowed antiseptic treatment of a wide variety of open wounds, long before the modern antibiotic era. A modified version of this solution continues to be employed in wound irrigation in modern times, where it remains effective against bacteria that are resistant to multiple antibiotics (see Century Pharmaceuticals).[82]

Public sanitation

 
Liquid Pool Chlorine

The first continuous application of chlorination to drinking U.S. water was installed in Jersey City, New Jersey, in 1908.[83] By 1918, the US Department of Treasury called for all drinking water to be disinfected with chlorine. Chlorine is presently an important chemical for water purification (such as in water treatment plants), in disinfectants, and in bleach. Even small water supplies are now routinely chlorinated.[84]

Chlorine is usually used (in the form of hypochlorous acid) to kill bacteria and other microbes in drinking water supplies and public swimming pools. In most private swimming pools, chlorine itself is not used, but rather sodium hypochlorite, formed from chlorine and sodium hydroxide, or solid tablets of chlorinated isocyanurates. The drawback of using chlorine in swimming pools is that the chlorine reacts with the amino acids in proteins in human hair and skin. Contrary to popular belief, the distinctive "chlorine aroma" associated with swimming pools is not the result of elemental chlorine itself, but of chloramine, a chemical compound produced by the reaction of free dissolved chlorine with amines in organic substances including those in urine and sweat.[85] As a disinfectant in water, chlorine is more than three times as effective against Escherichia coli as bromine, and more than six times as effective as iodine.[86] Increasingly, monochloramine itself is being directly added to drinking water for purposes of disinfection, a process known as chloramination.[87]

It is often impractical to store and use poisonous chlorine gas for water treatment, so alternative methods of adding chlorine are used. These include hypochlorite solutions, which gradually release chlorine into the water, and compounds like sodium dichloro-s-triazinetrione (dihydrate or anhydrous), sometimes referred to as "dichlor", and trichloro-s-triazinetrione, sometimes referred to as "trichlor". These compounds are stable while solid and may be used in powdered, granular, or tablet form. When added in small amounts to pool water or industrial water systems, the chlorine atoms hydrolyze from the rest of the molecule, forming hypochlorous acid (HOCl), which acts as a general biocide, killing germs, microorganisms, algae, and so on.[88][89]

Use as a weapon

World War I

Chlorine gas, also known as bertholite, was first used as a weapon in World War I by Germany on April 22, 1915, in the Second Battle of Ypres.[90][91] As described by the soldiers, it had the distinctive smell of a mixture of pepper and pineapple.[citation needed] It also tasted metallic and stung the back of the throat and chest. Chlorine reacts with water in the mucosa of the lungs to form hydrochloric acid, destructive to living tissue and potentially lethal. Human respiratory systems can be protected from chlorine gas by gas masks with activated charcoal or other filters, which makes chlorine gas much less lethal than other chemical weapons. It was pioneered by a German scientist later to be a Nobel laureate, Fritz Haber of the Kaiser Wilhelm Institute in Berlin, in collaboration with the German chemical conglomerate IG Farben, which developed methods for discharging chlorine gas against an entrenched enemy.[92] After its first use, both sides in the conflict used chlorine as a chemical weapon, but it was soon replaced by the more deadly phosgene and mustard gas.[93]

Middle east

Chlorine gas was also used during the Iraq War in Anbar Province in 2007, with insurgents packing truck bombs with mortar shells and chlorine tanks. The attacks killed two people from the explosives and sickened more than 350. Most of the deaths were caused by the force of the explosions rather than the effects of chlorine since the toxic gas is readily dispersed and diluted in the atmosphere by the blast. In some bombings, over a hundred civilians were hospitalized due to breathing difficulties. The Iraqi authorities tightened security for elemental chlorine, which is essential for providing safe drinking water to the population.[94][95]

On 23 October 2014, it was reported that the Islamic State of Iraq and the Levant had used chlorine gas in the town of Duluiyah, Iraq.[96] Laboratory analysis of clothing and soil samples confirmed the use of chlorine gas against Kurdish Peshmerga Forces in a vehicle-borne improvised explosive device attack on 23 January 2015 at the Highway 47 Kiske Junction near Mosul.[97]

Another country in the middle east, Syria, has used chlorine as a chemical weapon[98] delivered from barrel bombs and rockets.[99][100] In 2016, the OPCW-UN Joint Investigative Mechanism concluded that the Syrian government used chlorine as a chemical weapon in three separate attacks.[101] Later investigations from the OPCW's Investigation and Identification Team concluded that the Syrian Air Force was responsible for chlorine attacks in 2017 and 2018.[102]

Biological role

The chloride anion is an essential nutrient for metabolism. Chlorine is needed for the production of hydrochloric acid in the stomach and in cellular pump functions.[103] The main dietary source is table salt, or sodium chloride. Overly low or high concentrations of chloride in the blood are examples of electrolyte disturbances. Hypochloremia (having too little chloride) rarely occurs in the absence of other abnormalities. It is sometimes associated with hypoventilation.[104] It can be associated with chronic respiratory acidosis.[105] Hyperchloremia (having too much chloride) usually does not produce symptoms. When symptoms do occur, they tend to resemble those of hypernatremia (having too much sodium). Reduction in blood chloride leads to cerebral dehydration; symptoms are most often caused by rapid rehydration which results in cerebral edema. Hyperchloremia can affect oxygen transport.[106]

Hazards

Chlorine
Hazards
GHS labelling:[107]
     
Danger
H270, H315, H319, H330, H335, H400
P220, P233, P244, P261, P304, P312, P340, P403, P410
NFPA 704 (fire diamond)

Chlorine is a toxic gas that attacks the respiratory system, eyes, and skin.[109] Because it is denser than air, it tends to accumulate at the bottom of poorly ventilated spaces. Chlorine gas is a strong oxidizer, which may react with flammable materials.[110][111]

Chlorine is detectable with measuring devices in concentrations as low as 0.2 parts per million (ppm), and by smell at 3 ppm. Coughing and vomiting may occur at 30 ppm and lung damage at 60 ppm. About 1000 ppm can be fatal after a few deep breaths of the gas.[13] The IDLH (immediately dangerous to life and health) concentration is 10 ppm.[112] Breathing lower concentrations can aggravate the respiratory system and exposure to the gas can irritate the eyes.[113] When chlorine is inhaled at concentrations greater than 30 ppm, it reacts with water within the lungs, producing hydrochloric acid (HCl) and hypochlorous acid (HClO).

When used at specified levels for water disinfection, the reaction of chlorine with water is not a major concern for human health. Other materials present in the water may generate disinfection by-products that are associated with negative effects on human health.[114][115]

In the United States, the Occupational Safety and Health Administration (OSHA) has set the permissible exposure limit for elemental chlorine at 1 ppm, or 3 mg/m3. The National Institute for Occupational Safety and Health has designated a recommended exposure limit of 0.5 ppm over 15 minutes.[112]

In the home, accidents occur when hypochlorite bleach solutions come into contact with certain acidic drain-cleaners to produce chlorine gas.[116] Hypochlorite bleach (a popular laundry additive) combined with ammonia (another popular laundry additive) produces chloramines, another toxic group of chemicals.[117]

Chlorine-induced cracking in structural materials

Chlorine is widely used for purifying water, especially potable water supplies and water used in swimming pools. Several catastrophic collapses of swimming pool ceilings have occurred from chlorine-induced stress corrosion cracking of stainless steel suspension rods.[118] Some polymers are also sensitive to attack, including acetal resin and polybutene. Both materials were used in hot and cold water domestic plumbing, and stress corrosion cracking caused widespread failures in the US in the 1980s and 1990s.[119]

 
Chlorine "attack" on an acetal resin plumbing joint resulting from a fractured acetal joint in a water supply system which started at an injection molding defect in the joint and slowly grew until the part failed; the fracture surface shows iron and calcium salts that were deposited in the leaking joint from the water supply before failure and are the indirect result of the chlorine attack

Chlorine-iron fire

The element iron can combine with chlorine at high temperatures in a strong exothermic reaction, creating a chlorine-iron fire.[120][121] Chlorine-iron fires are a risk in chemical process plants, where much of the pipework that carries chlorine gas is made of steel.[120][121]

See also

References

  1. ^ "Standard Atomic Weights: Chlorine". CIAAW. 2009.
  2. ^ Chlorine, Gas Encyclopaedia, Air Liquide
  3. ^ Magnetic susceptibility of the elements and inorganic compounds, in Lide, D. R., ed. (2005). CRC Handbook of Chemistry and Physics (86th ed.). Boca Raton (FL): CRC Press. ISBN 0-8493-0486-5.
  4. ^ Weast, Robert (1984). CRC, Handbook of Chemistry and Physics. Boca Raton, Florida: Chemical Rubber Company Publishing. pp. E110. ISBN 0-8493-0464-4.
  5. ^ . Archived from the original on April 30, 2011. Retrieved 2008-07-10.
  6. ^ Kraus, Paul (1942–1943). Jâbir ibn Hayyân: Contribution à l'histoire des idées scientifiques dans l'Islam. I. Le corpus des écrits jâbiriens. II. Jâbir et la science grecque. Cairo: Institut Français d'Archéologie Orientale. ISBN 978-3487091150. OCLC 468740510. vol. II, pp. 41–42; Multhauf, Robert P. (1966). The Origins of Chemistry. London: Oldbourne. pp. 141–42.
  7. ^ Multhauf 1966, p. 142, note 79.
  8. ^ Multhauf 1966, pp. 160–163.
  9. ^ Karpenko, Vladimír; Norris, John A. (2002). "Vitriol in the History of Chemistry". Chemické listy. 96 (12): 997–1005. p. 1002.
  10. ^ a b c d Greenwood & Earnshaw 1997, pp. 789–92
  11. ^ Scheele, Carl Wilhelm (1774). "Om Brunsten, eller Magnesia, och dess Egenskaper" [On braunstein [i.e., pyrolusite, manganese dioxide], or magnesia, and its properties]. Kongliga Vetenskaps Academiens Handlingar [Proceedings of the Royal Scientific Academy] (in Swedish). 35: 89–116, 177–94. In section 6 on pp. 93–94 of his paper, Scheele described how chlorine was produced when a mixture of hydrochloric acid and manganese dioxide (Brunsten) was heated: "6) (a) På 1/2 uns fint rifven Brunsten slogs 1 uns ren Spiritus salis. … samt lukten fo̊rsvunnen." ( 6) (a) On one half ounce of finely ground Braunstein [pyrolusite] was poured one ounce of pure spiritus salis [spirit of salt, hydrogen chloride]. After this mixture had been standing in the cold for one hour, the acid had assumed a dark brown colour. One part of this solution was poured into a glass, which was placed over the fire. The solution gave off an odour like warm aqua regia and after one quarter’s hour duration, it was as clear and colourless as water, and the smell had disappeared.) For an English translation of the relevant passages of this article, see: The Early History of Chlorine : Papers by Carl Wilhelm Scheele (1774), C. L. Berthollet (1785), Guyton de Morveau (1787), J. L. Gay-Lussac and L. J. Thenard (1809) (Edinburgh, Scotland: Alembic Club, 1912), pp. 5–10.
  12. ^ a b c d e . Elements.vanderkrogt.net. Archived from the original on 2010-01-23. Retrieved 2008-09-12.
  13. ^ a b c d Greenwood & Earnshaw 1997, pp. 792–93
  14. ^ Ihde, Aaron John (1984). The development of modern chemistry. Courier Dover Publications. p. 158. ISBN 978-0-486-64235-2.
  15. ^ Weeks, Mary Elvira (1932). "The discovery of the elements. XVII. The halogen family". Journal of Chemical Education. 9 (11): 1915. Bibcode:1932JChEd...9.1915W. doi:10.1021/ed009p1915.
  16. ^ Gay-Lussac; Thenard (1809). "Extrait des mémoires lus à l'Institut national, depuis le 7 mars 1808 jusqu'au 27 février 1809" [Extracts from memoirs read at the national Institute, from 7 March 1808 to 27 February 1809]. Mémoires de Physique et de Chimie de la Société d'Arcueil. 2: 295–358. See: § De la nature et des propriétés de l'acide muriatique et de l'acide muriatique oxigéné (On the nature and properties of muriatic acid and of oxidized muriatic acid), pp. 339–58. From pp. 357–58: "Le gaz muriatique oxigéné n'est pas, en effect, décomposé … comme un corps composé." ("In fact, oxygenated muriatic acid is not decomposed by charcoal, and it might be supposed, from this fact and those that are communicated in this Memoir, that this gas is a simple body. The phenomena that it presents can be explained well enough on this hypothesis; we shall not seek to defend it, however, as it appears to us that they are still better explained by regarding oxygenated muriatic acid as a compound body.") For a full English translation of this section, see: Joseph Louis Gay-Lussac and Louis Jacques Thénard, "On the nature and the properties of muriatic acid and of oxygenated muriatic acid" (Lemoyne College, Syracuse, New York)
  17. ^ Davy, Humphry (1811). "The Bakerian Lecture. On some of the combinations of oxymuriatic gas and oxygene, and on the chemical relations of these principles, to inflammable bodies". Philosophical Transactions of the Royal Society of London. 101: 1–35. Bibcode:1811RSPT..101....1D. doi:10.1098/rstl.1811.0001. Davy named chlorine on p. 32: "After consulting some of the most eminent chemical philosophers in this country, it has been judged most proper to suggest a name founded upon one of its obvious and characteristic properties – its colour, and to call it Chlorine, or Chloric gas.* *From χλωρος."
  18. ^ Schweigger, J.S.C. (1811). "Nachschreiben des Herausgebers, die neue Nomenclatur betreffend" [Postscript of the editor concerning the new nomenclature]. Journal für Chemie und Physik (in German). 3 (2): 249–55. On p. 251, Schweigger proposed the word "halogen": "Man sage dafür lieber mit richter Wortbildung Halogen (da schon in der Mineralogie durch Werner's Halit-Geschlecht dieses Wort nicht fremd ist) von αλς Salz und dem alten γενειν (dorisch γενεν) zeugen." (One should say instead, with proper morphology, "halogen" (this word is not strange since [it's] already in mineralogy via Werner's "halite" species) from αλς [als] "salt" and the old γενειν [genein] (Doric γενεν) "to beget".)
  19. ^ In 1826, Berzelius coined the terms Saltbildare (salt-formers) and Corpora Halogenia (salt-making substances) for the elements chlorine, iodine, and fluorine. See: Berzelius, Jacob (1826). "Årsberättelser om Framstegen i Physik och Chemie" [Annual Report on Progress in Physics and Chemistry]. Arsb. Vetensk. Framsteg (in Swedish). Stockholm, Sweden: P.A. Norstedt & Söner. 6: 187. From p. 187: "De förre af dessa, d. ä. de electronegativa, dela sig i tre klasser: 1) den första innehåller kroppar, som förenade med de electropositiva, omedelbart frambringa salter, hvilka jag derför kallar Saltbildare (Corpora Halogenia). Desse utgöras af chlor, iod och fluor *)." (The first of them [i.e., elements], i.e., the electronegative [ones], are divided into three classes: 1) The first includes substances which, [when] united with electropositive [elements], immediately produce salts, and which I therefore name "salt-formers" (salt-producing substances). These are chlorine, iodine, and fluorine *).)
  20. ^ Snelders, H. A. M. (1971). "J. S. C. Schweigger: His Romanticism and His Crystal Electrical Theory of Matter". Isis. 62 (3): 328–38. doi:10.1086/350763. JSTOR 229946. S2CID 170337569.
  21. ^ Faraday, M. (1823). "On fluid chlorine". Philosophical Transactions of the Royal Society of London. 113: 160–64. Bibcode:1823RSPT..113..160F. doi:10.1098/rstl.1823.0016.
  22. ^ Chodos, Alan (ed.). . American Physical Society. Archived from the original on June 15, 2010. Retrieved 2010-05-08.
  23. ^ O'Connor J. J.; Robertson E. F. . School of Mathematics and Statistics, University of St Andrews, Scotland. Archived from the original on 2010-02-20. Retrieved 2010-05-08.
  24. ^ a b . Encyclopædia Britannica (9th Edition (1875) and 10th Edition (1902) ed.). Archived from the original on 2012-05-24. Retrieved 2012-05-02.
  25. ^ Aspin, Chris (1981). The Cotton Industry. Shire Publications Ltd. p. 24. ISBN 978-0-85263-545-2.
  26. ^ Paul May. "Bleach (Sodium Hypochlorite)". University of Bristol. from the original on 13 December 2016. Retrieved 13 December 2016.
  27. ^ a b c Greenwood & Earnshaw 1997, p. 798
  28. ^ Almqvist, Ebbe (2003). History of Industrial Gases. Springer Science & Business Media. p. 220. ISBN 978-0-306-47277-0.
  29. ^ a b Bouvet, Maurice (1950). "Les grands pharmaciens: Labarraque (1777–1850)" [The great pharmacists: Labarraque (1777–1850)]. Revue d'Histoire de la Pharmacie (in French). 38 (128): 97–107. doi:10.3406/pharm.1950.8662.
  30. ^ (PDF). Archived from the original (PDF) on 21 February 2007. Retrieved 2008-07-10.
  31. ^ "Weaponry: Use of Chlorine Gas Cylinders in World War I". historynet.com. 2006-06-12. from the original on 2008-07-02. Retrieved 2008-07-10.
  32. ^ Staff (29 July 2004). . Veteran Affairs Canada. Archived from the original on 6 December 2008. Retrieved 2008-04-08.
  33. ^ Lefebure, Victor; Wilson, Henry (2004). The Riddle of the Rhine: Chemical Strategy in Peace and War. Kessinger Publishing. ISBN 978-1-4179-3546-8.
  34. ^ a b c d e f g h Greenwood & Earnshaw 1997, pp. 800–804
  35. ^ a b c Greenwood & Earnshaw 1997, pp. 804–809
  36. ^ Cameron, A. G. W. (1973). (PDF). Space Science Reviews. 15 (1): 121–46. Bibcode:1973SSRv...15..121C. doi:10.1007/BF00172440. S2CID 120201972. Archived from the original (PDF) on 2011-10-21.
  37. ^ Audi, Georges; Bersillon, Olivier; Blachot, Jean; Wapstra, Aaldert Hendrik (2003), "The NUBASE evaluation of nuclear and decay properties", Nuclear Physics A, 729: 3–128, Bibcode:2003NuPhA.729....3A, doi:10.1016/j.nuclphysa.2003.11.001
  38. ^ M. Zreda; et al. (1991). "Cosmogenic chlorine-36 production rates in terrestrial rocks". Earth and Planetary Science Letters. 105 (1–3): 94–109. Bibcode:1991E&PSL.105...94Z. doi:10.1016/0012-821X(91)90123-Y.
  39. ^ M. Sheppard and M. Herod (2012). "Variation in background concentrations and specific activities of 36Cl, 129I and U/Th-series radionuclides in surface waters". Journal of Environmental Radioactivity. 106: 27–34. doi:10.1016/j.jenvrad.2011.10.015. PMID 22304997.
  40. ^ a b c d Greenwood & Earnshaw 1997, pp. 853–856
  41. ^ a b c Greenwood & Earnshaw 1997, pp. 809–812
  42. ^ Greenwood & Earnshaw 1997, pp. 812–816
  43. ^ Greenwood & Earnshaw 1997, pp. 818–819
  44. ^ a b c Greenwood & Earnshaw 1997, pp. 821–844
  45. ^ Greenwood & Earnshaw 1997, pp. 842–844
  46. ^ a b c d Greenwood & Earnshaw 1997, pp. 824–828
  47. ^ Greenwood & Earnshaw 1997, pp. 835–842
  48. ^ "In Situ Cleaning of CVD Chambers". Semiconductor International. 1 June 1999.[permanent dead link]
  49. ^ Greenwood & Earnshaw 1997, pp. 828–831
  50. ^ Greenwood & Earnshaw 1997, pp. 832–835
  51. ^ Greenwood & Earnshaw 1997, pp. 875–880
  52. ^ a b c d e f g h Greenwood & Earnshaw 1997, pp. 844–850
  53. ^ Greenwood & Earnshaw 1997, pp. 883–885
  54. ^ a b Greenwood & Earnshaw 1997, pp. 856–870
  55. ^ a b c M. Rossberg et al. "Chlorinated Hydrocarbons" in Ullmann's Encyclopedia of Industrial Chemistry 2006, Wiley-VCH, Weinheim. doi:10.1002/14356007.a06_233.pub2
  56. ^ a b Gordon W. Gribble (1998). "Naturally Occurring Organohalogen Compounds". Acc. Chem. Res. 31 (3): 141–52. doi:10.1021/ar9701777.
  57. ^ Gordon W. Gribble (1999). "The diversity of naturally occurring organobromine compounds". Chemical Society Reviews. 28 (5): 335–46. doi:10.1039/a900201d.
  58. ^ Kjeld C. Engvild (1986). "Chlorine-Containing Natural Compounds in Higher Plants". Phytochemistry. 25 (4): 7891–91. doi:10.1016/0031-9422(86)80002-4.
  59. ^ Gribble, G. W. (1994). "The Natural production of chlorinated compounds". Environmental Science and Technology. 28 (7): 310A–319A. Bibcode:1994EnST...28..310G. doi:10.1021/es00056a712. PMID 22662801.
  60. ^ Gribble, G. W. (1996). "Naturally occurring organohalogen compounds – A comprehensive survey". Progress in the Chemistry of Organic Natural Products. 68 (10): 1–423. doi:10.1021/np50088a001. PMID 8795309.
  61. ^ Public Health Statement – Chloromethane 2007-09-27 at the Wayback Machine, Centers for Disease Control, Agency for Toxic Substances and Disease Registry
  62. ^ Connell, D.; et al. (1999). Introduction to Ecotoxicology. Blackwell Science. p. 68. ISBN 978-0-632-03852-7.
  63. ^ Greenwood & Earnshaw 1997, p. 795
  64. ^ Holleman, Arnold Frederik; Wiberg, Egon (2001), Wiberg, Nils (ed.), Inorganic Chemistry, translated by Eagleson, Mary; Brewer, William, San Diego/Berlin: Academic Press/De Gruyter, p. 408, ISBN 0-12-352651-5
  65. ^ . Euro Chlor. Archived from the original on 2011-11-11. Retrieved 2007-08-15.
  66. ^ . Euro Chlor. Archived from the original on 2011-11-11. Retrieved 2007-08-15.
  67. ^ Schmittinger, Peter et al. (2006) "Chlorine" in Ullmann's Encyclopedia of Industrial Chemistry, Wiley-VCH Verlag GmbH & Co., doi:10.1002/14356007.a06_399.pub2
  68. ^ a b c Greenwood & Earnshaw 1997, pp. 796–800
  69. ^ Greenwood & Earnshaw 1997, p. 798.
  70. ^ Greenwood & Earnshaw 1997, p. 793.
  71. ^ a b Hoefer, Jean Chrétien Ferdinand (ed.). "Labarraque, Antoine-Germain". Nouvelle biographie universelle. Vol. 28. pp. 323–24. OL 24229911M.
  72. ^ a b Knight, Charles (1867). Arts and sciences. Vol. 1. Bradbury, Evans & Co. p. 427.
  73. ^ Gédéon, Andras (2006). Science and technology in medicine. Springer. pp. 181–82. ISBN 978-0-387-27874-2. from the original on 2015-12-31.
  74. ^ Labarraque, Antoine Germain (1828). On the disinfecting properties of Labarraque's preparations of chlorine. Translated by James Scott. p. 8. from the original on 2015-12-31.
  75. ^ Scott, James (trans.). On the disinfecting properties of Labarraque's preparations of chlorine 2015-12-31 at the Wayback Machine (S. Highley, 1828) Accessed Nov 1, 2011.
  76. ^ Corbin, Alain (1988). The Foul and the Fragrant: Odor and the French Social Imagination 2015-12-31 at the Wayback Machine. Harvard University Press. pp. 121–22.
  77. ^ Lewis, Kenneth A. (2010). "Ch. 9 Hypochlorination – Sodium Hypochlorite" (PDF). White's Handbook of Chlorination and Alternative Disinfectants. Hoboken, NJ: Wiley. p. 452. doi:10.1002/9780470561331.ch9. ISBN 978-0-470-56133-1. Archived (PDF) from the original on 2022-10-09.[permanent dead link]
  78. ^ a b Vinten-Johansen, Peter, Howard Brody, Nigel Paneth, Stephen Rachman and Michael Rip. (2003). Cholera, Chloroform, and the Science of Medicine. New York:Oxford University.
  79. ^ Hemphill, Sandra. (2007). The Strange Case of the Broad Street Pump: John Snow and the Mystery of Cholera. Los Angeles:University of California
  80. ^ Johnson, Steven. (2006). The Ghost Map: The Story of London's Most Terrifying Epidemic and How It Changed Science, Cities, and the Modern World. New York :Riverhead Books
  81. ^ . americanchemistry. Archived from the original on 2011-04-29. Retrieved 2008-07-10.{{cite web}}: CS1 maint: bot: original URL status unknown (link)
  82. ^ Rezayat, C.; Widmann, W. D.; Hardy, M. A. (2006). "Henry Drysdale Dakin: More Than His Solution". Current Surgery. 63 (3): 194–96. doi:10.1016/j.cursur.2006.04.009. PMID 16757372.
  83. ^ Joseph Cotruvo, Victor Kimm, Arden Calvert. “Drinking Water: A Half Century of Progress.” EPA Alumni Association. March 1, 2016.
  84. ^ Hammond, C. R. (2000). The Elements, in Handbook of Chemistry and Physics (81st ed.). CRC press. ISBN 978-0-8493-0481-1.
  85. ^ "Chloramines & Pool Operation". Centres for Disease Control and Prevention. Retrieved 13 March 2022.
  86. ^ Koski T. A.; Stuart L. S.; Ortenzio L. F. (1966). "Comparison of chlorine, bromine, iodine as disinfectants for swimming pool water". Applied Microbiology. 14 (2): 276–79. doi:10.1128/AEM.14.2.276-279.1966. PMC 546668. PMID 4959984.
  87. ^ "Disinfection with chloramine". Centers for Disease Control and Prevention (CDC). Atlanta, Georgia. from the original on 2019-01-20. Retrieved 2019-01-20.
  88. ^ Greenwood & Earnshaw 1997, p. 860.
  89. ^ Holleman, Arnold Frederik; Wiberg, Egon (2001), Wiberg, Nils (ed.), Inorganic Chemistry, translated by Eagleson, Mary; Brewer, William, San Diego/Berlin: Academic Press/De Gruyter, p. 411, ISBN 0-12-352651-5
  90. ^ "Battle of Ypres" The Canadian Encyclopedia
  91. ^ Everts, Sarah (February 23, 2015). "When Chemicals Became Weapons of War". Chemical & Engineering News. 93 (8). from the original on March 30, 2016.
  92. ^ Smil, Vaclav (2000). Enriching the Earth: Fritz Haber, Carl Bosch, and the Transformation of World Food Production. p. 226. ISBN 978-0-262-69313-4. from the original on 2015-12-31.
  93. ^ "Weapons of War: Poison Gas". First World War.com. from the original on 2007-08-21. Retrieved 2007-08-12.
  94. ^ Mahdi, Basim (2007-03-17). "Iraq gas attack makes hundreds ill". CNN. from the original on 2007-03-17. Retrieved 2007-03-17.
  95. ^ . BBC News. 2007-05-17. Archived from the original on 2007-05-26. Retrieved 2007-05-17.
  96. ^ Morris, Loveday (2014-10-23). "Islamic State militants allegedly used chlorine gas against Iraqi security forces". The Washington Post. Retrieved 2021-06-08.
  97. ^ "Lab report on chlorine gas usage" (PDF). Kurdistan Region Security Council. March 14, 2015.
  98. ^ Gladstone, Rick (2017-02-13). "Syria Used Chlorine Bombs Systematically in Aleppo, Report Says". The New York Times. from the original on 2017-05-15. Retrieved 2017-05-10.
  99. ^ "Syrian forces 'drop chlorine' on Aleppo". BBC News. 2016-09-07. from the original on 2017-05-13. Retrieved 2017-05-10.
  100. ^ "Ignoring UN, Russia and Assad continue Syrian chemical weapons and bombing attacks labeled war crimes". Fox News. 2017-03-06. from the original on 2017-04-25. Retrieved 2017-05-11.
  101. ^ "Timeline of investigations into Syria's chemical weapons". Reuters. April 9, 2018.
  102. ^ "Syrian air force behind 2018 chlorine attack on Saraqeb, OPCW finds" BBC News. April 12, 2021.
  103. ^ . Archived from the original on 31 March 2009. Retrieved 30 April 2010.
  104. ^ Lavie, CJ; Crocker, EF; Key, KJ; Ferguson, TG (October 1986). "Marked hypochloremic metabolic alkalosis with severe compensatory hypoventilation". South. Med. J. 79 (10): 1296–99. doi:10.1097/00007611-198610000-00025. PMID 3764530.
  105. ^ Levitin, H; Branscome, W; Epstein, FH (December 1958). "The pathogenesis of hypochloremia in respiratory acidosis". J. Clin. Invest. 37 (12): 1667–75. doi:10.1172/JCI103758. PMC 1062852. PMID 13611033.
  106. ^ Cambier, C; Detry, B; Beerens, D; et al. (October 1998). "Effects of hyperchloremia on blood oxygen binding in healthy calves". J. Appl. Physiol. 85 (4): 1267–72. doi:10.1152/jappl.1998.85.4.1267. PMID 9760315.
  107. ^ "Chlorine 295132". Sigma-Aldrich. 2021-07-29. Retrieved 2021-12-22.
  108. ^ "Msds – 295132".
  109. ^ . www.bt.cdc.gov. Archived from the original on 2016-04-23. Retrieved 2016-04-12.{{cite web}}: CS1 maint: bot: original URL status unknown (link)
  110. ^ (PDF). 1997-10-23. Archived from the original (PDF) on 2007-09-26.
  111. ^ NOAA Office of Response and Restoration, US GOV. "Chlorine". noaa.gov. from the original on 15 October 2015. Retrieved 25 August 2015.
  112. ^ a b NIOSH Pocket Guide to Chemical Hazards. "#0115". National Institute for Occupational Safety and Health (NIOSH).
  113. ^ Winder, Chris (2001). "The Toxicology of Chlorine". Environmental Research. 85 (2): 105–14. Bibcode:2001ER.....85..105W. doi:10.1006/enrs.2000.4110. PMID 11161660.
  114. ^ "What's in your Water?: Disinfectants Create Toxic By-products". ACES News. College of Agricultural, Consumer and Environmental Sciences – University of Illinois at Urbana-Champaign. 2009-03-31. from the original on 2014-09-03. Retrieved 2009-03-31.
  115. ^ Richardson, Susan D.; Plewa, Michael J.; Wagner, Elizabeth D.; Schoeny, Rita; DeMarini, David M. (2007). "Occurrence, genotoxicity, and carcinogenicity of regulated and emerging disinfection by-products in drinking water: A review and roadmap for research". Mutation Research/Reviews in Mutation Research. 636 (1–3): 178–242. doi:10.1016/j.mrrev.2007.09.001. PMID 17980649.
  116. ^ Berezow, Alex. "Why You Should Never Mix Different Drain Cleaners". Forbes. from the original on 2016-04-25. Retrieved 2016-04-12.
  117. ^ "Bleach Mixing Dangers : Washington State Dept. of Health". www.doh.wa.gov. from the original on 2016-04-14. Retrieved 2016-04-12.
  118. ^ Bertolini, Luca; Elsener, Bernhard; Pedeferri, Pietro; Polder, Rob B. (2004). Corrosion of steel in concrete: prevention, diagnosis, repair. Wiley-VCH. p. 148. ISBN 978-3-527-30800-2.
  119. ^ Lewis, P.R. (1 January 2000). Polymer Product Failure. iSmithers Rapra Publishing. pp. 19–. ISBN 978-1-85957-192-7. from the original on 10 May 2013. Retrieved 2011-04-30.
  120. ^ a b (PDF). Bayer MaterialScience AG. 2008-04-21. Archived from the original (PDF) on September 15, 2012. Retrieved 2013-12-17.
  121. ^ a b Sanders, Roy E. (2004). Chemical Process Safety: Learning from Case Histories, 3rd Revised edition. Oxford: Elsevier Science & Technology. p. 92. ISBN 978-0-7506-7749-3.

Explanatory notes

  1. ^ van Helmont, Joannis Baptistae (1682). Opera omnia [All Works] (in Latin). Frankfurt-am-Main, (Germany): Johann Just Erythropel. From "Complexionum atque mistionum elementalium figmentum." (Formation of combinations and of mixtures of elements), §37, p. 105: "Accipe salis petrae, vitrioli, & alumnis partes aequas: exsiccato singula, & connexis simul, distilla aquam. Quae nil aliud est, quam merum sal volatile. Hujus accipe uncias quatuor, salis armeniaci unciam junge, in forti vitro, alembico, per caementum (ex cera, colophonia, & vitri pulverre) calidissime affusum, firmato; mox, etiam in frigore, Gas excitatur, & vas, utut forte, dissilit cum fragore." (Take equal parts of saltpeter [i.e., sodium nitrate], vitriol [i.e., concentrated sulfuric acid], and alum: dry each and combine simultaneously; distill off the water [i.e., liquid]. That [distillate] is nothing else than pure volatile salt [i.e., spirit of nitre, nitric acid]. Take four ounces of this [viz, nitric acid], add one ounce of Armenian salt [i.e., ammonium chloride], [place it] in a strong glass alembic sealed by cement ([made] from wax, rosin, and powdered glass) [that has been] poured very hot; soon, even in the cold, gas is stimulated, and the vessel, however strong, bursts into fragments.) From "De Flatibus" (On gases), p. 408: "Sal armeniacus enim, & aqua chrysulca, quae singula per se distillari, possunt, & pati calorem: sin autem jungantur, & intepescant, non possunt non, quin statim in Gas sylvestre, sive incoercibilem flatum transmutentur." (Truly Armenian salt [i.e., ammonium chloride] and nitric acid, each of which can be distilled by itself, and submitted to heat; but if, on the other hand, they be combined and become warm, they cannot but be changed immediately into carbon dioxide [note: van Helmont’s identification of the gas is mistaken] or an incondensable gas.)
    See also:
    • Helmont, Johannes (Joan) Baptista Van, Encyclopedia.Com: "Others were chlorine gas from the reaction of nitric acid and sal ammoniac; … "
    • Wisniak, Jaime (2009) "Carl Wilhelm Scheele," Revista CENIC Ciencias Químicas, 40 (3): 165–73 ; see p. 168: "Early in the seventeenth century Johannes Baptiste van Helmont (1579–1644) mentioned that when sal marin (sodium chloride) or sal ammoniacus and aqua chrysulca (nitric acid) were mixed together, a flatus incoercible (non-condensable gas) was evolved."

General bibliography

External links

chlorine, confused, with, chloride, this, article, about, chemical, element, other, uses, disambiguation, redirect, here, other, uses, disambiguation, disambiguation, chemical, element, with, symbol, atomic, number, second, lightest, halogens, appears, between. Not to be confused with chloride This article is about the chemical element For other uses see Chlorine disambiguation Cl and Cl2 redirect here For other uses see CL disambiguation and CL2 disambiguation Chlorine is a chemical element with the symbol Cl and atomic number 17 The second lightest of the halogens it appears between fluorine and bromine in the periodic table and its properties are mostly intermediate between them Chlorine is a yellow green gas at room temperature It is an extremely reactive element and a strong oxidising agent among the elements it has the highest electron affinity and the third highest electronegativity on the revised Pauling scale behind only oxygen and fluorine Chlorine 17ClChlorinePronunciation ˈ k l ɔːr iː n aɪ n wbr KLOR een eyen Appearancepale yellow green gasStandard atomic weight Ar Cl 35 446 35 457 35 45 0 01 abridged 1 Chlorine in the periodic tableHydrogen HeliumLithium Beryllium Boron Carbon Nitrogen Oxygen Fluorine NeonSodium Magnesium Aluminium Silicon Phosphorus Sulfur Chlorine ArgonPotassium Calcium Scandium Titanium Vanadium Chromium Manganese Iron Cobalt Nickel Copper Zinc Gallium Germanium Arsenic Selenium Bromine KryptonRubidium Strontium Yttrium Zirconium Niobium Molybdenum Technetium Ruthenium Rhodium Palladium Silver Cadmium Indium Tin Antimony Tellurium Iodine XenonCaesium Barium Lanthanum Cerium Praseodymium Neodymium Promethium Samarium Europium Gadolinium Terbium Dysprosium Holmium Erbium Thulium Ytterbium Lutetium Hafnium Tantalum Tungsten Rhenium Osmium Iridium Platinum Gold Mercury element Thallium Lead Bismuth Polonium Astatine RadonFrancium Radium Actinium Thorium Protactinium Uranium Neptunium Plutonium Americium Curium Berkelium Californium Einsteinium Fermium Mendelevium Nobelium Lawrencium Rutherfordium Dubnium Seaborgium Bohrium Hassium Meitnerium Darmstadtium Roentgenium Copernicium Nihonium Flerovium Moscovium Livermorium Tennessine Oganesson F Cl Brsulfur chlorine argonAtomic number Z 17Groupgroup 17 halogens Periodperiod 3Block p blockElectron configuration Ne 3s2 3p5Electrons per shell2 8 7Physical propertiesPhase at STPgasMelting point Cl2 171 6 K 101 5 C 150 7 F Boiling point Cl2 239 11 K 34 04 C 29 27 F Density at STP 3 2 g Lwhen liquid at b p 1 5625 g cm3 2 Critical point416 9 K 7 991 MPaHeat of fusion Cl2 6 406 kJ molHeat of vaporisation Cl2 20 41 kJ molMolar heat capacity Cl2 33 949 J mol K Vapour pressureP Pa 1 10 100 1 k 10 k 100 kat T K 128 139 153 170 197 239Atomic propertiesOxidation states 1 1 2 3 4 5 6 7 a strongly acidic oxide ElectronegativityPauling scale 3 16Ionisation energies1st 1251 2 kJ mol2nd 2298 kJ mol3rd 3822 kJ mol more Covalent radius102 4 pmVan der Waals radius175 pmSpectral lines of chlorineOther propertiesNatural occurrenceprimordialCrystal structure orthorhombicSpeed of sound206 m s gas at 0 C Thermal conductivity8 9 10 3 W m K Electrical resistivity gt 10 W m at 20 C Magnetic orderingdiamagnetic 3 Molar magnetic susceptibility 40 5 10 6 cm3 mol 4 CAS NumberCl2 7782 50 5HistoryDiscovery and first isolationCarl Wilhelm Scheele 1774 Recognized as an element byHumphry Davy 1808 Main isotopes of chlorineveIso tope Decayabun dance half life t1 2 mode pro duct35Cl 76 stable36Cl trace 3 01 105 y b 36Are 36S37Cl 24 stable Category Chlorineviewtalkedit referencesChlorine played an important role in the experiments conducted by medieval alchemists which commonly involved the heating of chloride salts like ammonium chloride sal ammoniac and sodium chloride common salt producing various chemical substances containing chlorine such as hydrogen chloride mercury II chloride corrosive sublimate and hydrochloric acid in the form of aqua regia However the nature of free chlorine gas as a separate substance was only recognised around 1630 by Jan Baptist van Helmont Carl Wilhelm Scheele wrote a description of chlorine gas in 1774 supposing it to be an oxide of a new element In 1809 chemists suggested that the gas might be a pure element and this was confirmed by Sir Humphry Davy in 1810 who named it after the Ancient Greek xlwros khlōros pale green because of its colour Because of its great reactivity all chlorine in the Earth s crust is in the form of ionic chloride compounds which includes table salt It is the second most abundant halogen after fluorine and twenty first most abundant chemical element in Earth s crust These crustal deposits are nevertheless dwarfed by the huge reserves of chloride in seawater Elemental chlorine is commercially produced from brine by electrolysis predominantly in the chlor alkali process The high oxidising potential of elemental chlorine led to the development of commercial bleaches and disinfectants and a reagent for many processes in the chemical industry Chlorine is used in the manufacture of a wide range of consumer products about two thirds of them organic chemicals such as polyvinyl chloride PVC many intermediates for the production of plastics and other end products which do not contain the element As a common disinfectant elemental chlorine and chlorine generating compounds are used more directly in swimming pools to keep them sanitary Elemental chlorine at high concentration is extremely dangerous and poisonous to most living organisms As a chemical warfare agent chlorine was first used in World War I as a poison gas weapon In the form of chloride ions chlorine is necessary to all known species of life Other types of chlorine compounds are rare in living organisms and artificially produced chlorinated organics range from inert to toxic In the upper atmosphere chlorine containing organic molecules such as chlorofluorocarbons have been implicated in ozone depletion Small quantities of elemental chlorine are generated by oxidation of chloride ions in neutrophils as part of an immune system response against bacteria Contents 1 History 1 1 Early discoveries 1 2 Isolation 1 3 Later uses 2 Properties 2 1 Isotopes 3 Chemistry and compounds 3 1 Hydrogen chloride 3 2 Other binary chlorides 3 3 Polychlorine compounds 3 4 Chlorine fluorides 3 5 Chlorine oxides 3 6 Chlorine oxoacids and oxyanions 3 7 Organochlorine compounds 4 Occurrence and production 5 Applications 5 1 Sanitation disinfection and antisepsis 5 1 1 Combating putrefaction 5 1 2 Disinfection 5 1 3 Semmelweis and experiments with antisepsis 5 1 4 Public sanitation 5 2 Use as a weapon 5 2 1 World War I 5 2 2 Middle east 6 Biological role 7 Hazards 7 1 Chlorine induced cracking in structural materials 7 2 Chlorine iron fire 8 See also 9 References 10 Explanatory notes 11 General bibliography 12 External linksHistoryThe most common compound of chlorine sodium chloride has been known since ancient times archaeologists have found evidence that rock salt was used as early as 3000 BC and brine as early as 6000 BC 5 Early discoveries Around 900 the authors of the Arabic writings attributed to Jabir ibn Hayyan Latin Geber and the Persian physician and alchemist Abu Bakr al Razi c 865 925 Latin Rhazes were experimenting with sal ammoniac ammonium chloride which when it was distilled together with vitriol hydrated sulfates of various metals produced hydrogen chloride 6 However it appears that in these early experiments with chloride salts the gaseous products were discarded and hydrogen chloride may have been produced many times before it was discovered that it can be put to chemical use 7 One of the first such uses was the synthesis of mercury II chloride corrosive sublimate whose production from the heating of mercury either with alum and ammonium chloride or with vitriol and sodium chloride was first described in the De aluminibus et salibus On Alums and Salts an eleventh or twelfth century Arabic text falsely attributed to Abu Bakr al Razi and translated into Latin in the second half of the twelfth century by Gerard of Cremona 1144 1187 8 Another important development was the discovery by pseudo Geber in the De inventione veritatis On the Discovery of Truth after c 1300 that by adding ammonium chloride to nitric acid a strong solvent capable of dissolving gold i e aqua regia could be produced 9 Although aqua regia is an unstable mixture that continually gives off fumes containing free chlorine gas this chlorine gas appears to have been ignored until c 1630 when its nature as a separate gaseous substance was recognised by the Brabantian chemist and physician Jan Baptist van Helmont 10 en 1 Carl Wilhelm Scheele discoverer of chlorine Isolation The element was first studied in detail in 1774 by Swedish chemist Carl Wilhelm Scheele and he is credited with the discovery 11 12 Scheele produced chlorine by reacting MnO2 as the mineral pyrolusite with HCl 10 4 HCl MnO2 MnCl2 2 H2O Cl2Scheele observed several of the properties of chlorine the bleaching effect on litmus the deadly effect on insects the yellow green color and the smell similar to aqua regia 13 He called it dephlogisticated muriatic acid air since it is a gas then called airs and it came from hydrochloric acid then known as muriatic acid 12 He failed to establish chlorine as an element 12 Common chemical theory at that time held that an acid is a compound that contains oxygen remnants of this survive in the German and Dutch names of oxygen sauerstoff or zuurstof both translating into English as acid substance so a number of chemists including Claude Berthollet suggested that Scheele s dephlogisticated muriatic acid air must be a combination of oxygen and the yet undiscovered element muriaticum 14 15 In 1809 Joseph Louis Gay Lussac and Louis Jacques Thenard tried to decompose dephlogisticated muriatic acid air by reacting it with charcoal to release the free element muriaticum and carbon dioxide 12 They did not succeed and published a report in which they considered the possibility that dephlogisticated muriatic acid air is an element but were not convinced 16 In 1810 Sir Humphry Davy tried the same experiment again and concluded that the substance was an element and not a compound 12 He announced his results to the Royal Society on 15 November that year 10 At that time he named this new element chlorine from the Greek word xlwros chlōros green yellow in reference to its color 17 The name halogen meaning salt producer was originally used for chlorine in 1811 by Johann Salomo Christoph Schweigger 18 This term was later used as a generic term to describe all the elements in the chlorine family fluorine bromine iodine after a suggestion by Jons Jakob Berzelius in 1826 19 20 In 1823 Michael Faraday liquefied chlorine for the first time 21 22 23 and demonstrated that what was then known as solid chlorine had a structure of chlorine hydrate Cl2 H2O 10 Later uses Chlorine gas was first used by French chemist Claude Berthollet to bleach textiles in 1785 24 25 Modern bleaches resulted from further work by Berthollet who first produced sodium hypochlorite in 1789 in his laboratory in the town of Javel now part of Paris France by passing chlorine gas through a solution of sodium carbonate The resulting liquid known as Eau de Javel Javel water was a weak solution of sodium hypochlorite This process was not very efficient and alternative production methods were sought Scottish chemist and industrialist Charles Tennant first produced a solution of calcium hypochlorite chlorinated lime then solid calcium hypochlorite bleaching powder 24 These compounds produced low levels of elemental chlorine and could be more efficiently transported than sodium hypochlorite which remained as dilute solutions because when purified to eliminate water it became a dangerously powerful and unstable oxidizer Near the end of the nineteenth century E S Smith patented a method of sodium hypochlorite production involving electrolysis of brine to produce sodium hydroxide and chlorine gas which then mixed to form sodium hypochlorite 26 This is known as the chloralkali process first introduced on an industrial scale in 1892 and now the source of most elemental chlorine and sodium hydroxide 27 In 1884 Chemischen Fabrik Griesheim of Germany developed another chloralkali process which entered commercial production in 1888 28 Elemental chlorine solutions dissolved in chemically basic water sodium and calcium hypochlorite were first used as anti putrefaction agents and disinfectants in the 1820s in France long before the establishment of the germ theory of disease This practice was pioneered by Antoine Germain Labarraque who adapted Berthollet s Javel water bleach and other chlorine preparations for a more complete history see below 29 Elemental chlorine has since served a continuous function in topical antisepsis wound irrigation solutions and the like and public sanitation particularly in swimming and drinking water 13 Chlorine gas was first used as a weapon on April 22 1915 at Ypres by the German Army 30 31 The effect on the allies was devastating because the existing gas masks were difficult to deploy and had not been broadly distributed 32 33 Properties Chlorine liquefied under a pressure of 7 4 bar at room temperature displayed in a quartz ampule embedded in acrylic glass Solid chlorine at 150 C Chlorine is the second halogen being a nonmetal in group 17 of the periodic table Its properties are thus similar to fluorine bromine and iodine and are largely intermediate between those of the first two Chlorine has the electron configuration Ne 3s23p5 with the seven electrons in the third and outermost shell acting as its valence electrons Like all halogens it is thus one electron short of a full octet and is hence a strong oxidising agent reacting with many elements in order to complete its outer shell 34 Corresponding to periodic trends it is intermediate in electronegativity between fluorine and bromine F 3 98 Cl 3 16 Br 2 96 I 2 66 and is less reactive than fluorine and more reactive than bromine It is also a weaker oxidising agent than fluorine but a stronger one than bromine Conversely the chloride ion is a weaker reducing agent than bromide but a stronger one than fluoride 34 It is intermediate in atomic radius between fluorine and bromine and this leads to many of its atomic properties similarly continuing the trend from iodine to bromine upward such as first ionisation energy electron affinity enthalpy of dissociation of the X2 molecule X Cl Br I ionic radius and X X bond length Fluorine is anomalous due to its small size 34 All four stable halogens experience intermolecular van der Waals forces of attraction and their strength increases together with the number of electrons among all homonuclear diatomic halogen molecules Thus the melting and boiling points of chlorine are intermediate between those of fluorine and bromine chlorine melts at 101 0 C and boils at 34 0 C As a result of the increasing molecular weight of the halogens down the group the density and heats of fusion and vaporisation of chlorine are again intermediate between those of bromine and fluorine although all their heats of vaporisation are fairly low leading to high volatility thanks to their diatomic molecular structure 34 The halogens darken in colour as the group is descended thus while fluorine is a pale yellow gas chlorine is distinctly yellow green This trend occurs because the wavelengths of visible light absorbed by the halogens increase down the group 34 Specifically the colour of a halogen such as chlorine results from the electron transition between the highest occupied antibonding pg molecular orbital and the lowest vacant antibonding su molecular orbital 35 The colour fades at low temperatures so that solid chlorine at 195 C is almost colourless 34 Like solid bromine and iodine solid chlorine crystallises in the orthorhombic crystal system in a layered lattice of Cl2 molecules The Cl Cl distance is 198 pm close to the gaseous Cl Cl distance of 199 pm and the Cl Cl distance between molecules is 332 pm within a layer and 382 pm between layers compare the van der Waals radius of chlorine 180 pm This structure means that chlorine is a very poor conductor of electricity and indeed its conductivity is so low as to be practically unmeasurable 34 Isotopes Main article Isotopes of chlorine Chlorine has two stable isotopes 35Cl and 37Cl These are its only two natural isotopes occurring in quantity with 35Cl making up 76 of natural chlorine and 37Cl making up the remaining 24 Both are synthesised in stars in the oxygen burning and silicon burning processes 36 Both have nuclear spin 3 2 and thus may be used for nuclear magnetic resonance although the spin magnitude being greater than 1 2 results in non spherical nuclear charge distribution and thus resonance broadening as a result of a nonzero nuclear quadrupole moment and resultant quadrupolar relaxation The other chlorine isotopes are all radioactive with half lives too short to occur in nature primordially Of these the most commonly used in the laboratory are 36Cl t1 2 3 0 105 y and 38Cl t1 2 37 2 min which may be produced from the neutron activation of natural chlorine 34 The most stable chlorine radioisotope is 36Cl The primary decay mode of isotopes lighter than 35Cl is electron capture to isotopes of sulfur that of isotopes heavier than 37Cl is beta decay to isotopes of argon and 36Cl may decay by either mode to stable 36S or 36Ar 37 36Cl occurs in trace quantities in nature as a cosmogenic nuclide in a ratio of about 7 10 10 13 to 1 with stable chlorine isotopes it is produced in the atmosphere by spallation of 36Ar by interactions with cosmic ray protons In the top meter of the lithosphere 36Cl is generated primarily by thermal neutron activation of 35Cl and spallation of 39K and 40Ca In the subsurface environment muon capture by 40Ca becomes more important as a way to generate 36Cl 38 39 Chemistry and compoundsHalogen bond energies kJ mol 35 X XX HX BX3 AlX3 CX4F 159 574 645 582 456Cl 243 428 444 427 327Br 193 363 368 360 272I 151 294 272 285 239Chlorine is intermediate in reactivity between fluorine and bromine and is one of the most reactive elements Chlorine is a weaker oxidising agent than fluorine but a stronger one than bromine or iodine This can be seen from the standard electrode potentials of the X2 X couples F 2 866 V Cl 1 395 V Br 1 087 V I 0 615 V At approximately 0 3 V However this trend is not shown in the bond energies because fluorine is singular due to its small size low polarisability and inability to show hypervalence As another difference chlorine has a significant chemistry in positive oxidation states while fluorine does not Chlorination often leads to higher oxidation states than bromination or iodination but lower oxidation states than fluorination Chlorine tends to react with compounds including M M M H or M C bonds to form M Cl bonds 35 Given that E 1 2 O2 H2O 1 229 V which is less than 1 395 V it would be expected that chlorine should be able to oxidise water to oxygen and hydrochloric acid However the kinetics of this reaction are unfavorable and there is also a bubble overpotential effect to consider so that electrolysis of aqueous chloride solutions evolves chlorine gas and not oxygen gas a fact that is very useful for the industrial production of chlorine 40 Hydrogen chloride Structure of solid deuterium chloride with D Cl hydrogen bonds The simplest chlorine compound is hydrogen chloride HCl a major chemical in industry as well as in the laboratory both as a gas and dissolved in water as hydrochloric acid It is often produced by burning hydrogen gas in chlorine gas or as a byproduct of chlorinating hydrocarbons Another approach is to treat sodium chloride with concentrated sulfuric acid to produce hydrochloric acid also known as the salt cake process 41 NaCl H2SO4 150 C NaHSO4 HCl NaCl NaHSO4 540 600 C Na2SO4 HClIn the laboratory hydrogen chloride gas may be made by drying the acid with concentrated sulfuric acid Deuterium chloride DCl may be produced by reacting benzoyl chloride with heavy water D2O 41 At room temperature hydrogen chloride is a colourless gas like all the hydrogen halides apart from hydrogen fluoride since hydrogen cannot form strong hydrogen bonds to the larger electronegative chlorine atom however weak hydrogen bonding is present in solid crystalline hydrogen chloride at low temperatures similar to the hydrogen fluoride structure before disorder begins to prevail as the temperature is raised 41 Hydrochloric acid is a strong acid pKa 7 because the hydrogen bonds to chlorine are too weak to inhibit dissociation The HCl H2O system has many hydrates HCl nH2O for n 1 2 3 4 and 6 Beyond a 1 1 mixture of HCl and H2O the system separates completely into two separate liquid phases Hydrochloric acid forms an azeotrope with boiling point 108 58 C at 20 22 g HCl per 100 g solution thus hydrochloric acid cannot be concentrated beyond this point by distillation 42 Unlike hydrogen fluoride anhydrous liquid hydrogen chloride is difficult to work with as a solvent because its boiling point is low it has a small liquid range its dielectric constant is low and it does not dissociate appreciably into H2Cl and HCl 2 ions the latter in any case are much less stable than the bifluoride ions HF 2 due to the very weak hydrogen bonding between hydrogen and chlorine though its salts with very large and weakly polarising cations such as Cs and NR 4 R Me Et Bun may still be isolated Anhydrous hydrogen chloride is a poor solvent only able to dissolve small molecular compounds such as nitrosyl chloride and phenol or salts with very low lattice energies such as tetraalkylammonium halides It readily protonates electrophiles containing lone pairs or p bonds Solvolysis ligand replacement reactions and oxidations are well characterised in hydrogen chloride solution 43 Ph3SnCl HCl Ph2SnCl2 PhH solvolysis Ph3COH 3 HCl Ph3 C HCl 2 H3O Cl solvolysis Me4 N HCl 2 BCl3 Me4 N BCl 4 HCl ligand replacement PCl3 Cl2 HCl PCl 4 HCl 2 oxidation Other binary chlorides Hydrated nickel II chloride NiCl2 H2O 6 Nearly all elements in the periodic table form binary chlorides The exceptions are decidedly in the minority and stem in each case from one of three causes extreme inertness and reluctance to participate in chemical reactions the noble gases with the exception of xenon in the highly unstable XeCl2 and XeCl4 extreme nuclear instability hampering chemical investigation before decay and transmutation many of the heaviest elements beyond bismuth and having an electronegativity higher than chlorine s oxygen and fluorine so that the resultant binary compounds are formally not chlorides but rather oxides or fluorides of chlorine 44 Even though nitrogen in NCl3 is bearing a negative charge the compound is usually called nitrogen trichloride Chlorination of metals with Cl2 usually leads to a higher oxidation state than bromination with Br2 when multiple oxidation states are available such as in MoCl5 and MoBr3 Chlorides can be made by reaction of an element or its oxide hydroxide or carbonate with hydrochloric acid and then dehydrated by mildly high temperatures combined with either low pressure or anhydrous hydrogen chloride gas These methods work best when the chloride product is stable to hydrolysis otherwise the possibilities include high temperature oxidative chlorination of the element with chlorine or hydrogen chloride high temperature chlorination of a metal oxide or other halide by chlorine a volatile metal chloride carbon tetrachloride or an organic chloride For instance zirconium dioxide reacts with chlorine at standard conditions to produce zirconium tetrachloride and uranium trioxide reacts with hexachloropropene when heated under reflux to give uranium tetrachloride The second example also involves a reduction in oxidation state which can also be achieved by reducing a higher chloride using hydrogen or a metal as a reducing agent This may also be achieved by thermal decomposition or disproportionation as follows 44 EuCl3 1 2 H2 EuCl2 HCl ReCl5 at bp ReCl3 Cl2 AuCl3 160 C AuCl Cl2Most metal chlorides with the metal in low oxidation states 1 to 3 are ionic Nonmetals tend to form covalent molecular chlorides as do metals in high oxidation states from 3 and above Both ionic and covalent chlorides are known for metals in oxidation state 3 e g scandium chloride is mostly ionic but aluminium chloride is not Silver chloride is very insoluble in water and is thus often used as a qualitative test for chlorine 44 Polychlorine compounds Although dichlorine is a strong oxidising agent with a high first ionisation energy it may be oxidised under extreme conditions to form the Cl2 cation This is very unstable and has only been characterised by its electronic band spectrum when produced in a low pressure discharge tube The yellow Cl3 cation is more stable and may be produced as follows 45 Cl2 ClF AsF5 78 C Cl3 AsF6 This reaction is conducted in the oxidising solvent arsenic pentafluoride The trichloride anion Cl3 has also been characterised it is analogous to triiodide 46 Chlorine fluorides The three fluorides of chlorine form a subset of the interhalogen compounds all of which are diamagnetic 46 Some cationic and anionic derivatives are known such as ClF 2 ClF 4 ClF 2 and Cl2F 47 Some pseudohalides of chlorine are also known such as cyanogen chloride ClCN linear chlorine cyanate ClNCO chlorine thiocyanate ClSCN unlike its oxygen counterpart and chlorine azide ClN3 46 Chlorine monofluoride ClF is extremely thermally stable and is sold commercially in 500 gram steel lecture bottles It is a colourless gas that melts at 155 6 C and boils at 100 1 C It may be produced by the direction of its elements at 225 C though it must then be separated and purified from chlorine trifluoride and its reactants Its properties are mostly intermediate between those of chlorine and fluorine It will react with many metals and nonmetals from room temperature and above fluorinating them and liberating chlorine It will also act as a chlorofluorinating agent adding chlorine and fluorine across a multiple bond or by oxidation for example it will attack carbon monoxide to form carbonyl chlorofluoride COFCl It will react analogously with hexafluoroacetone CF3 2CO with a potassium fluoride catalyst to produce heptafluoroisopropyl hypochlorite CF3 2CFOCl with nitriles RCN to produce RCF2NCl2 and with the sulfur oxides SO2 and SO3 to produce ClSO2F and ClOSO2F respectively It will also react exothermically with compounds containing OH and NH groups such as water 46 H2O 2 ClF 2 HF Cl2OChlorine trifluoride ClF3 is a volatile colourless molecular liquid which melts at 76 3 C and boils at 11 8 C It may be formed by directly fluorinating gaseous chlorine or chlorine monofluoride at 200 300 C One of the most reactive chemical compounds known the list of elements it sets on fire is diverse containing hydrogen potassium phosphorus arsenic antimony sulfur selenium tellurium bromine iodine and powdered molybdenum tungsten rhodium iridium and iron It will also ignite water along with many substances which in ordinary circumstances would be considered chemically inert such as asbestos concrete glass and sand When heated it will even corrode noble metals as palladium platinum and gold and even the noble gases xenon and radon do not escape fluorination An impermeable fluoride layer is formed by sodium magnesium aluminium zinc tin and silver which may be removed by heating Nickel copper and steel containers are usually used due to their great resistance to attack by chlorine trifluoride stemming from the formation of an unreactive layer of metal fluoride Its reaction with hydrazine to form hydrogen fluoride nitrogen and chlorine gases was used in experimental rocket engine but has problems largely stemming from its extreme hypergolicity resulting in ignition without any measurable delay Today it is mostly used in nuclear fuel processing to oxidise uranium to uranium hexafluoride for its enriching and to separate it from plutonium as well as in the semiconductor industry where it is used to clean chemical vapor deposition chambers 48 It can act as a fluoride ion donor or acceptor Lewis base or acid although it does not dissociate appreciably into ClF 2 and ClF 4 ions 49 Chlorine pentafluoride ClF5 is made on a large scale by direct fluorination of chlorine with excess fluorine gas at 350 C and 250 atm and on a small scale by reacting metal chlorides with fluorine gas at 100 300 C It melts at 103 C and boils at 13 1 C It is a very strong fluorinating agent although it is still not as effective as chlorine trifluoride Only a few specific stoichiometric reactions have been characterised Arsenic pentafluoride and antimony pentafluoride form ionic adducts of the form ClF4 MF6 M As Sb and water reacts vigorously as follows 50 2 H2O ClF5 4 HF FClO2The product chloryl fluoride is one of the five known chlorine oxide fluorides These range from the thermally unstable FClO to the chemically unreactive perchloryl fluoride FClO3 the other three being FClO2 F3ClO and F3ClO2 All five behave similarly to the chlorine fluorides both structurally and chemically and may act as Lewis acids or bases by gaining or losing fluoride ions respectively or as very strong oxidising and fluorinating agents 51 Chlorine oxides Yellow chlorine dioxide ClO2 gas above a solution containing chlorine dioxide clarification needed Structure of dichlorine heptoxide Cl2O7 the most stable of the chlorine oxides The chlorine oxides are well studied in spite of their instability all of them are endothermic compounds They are important because they are produced when chlorofluorocarbons undergo photolysis in the upper atmosphere and cause the destruction of the ozone layer None of them can be made from directly reacting the elements 52 Dichlorine monoxide Cl2O is a brownish yellow gas red brown when solid or liquid which may be obtained by reacting chlorine gas with yellow mercury II oxide It is very soluble in water in which it is in equilibrium with hypochlorous acid HOCl of which it is the anhydride It is thus an effective bleach and is mostly used to make hypochlorites It explodes on heating or sparking or in the presence of ammonia gas 52 Chlorine dioxide ClO2 was the first chlorine oxide to be discovered in 1811 by Humphry Davy It is a yellow paramagnetic gas deep red as a solid or liquid as expected from its having an odd number of electrons it is stable towards dimerisation due to the delocalisation of the unpaired electron It explodes above 40 C as a liquid and under pressure as a gas and therefore must be made at low concentrations for wood pulp bleaching and water treatment It is usually prepared by reducing a chlorate as follows 52 ClO 3 Cl 2 H ClO2 1 2 Cl2 H2OIts production is thus intimately linked to the redox reactions of the chlorine oxoacids It is a strong oxidising agent reacting with sulfur phosphorus phosphorus halides and potassium borohydride It dissolves exothermically in water to form dark green solutions that very slowly decompose in the dark Crystalline clathrate hydrates ClO2 nH2O n 6 10 separate out at low temperatures However in the presence of light these solutions rapidly photodecompose to form a mixture of chloric and hydrochloric acids Photolysis of individual ClO2 molecules result in the radicals ClO and ClOO while at room temperature mostly chlorine oxygen and some ClO3 and Cl2O6 are produced Cl2O3 is also produced when photolysing the solid at 78 C it is a dark brown solid that explodes below 0 C The ClO radical leads to the depletion of atmospheric ozone and is thus environmentally important as follows 52 Cl O3 ClO O2 ClO O Cl O2Chlorine perchlorate ClOClO3 is a pale yellow liquid that is less stable than ClO2 and decomposes at room temperature to form chlorine oxygen and dichlorine hexoxide Cl2O6 52 Chlorine perchlorate may also be considered a chlorine derivative of perchloric acid HOClO3 similar to the thermally unstable chlorine derivatives of other oxoacids examples include chlorine nitrate ClONO2 vigorously reactive and explosive and chlorine fluorosulfate ClOSO2F more stable but still moisture sensitive and highly reactive 53 Dichlorine hexoxide is a dark red liquid that freezes to form a solid which turns yellow at 180 C it is usually made by reaction of chlorine dioxide with oxygen Despite attempts to rationalise it as the dimer of ClO3 it reacts more as though it were chloryl perchlorate ClO2 ClO4 which has been confirmed to be the correct structure of the solid It hydrolyses in water to give a mixture of chloric and perchloric acids the analogous reaction with anhydrous hydrogen fluoride does not proceed to completion 52 Dichlorine heptoxide Cl2O7 is the anhydride of perchloric acid HClO4 and can readily be obtained from it by dehydrating it with phosphoric acid at 10 C and then distilling the product at 35 C and 1 mmHg It is a shock sensitive colourless oily liquid It is the least reactive of the chlorine oxides being the only one to not set organic materials on fire at room temperature It may be dissolved in water to regenerate perchloric acid or in aqueous alkalis to regenerate perchlorates However it thermally decomposes explosively by breaking one of the central Cl O bonds producing the radicals ClO3 and ClO4 which immediately decompose to the elements through intermediate oxides 52 Chlorine oxoacids and oxyanions Standard reduction potentials for aqueous Cl species 40 E couple a H 1 acid E couple a OH 1 base Cl2 Cl 1 358 Cl2 Cl 1 358HOCl Cl 1 484 ClO Cl 0 890ClO 3 Cl 1 459 HOCl Cl2 1 630 ClO Cl2 0 421HClO2 Cl2 1 659 ClO 3 Cl2 1 468 ClO 4 Cl2 1 277 HClO2 HOCl 1 701 ClO 2 ClO 0 681 ClO 3 ClO 0 488ClO 3 HClO2 1 181 ClO 3 ClO 2 0 295ClO 4 ClO 3 1 201 ClO 4 ClO 3 0 374Chlorine forms four oxoacids hypochlorous acid HOCl chlorous acid HOClO chloric acid HOClO2 and perchloric acid HOClO3 As can be seen from the redox potentials given in the adjacent table chlorine is much more stable towards disproportionation in acidic solutions than in alkaline solutions 40 Cl2 H2O HOCl H Cl Kac 4 2 10 4 mol2 l 2Cl2 2 OH OCl H2O Cl Kalk 7 5 1015 mol 1 lThe hypochlorite ions also disproportionate further to produce chloride and chlorate 3 ClO 2 Cl ClO 3 but this reaction is quite slow at temperatures below 70 C in spite of the very favourable equilibrium constant of 1027 The chlorate ions may themselves disproportionate to form chloride and perchlorate 4 ClO 3 Cl 3 ClO 4 but this is still very slow even at 100 C despite the very favourable equilibrium constant of 1020 The rates of reaction for the chlorine oxyanions increases as the oxidation state of chlorine decreases The strengths of the chlorine oxyacids increase very quickly as the oxidation state of chlorine increases due to the increasing delocalisation of charge over more and more oxygen atoms in their conjugate bases 40 Most of the chlorine oxoacids may be produced by exploiting these disproportionation reactions Hypochlorous acid HOCl is highly reactive and quite unstable its salts are mostly used for their bleaching and sterilising abilities They are very strong oxidising agents transferring an oxygen atom to most inorganic species Chlorous acid HOClO is even more unstable and cannot be isolated or concentrated without decomposition it is known from the decomposition of aqueous chlorine dioxide However sodium chlorite is a stable salt and is useful for bleaching and stripping textiles as an oxidising agent and as a source of chlorine dioxide Chloric acid HOClO2 is a strong acid that is quite stable in cold water up to 30 concentration but on warming gives chlorine and chlorine dioxide Evaporation under reduced pressure allows it to be concentrated further to about 40 but then it decomposes to perchloric acid chlorine oxygen water and chlorine dioxide Its most important salt is sodium chlorate mostly used to make chlorine dioxide to bleach paper pulp The decomposition of chlorate to chloride and oxygen is a common way to produce oxygen in the laboratory on a small scale Chloride and chlorate may comproportionate to form chlorine as follows 54 ClO 3 5 Cl 6 H 3 Cl2 3 H2OPerchlorates and perchloric acid HOClO3 are the most stable oxo compounds of chlorine in keeping with the fact that chlorine compounds are most stable when the chlorine atom is in its lowest 1 or highest 7 possible oxidation states Perchloric acid and aqueous perchlorates are vigorous and sometimes violent oxidising agents when heated in stark contrast to their mostly inactive nature at room temperature due to the high activation energies for these reactions for kinetic reasons Perchlorates are made by electrolytically oxidising sodium chlorate and perchloric acid is made by reacting anhydrous sodium perchlorate or barium perchlorate with concentrated hydrochloric acid filtering away the chloride precipitated and distilling the filtrate to concentrate it Anhydrous perchloric acid is a colourless mobile liquid that is sensitive to shock that explodes on contact with most organic compounds sets hydrogen iodide and thionyl chloride on fire and even oxidises silver and gold Although it is a weak ligand weaker than water a few compounds involving coordinated ClO 4 are known 54 Chlorine oxidation state 1 1 3 5 7Name chloride hypochlorite chlorite chlorate perchlorateFormula Cl ClO ClO 2 ClO 3 ClO 4Structure Organochlorine compounds Main article Organochlorine compound Suggested mechanism for the chlorination of a carboxylic acid by phosphorus pentachloride to form an acyl chloride Like the other carbon halogen bonds the C Cl bond is a common functional group that forms part of core organic chemistry Formally compounds with this functional group may be considered organic derivatives of the chloride anion Due to the difference of electronegativity between chlorine 3 16 and carbon 2 55 the carbon in a C Cl bond is electron deficient and thus electrophilic Chlorination modifies the physical properties of hydrocarbons in several ways chlorocarbons are typically denser than water due to the higher atomic weight of chlorine versus hydrogen and aliphatic organochlorides are alkylating agents because chloride is a leaving group 55 Alkanes and aryl alkanes may be chlorinated under free radical conditions with UV light However the extent of chlorination is difficult to control the reaction is not regioselective and often results in a mixture of various isomers with different degrees of chlorination though this may be permissible if the products are easily separated Aryl chlorides may be prepared by the Friedel Crafts halogenation using chlorine and a Lewis acid catalyst 55 The haloform reaction using chlorine and sodium hydroxide is also able to generate alkyl halides from methyl ketones and related compounds Chlorine adds to the multiple bonds on alkenes and alkynes as well giving di or tetra chloro compounds However due to the expense and reactivity of chlorine organochlorine compounds are more commonly produced by using hydrogen chloride or with chlorinating agents such as phosphorus pentachloride PCl5 or thionyl chloride SOCl2 The last is very convenient in the laboratory because all side products are gaseous and do not have to be distilled out 55 Many organochlorine compounds have been isolated from natural sources ranging from bacteria to humans 56 57 Chlorinated organic compounds are found in nearly every class of biomolecules including alkaloids terpenes amino acids flavonoids steroids and fatty acids 56 58 Organochlorides including dioxins are produced in the high temperature environment of forest fires and dioxins have been found in the preserved ashes of lightning ignited fires that predate synthetic dioxins 59 In addition a variety of simple chlorinated hydrocarbons including dichloromethane chloroform and carbon tetrachloride have been isolated from marine algae 60 A majority of the chloromethane in the environment is produced naturally by biological decomposition forest fires and volcanoes 61 Some types of organochlorides though not all have significant toxicity to plants or animals including humans Dioxins produced when organic matter is burned in the presence of chlorine and some insecticides such as DDT are persistent organic pollutants which pose dangers when they are released into the environment For example DDT which was widely used to control insects in the mid 20th century also accumulates in food chains and causes reproductive problems e g eggshell thinning in certain bird species 62 Due to the ready homolytic fission of the C Cl bond to create chlorine radicals in the upper atmosphere chlorofluorocarbons have been phased out due to the harm they do to the ozone layer 52 Occurrence and productionMain articles Chlorine production and Chloralkali process Liquid chlorine analysis Chlorine is too reactive to occur as the free element in nature but is very abundant in the form of its chloride salts It is the twenty first most abundant element in Earth s crust and makes up 126 parts per million of it through the large deposits of chloride minerals especially sodium chloride that have been evaporated from water bodies All of these pale in comparison to the reserves of chloride ions in seawater smaller amounts at higher concentrations occur in some inland seas and underground brine wells such as the Great Salt Lake in Utah and the Dead Sea in Israel 63 Small batches of chlorine gas are prepared in the laboratory by combining hydrochloric acid and manganese dioxide but the need rarely arises due to its ready availability In industry elemental chlorine is usually produced by the electrolysis of sodium chloride dissolved in water This method the chloralkali process industrialized in 1892 now provides most industrial chlorine gas 27 Along with chlorine the method yields hydrogen gas and sodium hydroxide which is the most valuable product The process proceeds according to the following chemical equation 64 2 NaCl 2 H2O Cl2 H2 2 NaOHThe electrolysis of chloride solutions all proceed according to the following equations Cathode 2 H2O 2 e H2 2 OH Anode 2 Cl Cl2 2 e In diaphragm cell electrolysis an asbestos or polymer fiber diaphragm separates a cathode and an anode preventing the chlorine forming at the anode from re mixing with the sodium hydroxide and the hydrogen formed at the cathode 65 The salt solution brine is continuously fed to the anode compartment and flows through the diaphragm to the cathode compartment where the caustic alkali is produced and the brine is partially depleted Diaphragm methods produce dilute and slightly impure alkali but they are not burdened with the problem of mercury disposal and they are more energy efficient 27 Membrane cell electrolysis employs permeable membrane as an ion exchanger Saturated sodium or potassium chloride solution is passed through the anode compartment leaving at a lower concentration This method also produces very pure sodium or potassium hydroxide but has the disadvantage of requiring very pure brine at high concentrations 66 Membrane cell process for chloralkali production In the Deacon process hydrogen chloride recovered from the production of organochlorine compounds is recovered as chlorine The process relies on oxidation using oxygen 4 HCl O2 2 Cl2 2 H2OThe reaction requires a catalyst As introduced by Deacon early catalysts were based on copper Commercial processes such as the Mitsui MT Chlorine Process have switched to chromium and ruthenium based catalysts 67 The chlorine produced is available in cylinders from sizes ranging from 450 g to 70 kg as well as drums 865 kg tank wagons 15 tonnes on roads 27 90 tonnes by rail and barges 600 1200 tonnes 68 ApplicationsSodium chloride is the most common chlorine compound and is the main source of chlorine for the demand by the chemical industry About 15000 chlorine containing compounds are commercially traded including such diverse compounds as chlorinated methane ethanes vinyl chloride polyvinyl chloride PVC aluminium trichloride for catalysis the chlorides of magnesium titanium zirconium and hafnium which are the precursors for producing the pure form of those elements 13 Quantitatively of all elemental chlorine produced about 63 is used in the manufacture of organic compounds and 18 in the manufacture of inorganic chlorine compounds 69 About 15 000 chlorine compounds are used commercially 70 The remaining 19 of chlorine produced is used for bleaches and disinfection products 68 The most significant of organic compounds in terms of production volume are 1 2 dichloroethane and vinyl chloride intermediates in the production of PVC Other particularly important organochlorines are methyl chloride methylene chloride chloroform vinylidene chloride trichloroethylene perchloroethylene allyl chloride epichlorohydrin chlorobenzene dichlorobenzenes and trichlorobenzenes The major inorganic compounds include HCl Cl2O HOCl NaClO3 chlorinated isocyanurates AlCl3 SiCl4 SnCl4 PCl3 PCl5 POCl3 AsCl3 SbCl3 SbCl5 BiCl3 and ZnCl2 68 Sanitation disinfection and antisepsis Main articles Water chlorination and Bleach Combating putrefaction In France as elsewhere animal intestines were processed to make musical instrument strings Goldbeater s skin and other products This was done in gut factories boyauderies and it was an odiferous and unhealthy process In or about 1820 the Societe d encouragement pour l industrie nationale offered a prize for the discovery of a method chemical or mechanical for separating the peritoneal membrane of animal intestines without putrefaction 71 72 The prize was won by Antoine Germain Labarraque a 44 year old French chemist and pharmacist who had discovered that Berthollet s chlorinated bleaching solutions Eau de Javel not only destroyed the smell of putrefaction of animal tissue decomposition but also actually retarded the decomposition 72 29 Labarraque s research resulted in the use of chlorides and hypochlorites of lime calcium hypochlorite and of sodium sodium hypochlorite in the boyauderies The same chemicals were found to be useful in the routine disinfection and deodorization of latrines sewers markets abattoirs anatomical theatres and morgues 73 They were successful in hospitals lazarets prisons infirmaries both on land and at sea magnaneries stables cattle sheds etc and they were beneficial during exhumations 74 embalming outbreaks of epidemic disease fever and blackleg in cattle 71 Disinfection Labarraque s chlorinated lime and soda solutions have been advocated since 1828 to prevent infection called contagious infection presumed to be transmitted by miasmas and to treat putrefaction of existing wounds including septic wounds 75 In his 1828 work Labarraque recommended that doctors breathe chlorine wash their hands in chlorinated lime and even sprinkle chlorinated lime about the patients beds in cases of contagious infection In 1828 the contagion of infections was well known even though the agency of the microbe was not discovered until more than half a century later During the Paris cholera outbreak of 1832 large quantities of so called chloride of lime were used to disinfect the capital This was not simply modern calcium chloride but chlorine gas dissolved in lime water dilute calcium hydroxide to form calcium hypochlorite chlorinated lime Labarraque s discovery helped to remove the terrible stench of decay from hospitals and dissecting rooms and by doing so effectively deodorised the Latin Quarter of Paris 76 These putrid miasmas were thought by many to cause the spread of contagion and infection both words used before the germ theory of infection Chloride of lime was used for destroying odors and putrid matter One source claims chloride of lime was used by Dr John Snow to disinfect water from the cholera contaminated well that was feeding the Broad Street pump in 1854 London 77 though three other reputable sources that describe that famous cholera epidemic do not mention the incident 78 79 80 One reference makes it clear that chloride of lime was used to disinfect the offal and filth in the streets surrounding the Broad Street pump a common practice in mid nineteenth century England 78 296 Semmelweis and experiments with antisepsis Ignaz Semmelweis Perhaps the most famous application of Labarraque s chlorine and chemical base solutions was in 1847 when Ignaz Semmelweis used chlorine water chlorine dissolved in pure water which was cheaper than chlorinated lime solutions to disinfect the hands of Austrian doctors which Semmelweis noticed still carried the stench of decomposition from the dissection rooms to the patient examination rooms Long before the germ theory of disease Semmelweis theorized that cadaveric particles were transmitting decay from fresh medical cadavers to living patients and he used the well known Labarraque s solutions as the only known method to remove the smell of decay and tissue decomposition which he found that soap did not The solutions proved to be far more effective antiseptics than soap Semmelweis was also aware of their greater efficacy but not the reason and this resulted in Semmelweis s celebrated success in stopping the transmission of childbed fever puerperal fever in the maternity wards of Vienna General Hospital in Austria in 1847 81 Much later during World War I in 1916 a standardized and diluted modification of Labarraque s solution containing hypochlorite 0 5 and boric acid as an acidic stabilizer was developed by Henry Drysdale Dakin who gave full credit to Labarraque s prior work in this area Called Dakin s solution the method of wound irrigation with chlorinated solutions allowed antiseptic treatment of a wide variety of open wounds long before the modern antibiotic era A modified version of this solution continues to be employed in wound irrigation in modern times where it remains effective against bacteria that are resistant to multiple antibiotics see Century Pharmaceuticals 82 Public sanitation Liquid Pool Chlorine The first continuous application of chlorination to drinking U S water was installed in Jersey City New Jersey in 1908 83 By 1918 the US Department of Treasury called for all drinking water to be disinfected with chlorine Chlorine is presently an important chemical for water purification such as in water treatment plants in disinfectants and in bleach Even small water supplies are now routinely chlorinated 84 Chlorine is usually used in the form of hypochlorous acid to kill bacteria and other microbes in drinking water supplies and public swimming pools In most private swimming pools chlorine itself is not used but rather sodium hypochlorite formed from chlorine and sodium hydroxide or solid tablets of chlorinated isocyanurates The drawback of using chlorine in swimming pools is that the chlorine reacts with the amino acids in proteins in human hair and skin Contrary to popular belief the distinctive chlorine aroma associated with swimming pools is not the result of elemental chlorine itself but of chloramine a chemical compound produced by the reaction of free dissolved chlorine with amines in organic substances including those in urine and sweat 85 As a disinfectant in water chlorine is more than three times as effective against Escherichia coli as bromine and more than six times as effective as iodine 86 Increasingly monochloramine itself is being directly added to drinking water for purposes of disinfection a process known as chloramination 87 It is often impractical to store and use poisonous chlorine gas for water treatment so alternative methods of adding chlorine are used These include hypochlorite solutions which gradually release chlorine into the water and compounds like sodium dichloro s triazinetrione dihydrate or anhydrous sometimes referred to as dichlor and trichloro s triazinetrione sometimes referred to as trichlor These compounds are stable while solid and may be used in powdered granular or tablet form When added in small amounts to pool water or industrial water systems the chlorine atoms hydrolyze from the rest of the molecule forming hypochlorous acid HOCl which acts as a general biocide killing germs microorganisms algae and so on 88 89 Use as a weapon World War I Main article Chemical weapons in World War I Chlorine gas also known as bertholite was first used as a weapon in World War I by Germany on April 22 1915 in the Second Battle of Ypres 90 91 As described by the soldiers it had the distinctive smell of a mixture of pepper and pineapple citation needed It also tasted metallic and stung the back of the throat and chest Chlorine reacts with water in the mucosa of the lungs to form hydrochloric acid destructive to living tissue and potentially lethal Human respiratory systems can be protected from chlorine gas by gas masks with activated charcoal or other filters which makes chlorine gas much less lethal than other chemical weapons It was pioneered by a German scientist later to be a Nobel laureate Fritz Haber of the Kaiser Wilhelm Institute in Berlin in collaboration with the German chemical conglomerate IG Farben which developed methods for discharging chlorine gas against an entrenched enemy 92 After its first use both sides in the conflict used chlorine as a chemical weapon but it was soon replaced by the more deadly phosgene and mustard gas 93 Middle east Main articles Chlorine bombings in Iraq and Use of chemical weapons in the Syrian Civil War Chlorine gas was also used during the Iraq War in Anbar Province in 2007 with insurgents packing truck bombs with mortar shells and chlorine tanks The attacks killed two people from the explosives and sickened more than 350 Most of the deaths were caused by the force of the explosions rather than the effects of chlorine since the toxic gas is readily dispersed and diluted in the atmosphere by the blast In some bombings over a hundred civilians were hospitalized due to breathing difficulties The Iraqi authorities tightened security for elemental chlorine which is essential for providing safe drinking water to the population 94 95 On 23 October 2014 it was reported that the Islamic State of Iraq and the Levant had used chlorine gas in the town of Duluiyah Iraq 96 Laboratory analysis of clothing and soil samples confirmed the use of chlorine gas against Kurdish Peshmerga Forces in a vehicle borne improvised explosive device attack on 23 January 2015 at the Highway 47 Kiske Junction near Mosul 97 Another country in the middle east Syria has used chlorine as a chemical weapon 98 delivered from barrel bombs and rockets 99 100 In 2016 the OPCW UN Joint Investigative Mechanism concluded that the Syrian government used chlorine as a chemical weapon in three separate attacks 101 Later investigations from the OPCW s Investigation and Identification Team concluded that the Syrian Air Force was responsible for chlorine attacks in 2017 and 2018 102 Biological roleThe chloride anion is an essential nutrient for metabolism Chlorine is needed for the production of hydrochloric acid in the stomach and in cellular pump functions 103 The main dietary source is table salt or sodium chloride Overly low or high concentrations of chloride in the blood are examples of electrolyte disturbances Hypochloremia having too little chloride rarely occurs in the absence of other abnormalities It is sometimes associated with hypoventilation 104 It can be associated with chronic respiratory acidosis 105 Hyperchloremia having too much chloride usually does not produce symptoms When symptoms do occur they tend to resemble those of hypernatremia having too much sodium Reduction in blood chloride leads to cerebral dehydration symptoms are most often caused by rapid rehydration which results in cerebral edema Hyperchloremia can affect oxygen transport 106 HazardsChlorine HazardsGHS labelling 107 Pictograms Signal word DangerHazard statements H270 H315 H319 H330 H335 H400Precautionary statements P220 P233 P244 P261 P304 P312 P340 P403 P410NFPA 704 fire diamond 108 300OX Chlorine is a toxic gas that attacks the respiratory system eyes and skin 109 Because it is denser than air it tends to accumulate at the bottom of poorly ventilated spaces Chlorine gas is a strong oxidizer which may react with flammable materials 110 111 Chlorine is detectable with measuring devices in concentrations as low as 0 2 parts per million ppm and by smell at 3 ppm Coughing and vomiting may occur at 30 ppm and lung damage at 60 ppm About 1000 ppm can be fatal after a few deep breaths of the gas 13 The IDLH immediately dangerous to life and health concentration is 10 ppm 112 Breathing lower concentrations can aggravate the respiratory system and exposure to the gas can irritate the eyes 113 When chlorine is inhaled at concentrations greater than 30 ppm it reacts with water within the lungs producing hydrochloric acid HCl and hypochlorous acid HClO When used at specified levels for water disinfection the reaction of chlorine with water is not a major concern for human health Other materials present in the water may generate disinfection by products that are associated with negative effects on human health 114 115 In the United States the Occupational Safety and Health Administration OSHA has set the permissible exposure limit for elemental chlorine at 1 ppm or 3 mg m3 The National Institute for Occupational Safety and Health has designated a recommended exposure limit of 0 5 ppm over 15 minutes 112 In the home accidents occur when hypochlorite bleach solutions come into contact with certain acidic drain cleaners to produce chlorine gas 116 Hypochlorite bleach a popular laundry additive combined with ammonia another popular laundry additive produces chloramines another toxic group of chemicals 117 Chlorine induced cracking in structural materials Chlorine is widely used for purifying water especially potable water supplies and water used in swimming pools Several catastrophic collapses of swimming pool ceilings have occurred from chlorine induced stress corrosion cracking of stainless steel suspension rods 118 Some polymers are also sensitive to attack including acetal resin and polybutene Both materials were used in hot and cold water domestic plumbing and stress corrosion cracking caused widespread failures in the US in the 1980s and 1990s 119 Chlorine attack on an acetal resin plumbing joint resulting from a fractured acetal joint in a water supply system which started at an injection molding defect in the joint and slowly grew until the part failed the fracture surface shows iron and calcium salts that were deposited in the leaking joint from the water supply before failure and are the indirect result of the chlorine attack Chlorine iron fire The element iron can combine with chlorine at high temperatures in a strong exothermic reaction creating a chlorine iron fire 120 121 Chlorine iron fires are a risk in chemical process plants where much of the pipework that carries chlorine gas is made of steel 120 121 See also Chemistry portal Medicine portalChlorine cycle Chlorine gas poisoning Industrial gas Polymer degradation Reductive dechlorinationReferences Standard Atomic Weights Chlorine CIAAW 2009 Chlorine Gas Encyclopaedia Air Liquide Magnetic susceptibility of the elements and inorganic compounds in Lide D R ed 2005 CRC Handbook of Chemistry and Physics 86th ed Boca Raton FL CRC Press ISBN 0 8493 0486 5 Weast Robert 1984 CRC Handbook of Chemistry and Physics Boca Raton Florida Chemical Rubber Company Publishing pp E110 ISBN 0 8493 0464 4 The earliest salt production in the world an early Neolithic exploitation in Poiana Slatinei Lunca Romania Archived from the original on April 30 2011 Retrieved 2008 07 10 Kraus Paul 1942 1943 Jabir ibn Hayyan Contribution a l histoire des idees scientifiques dans l Islam I Le corpus des ecrits jabiriens II Jabir et la science grecque Cairo Institut Francais d Archeologie Orientale ISBN 978 3487091150 OCLC 468740510 vol II pp 41 42 Multhauf Robert P 1966 The Origins of Chemistry London Oldbourne pp 141 42 Multhauf 1966 p 142 note 79 Multhauf 1966 pp 160 163 Karpenko Vladimir Norris John A 2002 Vitriol in the History of Chemistry Chemicke listy 96 12 997 1005 p 1002 a b c d Greenwood amp Earnshaw 1997 pp 789 92 Scheele Carl Wilhelm 1774 Om Brunsten eller Magnesia och dess Egenskaper On braunstein i e pyrolusite manganese dioxide or magnesia and its properties Kongliga Vetenskaps Academiens Handlingar Proceedings of the Royal Scientific Academy in Swedish 35 89 116 177 94 In section 6 on pp 93 94 of his paper Scheele described how chlorine was produced when a mixture of hydrochloric acid and manganese dioxide Brunsten was heated 6 a Pa 1 2 uns fint rifven Brunsten slogs 1 uns ren Spiritus salis samt lukten fo rsvunnen 6 a On one half ounce of finely ground Braunstein pyrolusite was poured one ounce of pure spiritus salis spirit of salt hydrogen chloride After this mixture had been standing in the cold for one hour the acid had assumed a dark brown colour One part of this solution was poured into a glass which was placed over the fire The solution gave off an odour like warm aqua regia and after one quarter s hour duration it was as clear and colourless as water and the smell had disappeared For an English translation of the relevant passages of this article see The Early History of Chlorine Papers by Carl Wilhelm Scheele 1774 C L Berthollet 1785 Guyton de Morveau 1787 J L Gay Lussac and L J Thenard 1809 Edinburgh Scotland Alembic Club 1912 pp 5 10 a b c d e 17 Chlorine Elements vanderkrogt net Archived from the original on 2010 01 23 Retrieved 2008 09 12 a b c d Greenwood amp Earnshaw 1997 pp 792 93 Ihde Aaron John 1984 The development of modern chemistry Courier Dover Publications p 158 ISBN 978 0 486 64235 2 Weeks Mary Elvira 1932 The discovery of the elements XVII The halogen family Journal of Chemical Education 9 11 1915 Bibcode 1932JChEd 9 1915W doi 10 1021 ed009p1915 Gay Lussac Thenard 1809 Extrait des memoires lus a l Institut national depuis le 7 mars 1808 jusqu au 27 fevrier 1809 Extracts from memoirs read at the national Institute from 7 March 1808 to 27 February 1809 Memoires de Physique et de Chimie de la Societe d Arcueil 2 295 358 See De la nature et des proprietes de l acide muriatique et de l acide muriatique oxigene On the nature and properties of muriatic acid and of oxidized muriatic acid pp 339 58 From pp 357 58 Le gaz muriatique oxigene n est pas en effect decompose comme un corps compose In fact oxygenated muriatic acid is not decomposed by charcoal and it might be supposed from this fact and those that are communicated in this Memoir that this gas is a simple body The phenomena that it presents can be explained well enough on this hypothesis we shall not seek to defend it however as it appears to us that they are still better explained by regarding oxygenated muriatic acid as a compound body For a full English translation of this section see Joseph Louis Gay Lussac and Louis Jacques Thenard On the nature and the properties of muriatic acid and of oxygenated muriatic acid Lemoyne College Syracuse New York Davy Humphry 1811 The Bakerian Lecture On some of the combinations of oxymuriatic gas and oxygene and on the chemical relations of these principles to inflammable bodies Philosophical Transactions of the Royal Society of London 101 1 35 Bibcode 1811RSPT 101 1D doi 10 1098 rstl 1811 0001 Davy named chlorine on p 32 After consulting some of the most eminent chemical philosophers in this country it has been judged most proper to suggest a name founded upon one of its obvious and characteristic properties its colour and to call it Chlorine or Chloric gas From xlwros Schweigger J S C 1811 Nachschreiben des Herausgebers die neue Nomenclatur betreffend Postscript of the editor concerning the new nomenclature Journal fur Chemie und Physik in German 3 2 249 55 On p 251 Schweigger proposed the word halogen Man sage dafur lieber mit richter WortbildungHalogen da schon in der Mineralogie durchWerner sHalit Geschlecht dieses Wort nicht fremd ist von alsSalzund dem alten genein dorisch genen zeugen One should say instead with proper morphology halogen this word is not strange since it s already in mineralogy via Werner s halite species from als als salt and the old genein genein Doric genen to beget In 1826 Berzelius coined the terms Saltbildare salt formers and Corpora Halogenia salt making substances for the elements chlorine iodine and fluorine See Berzelius Jacob 1826 Arsberattelser om Framstegen i Physik och Chemie Annual Report on Progress in Physics and Chemistry Arsb Vetensk Framsteg in Swedish Stockholm Sweden P A Norstedt amp Soner 6 187 From p 187 De forre af dessa d a de electronegativa dela sig i tre klasser 1 den forsta innehaller kroppar som forenade med de electropositiva omedelbart frambringa salter hvilka jag derfor kallarSaltbildare Corpora Halogenia Desse utgoras af chlor iod och fluor The first of them i e elements i e the electronegative ones are divided into three classes 1 The first includes substances which when united with electropositive elements immediately produce salts and which I therefore name salt formers salt producing substances These are chlorine iodine and fluorine Snelders H A M 1971 J S C Schweigger His Romanticism and His Crystal Electrical Theory of Matter Isis 62 3 328 38 doi 10 1086 350763 JSTOR 229946 S2CID 170337569 Faraday M 1823 On fluid chlorine Philosophical Transactions of the Royal Society of London 113 160 64 Bibcode 1823RSPT 113 160F doi 10 1098 rstl 1823 0016 Chodos Alan ed This Month in Physics History September 4 1821 and August 29 1831 Faraday and Electromagnetism American Physical Society Archived from the original on June 15 2010 Retrieved 2010 05 08 O Connor J J Robertson E F Michael Faraday School of Mathematics and Statistics University of St Andrews Scotland Archived from the original on 2010 02 20 Retrieved 2010 05 08 a b Bleaching Encyclopaedia Britannica 9th Edition 1875 and 10th Edition 1902 ed Archived from the original on 2012 05 24 Retrieved 2012 05 02 Aspin Chris 1981 The Cotton Industry Shire Publications Ltd p 24 ISBN 978 0 85263 545 2 Paul May Bleach Sodium Hypochlorite University of Bristol Archived from the original on 13 December 2016 Retrieved 13 December 2016 a b c Greenwood amp Earnshaw 1997 p 798 Almqvist Ebbe 2003 History of Industrial Gases Springer Science amp Business Media p 220 ISBN 978 0 306 47277 0 a b Bouvet Maurice 1950 Les grands pharmaciens Labarraque 1777 1850 The great pharmacists Labarraque 1777 1850 Revue d Histoire de la Pharmacie in French 38 128 97 107 doi 10 3406 pharm 1950 8662 Chlorine History PDF Archived from the original PDF on 21 February 2007 Retrieved 2008 07 10 Weaponry Use of Chlorine Gas Cylinders in World War I historynet com 2006 06 12 Archived from the original on 2008 07 02 Retrieved 2008 07 10 Staff 29 July 2004 On the Western Front Ypres 1915 Veteran Affairs Canada Archived from the original on 6 December 2008 Retrieved 2008 04 08 Lefebure Victor Wilson Henry 2004 The Riddle of the Rhine Chemical Strategy in Peace and War Kessinger Publishing ISBN 978 1 4179 3546 8 a b c d e f g h Greenwood amp Earnshaw 1997 pp 800 804 a b c Greenwood amp Earnshaw 1997 pp 804 809 Cameron A G W 1973 Abundance of the Elements in the Solar System PDF Space Science Reviews 15 1 121 46 Bibcode 1973SSRv 15 121C doi 10 1007 BF00172440 S2CID 120201972 Archived from the original PDF on 2011 10 21 Audi Georges Bersillon Olivier Blachot Jean Wapstra Aaldert Hendrik 2003 The NUBASE evaluation of nuclear and decay properties Nuclear Physics A 729 3 128 Bibcode 2003NuPhA 729 3A doi 10 1016 j nuclphysa 2003 11 001 M Zreda et al 1991 Cosmogenic chlorine 36 production rates in terrestrial rocks Earth and Planetary Science Letters 105 1 3 94 109 Bibcode 1991E amp PSL 105 94Z doi 10 1016 0012 821X 91 90123 Y M Sheppard and M Herod 2012 Variation in background concentrations and specific activities of 36Cl 129I and U Th series radionuclides in surface waters Journal of Environmental Radioactivity 106 27 34 doi 10 1016 j jenvrad 2011 10 015 PMID 22304997 a b c d Greenwood amp Earnshaw 1997 pp 853 856 a b c Greenwood amp Earnshaw 1997 pp 809 812 Greenwood amp Earnshaw 1997 pp 812 816 Greenwood amp Earnshaw 1997 pp 818 819 a b c Greenwood amp Earnshaw 1997 pp 821 844 Greenwood amp Earnshaw 1997 pp 842 844 a b c d Greenwood amp Earnshaw 1997 pp 824 828 Greenwood amp Earnshaw 1997 pp 835 842 In Situ Cleaning of CVD Chambers Semiconductor International 1 June 1999 permanent dead link Greenwood amp Earnshaw 1997 pp 828 831 Greenwood amp Earnshaw 1997 pp 832 835 Greenwood amp Earnshaw 1997 pp 875 880 a b c d e f g h Greenwood amp Earnshaw 1997 pp 844 850 Greenwood amp Earnshaw 1997 pp 883 885 a b Greenwood amp Earnshaw 1997 pp 856 870 a b c M Rossberg et al Chlorinated Hydrocarbons in Ullmann s Encyclopedia of Industrial Chemistry 2006 Wiley VCH Weinheim doi 10 1002 14356007 a06 233 pub2 a b Gordon W Gribble 1998 Naturally Occurring Organohalogen Compounds Acc Chem Res 31 3 141 52 doi 10 1021 ar9701777 Gordon W Gribble 1999 The diversity of naturally occurring organobromine compounds Chemical Society Reviews 28 5 335 46 doi 10 1039 a900201d Kjeld C Engvild 1986 Chlorine Containing Natural Compounds in Higher Plants Phytochemistry 25 4 7891 91 doi 10 1016 0031 9422 86 80002 4 Gribble G W 1994 The Natural production of chlorinated compounds Environmental Science and Technology 28 7 310A 319A Bibcode 1994EnST 28 310G doi 10 1021 es00056a712 PMID 22662801 Gribble G W 1996 Naturally occurring organohalogen compounds A comprehensive survey Progress in the Chemistry of Organic Natural Products 68 10 1 423 doi 10 1021 np50088a001 PMID 8795309 Public Health Statement Chloromethane Archived 2007 09 27 at the Wayback Machine Centers for Disease Control Agency for Toxic Substances and Disease Registry Connell D et al 1999 Introduction to Ecotoxicology Blackwell Science p 68 ISBN 978 0 632 03852 7 Greenwood amp Earnshaw 1997 p 795 Holleman Arnold Frederik Wiberg Egon 2001 Wiberg Nils ed Inorganic Chemistry translated by Eagleson Mary Brewer William San Diego Berlin Academic Press De Gruyter p 408 ISBN 0 12 352651 5 The diaphragm cell process Euro Chlor Archived from the original on 2011 11 11 Retrieved 2007 08 15 The membrane cell process Euro Chlor Archived from the original on 2011 11 11 Retrieved 2007 08 15 Schmittinger Peter et al 2006 Chlorine in Ullmann s Encyclopedia of Industrial Chemistry Wiley VCH Verlag GmbH amp Co doi 10 1002 14356007 a06 399 pub2 a b c Greenwood amp Earnshaw 1997 pp 796 800 Greenwood amp Earnshaw 1997 p 798 Greenwood amp Earnshaw 1997 p 793 a b Hoefer Jean Chretien Ferdinand ed Labarraque Antoine Germain Nouvelle biographie universelle Vol 28 pp 323 24 OL 24229911M a b Knight Charles 1867 Arts and sciences Vol 1 Bradbury Evans amp Co p 427 Gedeon Andras 2006 Science and technology in medicine Springer pp 181 82 ISBN 978 0 387 27874 2 Archived from the original on 2015 12 31 Labarraque Antoine Germain 1828 On the disinfecting properties of Labarraque s preparations of chlorine Translated by James Scott p 8 Archived from the original on 2015 12 31 Scott James trans On the disinfecting properties of Labarraque s preparations of chlorine Archived 2015 12 31 at the Wayback Machine S Highley 1828 Accessed Nov 1 2011 Corbin Alain 1988 The Foul and the Fragrant Odor and the French Social Imagination Archived 2015 12 31 at the Wayback Machine Harvard University Press pp 121 22 Lewis Kenneth A 2010 Ch 9 Hypochlorination Sodium Hypochlorite PDF White s Handbook of Chlorination and Alternative Disinfectants Hoboken NJ Wiley p 452 doi 10 1002 9780470561331 ch9 ISBN 978 0 470 56133 1 Archived PDF from the original on 2022 10 09 permanent dead link a b Vinten Johansen Peter Howard Brody Nigel Paneth Stephen Rachman and Michael Rip 2003 Cholera Chloroform and the Science of Medicine New York Oxford University Hemphill Sandra 2007 The Strange Case of the Broad Street Pump John Snow and the Mystery of Cholera Los Angeles University of California Johnson Steven 2006 The Ghost Map The Story of London s Most Terrifying Epidemic and How It Changed Science Cities and the Modern World New York Riverhead Books Chlorine Story americanchemistry Archived from the original on 2011 04 29 Retrieved 2008 07 10 a href Template Cite web html title Template Cite web cite web a CS1 maint bot original URL status unknown link Rezayat C Widmann W D Hardy M A 2006 Henry Drysdale Dakin More Than His Solution Current Surgery 63 3 194 96 doi 10 1016 j cursur 2006 04 009 PMID 16757372 Joseph Cotruvo Victor Kimm Arden Calvert Drinking Water A Half Century of Progress EPA Alumni Association March 1 2016 Hammond C R 2000 The Elements in Handbook of Chemistry and Physics 81st ed CRC press ISBN 978 0 8493 0481 1 Chloramines amp Pool Operation Centres for Disease Control and Prevention Retrieved 13 March 2022 Koski T A Stuart L S Ortenzio L F 1966 Comparison of chlorine bromine iodine as disinfectants for swimming pool water Applied Microbiology 14 2 276 79 doi 10 1128 AEM 14 2 276 279 1966 PMC 546668 PMID 4959984 Disinfection with chloramine Centers for Disease Control and Prevention CDC Atlanta Georgia Archived from the original on 2019 01 20 Retrieved 2019 01 20 Greenwood amp Earnshaw 1997 p 860 Holleman Arnold Frederik Wiberg Egon 2001 Wiberg Nils ed Inorganic Chemistry translated by Eagleson Mary Brewer William San Diego Berlin Academic Press De Gruyter p 411 ISBN 0 12 352651 5 Battle of Ypres The Canadian Encyclopedia Everts Sarah February 23 2015 When Chemicals Became Weapons of War Chemical amp Engineering News 93 8 Archived from the original on March 30 2016 Smil Vaclav 2000 Enriching the Earth Fritz Haber Carl Bosch and the Transformation of World Food Production p 226 ISBN 978 0 262 69313 4 Archived from the original on 2015 12 31 Weapons of War Poison Gas First World War com Archived from the original on 2007 08 21 Retrieved 2007 08 12 Mahdi Basim 2007 03 17 Iraq gas attack makes hundreds ill CNN Archived from the original on 2007 03 17 Retrieved 2007 03 17 Chlorine bomb hits Iraq village BBC News 2007 05 17 Archived from the original on 2007 05 26 Retrieved 2007 05 17 Morris Loveday 2014 10 23 Islamic State militants allegedly used chlorine gas against Iraqi security forces The Washington Post Retrieved 2021 06 08 Lab report on chlorine gas usage PDF Kurdistan Region Security Council March 14 2015 Gladstone Rick 2017 02 13 Syria Used Chlorine Bombs Systematically in Aleppo Report Says The New York Times Archived from the original on 2017 05 15 Retrieved 2017 05 10 Syrian forces drop chlorine on Aleppo BBC News 2016 09 07 Archived from the original on 2017 05 13 Retrieved 2017 05 10 Ignoring UN Russia and Assad continue Syrian chemical weapons and bombing attacks labeled war crimes Fox News 2017 03 06 Archived from the original on 2017 04 25 Retrieved 2017 05 11 Timeline of investigations into Syria s chemical weapons Reuters April 9 2018 Syrian air force behind 2018 chlorine attack on Saraqeb OPCW finds BBC News April 12 2021 Blood Serum Chloride Level Test Archived from the original on 31 March 2009 Retrieved 30 April 2010 Lavie CJ Crocker EF Key KJ Ferguson TG October 1986 Marked hypochloremic metabolic alkalosis with severe compensatory hypoventilation South Med J 79 10 1296 99 doi 10 1097 00007611 198610000 00025 PMID 3764530 Levitin H Branscome W Epstein FH December 1958 The pathogenesis of hypochloremia in respiratory acidosis J Clin Invest 37 12 1667 75 doi 10 1172 JCI103758 PMC 1062852 PMID 13611033 Cambier C Detry B Beerens D et al October 1998 Effects of hyperchloremia on blood oxygen binding in healthy calves J Appl Physiol 85 4 1267 72 doi 10 1152 jappl 1998 85 4 1267 PMID 9760315 Chlorine 295132 Sigma Aldrich 2021 07 29 Retrieved 2021 12 22 Msds 295132 Facts About Chlorine www bt cdc gov Archived from the original on 2016 04 23 Retrieved 2016 04 12 a href Template Cite web html title Template Cite web cite web a CS1 maint bot original URL status unknown link Chlorine MSDS PDF 1997 10 23 Archived from the original PDF on 2007 09 26 NOAA Office of Response and Restoration US GOV Chlorine noaa gov Archived from the original on 15 October 2015 Retrieved 25 August 2015 a b NIOSH Pocket Guide to Chemical Hazards 0115 National Institute for Occupational Safety and Health NIOSH Winder Chris 2001 The Toxicology of Chlorine Environmental Research 85 2 105 14 Bibcode 2001ER 85 105W doi 10 1006 enrs 2000 4110 PMID 11161660 What s in your Water Disinfectants Create Toxic By products ACES News College of Agricultural Consumer and Environmental Sciences University of Illinois at Urbana Champaign 2009 03 31 Archived from the original on 2014 09 03 Retrieved 2009 03 31 Richardson Susan D Plewa Michael J Wagner Elizabeth D Schoeny Rita DeMarini David M 2007 Occurrence genotoxicity and carcinogenicity of regulated and emerging disinfection by products in drinking water A review and roadmap for research Mutation Research Reviews in Mutation Research 636 1 3 178 242 doi 10 1016 j mrrev 2007 09 001 PMID 17980649 Berezow Alex Why You Should Never Mix Different Drain Cleaners Forbes Archived from the original on 2016 04 25 Retrieved 2016 04 12 Bleach Mixing Dangers Washington State Dept of Health www doh wa gov Archived from the original on 2016 04 14 Retrieved 2016 04 12 Bertolini Luca Elsener Bernhard Pedeferri Pietro Polder Rob B 2004 Corrosion of steel in concrete prevention diagnosis repair Wiley VCH p 148 ISBN 978 3 527 30800 2 Lewis P R 1 January 2000 Polymer Product Failure iSmithers Rapra Publishing pp 19 ISBN 978 1 85957 192 7 Archived from the original on 10 May 2013 Retrieved 2011 04 30 a b Chlorine Product Datasheet PDF Bayer MaterialScience AG 2008 04 21 Archived from the original PDF on September 15 2012 Retrieved 2013 12 17 a b Sanders Roy E 2004 Chemical Process Safety Learning from Case Histories 3rd Revised edition Oxford Elsevier Science amp Technology p 92 ISBN 978 0 7506 7749 3 Explanatory notes van Helmont Joannis Baptistae 1682 Opera omnia All Works in Latin Frankfurt am Main Germany Johann Just Erythropel From Complexionum atque mistionum elementalium figmentum Formation of combinations and of mixtures of elements 37 p 105 Accipe salis petrae vitrioli amp alumnis partes aequas exsiccato singula amp connexis simul distilla aquam Quae nil aliud est quam merum sal volatile Hujus accipe uncias quatuor salis armeniaci unciam junge in forti vitro alembico per caementum ex cera colophonia amp vitri pulverre calidissime affusum firmato mox etiam in frigore Gas excitatur amp vas utut forte dissilit cum fragore Take equal parts of saltpeter i e sodium nitrate vitriol i e concentrated sulfuric acid and alum dry each and combine simultaneously distill off the water i e liquid That distillate is nothing else than pure volatile salt i e spirit of nitre nitric acid Take four ounces of this viz nitric acid add one ounce of Armenian salt i e ammonium chloride place it in a strong glass alembic sealed by cement made from wax rosin and powdered glass that has been poured very hot soon even in the cold gas is stimulated and the vessel however strong bursts into fragments From De Flatibus On gases p 408 Sal armeniacus enim amp aqua chrysulca quae singula per se distillari possunt amp pati calorem sin autem jungantur amp intepescant non possunt non quin statim in Gas sylvestre sive incoercibilem flatum transmutentur Truly Armenian salt i e ammonium chloride and nitric acid each of which can be distilled by itself and submitted to heat but if on the other hand they be combined and become warm they cannot but be changed immediately into carbon dioxide note van Helmont s identification of the gas is mistaken or an incondensable gas See also Helmont Johannes Joan Baptista Van Encyclopedia Com Others were chlorine gas from the reaction of nitric acid and sal ammoniac Wisniak Jaime 2009 Carl Wilhelm Scheele Revista CENIC Ciencias Quimicas 40 3 165 73 see p 168 Early in the seventeenth century Johannes Baptiste van Helmont 1579 1644 mentioned that when sal marin sodium chloride or sal ammoniacus and aqua chrysulca nitric acid were mixed together a flatus incoercible non condensable gas was evolved General bibliographyGreenwood Norman N Earnshaw Alan 1997 Chemistry of the Elements 2nd ed Butterworth Heinemann ISBN 978 0 08 037941 8 External linksChlorine at Wikipedia s sister projects Definitions from Wiktionary Media from Commons Textbooks from Wikibooks Resources from Wikiversity Chlorine at The Periodic Table of Videos University of Nottingham Agency for Toxic Substances and Disease Registry Chlorine Electrolytic production Production and liquefaction of chlorine Chlorine Production Using Mercury Environmental Considerations and Alternatives National Pollutant Inventory Chlorine National Institute for Occupational Safety and Health Chlorine Page Chlorine Institute Trade association representing the chlorine industry Chlorine Online the web portal of Eurochlor the business association of the European chlor alkali industry Chlorine Encyclopaedia Britannica Vol 6 11th ed 1911 pp 254 56 Retrieved from https en wikipedia org w index php title Chlorine amp oldid 1129468186, wikipedia, wiki, book, books, library,

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