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Kaon

In particle physics, a kaon (/ˈk.ɒn/), also called a K meson and denoted
K
,[a] is any of a group of four mesons distinguished by a quantum number called strangeness. In the quark model they are understood to be bound states of a strange quark (or antiquark) and an up or down antiquark (or quark).

Kaon
Composition
K+
:
u

s


K0
:
d

s


K
:
s

u
StatisticsBosonic
FamilyMesons
InteractionsStrong, weak, electromagnetic, gravitational
Symbol
K+
,
K0
,
K
Antiparticle
K+
:
K


K0
:
K0


K
:
K+
Discovered1947
Types4
Mass
K±
: 493.677±0.016 MeV/c2

K0
: 497.611±0.013 MeV/c2
Mean lifetime
K±
: (1.2380±0.0020)×10−8 s

K
S
: (8.954±0.004)×10−11 s

K
L
: (5.116±0.021)×10−8 s
Electric charge
K±
: ±1 e

K0
: 0 e
Spinħ
Strangeness
K+
,
K0
: +1

K
,
K0
: −1
Isospin
K+
,
K0
: +1/2

K0
,
K
: −1/2
Parity−1
The decay of a kaon (
K+
) into three pions (2 
π+
, 1 
π
) is a process that involves both weak and strong interactions. Weak interactions : The strange antiquark (
s
) of the kaon transmutes into an up antiquark (
u
) by the emission of a
W+
boson
; the
W+
boson subsequently decays into a down antiquark  (
d
) and an up quark (
u
). Strong interactions: An up quark (
u
) emits a gluon (
g
) which decays into a down quark (
d
) and a down antiquark (
d
).

Kaons have proved to be a copious source of information on the nature of fundamental interactions since their discovery in cosmic rays in 1947. They were essential in establishing the foundations of the Standard Model of particle physics, such as the quark model of hadrons and the theory of quark mixing (the latter was acknowledged by a Nobel Prize in Physics in 2008). Kaons have played a distinguished role in our understanding of fundamental conservation laws: CP violation, a phenomenon generating the observed matter–antimatter asymmetry of the universe, was discovered in the kaon system in 1964 (which was acknowledged by a Nobel Prize in 1980). Moreover, direct CP violation was discovered in the kaon decays in the early 2000s by the NA48 experiment at CERN and the KTeV experiment at Fermilab.

Basic properties edit

The four kaons are :


  1. K
    , negatively charged (containing a strange quark and an up antiquark) has mass 493.677±0.013 MeV and mean lifetime (1.2380±0.0020)×10−8 s.

  2. K+
    (antiparticle of above) positively charged (containing an up quark and a strange antiquark) must (by CPT invariance) have mass and lifetime equal to that of
    K
    . Experimentally, the mass difference is 0.032±0.090 MeV, consistent with zero; the difference in lifetimes is (0.11±0.09)×10−8 s, also consistent with zero.

  3. K0
    , neutrally charged (containing a down quark and a strange antiquark) has mass 497.648±0.022 MeV. It has mean squared charge radius of −0.076±0.01 fm2.

  4. K0
    , neutrally charged (antiparticle of above) (containing a strange quark and a down antiquark) has the same mass.

As the quark model shows, assignments that the kaons form two doublets of isospin; that is, they belong to the fundamental representation of SU(2) called the 2. One doublet of strangeness +1 contains the
K+
and the
K0
. The antiparticles form the other doublet (of strangeness −1).

Properties of kaons
Particle
name
Particle
symbol
Antiparticle
symbol
Quark
content
Rest mass
(MeV/c2)
IG JPC S C B' Mean lifetime (s) Commonly decays to
(>5% of decays)
Kaon[1]
K+

K

u

s
493.677±0.016 12 0 1 0 0 (1.2380±0.0020)×10−8
μ+
+
ν
μ
or
π+
+
π0
or
π+
+
π+
+
π
or
π0
+
e+
+
ν
e
Kaon[2]
K0

K0

d

s
497.611±0.013 12 0 1 0 0 [§] [§]
K-Short[3]
K0
S
Self  [†][4] 497.611±0.013[‡] 12 0 [*] 0 0 (8.954±0.004)×10−11
π+
+
π
or
π0
+
π0
K-Long[5]
K0
L
Self  [†][4] 497.611±0.013[‡] 12 0 [*] 0 0 (5.116±0.021)×10−8
π±
+
e
+
ν
e
or
π±
+
μ
+
ν
μ
or
π0
+
π0
+
π0
or
π+
+
π0
+
π
 
Quark structure of the kaon (K+).

[*] See Notes on neutral kaons in the article List of mesons, and neutral kaon mixing, below.
[§]^ Strong eigenstate. No definite lifetime (see neutral kaon mixing).
[†]^ Weak eigenstate. Makeup is missing small CP–violating term (see neutral kaon mixing).
[‡]^ The mass of the
K0
L
and
K0
S
are given as that of the
K0
. However, it is known that a relatively minute difference between the masses of the
K0
L
and
K0
S
on the order of 3.5×10−6 eV/c2 exists.[5]

Although the
K0
and its antiparticle
K0
are usually produced via the strong force, they decay weakly. Thus, once created the two are better thought of as superpositions of two weak eigenstates which have vastly different lifetimes:

  • The long-lived neutral kaon is called the
    K
    L
    ("K-long"), decays primarily into three pions, and has a mean lifetime of 5.18×10−8 s.
  • The short-lived neutral kaon is called the
    K
    S
    ("K-short"), decays primarily into two pions, and has a mean lifetime 8.958×10−11 s.
     
    Quark structure of the antikaon (K).

(See discussion of neutral kaon mixing below.)

An experimental observation made in 1964 that K-longs rarely decay into two pions was the discovery of CP violation (see below).

Main decay modes for
K+
:

 
Quark structure of the neutral kaon (K0).
Results Mode Branching ratio

μ+

ν
μ
leptonic 63.55±0.11%

π+

π0
hadronic 20.66±0.08%

π+

π+

π
hadronic 5.59±0.04%

π+

π0

π0
hadronic 1.761±0.022%

π0

e+

ν
e
semileptonic 5.07±0.04%

π0

μ+

ν
μ
semileptonic 3.353±0.034%

Decay modes for the
K
are charge conjugates of the ones above.

Parity violation edit

Two different decays were found for charged strange mesons:


Θ+

π+
+
π0

τ+

π+
+
π+
+
π

The intrinsic parity of a pion is P = −1, and parity is a multiplicative quantum number. Therefore, the two final states have different parity (P = +1 and P = −1, respectively). It was thought that the initial states should also have different parities, and hence be two distinct particles. However, with increasingly precise measurements, no difference was found between the masses and lifetimes of each, respectively, indicating that they are the same particle. This was known as the τ–θ puzzle. It was resolved only by the discovery of parity violation in weak interactions. Since the mesons decay through weak interactions, parity is not conserved, and the two decays are actually decays of the same particle,[6] now called the
K+
.

History edit

The discovery of hadrons with the internal quantum number "strangeness" marks the beginning of a most exciting epoch in particle physics that even now, fifty years later, has not yet found its conclusion ... by and large experiments have driven the development, and that major discoveries came unexpectedly or even against expectations expressed by theorists.  — Bigi & Sanda (2016)[7]

While looking for the hypothetical nuclear meson, Louis Leprince-Ringuet found evidence for the existence of a positively charged heavier particle in 1944.[8][9]

In 1947, G.D. Rochester and C.C. Butler of the University of Manchester published two cloud chamber photographs of cosmic ray-induced events, one showing what appeared to be a neutral particle decaying into two charged pions, and one which appeared to be a charged particle decaying into a charged pion and something neutral. The estimated mass of the new particles was very rough, about half a proton's mass. More examples of these "V-particles" were slow in coming.

In 1949, Rosemary Brown (later Rosemary Fowler), a research student in C.F. Powell's Bristol group, spotted her 'k' track, made by a particle of very similar mass that decayed to three pions.[10](p82) This led to the so-called 'tau–theta' problem: what seemed to be the same particles (now called
K+
) decayed in two different modes, Theta to two pions (parity +1), Tau to three pions (parity −1).[10] The solution to this puzzle turned out to be that weak interactions do not conserve parity.

The first breakthrough was obtained at Caltech, where a cloud chamber was taken up Mount Wilson, for greater cosmic ray exposure. In 1950, 30 charged and 4 neutral "V-particles" were reported. Inspired by this, numerous mountaintop observations were made over the next several years, and by 1953, the following terminology was being used: "L meson" for either a muon or charged pion; "K meson" meant a particle intermediate in mass between the pion and nucleon.

Leprince-Rinquet coined the still-used term "hyperon" to mean any particle heavier than a nucleon.[8][9] The Leprince-Ringuet particle turned out to be the K+ meson.[8][9]

The decays were extremely slow; typical lifetimes are of the order of 10−10 s. However, production in pionproton reactions proceeds much faster, with a time scale of 10−23 s. The problem of this mismatch was solved by Abraham Pais who postulated the new quantum number called "strangeness" which is conserved in strong interactions but violated by the weak interactions. Strange particles appear copiously due to "associated production" of a strange and an antistrange particle together. It was soon shown that this could not be a multiplicative quantum number, because that would allow reactions which were never seen in the new synchrotrons which were commissioned in Brookhaven National Laboratory in 1953 and in the Lawrence Berkeley Laboratory in 1955.

CP violation in neutral meson oscillations edit

Initially it was thought that although parity was violated, CP (charge parity) symmetry was conserved. In order to understand the discovery of CP violation, it is necessary to understand the mixing of neutral kaons; this phenomenon does not require CP violation, but it is the context in which CP violation was first observed.

Neutral kaon mixing edit

 
Two different neutral K mesons, carrying different strangeness, can turn from one into another through the weak interactions, since these interactions do not conserve strangeness. The strange quark in the anti-
K0
turns into a down quark by successively absorbing two W-bosons of opposite charge. The down antiquark in the anti-
K0
turns into a strange antiquark by emitting them.

Since neutral kaons carry strangeness, they cannot be their own antiparticles. There must be then two different neutral kaons, differing by two units of strangeness. The question was then how to establish the presence of these two mesons. The solution used a phenomenon called neutral particle oscillations, by which these two kinds of mesons can turn from one into another through the weak interactions, which cause them to decay into pions (see the adjacent figure).

These oscillations were first investigated by Murray Gell-Mann and Abraham Pais together. They considered the CP-invariant time evolution of states with opposite strangeness. In matrix notation one can write

 

where ψ is a quantum state of the system specified by the amplitudes of being in each of the two basis states (which are a and b at time t = 0). The diagonal elements (M) of the Hamiltonian are due to strong interaction physics which conserves strangeness. The two diagonal elements must be equal, since the particle and antiparticle have equal masses in the absence of the weak interactions. The off-diagonal elements, which mix opposite strangeness particles, are due to weak interactions; CP symmetry requires them to be real.

The consequence of the matrix H being real is that the probabilities of the two states will forever oscillate back and forth. However, if any part of the matrix were imaginary, as is forbidden by CP symmetry, then part of the combination will diminish over time. The diminishing part can be either one component (a) or the other (b), or a mixture of the two.

Mixing edit

The eigenstates are obtained by diagonalizing this matrix. This gives new eigenvectors, which we can call K1 which is the difference of the two states of opposite strangeness, and K2, which is the sum. The two are eigenstates of CP with opposite eigenvalues; K1 has CP = +1, and K2 has CP = −1 Since the two-pion final state also has CP = +1, only the K1 can decay this way. The K2 must decay into three pions. [11]

Since the mass of K2 is just a little larger than the sum of the masses of three pions, this decay proceeds very slowly, about 600 times slower than the decay of K1 into two pions. These two different modes of decay were observed by Leon Lederman and his coworkers in 1956, establishing the existence of the two weak eigenstates (states with definite lifetimes under decays via the weak force) of the neutral kaons.

These two weak eigenstates are called the
K
L
(K-long, τ) and
K
S
(K-short, θ). CP symmetry, which was assumed at the time, implies that
K
S
 = K1 and
K
L
 = K2.

Oscillation edit

An initially pure beam of
K0
will turn into its antiparticle,
K0
, while propagating, which will turn back into the original particle,
K0
, and so on. This is called particle oscillation. On observing the weak decay into leptons, it was found that a
K0
always decayed into a positron, whereas the antiparticle
K0
decayed into the electron. The earlier analysis yielded a relation between the rate of electron and positron production from sources of pure
K0
and its antiparticle
K0
. Analysis of the time dependence of this semileptonic decay showed the phenomenon of oscillation, and allowed the extraction of the mass splitting between the
K
S
and
K
L
. Since this is due to weak interactions it is very small, 10−15 times the mass of each state, namely ∆MK = M(KL) − M(KS) = 3.484(6)×10−12 MeV .[12]

Regeneration edit

A beam of neutral kaons decays in flight so that the short-lived
K
S
disappears, leaving a beam of pure long-lived
K
L
. If this beam is shot into matter, then the
K0
and its antiparticle
K0
interact differently with the nuclei. The
K0
undergoes quasi-elastic scattering with nucleons, whereas its antiparticle can create hyperons. Quantum coherence between the two particles is lost due to the different interactions that the two components separately engage in. The emerging beam then contains different linear superpositions of the
K0
and
K0
. Such a superposition is a mixture of
K
L
and
K
S
; the
K
S
is regenerated by passing a neutral kaon beam through matter.[13] Regeneration was observed by Oreste Piccioni and his collaborators at Lawrence Berkeley National Laboratory.[14] Soon thereafter, Robert Adair and his coworkers reported excess
K
S
regeneration, thus opening a new chapter in this history.

CP violation edit

While trying to verify Adair's results, J. Christenson, James Cronin, Val Fitch and Rene Turlay of Princeton University found decays of
K
L
into two pions (CP = +1) in an experiment performed in 1964 at the Alternating Gradient Synchrotron at the Brookhaven laboratory.[15] As explained in an earlier section, this required the assumed initial and final states to have different values of CP, and hence immediately suggested CP violation. Alternative explanations such as nonlinear quantum mechanics and a new unobserved particle (hyperphoton) were soon ruled out, leaving CP violation as the only possibility. Cronin and Fitch received the Nobel Prize in Physics for this discovery in 1980.

It turns out that although the
K
L
and
K
S
are weak eigenstates (because they have definite lifetimes for decay by way of the weak force), they are not quite CP eigenstates. Instead, for small ε (and up to normalization),


K
L
= K2 + εK1

and similarly for
K
S
. Thus occasionally the
K
L
decays as a K1 with CP = +1, and likewise the
K
S
can decay with CP = −1. This is known as indirect CP violation, CP violation due to mixing of
K0
and its antiparticle. There is also a direct CP violation effect, in which the CP violation occurs during the decay itself. Both are present, because both mixing and decay arise from the same interaction with the W boson and thus have CP violation predicted by the CKM matrix. Direct CP violation was discovered in the kaon decays in the early 2000s by the NA48 and KTeV experiments at CERN and Fermilab.[16]

See also edit

Footnotes edit

  1. ^ Until the 1960s the positively charged kaon was formerly called τ+ or θ+, as it was believed to be two different particles. See the § Parity violation.

References edit

  1. ^ Zyla, P.A.; et al. (2020). "Particle listings –
    K±
    " (PDF).
  2. ^ Zyla, P.A.; et al. (2020). "Particle listings –
    K0
    " (PDF).
  3. ^ Zyla, P.A.; et al. (2020). "Particle listings –
    K0
    S
    " (PDF).
  4. ^ a b R. Nave. "Kaons and other strange mesons". HyperPhysics. Retrieved 2024-01-26.
  5. ^ a b Zyla, P.A.; et al. (2020). "Particle listings –
    K0
    L
    " (PDF).
  6. ^ Lee, T. D.; Yang, C. N. (1 October 1956). "Question of Parity Conservation in Weak Interactions". Physical Review. 104 (1): 254. Bibcode:1956PhRv..104..254L. doi:10.1103/PhysRev.104.254. One way out of the difficulty is to assume that parity is not strictly conserved, so that
    Θ+
    and
    τ+
    are two different decay modes of the same particle, which necessarily has a single mass value and a single lifetime.
  7. ^ Bigi, I.I.; Sanda, A.I. (2016-10-06). CP Violation. Cambridge Monographs on Particle Physics, Nuclear Physics, and Cosmology. Vol. 28 (5th ed.). Cambridge University Press. ISBN 978-0-521-44349-4.
  8. ^ a b c Degrange, Bernard; Fontaine, Gérard; Fleury, Patrick (2013). "Tracking Louis Leprince-Ringuet's contributions to cosmic-ray physics". Physics Today. 66 (6): 8. Bibcode:2013PhT....66f...8D. doi:10.1063/PT.3.1989. ISSN 0031-9228.
  9. ^ a b c Ravel, Olivier (2012). "Early cosmic ray research in France". In Ormes, Jonathan F. (ed.). Centenary Symposium 2012: Discovery of cosmic rays. AIP Conference Proceedings. Vol. 1516. Denver, Colorado: American Institute of Physics. pp. 67–71. Bibcode:2013AIPC.1516...67R. doi:10.1063/1.4792542. ISBN 978-0-7354-1137-1.
  10. ^ a b Brown, R.; Camerini, U.; Fowler, P.H.; Muirhead, H.; Powell, C.F.; Ritson, D.M. (1949). "Part 2: Observations with electron-sensitive plates exposed to cosmic radiation". Nature. 163 (4133): 82–87. Bibcode:1949Natur.163...82B. doi:10.1038/163082a0. S2CID 12974912.
      note same issue:
    Brown; et al. (1949). "Part 1". Nature. 163 (4133): 47–51. doi:10.1038/163047a0. S2CID 4097342.
  11. ^ * Griffiths, D. J. (1987). Introduction to Elementary Particle. John Wiley & Sons. ISBN 0-471-60386-4.
  12. ^ Aoki, S.; Aoki, Y.; Bečirević, D.; Blum, T.; Colangelo, G.; Collins, S.; et al. (2020). "FLAG Review 2019". The European Physical Journal C. 80 (2): 113. arXiv:1902.08191. Bibcode:2020EPJC...80..113A. doi:10.1140/epjc/s10052-019-7354-7. S2CID 119401756.
  13. ^ Pais, A.; Piccioni, O. (1 December 1955). "Note on the Decay and Absorption of the θ⁰". Physical Review. 100 (5): 1487–1489. doi:10.1103/PhysRev.100.1487.
  14. ^ Good, R. H.; Matsen, R. P.; Muller, F.; Piccioni, O.; Powell, W. M.; White, H. S.; Fowler, W. B.; Birge, R. W. (15 November 1961). "Regeneration of Neutral K Mesons and Their Mass Difference". Physical Review. 124 (4): 1223–1239. Bibcode:1961PhRv..124.1223G. doi:10.1103/PhysRev.124.1223.
  15. ^ Christenson, J. H.; Cronin, J. W.; Fitch, V. L.; Turlay, R. (27 July 1964). "Evidence for the 2π Decay of the K20 Meson". Physical Review Letters. 13 (4): 138–140. Bibcode:1964PhRvL..13..138C. doi:10.1103/physrevlett.13.138.
  16. ^ ANZIVINO, GIUSEPPINA (2001). "Measurement of Direct Cp Violation by Na48". Multiparticle Dynamics. pp. 7–14. arXiv:hep-ph/0111393. doi:10.1142/9789812778048_0002. ISBN 978-981-02-4844-4. S2CID 15184466.

Bibliography edit

External links edit

  • The neutral K-meson – The Feynman Lectures on Physics
  •   Media related to Kaon at Wikimedia Commons

kaon, other, uses, disambiguation, confused, with, kōan, particle, physics, kaon, also, called, meson, denoted, group, four, mesons, distinguished, quantum, number, called, strangeness, quark, model, they, understood, bound, states, strange, quark, antiquark, . For other uses see Kaon disambiguation Not to be confused with Kōan In particle physics a kaon ˈ k eɪ ɒ n also called a K meson and denoted K a is any of a group of four mesons distinguished by a quantum number called strangeness In the quark model they are understood to be bound states of a strange quark or antiquark and an up or down antiquark or quark KaonCompositionK u s K0 d s K s uStatisticsBosonicFamilyMesonsInteractionsStrong weak electromagnetic gravitationalSymbolK K0 K AntiparticleK K K0 K 0 K K Discovered1947Types4MassK 493 677 0 016 MeV c2 K0 497 611 0 013 MeV c2Mean lifetimeK 1 2380 0 0020 10 8 s KS 8 954 0 004 10 11 s KL 5 116 0 021 10 8 sElectric chargeK 1 eK0 0 eSpin0 ħStrangenessK K0 1K K 0 1IsospinK K 0 1 2 K0 K 1 2Parity 1The decay of a kaon K into three pions 2 p 1 p is a process that involves both weak and strong interactions Weak interactions The strange antiquark s of the kaon transmutes into an up antiquark u by the emission of a W boson the W boson subsequently decays into a down antiquark d and an up quark u Strong interactions An up quark u emits a gluon g which decays into a down quark d and a down antiquark d Kaons have proved to be a copious source of information on the nature of fundamental interactions since their discovery in cosmic rays in 1947 They were essential in establishing the foundations of the Standard Model of particle physics such as the quark model of hadrons and the theory of quark mixing the latter was acknowledged by a Nobel Prize in Physics in 2008 Kaons have played a distinguished role in our understanding of fundamental conservation laws CP violation a phenomenon generating the observed matter antimatter asymmetry of the universe was discovered in the kaon system in 1964 which was acknowledged by a Nobel Prize in 1980 Moreover direct CP violation was discovered in the kaon decays in the early 2000s by the NA48 experiment at CERN and the KTeV experiment at Fermilab Contents 1 Basic properties 2 Parity violation 3 History 4 CP violation in neutral meson oscillations 4 1 Neutral kaon mixing 4 1 1 Mixing 4 1 2 Oscillation 4 1 3 Regeneration 4 2 CP violation 5 See also 6 Footnotes 7 References 8 Bibliography 9 External linksBasic properties editThe four kaons are K negatively charged containing a strange quark and an up antiquark has mass 493 677 0 013 MeV and mean lifetime 1 2380 0 0020 10 8 s K antiparticle of above positively charged containing an up quark and a strange antiquark must by CPT invariance have mass and lifetime equal to that of K Experimentally the mass difference is 0 032 0 090 MeV consistent with zero the difference in lifetimes is 0 11 0 09 10 8 s also consistent with zero K0 neutrally charged containing a down quark and a strange antiquark has mass 497 648 0 022 MeV It has mean squared charge radius of 0 076 0 01 fm2 K 0 neutrally charged antiparticle of above containing a strange quark and a down antiquark has the same mass As the quark model shows assignments that the kaons form two doublets of isospin that is they belong to the fundamental representation of SU 2 called the 2 One doublet of strangeness 1 contains the K and the K0 The antiparticles form the other doublet of strangeness 1 Properties of kaons Particlename Particle symbol Antiparticle symbol Quark content Rest mass MeV c2 IG JPC S C B Mean lifetime s Commonly decays to gt 5 of decays Kaon 1 K K u s 493 677 0 016 1 2 0 1 0 0 1 2380 0 0020 10 8 m nm or p p0 or p p p or p0 e neKaon 2 K0 K 0 d s 497 611 0 013 1 2 0 1 0 0 K Short 3 K0S Self ds sd 2 displaystyle mathrm tfrac d bar s s bar d sqrt 2 nbsp 4 497 611 0 013 1 2 0 0 0 8 954 0 004 10 11 p p or p0 p0K Long 5 K0L Self ds sd 2 displaystyle mathrm tfrac d bar s s bar d sqrt 2 nbsp 4 497 611 0 013 1 2 0 0 0 5 116 0 021 10 8 p e ne or p m nm or p0 p0 p0 or p p0 p nbsp Quark structure of the kaon K See Notes on neutral kaons in the article List of mesons and neutral kaon mixing below Strong eigenstate No definite lifetime see neutral kaon mixing Weak eigenstate Makeup is missing small CP violating term see neutral kaon mixing The mass of the K0L and K0S are given as that of the K0 However it is known that a relatively minute difference between the masses of the K0L and K0S on the order of 3 5 10 6 eV c2 exists 5 Although the K0 and its antiparticle K 0 are usually produced via the strong force they decay weakly Thus once created the two are better thought of as superpositions of two weak eigenstates which have vastly different lifetimes The long lived neutral kaon is called the KL K long decays primarily into three pions and has a mean lifetime of 5 18 10 8 s The short lived neutral kaon is called the KS K short decays primarily into two pions and has a mean lifetime 8 958 10 11 s nbsp Quark structure of the antikaon K See discussion of neutral kaon mixing below An experimental observation made in 1964 that K longs rarely decay into two pions was the discovery of CP violation see below Main decay modes for K nbsp Quark structure of the neutral kaon K0 Results Mode Branching ratiom nm leptonic 63 55 0 11 p p0 hadronic 20 66 0 08 p p p hadronic 5 59 0 04 p p0 p0 hadronic 1 761 0 022 p0 e ne semileptonic 5 07 0 04 p0 m nm semileptonic 3 353 0 034 Decay modes for the K are charge conjugates of the ones above Parity violation editTwo different decays were found for charged strange mesons 8 p p0t p p p The intrinsic parity of a pion is P 1 and parity is a multiplicative quantum number Therefore the two final states have different parity P 1 and P 1 respectively It was thought that the initial states should also have different parities and hence be two distinct particles However with increasingly precise measurements no difference was found between the masses and lifetimes of each respectively indicating that they are the same particle This was known as the t 8 puzzle It was resolved only by the discovery of parity violation in weak interactions Since the mesons decay through weak interactions parity is not conserved and the two decays are actually decays of the same particle 6 now called the K History editSee also Strangeness The discovery of hadrons with the internal quantum number strangeness marks the beginning of a most exciting epoch in particle physics that even now fifty years later has not yet found its conclusion by and large experiments have driven the development and that major discoveries came unexpectedly or even against expectations expressed by theorists Bigi amp Sanda 2016 7 While looking for the hypothetical nuclear meson Louis Leprince Ringuet found evidence for the existence of a positively charged heavier particle in 1944 8 9 In 1947 G D Rochester and C C Butler of the University of Manchester published two cloud chamber photographs of cosmic ray induced events one showing what appeared to be a neutral particle decaying into two charged pions and one which appeared to be a charged particle decaying into a charged pion and something neutral The estimated mass of the new particles was very rough about half a proton s mass More examples of these V particles were slow in coming In 1949 Rosemary Brown later Rosemary Fowler a research student in C F Powell s Bristol group spotted her k track made by a particle of very similar mass that decayed to three pions 10 p82 This led to the so called tau theta problem what seemed to be the same particles now called K decayed in two different modes Theta to two pions parity 1 Tau to three pions parity 1 10 The solution to this puzzle turned out to be that weak interactions do not conserve parity The first breakthrough was obtained at Caltech where a cloud chamber was taken up Mount Wilson for greater cosmic ray exposure In 1950 30 charged and 4 neutral V particles were reported Inspired by this numerous mountaintop observations were made over the next several years and by 1953 the following terminology was being used L meson for either a muon or charged pion K meson meant a particle intermediate in mass between the pion and nucleon Leprince Rinquet coined the still used term hyperon to mean any particle heavier than a nucleon 8 9 The Leprince Ringuet particle turned out to be the K meson 8 9 The decays were extremely slow typical lifetimes are of the order of 10 10 s However production in pion proton reactions proceeds much faster with a time scale of 10 23 s The problem of this mismatch was solved by Abraham Pais who postulated the new quantum number called strangeness which is conserved in strong interactions but violated by the weak interactions Strange particles appear copiously due to associated production of a strange and an antistrange particle together It was soon shown that this could not be a multiplicative quantum number because that would allow reactions which were never seen in the new synchrotrons which were commissioned in Brookhaven National Laboratory in 1953 and in the Lawrence Berkeley Laboratory in 1955 CP violation in neutral meson oscillations editInitially it was thought that although parity was violated CP charge parity symmetry was conserved In order to understand the discovery of CP violation it is necessary to understand the mixing of neutral kaons this phenomenon does not require CP violation but it is the context in which CP violation was first observed Neutral kaon mixing edit nbsp Two different neutral K mesons carrying different strangeness can turn from one into another through the weak interactions since these interactions do not conserve strangeness The strange quark in the anti K0 turns into a down quark by successively absorbing two W bosons of opposite charge The down antiquark in the anti K0 turns into a strange antiquark by emitting them Since neutral kaons carry strangeness they cannot be their own antiparticles There must be then two different neutral kaons differing by two units of strangeness The question was then how to establish the presence of these two mesons The solution used a phenomenon called neutral particle oscillations by which these two kinds of mesons can turn from one into another through the weak interactions which cause them to decay into pions see the adjacent figure These oscillations were first investigated by Murray Gell Mann and Abraham Pais together They considered the CP invariant time evolution of states with opposite strangeness In matrix notation one can write ps t U t ps 0 eiHt ab H MDDM displaystyle psi t U t psi 0 rm e iHt begin pmatrix a b end pmatrix qquad H begin pmatrix M amp Delta Delta amp M end pmatrix nbsp dd where ps is a quantum state of the system specified by the amplitudes of being in each of the two basis states which are a and b at time t 0 The diagonal elements M of the Hamiltonian are due to strong interaction physics which conserves strangeness The two diagonal elements must be equal since the particle and antiparticle have equal masses in the absence of the weak interactions The off diagonal elements which mix opposite strangeness particles are due to weak interactions CP symmetry requires them to be real The consequence of the matrix H being real is that the probabilities of the two states will forever oscillate back and forth However if any part of the matrix were imaginary as is forbidden by CP symmetry then part of the combination will diminish over time The diminishing part can be either one component a or the other b or a mixture of the two Mixing edit The eigenstates are obtained by diagonalizing this matrix This gives new eigenvectors which we can call K1 which is the difference of the two states of opposite strangeness and K2 which is the sum The two are eigenstates of CP with opposite eigenvalues K1 has CP 1 and K2 has CP 1 Since the two pion final state also has CP 1 only the K1 can decay this way The K2 must decay into three pions 11 Since the mass of K2 is just a little larger than the sum of the masses of three pions this decay proceeds very slowly about 600 times slower than the decay of K1 into two pions These two different modes of decay were observed by Leon Lederman and his coworkers in 1956 establishing the existence of the two weak eigenstates states with definite lifetimes under decays via the weak force of the neutral kaons These two weak eigenstates are called the KL K long t and KS K short 8 CP symmetry which was assumed at the time implies that KS K1 and KL K2 Oscillation edit Main article Neutral particle oscillation An initially pure beam of K0 will turn into its antiparticle K 0 while propagating which will turn back into the original particle K0 and so on This is called particle oscillation On observing the weak decay into leptons it was found that a K0 always decayed into a positron whereas the antiparticle K 0 decayed into the electron The earlier analysis yielded a relation between the rate of electron and positron production from sources of pure K0 and its antiparticle K 0 Analysis of the time dependence of this semileptonic decay showed the phenomenon of oscillation and allowed the extraction of the mass splitting between the KS and KL Since this is due to weak interactions it is very small 10 15 times the mass of each state namely MK M KL M KS 3 484 6 10 12 MeV 12 Regeneration edit A beam of neutral kaons decays in flight so that the short lived KS disappears leaving a beam of pure long lived KL If this beam is shot into matter then the K0 and its antiparticle K 0 interact differently with the nuclei The K0 undergoes quasi elastic scattering with nucleons whereas its antiparticle can create hyperons Quantum coherence between the two particles is lost due to the different interactions that the two components separately engage in The emerging beam then contains different linear superpositions of the K0 and K 0 Such a superposition is a mixture of KL and KS the KS is regenerated by passing a neutral kaon beam through matter 13 Regeneration was observed by Oreste Piccioni and his collaborators at Lawrence Berkeley National Laboratory 14 Soon thereafter Robert Adair and his coworkers reported excess KS regeneration thus opening a new chapter in this history CP violation edit While trying to verify Adair s results J Christenson James Cronin Val Fitch and Rene Turlay of Princeton University found decays of KL into two pions CP 1 in an experiment performed in 1964 at the Alternating Gradient Synchrotron at the Brookhaven laboratory 15 As explained in an earlier section this required the assumed initial and final states to have different values of CP and hence immediately suggested CP violation Alternative explanations such as nonlinear quantum mechanics and a new unobserved particle hyperphoton were soon ruled out leaving CP violation as the only possibility Cronin and Fitch received the Nobel Prize in Physics for this discovery in 1980 It turns out that although the KL and KS are weak eigenstates because they have definite lifetimes for decay by way of the weak force they are not quite CP eigenstates Instead for small e and up to normalization KL K2 eK1and similarly for KS Thus occasionally the KL decays as a K1 with CP 1 and likewise the KS can decay with CP 1 This is known as indirect CP violation CP violation due to mixing of K0 and its antiparticle There is also a direct CP violation effect in which the CP violation occurs during the decay itself Both are present because both mixing and decay arise from the same interaction with the W boson and thus have CP violation predicted by the CKM matrix Direct CP violation was discovered in the kaon decays in the early 2000s by the NA48 and KTeV experiments at CERN and Fermilab 16 See also editHadrons mesons hyperons and flavour Strange quark and the quark model Parity physics charge conjugation time reversal symmetry CPT invariance and CP violation Neutrino oscillation Neutral particle oscillationFootnotes edit Until the 1960s the positively charged kaon was formerly called t or 8 as it was believed to be two different particles See the Parity violation References edit Zyla P A et al 2020 Particle listings K PDF Zyla P A et al 2020 Particle listings K0 PDF Zyla P A et al 2020 Particle listings K0S PDF a b R Nave Kaons and other strange mesons HyperPhysics Retrieved 2024 01 26 a b Zyla P A et al 2020 Particle listings K0L PDF Lee T D Yang C N 1 October 1956 Question of Parity Conservation in Weak Interactions Physical Review 104 1 254 Bibcode 1956PhRv 104 254L doi 10 1103 PhysRev 104 254 One way out of the difficulty is to assume that parity is not strictly conserved so that 8 and t are two different decay modes of the same particle which necessarily has a single mass value and a single lifetime Bigi I I Sanda A I 2016 10 06 CP Violation Cambridge Monographs on Particle Physics Nuclear Physics and Cosmology Vol 28 5th ed Cambridge University Press ISBN 978 0 521 44349 4 a b c Degrange Bernard Fontaine Gerard Fleury Patrick 2013 Tracking Louis Leprince Ringuet s contributions to cosmic ray physics Physics Today 66 6 8 Bibcode 2013PhT 66f 8D doi 10 1063 PT 3 1989 ISSN 0031 9228 a b c Ravel Olivier 2012 Early cosmic ray research in France In Ormes Jonathan F ed Centenary Symposium 2012 Discovery of cosmic rays AIP Conference Proceedings Vol 1516 Denver Colorado American Institute of Physics pp 67 71 Bibcode 2013AIPC 1516 67R doi 10 1063 1 4792542 ISBN 978 0 7354 1137 1 a b Brown R Camerini U Fowler P H Muirhead H Powell C F Ritson D M 1949 Part 2 Observations with electron sensitive plates exposed to cosmic radiation Nature 163 4133 82 87 Bibcode 1949Natur 163 82B doi 10 1038 163082a0 S2CID 12974912 note same issue Brown et al 1949 Part 1 Nature 163 4133 47 51 doi 10 1038 163047a0 S2CID 4097342 Griffiths D J 1987 Introduction to Elementary Particle John Wiley amp Sons ISBN 0 471 60386 4 Aoki S Aoki Y Becirevic D Blum T Colangelo G Collins S et al 2020 FLAG Review 2019 The European Physical Journal C 80 2 113 arXiv 1902 08191 Bibcode 2020EPJC 80 113A doi 10 1140 epjc s10052 019 7354 7 S2CID 119401756 Pais A Piccioni O 1 December 1955 Note on the Decay and Absorption of the 8 Physical Review 100 5 1487 1489 doi 10 1103 PhysRev 100 1487 Good R H Matsen R P Muller F Piccioni O Powell W M White H S Fowler W B Birge R W 15 November 1961 Regeneration of Neutral K Mesons and Their Mass Difference Physical Review 124 4 1223 1239 Bibcode 1961PhRv 124 1223G doi 10 1103 PhysRev 124 1223 Christenson J H Cronin J W Fitch V L Turlay R 27 July 1964 Evidence for the 2p Decay of the K20 Meson Physical Review Letters 13 4 138 140 Bibcode 1964PhRvL 13 138C doi 10 1103 physrevlett 13 138 ANZIVINO GIUSEPPINA 2001 Measurement of Direct Cp Violation by Na48 Multiparticle Dynamics pp 7 14 arXiv hep ph 0111393 doi 10 1142 9789812778048 0002 ISBN 978 981 02 4844 4 S2CID 15184466 Bibliography editAmsler C Doser M Antonelli M Asner D Babu K Baer H et al Particle Data Group 2008 Review of Particle Physics PDF Physics Letters B 667 1 1 1340 Bibcode 2008PhLB 667 1A doi 10 1016 j physletb 2008 07 018 hdl 1854 LU 685594 S2CID 227119789 Archived from the original PDF on 2020 09 07 Retrieved 2019 12 13 Eidelman S Hayes K G Olive K A Aguilar Benitez M Amsler C Asner D et al Particle Data Group 2004 Review of Particle Physics Physics Letters B 592 1 1 arXiv astro ph 0406663 Bibcode 2004PhLB 592 1P doi 10 1016 j physletb 2004 06 001 The quark model by J J J Kokkedee full citation needed Sozzi M S 2008 Discrete symmetries and CP violation Oxford University Press ISBN 978 0 19 929666 8 Bigi I I Sanda A I 2000 CP violation Cambridge University Press ISBN 0 521 44349 0 Griffiths D J 1987 Introduction to Elementary Particle John Wiley amp Sons ISBN 0 471 60386 4 External links edit nbsp Look up kaon in Wiktionary the free dictionary The neutral K meson The Feynman Lectures on Physics nbsp Media related to Kaon at Wikimedia Commons Retrieved from https en wikipedia org w index php title Kaon amp oldid 1216665900, wikipedia, wiki, book, books, library,

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