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Wikipedia

Lens

A lens is a transmissive optical device that focuses or disperses a light beam by means of refraction. A simple lens consists of a single piece of transparent material, while a compound lens consists of several simple lenses (elements), usually arranged along a common axis. Lenses are made from materials such as glass or plastic and are ground, polished, or molded to the required shape. A lens can focus light to form an image, unlike a prism, which refracts light without focusing. Devices that similarly focus or disperse waves and radiation other than visible light are also called "lenses", such as microwave lenses, electron lenses, acoustic lenses, or explosive lenses.

A biconvex lens
Lenses can be used to focus light

Lenses are used in various imaging devices like telescopes, binoculars, and cameras. They are also used as visual aids in glasses to correct defects of vision such as myopia and hypermetropia.

History

 
Light being refracted by a spherical glass container full of water. Roger Bacon, 13th century
 
Lens for LSST, a planned sky surveying telescope

The word lens comes from lēns, the Latin name of the lentil (a seed of a lentil plant), because a double-convex lens is lentil-shaped. The lentil also gives its name to a geometric figure.[a]

Some scholars argue that the archeological evidence indicates that there was widespread use of lenses in antiquity, spanning several millennia.[1] The so-called Nimrud lens is a rock crystal artifact dated to the 7th century BCE which may or may not have been used as a magnifying glass, or a burning glass.[2][3][4] Others have suggested that certain Egyptian hieroglyphs depict "simple glass meniscal lenses".[5][verification needed]

The oldest certain reference to the use of lenses is from Aristophanes' play The Clouds (424 BCE) mentioning a burning-glass.[6]Pliny the Elder (1st century) confirms that burning-glasses were known in the Roman period.[7] Pliny also has the earliest known reference to the use of a corrective lens when he mentions that Nero was said to watch the gladiatorial games using an emerald (presumably concave to correct for nearsightedness, though the reference is vague).[8] Both Pliny and Seneca the Younger (3 BC–65 AD) described the magnifying effect of a glass globe filled with water.

Ptolemy (2nd century) wrote a book on Optics, which however survives only in the Latin translation of an incomplete and very poor Arabic translation. The book was, however, received by medieval scholars in the Islamic world, and commented upon by Ibn Sahl (10th century), who was in turn improved upon by Alhazen (Book of Optics, 11th century). The Arabic translation of Ptolemy's Optics became available in Latin translation in the 12th century (Eugenius of Palermo 1154). Between the 11th and 13th century "reading stones" were invented. These were primitive plano-convex lenses initially made by cutting a glass sphere in half. The medieval (11th or 12th century) rock crystal Visby lenses may or may not have been intended for use as burning glasses.[9]

Spectacles were invented as an improvement of the "reading stones" of the high medieval period in Northern Italy in the second half of the 13th century.[10] This was the start of the optical industry of grinding and polishing lenses for spectacles, first in Venice and Florence in the late 13th century,[11] and later in the spectacle-making centres in both the Netherlands and Germany.[12] Spectacle makers created improved types of lenses for the correction of vision based more on empirical knowledge gained from observing the effects of the lenses (probably without the knowledge of the rudimentary optical theory of the day).[13][14] The practical development and experimentation with lenses led to the invention of the compound optical microscope around 1595, and the refracting telescope in 1608, both of which appeared in the spectacle-making centres in the Netherlands.[15][16]

With the invention of the telescope and microscope there was a great deal of experimentation with lens shapes in the 17th and early 18th centuries by those trying to correct chromatic errors seen in lenses. Opticians tried to construct lenses of varying forms of curvature, wrongly assuming errors arose from defects in the spherical figure of their surfaces.[17] Optical theory on refraction and experimentation was showing no single-element lens could bring all colours to a focus. This led to the invention of the compound achromatic lens by Chester Moore Hall in England in 1733, an invention also claimed by fellow Englishman John Dollond in a 1758 patent.

Construction of simple lenses

Most lenses are spherical lenses: their two surfaces are parts of the surfaces of spheres. Each surface can be convex (bulging outwards from the lens), concave (depressed into the lens), or planar (flat). The line joining the centres of the spheres making up the lens surfaces is called the axis of the lens. Typically the lens axis passes through the physical centre of the lens, because of the way they are manufactured. Lenses may be cut or ground after manufacturing to give them a different shape or size. The lens axis may then not pass through the physical centre of the lens.

Toric or sphero-cylindrical lenses have surfaces with two different radii of curvature in two orthogonal planes. They have a different focal power in different meridians. This forms an astigmatic lens. An example is eyeglass lenses that are used to correct astigmatism in someone's eye.

Types of simple lenses

 

Lenses are classified by the curvature of the two optical surfaces. A lens is biconvex (or double convex, or just convex) if both surfaces are convex. If both surfaces have the same radius of curvature, the lens is equiconvex. A lens with two concave surfaces is biconcave (or just concave). If one of the surfaces is flat, the lens is plano-convex or plano-concave depending on the curvature of the other surface. A lens with one convex and one concave side is convex-concave or meniscus. It is this type of lens that is most commonly used in corrective lenses.

If the lens is biconvex or plano-convex, a collimated beam of light passing through the lens converges to a spot (a focus) behind the lens. In this case, the lens is called a positive or converging lens. For a thin lens in air, the distance from the lens to the spot is the focal length of the lens, which is commonly represented by f in diagrams and equations. An extended hemispherical lens is a special type of plano-convex lens, in which the lens's curved surface is a full hemisphere and the lens is much thicker than the radius of curvature.

 
 

If the lens is biconcave or plano-concave, a collimated beam of light passing through the lens is diverged (spread); the lens is thus called a negative or diverging lens. The beam, after passing through the lens, appears to emanate from a particular point on the axis in front of the lens. For a thin lens in air, the distance from this point to the lens is the focal length, though it is negative with respect to the focal length of a converging lens.

 
 
 
Meniscus lenses: negative (top) and positive (bottom)

Convex-concave (meniscus) lenses can be either positive or negative, depending on the relative curvatures of the two surfaces. A negative meniscus lens has a steeper concave surface (with a shorter radius than the convex surface) and is thinner at the centre than at the periphery. Conversely, a positive meniscus lens has a steeper convex surface (with a shorter radius than the concave surface) and is thicker at the centre than at the periphery.

An ideal thin lens with two surfaces of equal curvature would have zero optical power, meaning that it would neither converge nor diverge light. All real lenses have nonzero thickness, however, which makes a real lens with identical curved surfaces slightly positive. To obtain exactly zero optical power, a meniscus lens must have slightly unequal curvatures to account for the effect of the lens' thickness.

Lensmaker's equation

 
The position of the focus of a spherical lens depends on the radii of curvature of the two facets.

The focal length of a lens in air can be calculated from the lensmaker's equation:[18]

 

where

  is the focal length of the lens,
  is the refractive index of the lens material,
  is the radius of curvature (with sign, see below) of the lens surface closer to the light source,
  is the radius of curvature of the lens surface farther from the light source, and
  is the thickness of the lens (the distance along the lens axis between the two surface vertices).

The focal length f is positive for converging lenses, and negative for diverging lenses. The reciprocal of the focal length, 1/f, is the optical power of the lens. If the focal length is in metres, this gives the optical power in dioptres (inverse metres).

Lenses have the same focal length when light travels from the back to the front as when light goes from the front to the back. Other properties of the lens, such as the aberrations are not the same in both directions.

Sign convention for radii of curvature R1 and R2

The signs of the lens' radii of curvature indicate whether the corresponding surfaces are convex or concave. The sign convention used to represent this varies, but in this article a positive R indicates a surface's center of curvature is further along in the direction of the ray travel (right, in the accompanying diagrams), while negative R means that rays reaching the surface have already passed the center of curvature. Consequently, for external lens surfaces as diagrammed above, R1 > 0 and R2 < 0 indicate convex surfaces (used to converge light in a positive lens), while R1 < 0 and R2 > 0 indicate concave surfaces. The reciprocal of the radius of curvature is called the curvature. A flat surface has zero curvature, and its radius of curvature is infinite.

Thin lens approximation

If d is small compared to R1 and R2, then the thin lens approximation can be made. For a lens in air, f is then given by

 [19]

Imaging properties

As mentioned above, a positive or converging lens in air focuses a collimated beam travelling along the lens axis to a spot (known as the focal point) at a distance f from the lens. Conversely, a point source of light placed at the focal point is converted into a collimated beam by the lens. These two cases are examples of image formation in lenses. In the former case, an object at an infinite distance (as represented by a collimated beam of waves) is focused to an image at the focal point of the lens. In the latter, an object at the focal length distance from the lens is imaged at infinity. The plane perpendicular to the lens axis situated at a distance f from the lens is called the focal plane.

If the distances from the object to the lens and from the lens to the image are S1 and S2 respectively, for a lens of negligible thickness (thin lens), in air, the distances are related by the thin lens formula:[20][21][22]

 

This can also be put into the "Newtonian" form:

 [23]

where   and  .

 
A camera lens forms a real image of a distant object.

Therefore, if an object is placed at a distance S1 > f from a positive lens of focal length f, we will find an image distance S2 according to this formula. If a screen is placed at a distance S2 on the opposite side of the lens, an image is formed on it. This sort of image, which can be projected onto a screen or image sensor, is known as a real image. This is the principle of the camera, and also of the human eye, in which the retina serves as the image sensor.

The focusing adjustment of a camera adjusts S2, as using an image distance different from that required by this formula produces a defocused (fuzzy) image for an object at a distance of S1 from the camera. Put another way, modifying S2 causes objects at a different S1 to come into perfect focus.

 
Virtual image formation using a positive lens as a magnifying glass.[24]

In some cases S2 is negative, indicating that the image is formed on the opposite side of the lens from where those rays are being considered. Since the diverging light rays emanating from the lens never come into focus, and those rays are not physically present at the point where they appear to form an image, this is called a virtual image. Unlike real images, a virtual image cannot be projected on a screen, but appears to an observer looking through the lens as if it were a real object at the location of that virtual image. Likewise, it appears to a subsequent lens as if it were an object at that location, so that second lens could again focus that light into a real image, S1 then being measured from the virtual image location behind the first lens to the second lens. This is exactly what the eye does when looking through a magnifying glass. The magnifying glass creates a (magnified) virtual image behind the magnifying glass, but those rays are then re-imaged by the lens of the eye to create a real image on the retina.

 
A negative lens produces a demagnified virtual image.
 
A Barlow lens (B) reimages a virtual object (focus of red ray path) into a magnified real image (green rays at focus)

Using a positive lens of focal length f, a virtual image results when S1 < f, the lens thus being used as a magnifying glass (rather than if S1 >> f as for a camera). Using a negative lens (f < 0) with a real object (S1 > 0) can only produce a virtual image (S2 < 0), according to the above formula. It is also possible for the object distance S1 to be negative, in which case the lens sees a so-called virtual object. This happens when the lens is inserted into a converging beam (being focused by a previous lens) before the location of its real image. In that case even a negative lens can project a real image, as is done by a Barlow lens.

 
Real image of a lamp is projected onto a screen (inverted). Reflections of the lamp from both surfaces of the biconvex lens are visible.
 
A convex lens (fS1) forming a real, inverted image (as the image formed by the objective lens of a telescope or binoculars) rather than the upright, virtual image as seen in a magnifying glass(f > S1) . This real image may also be viewed when put on a screen.

For a thin lens, the distances S1 and S2 are measured from the object and image to the position of the lens, as described above. When the thickness of the lens is not much smaller than S1 and S2 or there are multiple lens elements (a compound lens), one must instead measure from the object and image to the principal planes of the lens. If distances S1 or S2 pass through a medium other than air or vacuum a more complicated analysis is required.

Magnification

The linear magnification of an imaging system using a single lens is given by

 

where M is the magnification factor defined as the ratio of the size of an image compared to the size of the object. The sign convention here dictates that if M is negative, as it is for real images, the image is upside-down with respect to the object. For virtual images M is positive, so the image is upright.

This magnification formula provides two easy ways to distinguish converging (f > 0) and diverging (f < 0) lenses: For an object very close to the lens (0 < S1 < |f|), a converging lens would form a magnified (bigger) virtual image, whereas a diverging lens would form a demagnified (smaller) image; For an object very far from the lens (S1 > |f| > 0), a converging lens would form an inverted image, whereas a diverging lens would form an upright image.

Linear magnification M is not always the most useful measure of magnifying power. For instance, when characterizing a visual telescope or binoculars that produce only a virtual image, one would be more concerned with the angular magnification—which expresses how much larger a distant object appears through the telescope compared to the naked eye. In the case of a camera one would quote the plate scale, which compares the apparent (angular) size of a distant object to the size of the real image produced at the focus. The plate scale is the reciprocal of the focal length of the camera lens; lenses are categorized as long-focus lenses or wide-angle lenses according to their focal lengths.

Using an inappropriate measurement of magnification can be formally correct but yield a meaningless number. For instance, using a magnifying glass of 5 cm focal length, held 20 cm from the eye and 5 cm from the object, produces a virtual image at infinity of infinite linear size: M = ∞. But the angular magnification is 5, meaning that the object appears 5 times larger to the eye than without the lens. When taking a picture of the moon using a camera with a 50 mm lens, one is not concerned with the linear magnification M−50 mm / 380000 km = −1.3×10−10. Rather, the plate scale of the camera is about 1°/mm, from which one can conclude that the 0.5 mm image on the film corresponds to an angular size of the moon seen from earth of about 0.5°.

In the extreme case where an object is an infinite distance away, S1 = ∞, S2 = f and M = −f/∞= 0, indicating that the object would be imaged to a single point in the focal plane. In fact, the diameter of the projected spot is not actually zero, since diffraction places a lower limit on the size of the point spread function. This is called the diffraction limit.

 
Images of black letters in a thin convex lens of focal length f are shown in red. Selected rays are shown for letters E, I and K in blue, green and orange, respectively. E (at 2f) has an equal-size, real and inverted image; I (at f) has its image at infinity; and K (at f/2) has a double-size, virtual and upright image.

Aberrations

Optical aberration
  Defocus

  Tilt
  Spherical aberration
  Astigmatism
  Coma
  Distortion
  Petzval field curvature
  Chromatic aberration

Lenses do not form perfect images, and a lens always introduces some degree of distortion or aberration that makes the image an imperfect replica of the object. Careful design of the lens system for a particular application minimizes the aberration. Several types of aberration affect image quality, including spherical aberration, coma, and chromatic aberration.

Spherical aberration

Spherical aberration occurs because spherical surfaces are not the ideal shape for a lens, but are by far the simplest shape to which glass can be ground and polished, and so are often used. Spherical aberration causes beams parallel to, but distant from, the lens axis to be focused in a slightly different place than beams close to the axis. This manifests itself as a blurring of the image. Spherical aberration can be minimised with normal lens shapes by carefully choosing the surface curvatures for a particular application. For instance, a plano-convex lens, which is used to focus a collimated beam, produces a sharper focal spot when used with the convex side towards the beam source.

 

Coma

Coma, or comatic aberration, derives its name from the comet-like appearance of the aberrated image. Coma occurs when an object off the optical axis of the lens is imaged, where rays pass through the lens at an angle to the axis θ. Rays that pass through the centre of a lens of focal length f are focused at a point with distance f tan θ from the axis. Rays passing through the outer margins of the lens are focused at different points, either further from the axis (positive coma) or closer to the axis (negative coma). In general, a bundle of parallel rays passing through the lens at a fixed distance from the centre of the lens are focused to a ring-shaped image in the focal plane, known as a comatic circle. The sum of all these circles results in a V-shaped or comet-like flare. As with spherical aberration, coma can be minimised (and in some cases eliminated) by choosing the curvature of the two lens surfaces to match the application. Lenses in which both spherical aberration and coma are minimised are called bestform lenses.

 

Chromatic aberration

Chromatic aberration is caused by the dispersion of the lens material—the variation of its refractive index, n, with the wavelength of light. Since, from the formulae above, f is dependent upon n, it follows that light of different wavelengths is focused to different positions. Chromatic aberration of a lens is seen as fringes of colour around the image. It can be minimised by using an achromatic doublet (or achromat) in which two materials with differing dispersion are bonded together to form a single lens. This reduces the amount of chromatic aberration over a certain range of wavelengths, though it does not produce perfect correction. The use of achromats was an important step in the development of the optical microscope. An apochromat is a lens or lens system with even better chromatic aberration correction, combined with improved spherical aberration correction. Apochromats are much more expensive than achromats.

Different lens materials may also be used to minimise chromatic aberration, such as specialised coatings or lenses made from the crystal fluorite. This naturally occurring substance has the highest known Abbe number, indicating that the material has low dispersion.

   

Other types of aberration

Other kinds of aberration include field curvature, barrel and pincushion distortion, and astigmatism.

Aperture diffraction

Even if a lens is designed to minimize or eliminate the aberrations described above, the image quality is still limited by the diffraction of light passing through the lens' finite aperture. A diffraction-limited lens is one in which aberrations have been reduced to the point where the image quality is primarily limited by diffraction under the design conditions.

Compound lenses

Simple lenses are subject to the optical aberrations discussed above. In many cases these aberrations can be compensated for to a great extent by using a combination of simple lenses with complementary aberrations. A compound lens is a collection of simple lenses of different shapes and made of materials of different refractive indices, arranged one after the other with a common axis.

The simplest case is where lenses are placed in contact: if the lenses of focal lengths f1 and f2 are "thin", the combined focal length f of the lenses is given by

 

Since 1/f is the power of a lens, it can be seen that the powers of thin lenses in contact are additive.

If two thin lenses are separated in air by some distance d, the focal length for the combined system is given by

 

The distance from the front focal point of the combined lenses to the first lens is called the front focal length (FFL):

 [25]

Similarly, the distance from the second lens to the rear focal point of the combined system is the back focal length (BFL):

 

As d tends to zero, the focal lengths tend to the value of f given for thin lenses in contact.

If the separation distance is equal to the sum of the focal lengths (d = f1 + f2), the FFL and BFL are infinite. This corresponds to a pair of lenses that transform a parallel (collimated) beam into another collimated beam. This type of system is called an afocal system, since it produces no net convergence or divergence of the beam. Two lenses at this separation form the simplest type of optical telescope. Although the system does not alter the divergence of a collimated beam, it does alter the width of the beam. The magnification of such a telescope is given by

 

which is the ratio of the output beam width to the input beam width. Note the sign convention: a telescope with two convex lenses (f1 > 0, f2 > 0) produces a negative magnification, indicating an inverted image. A convex plus a concave lens (f1 > 0 > f2) produces a positive magnification and the image is upright. For further information on simple optical telescopes, see Refracting telescope § Refracting telescope designs.

Non spherical types

 
An aspheric biconvex lens.

Cylindrical lenses have curvature along only one axis. They are used to focus light into a line, or to convert the elliptical light from a laser diode into a round beam. They are also used in motion picture anamorphic lenses.

Aspheric lenses have at least one surface that is neither spherical nor cylindrical. The more complicated shapes allow such lenses to form images with less aberration than standard simple lenses, but they are more difficult and expensive to produce. These were formerly complex to make and often extremely expensive, but advances in technology have greatly reduced the manufacturing cost for such lenses.

 
Close-up view of a flat Fresnel lens.

A Fresnel lens has its optical surface broken up into narrow rings, allowing the lens to be much thinner and lighter than conventional lenses. Durable Fresnel lenses can be molded from plastic and are inexpensive.

Lenticular lenses are arrays of microlenses that are used in lenticular printing to make images that have an illusion of depth or that change when viewed from different angles.

Bifocal lens has two or more, or a graduated, focal lengths ground into the lens.

A gradient index lens has flat optical surfaces, but has a radial or axial variation in index of refraction that causes light passing through the lens to be focused.

An axicon has a conical optical surface. It images a point source into a line along the optic axis, or transforms a laser beam into a ring.[26]

Diffractive optical elements can function as lenses.

Superlenses are made from negative index metamaterials and claim to produce images at spatial resolutions exceeding the diffraction limit.[27] The first superlenses were made in 2004 using such a metamaterial for microwaves.[27] Improved versions have been made by other researchers.[28][29] As of 2014 the superlens has not yet been demonstrated at visible or near-infrared wavelengths.[30]

A prototype flat ultrathin lens, with no curvature has been developed.[31]

Uses

 
A watch with a plano-convex lens over the date indicator

A single convex lens mounted in a frame with a handle or stand is a magnifying glass.

Lenses are used as prosthetics for the correction of refractive errors such as myopia, hypermetropia, presbyopia, and astigmatism. (See corrective lens, contact lens, eyeglasses, intraocular lens.) Most lenses used for other purposes have strict axial symmetry; eyeglass lenses are only approximately symmetric. They are usually shaped to fit in a roughly oval, not circular, frame; the optical centres are placed over the eyeballs; their curvature may not be axially symmetric to correct for astigmatism. Sunglasses' lenses are designed to attenuate light; sunglass lenses that also correct visual impairments can be custom made.

Other uses are in imaging systems such as monoculars, binoculars, telescopes, microscopes, cameras and projectors. Some of these instruments produce a virtual image when applied to the human eye; others produce a real image that can be captured on photographic film or an optical sensor, or can be viewed on a screen. In these devices lenses are sometimes paired up with curved mirrors to make a catadioptric system where the lens's spherical aberration corrects the opposite aberration in the mirror (such as Schmidt and meniscus correctors).

Convex lenses produce an image of an object at infinity at their focus; if the sun is imaged, much of the visible and infrared light incident on the lens is concentrated into the small image. A large lens creates enough intensity to burn a flammable object at the focal point. Since ignition can be achieved even with a poorly made lens, lenses have been used as burning-glasses for at least 2400 years.[6] A modern application is the use of relatively large lenses to concentrate solar energy on relatively small photovoltaic cells, harvesting more energy without the need to use larger and more expensive cells.

Radio astronomy and radar systems often use dielectric lenses, commonly called a lens antenna to refract electromagnetic radiation into a collector antenna.

Lenses can become scratched and abraded. Abrasion-resistant coatings are available to help control this.[32]

See also

Notes

  1. ^ The variant spelling lense is sometimes seen. While it is listed as an alternative spelling in some dictionaries, most mainstream dictionaries do not list it as acceptable.
    • Brians, Paul (2003). Common Errors in English. Franklin, Beedle & Associates. p. 125. ISBN 978-1-887902-89-2. Retrieved 28 June 2009. Reports "lense" as listed in some dictionaries, but not generally considered acceptable.
    • Merriam-Webster's Medical Dictionary. Merriam-Webster. 1995. p. 368. ISBN 978-0-87779-914-6. Lists "lense" as an acceptable alternate spelling.
    • "Lens or Lense – Which is Correct?". writingexplained.org. 30 April 2017. Analyses the almost negligible frequency of use and concludes that the misspelling is a result of a wrong singularisation of the plural (lenses).

References

  1. ^ Sines, George; Sakellarakis, Yannis A. (1987). "Lenses in antiquity". American Journal of Archaeology. 91 (2): 191–196. doi:10.2307/505216. JSTOR 505216. S2CID 191384703.
  2. ^ Whitehouse, David (1 July 1999). "World's oldest telescope?". BBC News. Retrieved 10 May 2008.
  3. ^ "The Nimrud lens/The Layard lens". Collection database. The British Museum. Retrieved 25 November 2012.
  4. ^ D. Brewster (1852). "On an account of a rock-crystal lens and decomposed glass found in Niniveh". Die Fortschritte der Physik (in German). Deutsche Physikalische Gesellschaft. p. 355.
  5. ^ Kriss, Timothy C.; Kriss, Vesna Martich (April 1998). "History of the Operating Microscope: From Magnifying Glass to Microneurosurgery". Neurosurgery. 42 (4): 899–907. doi:10.1097/00006123-199804000-00116. PMID 9574655.
  6. ^ a b Aristophanes (22 January 2013) [First performed in 423 BC]. The Clouds. Translated by Hickie, William James. Project Gutenberg. EBook #2562.[1]
  7. ^ Pliny the Elder, The Natural History (trans. John Bostock) Book XXXVII, Chap. 10.
  8. ^ Pliny the Elder, The Natural History (trans. John Bostock) Book XXXVII, Chap. 16
  9. ^ Tilton, Buck (2005). The Complete Book of Fire: Building Campfires for Warmth, Light, Cooking, and Survival. Menasha Ridge Press. p. 25. ISBN 978-0-89732-633-9.
  10. ^ Glick, Thomas F.; Steven John Livesey; Faith Wallis (2005). Medieval science, technology, and medicine: an encyclopedia. Routledge. p. 167. ISBN 978-0-415-96930-7. Retrieved 24 April 2011.
  11. ^ Al Van Helden. The Galileo Project > Science > The Telescope. Galileo.rice.edu. Retrieved on 6 June 2012.
  12. ^ Henry C. King (28 September 2003). The History of the Telescope. Courier Dover Publications. p. 27. ISBN 978-0-486-43265-6. Retrieved 6 June 2012.
  13. ^ Paul S. Agutter; Denys N. Wheatley (12 December 2008). Thinking about Life: The History and Philosophy of Biology and Other Sciences. Springer. p. 17. ISBN 978-1-4020-8865-0. Retrieved 6 June 2012.
  14. ^ Vincent Ilardi (2007). Renaissance Vision from Spectacles to Telescopes. American Philosophical Society. p. 210. ISBN 978-0-87169-259-7. Retrieved 6 June 2012.
  15. ^ Microscopes: Time Line, Nobel Foundation. Retrieved 3 April 2009
  16. ^ Fred Watson (1 October 2007). Stargazer: The Life and Times of the Telescope. Allen & Unwin. p. 55. ISBN 978-1-74175-383-7. Retrieved 6 June 2012.
  17. ^ This paragraph is adapted from the 1888 edition of the Encyclopædia Britannica.
  18. ^ Greivenkamp 2004, p. 14
    Hecht 1987, § 6.1
  19. ^ Hecht 1987, § 5.2.3.
  20. ^ Nave, Carl R. "Thin Lens Equation". Hyperphysics. Georgia State University. Retrieved 17 March 2015.
  21. ^ Colwell, Catharine H. "Resource Lesson: Thin Lens Equation". PhysicsLab.org. Retrieved 17 March 2015.
  22. ^ "The Mathematics of Lenses". The Physics Classroom. Retrieved 17 March 2015.
  23. ^ Hecht 2002, p. 120.
  24. ^ There are always 3 "easy rays". For the third ray in this case, see File:Lens3b third ray.svg.
  25. ^ Hecht 2002, p. 168.
  26. ^ Proteep Mallik (2005). (PDF). Archived from the original (PDF) on 23 November 2009. Retrieved 22 November 2007.
  27. ^ a b Grbic, A.; Eleftheriades, G. V. (2004). "Overcoming the Diffraction Limit with a Planar Left-handed Transmission-line Lens". Physical Review Letters. 92 (11): 117403. Bibcode:2004PhRvL..92k7403G. doi:10.1103/PhysRevLett.92.117403. PMID 15089166.
  28. ^ Valentine, J.; et al. (2008). "Three-dimensional optical metamaterial with a negative refractive index". Nature. 455 (7211): 376–9. Bibcode:2008Natur.455..376V. doi:10.1038/nature07247. PMID 18690249. S2CID 4314138.
  29. ^ Yao, Jie; Liu, Zhaowei; Liu, Yongmin; Wang, Yuan; Sun, Cheng; Bartal, Guy; Stacy, Angelica M.; Zhang, Xiang (15 August 2008). "Optical Negative Refraction in Bulk Metamaterials of Nanowires". Science. 321 (5891): 930. Bibcode:2008Sci...321..930Y. CiteSeerX 10.1.1.716.4426. doi:10.1126/science.1157566. ISSN 0036-8075. PMID 18703734. S2CID 20978013.
  30. ^ Nielsen, R.B.; Thoreson, M.D.; Chen, W.; Kristensen, A.; Hvam, J.M.; Shalaev, V. M.; Boltasseva, A. (2010). (PDF). Applied Physics B. 100 (1): 93. Bibcode:2010ApPhB.100...93N. doi:10.1007/s00340-010-4065-z. S2CID 39903291. Archived from the original (PDF) on 9 March 2013.
  31. ^ Patel, Prachi (2015). "Good-Bye to Curved Lens: New Lens Is Flat". Scientific American. 312 (5): 22. doi:10.1038/scientificamerican0515-22b. PMID 26336702. Retrieved 16 May 2015.
  32. ^ Schottner, G (May 2003). "Scratch and Abrasion Resistant Coatings on Plastic Lenses—State of the Art, Current Developments and Perspectives". Journal of Sol-Gel Science and Technology. Vol. 27. pp. 71–79. doi:10.1023/A:1022684011222.

Bibliography

External links

  • A chapter from an online textbook on refraction and lenses
  • Thin Spherical Lenses (.pdf) on Project PHYSNET.
  • Article on Ancient Egyptian lenses
  • FDTD Animation of Electromagnetic Propagation through Convex Lens (on- and off-axis) Video on YouTube
  • The Use of Magnifying Lenses in the Classical World
  • Henker, Otto (1911). "Lens" . Encyclopædia Britannica. Vol. 16 (11th ed.). pp. 421–427. (with 21 diagrams)

Simulations

  • Learning by Simulations – Concave and Convex Lenses
  • OpticalRayTracer – Open source lens simulator (downloadable java)
  • Video with a simulation of light while it passes a convex lens Video on YouTube
  • Animations demonstrating lens by QED

lens, other, uses, disambiguation, lens, transmissive, optical, device, that, focuses, disperses, light, beam, means, refraction, simple, lens, consists, single, piece, transparent, material, while, compound, lens, consists, several, simple, lenses, elements, . For other uses see Lens disambiguation A lens is a transmissive optical device that focuses or disperses a light beam by means of refraction A simple lens consists of a single piece of transparent material while a compound lens consists of several simple lenses elements usually arranged along a common axis Lenses are made from materials such as glass or plastic and are ground polished or molded to the required shape A lens can focus light to form an image unlike a prism which refracts light without focusing Devices that similarly focus or disperse waves and radiation other than visible light are also called lenses such as microwave lenses electron lenses acoustic lenses or explosive lenses A biconvex lens Lenses can be used to focus light Lenses are used in various imaging devices like telescopes binoculars and cameras They are also used as visual aids in glasses to correct defects of vision such as myopia and hypermetropia Contents 1 History 2 Construction of simple lenses 2 1 Types of simple lenses 2 2 Lensmaker s equation 2 2 1 Sign convention for radii of curvature R1 and R2 2 2 2 Thin lens approximation 3 Imaging properties 3 1 Magnification 4 Aberrations 4 1 Spherical aberration 4 2 Coma 4 3 Chromatic aberration 4 4 Other types of aberration 4 5 Aperture diffraction 5 Compound lenses 6 Non spherical types 7 Uses 8 See also 9 Notes 10 References 11 Bibliography 12 External links 12 1 SimulationsHistory EditSee also History of optics and Camera lens This section needs expansion with history after 1758 You can help by adding to it January 2012 Light being refracted by a spherical glass container full of water Roger Bacon 13th century Lens for LSST a planned sky surveying telescope The word lens comes from lens the Latin name of the lentil a seed of a lentil plant because a double convex lens is lentil shaped The lentil also gives its name to a geometric figure a Some scholars argue that the archeological evidence indicates that there was widespread use of lenses in antiquity spanning several millennia 1 The so called Nimrud lens is a rock crystal artifact dated to the 7th century BCE which may or may not have been used as a magnifying glass or a burning glass 2 3 4 Others have suggested that certain Egyptian hieroglyphs depict simple glass meniscal lenses 5 verification needed The oldest certain reference to the use of lenses is from Aristophanes play The Clouds 424 BCE mentioning a burning glass 6 Pliny the Elder 1st century confirms that burning glasses were known in the Roman period 7 Pliny also has the earliest known reference to the use of a corrective lens when he mentions that Nero was said to watch the gladiatorial games using an emerald presumably concave to correct for nearsightedness though the reference is vague 8 Both Pliny and Seneca the Younger 3 BC 65 AD described the magnifying effect of a glass globe filled with water Ptolemy 2nd century wrote a book on Optics which however survives only in the Latin translation of an incomplete and very poor Arabic translation The book was however received by medieval scholars in the Islamic world and commented upon by Ibn Sahl 10th century who was in turn improved upon by Alhazen Book of Optics 11th century The Arabic translation of Ptolemy s Optics became available in Latin translation in the 12th century Eugenius of Palermo 1154 Between the 11th and 13th century reading stones were invented These were primitive plano convex lenses initially made by cutting a glass sphere in half The medieval 11th or 12th century rock crystal Visby lenses may or may not have been intended for use as burning glasses 9 Spectacles were invented as an improvement of the reading stones of the high medieval period in Northern Italy in the second half of the 13th century 10 This was the start of the optical industry of grinding and polishing lenses for spectacles first in Venice and Florence in the late 13th century 11 and later in the spectacle making centres in both the Netherlands and Germany 12 Spectacle makers created improved types of lenses for the correction of vision based more on empirical knowledge gained from observing the effects of the lenses probably without the knowledge of the rudimentary optical theory of the day 13 14 The practical development and experimentation with lenses led to the invention of the compound optical microscope around 1595 and the refracting telescope in 1608 both of which appeared in the spectacle making centres in the Netherlands 15 16 Further information History of the telescope With the invention of the telescope and microscope there was a great deal of experimentation with lens shapes in the 17th and early 18th centuries by those trying to correct chromatic errors seen in lenses Opticians tried to construct lenses of varying forms of curvature wrongly assuming errors arose from defects in the spherical figure of their surfaces 17 Optical theory on refraction and experimentation was showing no single element lens could bring all colours to a focus This led to the invention of the compound achromatic lens by Chester Moore Hall in England in 1733 an invention also claimed by fellow Englishman John Dollond in a 1758 patent Construction of simple lenses EditMost lenses are spherical lenses their two surfaces are parts of the surfaces of spheres Each surface can be convex bulging outwards from the lens concave depressed into the lens or planar flat The line joining the centres of the spheres making up the lens surfaces is called the axis of the lens Typically the lens axis passes through the physical centre of the lens because of the way they are manufactured Lenses may be cut or ground after manufacturing to give them a different shape or size The lens axis may then not pass through the physical centre of the lens Toric or sphero cylindrical lenses have surfaces with two different radii of curvature in two orthogonal planes They have a different focal power in different meridians This forms an astigmatic lens An example is eyeglass lenses that are used to correct astigmatism in someone s eye Types of simple lenses Edit Lenses are classified by the curvature of the two optical surfaces A lens is biconvex or double convex or just convex if both surfaces are convex If both surfaces have the same radius of curvature the lens is equiconvex A lens with two concave surfaces is biconcave or just concave If one of the surfaces is flat the lens is plano convex or plano concave depending on the curvature of the other surface A lens with one convex and one concave side is convex concave or meniscus It is this type of lens that is most commonly used in corrective lenses If the lens is biconvex or plano convex a collimated beam of light passing through the lens converges to a spot a focus behind the lens In this case the lens is called a positive or converging lens For a thin lens in air the distance from the lens to the spot is the focal length of the lens which is commonly represented by f in diagrams and equations An extended hemispherical lens is a special type of plano convex lens in which the lens s curved surface is a full hemisphere and the lens is much thicker than the radius of curvature If the lens is biconcave or plano concave a collimated beam of light passing through the lens is diverged spread the lens is thus called a negative or diverging lens The beam after passing through the lens appears to emanate from a particular point on the axis in front of the lens For a thin lens in air the distance from this point to the lens is the focal length though it is negative with respect to the focal length of a converging lens Meniscus lenses negative top and positive bottom Convex concave meniscus lenses can be either positive or negative depending on the relative curvatures of the two surfaces A negative meniscus lens has a steeper concave surface with a shorter radius than the convex surface and is thinner at the centre than at the periphery Conversely a positive meniscus lens has a steeper convex surface with a shorter radius than the concave surface and is thicker at the centre than at the periphery An ideal thin lens with two surfaces of equal curvature would have zero optical power meaning that it would neither converge nor diverge light All real lenses have nonzero thickness however which makes a real lens with identical curved surfaces slightly positive To obtain exactly zero optical power a meniscus lens must have slightly unequal curvatures to account for the effect of the lens thickness Lensmaker s equation Edit The position of the focus of a spherical lens depends on the radii of curvature of the two facets The focal length of a lens in air can be calculated from the lensmaker s equation 18 1 f n 1 1 R 1 1 R 2 n 1 d n R 1 R 2 displaystyle frac 1 f n 1 left frac 1 R 1 frac 1 R 2 frac n 1 d nR 1 R 2 right where f displaystyle f is the focal length of the lens n displaystyle n is the refractive index of the lens material R 1 displaystyle R 1 is the radius of curvature with sign see below of the lens surface closer to the light source R 2 displaystyle R 2 is the radius of curvature of the lens surface farther from the light source and d displaystyle d is the thickness of the lens the distance along the lens axis between the two surface vertices The focal length f is positive for converging lenses and negative for diverging lenses The reciprocal of the focal length 1 f is the optical power of the lens If the focal length is in metres this gives the optical power in dioptres inverse metres Lenses have the same focal length when light travels from the back to the front as when light goes from the front to the back Other properties of the lens such as the aberrations are not the same in both directions Sign convention for radii of curvature R1 and R2 Edit Main article Radius of curvature optics The signs of the lens radii of curvature indicate whether the corresponding surfaces are convex or concave The sign convention used to represent this varies but in this article a positive R indicates a surface s center of curvature is further along in the direction of the ray travel right in the accompanying diagrams while negative R means that rays reaching the surface have already passed the center of curvature Consequently for external lens surfaces as diagrammed above R1 gt 0 and R2 lt 0 indicate convex surfaces used to converge light in a positive lens while R1 lt 0 and R2 gt 0 indicate concave surfaces The reciprocal of the radius of curvature is called the curvature A flat surface has zero curvature and its radius of curvature is infinite Thin lens approximation Edit If d is small compared to R1 and R2 then the thin lens approximation can be made For a lens in air f is then given by 1 f n 1 1 R 1 1 R 2 displaystyle frac 1 f approx left n 1 right left frac 1 R 1 frac 1 R 2 right 19 Imaging properties EditAs mentioned above a positive or converging lens in air focuses a collimated beam travelling along the lens axis to a spot known as the focal point at a distance f from the lens Conversely a point source of light placed at the focal point is converted into a collimated beam by the lens These two cases are examples of image formation in lenses In the former case an object at an infinite distance as represented by a collimated beam of waves is focused to an image at the focal point of the lens In the latter an object at the focal length distance from the lens is imaged at infinity The plane perpendicular to the lens axis situated at a distance f from the lens is called the focal plane If the distances from the object to the lens and from the lens to the image are S1 and S2 respectively for a lens of negligible thickness thin lens in air the distances are related by the thin lens formula 20 21 22 1 S 1 1 S 2 1 f displaystyle frac 1 S 1 frac 1 S 2 frac 1 f This can also be put into the Newtonian form x 1 x 2 f 2 displaystyle x 1 x 2 f 2 23 where x 1 S 1 f displaystyle x 1 S 1 f and x 2 S 2 f displaystyle x 2 S 2 f A camera lens forms a real image of a distant object Therefore if an object is placed at a distance S1 gt f from a positive lens of focal length f we will find an image distance S2 according to this formula If a screen is placed at a distance S2 on the opposite side of the lens an image is formed on it This sort of image which can be projected onto a screen or image sensor is known as a real image This is the principle of the camera and also of the human eye in which the retina serves as the image sensor The focusing adjustment of a camera adjusts S2 as using an image distance different from that required by this formula produces a defocused fuzzy image for an object at a distance of S1 from the camera Put another way modifying S2 causes objects at a different S1 to come into perfect focus Virtual image formation using a positive lens as a magnifying glass 24 In some cases S2 is negative indicating that the image is formed on the opposite side of the lens from where those rays are being considered Since the diverging light rays emanating from the lens never come into focus and those rays are not physically present at the point where they appear to form an image this is called a virtual image Unlike real images a virtual image cannot be projected on a screen but appears to an observer looking through the lens as if it were a real object at the location of that virtual image Likewise it appears to a subsequent lens as if it were an object at that location so that second lens could again focus that light into a real image S1 then being measured from the virtual image location behind the first lens to the second lens This is exactly what the eye does when looking through a magnifying glass The magnifying glass creates a magnified virtual image behind the magnifying glass but those rays are then re imaged by the lens of the eye to create a real image on the retina A negative lens produces a demagnified virtual image A Barlow lens B reimages a virtual object focus of red ray path into a magnified real image green rays at focus Using a positive lens of focal length f a virtual image results when S1 lt f the lens thus being used as a magnifying glass rather than if S1 gt gt f as for a camera Using a negative lens f lt 0 with a real object S1 gt 0 can only produce a virtual image S2 lt 0 according to the above formula It is also possible for the object distance S1 to be negative in which case the lens sees a so called virtual object This happens when the lens is inserted into a converging beam being focused by a previous lens before the location of its real image In that case even a negative lens can project a real image as is done by a Barlow lens Real image of a lamp is projected onto a screen inverted Reflections of the lamp from both surfaces of the biconvex lens are visible A convex lens f S1 forming a real inverted image as the image formed by the objective lens of a telescope or binoculars rather than the upright virtual image as seen in a magnifying glass f gt S1 This real image may also be viewed when put on a screen For a thin lens the distances S1 and S2 are measured from the object and image to the position of the lens as described above When the thickness of the lens is not much smaller than S1 and S2 or there are multiple lens elements a compound lens one must instead measure from the object and image to the principal planes of the lens If distances S1 or S2 pass through a medium other than air or vacuum a more complicated analysis is required Magnification Edit The linear magnification of an imaging system using a single lens is given by M S 2 S 1 f f S 1 displaystyle M frac S 2 S 1 frac f f S 1 where M is the magnification factor defined as the ratio of the size of an image compared to the size of the object The sign convention here dictates that if M is negative as it is for real images the image is upside down with respect to the object For virtual images M is positive so the image is upright This magnification formula provides two easy ways to distinguish converging f gt 0 and diverging f lt 0 lenses For an object very close to the lens 0 lt S1 lt f a converging lens would form a magnified bigger virtual image whereas a diverging lens would form a demagnified smaller image For an object very far from the lens S1 gt f gt 0 a converging lens would form an inverted image whereas a diverging lens would form an upright image Linear magnification M is not always the most useful measure of magnifying power For instance when characterizing a visual telescope or binoculars that produce only a virtual image one would be more concerned with the angular magnification which expresses how much larger a distant object appears through the telescope compared to the naked eye In the case of a camera one would quote the plate scale which compares the apparent angular size of a distant object to the size of the real image produced at the focus The plate scale is the reciprocal of the focal length of the camera lens lenses are categorized as long focus lenses or wide angle lenses according to their focal lengths Using an inappropriate measurement of magnification can be formally correct but yield a meaningless number For instance using a magnifying glass of 5 cm focal length held 20 cm from the eye and 5 cm from the object produces a virtual image at infinity of infinite linear size M But the angular magnification is 5 meaning that the object appears 5 times larger to the eye than without the lens When taking a picture of the moon using a camera with a 50 mm lens one is not concerned with the linear magnification M 50 mm 380000 km 1 3 10 10 Rather the plate scale of the camera is about 1 mm from which one can conclude that the 0 5 mm image on the film corresponds to an angular size of the moon seen from earth of about 0 5 In the extreme case where an object is an infinite distance away S1 S2 f and M f 0 indicating that the object would be imaged to a single point in the focal plane In fact the diameter of the projected spot is not actually zero since diffraction places a lower limit on the size of the point spread function This is called the diffraction limit Images of black letters in a thin convex lens of focal length f are shown in red Selected rays are shown for letters E I and K in blue green and orange respectively E at 2f has an equal size real and inverted image I at f has its image at infinity and K at f 2 has a double size virtual and upright image Aberrations Editvte Optical aberration Defocus Tilt Spherical aberration Astigmatism Coma Distortion Petzval field curvature Chromatic aberrationMain article Optical aberration Lenses do not form perfect images and a lens always introduces some degree of distortion or aberration that makes the image an imperfect replica of the object Careful design of the lens system for a particular application minimizes the aberration Several types of aberration affect image quality including spherical aberration coma and chromatic aberration Spherical aberration Edit Main article Spherical aberration Spherical aberration occurs because spherical surfaces are not the ideal shape for a lens but are by far the simplest shape to which glass can be ground and polished and so are often used Spherical aberration causes beams parallel to but distant from the lens axis to be focused in a slightly different place than beams close to the axis This manifests itself as a blurring of the image Spherical aberration can be minimised with normal lens shapes by carefully choosing the surface curvatures for a particular application For instance a plano convex lens which is used to focus a collimated beam produces a sharper focal spot when used with the convex side towards the beam source Coma Edit Main article Coma optics Coma or comatic aberration derives its name from the comet like appearance of the aberrated image Coma occurs when an object off the optical axis of the lens is imaged where rays pass through the lens at an angle to the axis 8 Rays that pass through the centre of a lens of focal length f are focused at a point with distance f tan 8 from the axis Rays passing through the outer margins of the lens are focused at different points either further from the axis positive coma or closer to the axis negative coma In general a bundle of parallel rays passing through the lens at a fixed distance from the centre of the lens are focused to a ring shaped image in the focal plane known as a comatic circle The sum of all these circles results in a V shaped or comet like flare As with spherical aberration coma can be minimised and in some cases eliminated by choosing the curvature of the two lens surfaces to match the application Lenses in which both spherical aberration and coma are minimised are called bestform lenses Chromatic aberration Edit Main article Chromatic aberration Chromatic aberration is caused by the dispersion of the lens material the variation of its refractive index n with the wavelength of light Since from the formulae above f is dependent upon n it follows that light of different wavelengths is focused to different positions Chromatic aberration of a lens is seen as fringes of colour around the image It can be minimised by using an achromatic doublet or achromat in which two materials with differing dispersion are bonded together to form a single lens This reduces the amount of chromatic aberration over a certain range of wavelengths though it does not produce perfect correction The use of achromats was an important step in the development of the optical microscope An apochromat is a lens or lens system with even better chromatic aberration correction combined with improved spherical aberration correction Apochromats are much more expensive than achromats Different lens materials may also be used to minimise chromatic aberration such as specialised coatings or lenses made from the crystal fluorite This naturally occurring substance has the highest known Abbe number indicating that the material has low dispersion Other types of aberration Edit Other kinds of aberration include field curvature barrel and pincushion distortion and astigmatism Aperture diffraction Edit Even if a lens is designed to minimize or eliminate the aberrations described above the image quality is still limited by the diffraction of light passing through the lens finite aperture A diffraction limited lens is one in which aberrations have been reduced to the point where the image quality is primarily limited by diffraction under the design conditions Compound lenses EditSee also Photographic lens Doublet lens Triplet lens and Achromatic lens Simple lenses are subject to the optical aberrations discussed above In many cases these aberrations can be compensated for to a great extent by using a combination of simple lenses with complementary aberrations A compound lens is a collection of simple lenses of different shapes and made of materials of different refractive indices arranged one after the other with a common axis The simplest case is where lenses are placed in contact if the lenses of focal lengths f1 and f2 are thin the combined focal length f of the lenses is given by 1 f 1 f 1 1 f 2 displaystyle frac 1 f frac 1 f 1 frac 1 f 2 Since 1 f is the power of a lens it can be seen that the powers of thin lenses in contact are additive If two thin lenses are separated in air by some distance d the focal length for the combined system is given by 1 f 1 f 1 1 f 2 d f 1 f 2 displaystyle frac 1 f frac 1 f 1 frac 1 f 2 frac d f 1 f 2 The distance from the front focal point of the combined lenses to the first lens is called the front focal length FFL FFL f 1 f 2 d f 1 f 2 d displaystyle text FFL frac f 1 f 2 d f 1 f 2 d 25 Similarly the distance from the second lens to the rear focal point of the combined system is the back focal length BFL BFL f 2 d f 1 d f 1 f 2 displaystyle text BFL frac f 2 d f 1 d f 1 f 2 As d tends to zero the focal lengths tend to the value of f given for thin lenses in contact If the separation distance is equal to the sum of the focal lengths d f1 f2 the FFL and BFL are infinite This corresponds to a pair of lenses that transform a parallel collimated beam into another collimated beam This type of system is called an afocal system since it produces no net convergence or divergence of the beam Two lenses at this separation form the simplest type of optical telescope Although the system does not alter the divergence of a collimated beam it does alter the width of the beam The magnification of such a telescope is given by M f 2 f 1 displaystyle M frac f 2 f 1 which is the ratio of the output beam width to the input beam width Note the sign convention a telescope with two convex lenses f1 gt 0 f2 gt 0 produces a negative magnification indicating an inverted image A convex plus a concave lens f1 gt 0 gt f2 produces a positive magnification and the image is upright For further information on simple optical telescopes see Refracting telescope Refracting telescope designs Non spherical types Edit An aspheric biconvex lens Cylindrical lenses have curvature along only one axis They are used to focus light into a line or to convert the elliptical light from a laser diode into a round beam They are also used in motion picture anamorphic lenses Aspheric lenses have at least one surface that is neither spherical nor cylindrical The more complicated shapes allow such lenses to form images with less aberration than standard simple lenses but they are more difficult and expensive to produce These were formerly complex to make and often extremely expensive but advances in technology have greatly reduced the manufacturing cost for such lenses Close up view of a flat Fresnel lens A Fresnel lens has its optical surface broken up into narrow rings allowing the lens to be much thinner and lighter than conventional lenses Durable Fresnel lenses can be molded from plastic and are inexpensive Lenticular lenses are arrays of microlenses that are used in lenticular printing to make images that have an illusion of depth or that change when viewed from different angles Bifocal lens has two or more or a graduated focal lengths ground into the lens A gradient index lens has flat optical surfaces but has a radial or axial variation in index of refraction that causes light passing through the lens to be focused An axicon has a conical optical surface It images a point source into a line along the optic axis or transforms a laser beam into a ring 26 Diffractive optical elements can function as lenses Superlenses are made from negative index metamaterials and claim to produce images at spatial resolutions exceeding the diffraction limit 27 The first superlenses were made in 2004 using such a metamaterial for microwaves 27 Improved versions have been made by other researchers 28 29 As of 2014 update the superlens has not yet been demonstrated at visible or near infrared wavelengths 30 A prototype flat ultrathin lens with no curvature has been developed 31 Uses Edit A watch with a plano convex lens over the date indicator A single convex lens mounted in a frame with a handle or stand is a magnifying glass Lenses are used as prosthetics for the correction of refractive errors such as myopia hypermetropia presbyopia and astigmatism See corrective lens contact lens eyeglasses intraocular lens Most lenses used for other purposes have strict axial symmetry eyeglass lenses are only approximately symmetric They are usually shaped to fit in a roughly oval not circular frame the optical centres are placed over the eyeballs their curvature may not be axially symmetric to correct for astigmatism Sunglasses lenses are designed to attenuate light sunglass lenses that also correct visual impairments can be custom made Other uses are in imaging systems such as monoculars binoculars telescopes microscopes cameras and projectors Some of these instruments produce a virtual image when applied to the human eye others produce a real image that can be captured on photographic film or an optical sensor or can be viewed on a screen In these devices lenses are sometimes paired up with curved mirrors to make a catadioptric system where the lens s spherical aberration corrects the opposite aberration in the mirror such as Schmidt and meniscus correctors Convex lenses produce an image of an object at infinity at their focus if the sun is imaged much of the visible and infrared light incident on the lens is concentrated into the small image A large lens creates enough intensity to burn a flammable object at the focal point Since ignition can be achieved even with a poorly made lens lenses have been used as burning glasses for at least 2400 years 6 A modern application is the use of relatively large lenses to concentrate solar energy on relatively small photovoltaic cells harvesting more energy without the need to use larger and more expensive cells Radio astronomy and radar systems often use dielectric lenses commonly called a lens antenna to refract electromagnetic radiation into a collector antenna Lenses can become scratched and abraded Abrasion resistant coatings are available to help control this 32 See also EditAnti fogging treatment of optical surfaces Back focal plane Bokeh Cardinal point optics Caustic optics Eyepiece F number Gravitational lens Lens anatomy List of lens designs Numerical aperture Optical coatings Optical lens design Photochromic lens Prism optics Ray tracing Ray transfer matrix analysisNotes Edit The variant spelling lense is sometimes seen While it is listed as an alternative spelling in some dictionaries most mainstream dictionaries do not list it as acceptable Brians Paul 2003 Common Errors in English Franklin Beedle amp Associates p 125 ISBN 978 1 887902 89 2 Retrieved 28 June 2009 Reports lense as listed in some dictionaries but not generally considered acceptable Merriam Webster s Medical Dictionary Merriam Webster 1995 p 368 ISBN 978 0 87779 914 6 Lists lense as an acceptable alternate spelling Lens or Lense Which is Correct writingexplained org 30 April 2017 Analyses the almost negligible frequency of use and concludes that the misspelling is a result of a wrong singularisation of the plural lenses References Edit Sines George Sakellarakis Yannis A 1987 Lenses in antiquity American Journal of Archaeology 91 2 191 196 doi 10 2307 505216 JSTOR 505216 S2CID 191384703 Whitehouse David 1 July 1999 World s oldest telescope BBC News Retrieved 10 May 2008 The Nimrud lens The Layard lens Collection database The British Museum Retrieved 25 November 2012 D Brewster 1852 On an account of a rock crystal lens and decomposed glass found in Niniveh Die Fortschritte der Physik in German Deutsche Physikalische Gesellschaft p 355 Kriss Timothy C Kriss Vesna Martich April 1998 History of the Operating Microscope From Magnifying Glass to Microneurosurgery Neurosurgery 42 4 899 907 doi 10 1097 00006123 199804000 00116 PMID 9574655 a b Aristophanes 22 January 2013 First performed in 423 BC The Clouds Translated by Hickie William James Project Gutenberg EBook 2562 1 Pliny the Elder The Natural History trans John Bostock Book XXXVII Chap 10 Pliny the Elder The Natural History trans John Bostock Book XXXVII Chap 16 Tilton Buck 2005 The Complete Book of Fire Building Campfires for Warmth Light Cooking and Survival Menasha Ridge Press p 25 ISBN 978 0 89732 633 9 Glick Thomas F Steven John Livesey Faith Wallis 2005 Medieval science technology and medicine an encyclopedia Routledge p 167 ISBN 978 0 415 96930 7 Retrieved 24 April 2011 Al Van Helden The Galileo Project gt Science gt The Telescope Galileo rice edu Retrieved on 6 June 2012 Henry C King 28 September 2003 The History of the Telescope Courier Dover Publications p 27 ISBN 978 0 486 43265 6 Retrieved 6 June 2012 Paul S Agutter Denys N Wheatley 12 December 2008 Thinking about Life The History and Philosophy of Biology and Other Sciences Springer p 17 ISBN 978 1 4020 8865 0 Retrieved 6 June 2012 Vincent Ilardi 2007 Renaissance Vision from Spectacles to Telescopes American Philosophical Society p 210 ISBN 978 0 87169 259 7 Retrieved 6 June 2012 Microscopes Time Line Nobel Foundation Retrieved 3 April 2009 Fred Watson 1 October 2007 Stargazer The Life and Times of the Telescope Allen amp Unwin p 55 ISBN 978 1 74175 383 7 Retrieved 6 June 2012 This paragraph is adapted from the 1888 edition of the Encyclopaedia Britannica Greivenkamp 2004 p 14Hecht 1987 6 1 Hecht 1987 5 2 3 Nave Carl R Thin Lens Equation Hyperphysics Georgia State University Retrieved 17 March 2015 Colwell Catharine H Resource Lesson Thin Lens Equation PhysicsLab org Retrieved 17 March 2015 The Mathematics of Lenses The Physics Classroom Retrieved 17 March 2015 Hecht 2002 p 120 There are always 3 easy rays For the third ray in this case see File Lens3b third ray svg Hecht 2002 p 168 Proteep Mallik 2005 The Axicon PDF Archived from the original PDF on 23 November 2009 Retrieved 22 November 2007 a b Grbic A Eleftheriades G V 2004 Overcoming the Diffraction Limit with a Planar Left handed Transmission line Lens Physical Review Letters 92 11 117403 Bibcode 2004PhRvL 92k7403G doi 10 1103 PhysRevLett 92 117403 PMID 15089166 Valentine J et al 2008 Three dimensional optical metamaterial with a negative refractive index Nature 455 7211 376 9 Bibcode 2008Natur 455 376V doi 10 1038 nature07247 PMID 18690249 S2CID 4314138 Yao Jie Liu Zhaowei Liu Yongmin Wang Yuan Sun Cheng Bartal Guy Stacy Angelica M Zhang Xiang 15 August 2008 Optical Negative Refraction in Bulk Metamaterials of Nanowires Science 321 5891 930 Bibcode 2008Sci 321 930Y CiteSeerX 10 1 1 716 4426 doi 10 1126 science 1157566 ISSN 0036 8075 PMID 18703734 S2CID 20978013 Nielsen R B Thoreson M D Chen W Kristensen A Hvam J M Shalaev V M Boltasseva A 2010 Toward superlensing with metal dielectric composites and multilayers PDF Applied Physics B 100 1 93 Bibcode 2010ApPhB 100 93N doi 10 1007 s00340 010 4065 z S2CID 39903291 Archived from the original PDF on 9 March 2013 Patel Prachi 2015 Good Bye to Curved Lens New Lens Is Flat Scientific American 312 5 22 doi 10 1038 scientificamerican0515 22b PMID 26336702 Retrieved 16 May 2015 Schottner G May 2003 Scratch and Abrasion Resistant Coatings on Plastic Lenses State of the Art Current Developments and Perspectives Journal of Sol Gel Science and Technology Vol 27 pp 71 79 doi 10 1023 A 1022684011222 Bibliography EditHecht Eugene 1987 Optics 2nd ed Addison Wesley ISBN 978 0 201 11609 0 Chapters 5 amp 6 Hecht Eugene 2002 Optics 4th ed Addison Wesley ISBN 978 0 321 18878 6 Greivenkamp John E 2004 Field Guide to Geometrical Optics SPIE Field Guides vol FG01 SPIE ISBN 978 0 8194 5294 8 External links Edit Wikimedia Commons has media related to Lenses A chapter from an online textbook on refraction and lenses Thin Spherical Lenses pdf on Project PHYSNET Lens article at digitalartform com Article on Ancient Egyptian lenses FDTD Animation of Electromagnetic Propagation through Convex Lens on and off axis Video on YouTube The Use of Magnifying Lenses in the Classical World Henker Otto 1911 Lens Encyclopaedia Britannica Vol 16 11th ed pp 421 427 with 21 diagrams Simulations Edit Learning by Simulations Concave and Convex Lenses OpticalRayTracer Open source lens simulator downloadable java Video with a simulation of light while it passes a convex lens Video on YouTube Animations demonstrating lens by QED Retrieved from https en wikipedia org w index php title Lens amp oldid 1149532367, wikipedia, wiki, book, books, library,

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