CRYSTAL OPTICS

  

Copyright © Philip M. Parker, INSEAD. Terms of Use.

CRYSTAL OPTICS

Specialty Definition: CRYSTAL OPTICS

DomainDefinition

Mining

A. The science that treats of the transmission of light in crystals b. The study and characterization of the optical properties of crystalline materials. Because each mineral species is a unique combination of chemistry and crystal symmetry, use of optical properties of minerals, both opaque and transparent, for their characterization and identificationis a well-developed art. (references)

Source: compiled by the editor from various references; see credits.

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Specialty Definition: Crystal optics

(From Wikipedia, the free Encyclopedia)

Crystal optics is the branch of optics that describes the behaviour of light in anisotropic media, that is, media (such as crystals) in which light behaves differently depending on which direction the light is propagating. Crystals are often naturally anisotropic, and in some media (such as liquid crystals it is possible to induce anisotropy by applying e.g. an external electric field.

Typical transparent media such as glasses are isotropic, which means that light behaves the same way no matter which direction it is travelling in the medium. In terms of Maxwell's equations in a dielectric, this gives a relationship between the electric displacement field D and the electric field E:

D = ε0E + P ,

where ε0 is the permittivity of free space and P is the electric polarisation (the vector field corresponding to electric dipole moments present in the medium). Physically, the polarisation field can be regarded as the response of the medium to the electric field of the light.

In an isotropic and linear medium, this polarisation field P is proportional to and parallel to the electric field E:

P = ε0χE ,

where χ is the electric susceptibility of the medium. The relation between D and E is thus:

D = ε0E + ε0χE = ε0(1+χ)E .

The value (1+χ) is called the relative permittivity of the medium, and is related to the refractive index n:

n = (1+χ)1/2 = (εr)1/2 .

In an anisotropic medium, such as a crystal, the polarisation field P is not necessarily aligned with the electric field of the light E. In a physical picture, this can be thought of as the dipoles induced in the medium by the electric field having certain prefered directions, related to the physical structure of the crystal. This can be written as:

P = ε0 χ×E .

Here χ is not a number as before but a tensor of rank 2, the electric susceptibility tensor. In terms of components in 3 dimensions:

or using the summation convention:

Pi = ε0 χij Ej .

Since χ is a tensor, P is not necessarily colinear with E.

From thermodynamics arguments it can be shown that χij = χji, i.e. the χ tensor is symmetric. In accordance with the spectral theorem, it is thus possible to diagonalise the tensor by choosing the appropriate set of cooridinate axes, zeroing all components of the tensor except χxx, χyy and χzz. This gives the set of relations:

Px = ε0 χxx Ex
Py = ε0 χyy Ey
Pz = ε0 χzz Ez

The directions x, y and z are in this case known as the principal axes of the medium.

It follows that D and E are also related by a tensor:

D = ε0E + P = ε0E + ε0 χ×E = ε0 (1+χE = ε0 ε×E .

Here ε is know as the relative permittivity tensor or dielectric tensor. Consequently, the refractive index of the medium must also be a tensor. Consider a light wave propagating along the z principal axis polarised such the electric field of the wave is parallel to the x-axis. The wave experiences a susceptability χxx and a permittivity εxx. The refractive index is thus:

nxx = (1 + χxx)1/2 = (εxx)1/2 .

For a wave polarised in the y direction:

nyy = (1 + χyy)1/2 = (εyy)1/2 .

Thus these waves will see two different refractive indices and travel at different speeds. This phenomenon is known as birefringence and occurs in some common crystals such as calcite and quartz.

If χxx = χyy ≠ χzz, the crystal is known as uniaxial. If χxx ≠ χyy and χxx ≠ χzz the crystal is called biaxial. A uniaxial crystal exhibits two refractive indicies, an "ordinary" index (no) for light polarised in the x or y directions, and an "extraordinary" index (ne) for polarisation in the z direction. Light polarised at some angle to the axes will experience a different phase velocity for different polarization components, and cannot be described by a single index of refraction. This is often depicted as an index ellipsoid.

Certain nonlinear optical phenomena such as the electro-optic effect cause a variation of a medium's permittivity tensor when an external electric field is applied, proportional (to lowest order) to the strength of the field. This causes a rotation of the principal axes of the medium and alters the behaviour of light travelling through it; the effect can be used to produce light modulators.

In response to a magnetic field, some materials can have a dielectric tensor that is complex-Hermitian; this is called a gyro-magnetic or magneto-optic effect. In this case, the principle axes are complex-valued vectors, corresponding to elliptically polarized light, and time-reversal symmetry can be broken. This can be used to design optical isolators, for example.

(A dielectric tensor that is not Hermitian gives rise to complex eigenvalues, which corresponds to a material with gain or absorption at a particular frequency.)

Source: adapted by the editor from Wikipedia, the free encyclopedia under a copyleft GNU Free Documentation License (GFDL) from the article "Crystal optics."

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Frequency of Internet Keywords: CRYSTAL OPTICS

The following statistics estimate the number of searches per day across the major English-language search engines as identified by various trade publications. Hyperlinks lead to commercial use of the expression at Amazon.com.
 
ExpressionFrequency
per Day

crystal optics

32

crystal optics filter

8

crystal optics 40.5mm filter kit

2
Source: compiled by the editor from various references; see credits.

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Anagrams: CRYSTAL OPTICS

Scrabble® Enable2K-Verified Anagrams

Words within the letters "a-c-c-i-l-o-p-r-s-s-t-t-y"

-2 letters: pyroclastic.

-3 letters: astrocytic, cryostatic, cystocarps.

-4 letters: acrostics, caryopsis, catoptric, coscripts, cryostats, cystocarp, piscators, piscatory, posttrial, prostatic, pyrostats, royalists, spiccatos, systaltic, triptycas.

-5 letters: acrostic, acrylics, airposts, altoists, apostils, apricots, astricts, atrocity, calorics, caltrops, calypsos, capitols, citators, citatory, classico, clastics, coalpits, copycats, copyists, cortical, coscript, cryostat, crystals, cyclists, cyclosis, isocracy, oralists, patriots, piscator, plastics, polarity, potassic.

Source: compiled by the editor from various references; see credits.

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Alternative Orthography: CRYSTAL OPTICS


Hexadecimal (or equivalents, 770AD-1900s) (references)

43 52 59 53 54 41 4C      4F 50 54 49 43 53

Leonardo da Vinci (1452-1519; backwards) (references)

    

Binary Code (1918-1938, probably earlier) (references)

01000011 01010010 01011001 01010011 01010100 01000001 01001100 00100000 01001111 01010000 01010100 01001001 01000011 01010011

HTML Code (1990) (references)

&#67 &#82 &#89 &#83 &#84 &#65 &#76 &#32 &#79 &#80 &#84 &#73 &#67 &#83

ISO 10646 (1991-1993) (references)

0043 0052 0059 0053 0054 0041 004C      004F 0050 0054 0049 0043 0053

Encryption (beginner's substitution cypher): (references)

375259535435462495054433753

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INDEX

1. Expressions: Internet
2. Anagrams
3. Orthography
4. Bibliography


  

Copyright © Philip M. Parker, INSEAD. Terms of Use.