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polarizability
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polarizability

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Polarizability usually refers to the tendency of matter, when subjected to an electric field, to acquire an electric dipole moment in proportion to that applied field. It is a property of particles with an electric charge. When subject to an electric field, the negatively charged electrons and positively charged atomic nuclei are subject to opposite forces and undergo charge separation. Polarizability is responsible for a material's dielectric constant and, at high (optical) frequencies, its refractive index.

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Within Vinony's link graph, polarizability is referenced by 136 other articles, and connects out to atomic nucleus, molar mass and tau.

Vinony files it under Atomic physics, Chemical physics and Electric and magnetic fields in matter.

Its subject is documented across 26 Wikipedia language editions.

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Polarizability
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Encyclopedic overview

8 sections
Contents
  • {{anchor|Electric polarizability|Electronic polarizability}}Electric polarizability
  • Definition
  • Tensor
  • Application in crystallography
  • Atomic and molecular polarizability
  • {{anchor|Magnetic polarizability}}Magnetic polarizability
  • See also
  • References

Polarizability usually refers to the tendency of matter, when subjected to an electric field, to acquire an electric dipole moment in proportion to that applied field. It is a property of particles with an electric charge. When subject to an electric field, the negatively charged electrons and positively charged atomic nuclei are subject to opposite forces and undergo charge separation. Polarizability is responsible for a material's dielectric constant and, at high (optical) frequencies, its refractive index.

The polarizability of an atom or molecule is defined as the ratio of its induced dipole moment to the local electric field; in a crystalline solid, one considers the dipole moment per unit cell. Note that the local electric field seen by a molecule is generally different from the macroscopic electric field that would be measured externally. This discrepancy is taken into account by the Clausius–Mossotti relation (below) which connects the bulk behaviour (polarization density due to an external electric field according to the electric susceptibility \chi = \varepsilon_{\mathrm r}-1) with the molecular polarizability \alpha due to the local field.

Excerpted from Wikipedia’s “polarizability” article, available under the CC BY-SA 4.0 licence.

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