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   » » Wiki: Absorption (electromagnetic Radiation)
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In , absorption of electromagnetic radiation is how (typically bound in ) takes up a 's —and so transforms into of the absorber (for example, ).

A notable effect of the absorption of electromagnetic radiation is of the radiation; attenuation is the gradual reduction of the intensity of as they through a medium.

Although the absorption of waves does not usually depend on their intensity (linear absorption), in certain conditions () the medium's transparency changes by a factor that varies as a function of wave intensity, and saturable absorption (or nonlinear absorption) occurs.


Quantifying absorption
Many approaches can potentially quantify radiation absorption, with key examples following.

  • The absorption coefficient along with some closely related derived quantities
  • The attenuation coefficient (NB used infrequently with meaning synonymous with "absorption coefficient")
  • The Molar attenuation coefficient (also called "molar absorptivity"), which is the absorption coefficient divided by molarity (see also Beer–Lambert law)
  • The mass attenuation coefficient (also called "mass extinction coefficient"), which is the absorption coefficient divided by density
  • The absorption cross section and scattering cross-section, related closely to the absorption and attenuation coefficients, respectively
  • "Extinction" in astronomy, which is equivalent to the attenuation coefficient
  • Other measures of radiation absorption, including penetration depth and , propagation constant, attenuation constant, phase constant, and complex , and extinction coefficient, complex dielectric constant, electrical resistivity and conductivity.
  • Related measures, including (also called "optical density") and (also called "optical thickness")

All these quantities measure, at least to some extent, how well a medium absorbs radiation. Which among them practitioners use varies by field and technique, often due simply to the convention.


Measuring absorption
The of an object quantifies how much of the incident light is absorbed by it (instead of being reflected or ). This may be related to other properties of the object through the Beer–Lambert law.

Precise measurements of the absorbance at many wavelengths allow the identification of a substance via absorption spectroscopy, where a sample is illuminated from one side, and the intensity of the light that exits from the sample in every direction is measured. A few examples of absorption are ultraviolet–visible spectroscopy, infrared spectroscopy, and X-ray absorption spectroscopy.


Applications
Understanding and measuring the absorption of electromagnetic radiation has a variety of applications.

  • In radio propagation, it is represented in non-line-of-sight propagation. For example, see computation of radio wave attenuation in the atmosphere used in satellite link design.
  • In and , global and local temperatures depend in part on the absorption of radiation by atmospheric gases (such as in the greenhouse effect) and land and ocean surfaces (see ).
  • In , are absorbed to different extents by different tissues ( in particular), which is the basis for X-ray imaging.
  • In and materials science, different materials and molecules absorb radiation to different extents at different frequencies, which allows for material identification.
  • In , sunglasses, colored filters, dyes, and other such materials are designed specifically with respect to which visible wavelengths they absorb, and in what proportions they are in.
  • In , photosynthetic organisms require that light of the appropriate wavelengths be absorbed within the active area of , so that the energy can be converted into within sugars and other molecules.
  • In , the D-region of Earth's is known to significantly absorb radio signals that fall within the high-frequency electromagnetic spectrum.
  • In nuclear physics, absorption of nuclear radiations can be used for measuring the fluid levels, densitometry or thickness measurements.

In scientific literature is known a system of mirrors and lenses that with a laser "can enable any material to absorb all light from a wide range of angles."


See also

  • (2006). 9780195091618, Oxford University Press, USA. .

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