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In
physics Physics is the scientific study of matter, its Elementary particle, fundamental constituents, its motion and behavior through space and time, and the related entities of energy and force. "Physical science is that department of knowledge whi ...
, optical depth or optical thickness is the
natural logarithm The natural logarithm of a number is its logarithm to the base of a logarithm, base of the e (mathematical constant), mathematical constant , which is an Irrational number, irrational and Transcendental number, transcendental number approxima ...
of the ratio of incident to ''transmitted'' radiant power through a material. Thus, the larger the optical depth, the smaller the amount of transmitted radiant power through the material. Spectral optical depth or spectral optical thickness is the natural logarithm of the ratio of incident to transmitted spectral radiant power through a material. Optical depth is
dimensionless Dimensionless quantities, or quantities of dimension one, are quantities implicitly defined in a manner that prevents their aggregation into units of measurement. ISBN 978-92-822-2272-0. Typically expressed as ratios that align with another sy ...
, and in particular is not a length, though it is a monotonically increasing function of optical path length, and approaches zero as the path length approaches zero. The use of the term "optical density" for optical depth is discouraged. In
chemistry Chemistry is the scientific study of the properties and behavior of matter. It is a physical science within the natural sciences that studies the chemical elements that make up matter and chemical compound, compounds made of atoms, molecules a ...
, a closely related quantity called " absorbance" or "decadic absorbance" is used instead of optical depth: the common logarithm of the ratio of incident to transmitted radiant power through a material. It is the optical depth divided by , because of the different logarithm bases used.


Mathematical definitions


Optical depth

The optical depth of a material, denoted \tau, is given by:\tau = \ln\!\left(\frac\right) = -\ln Twhere * \Phi_\mathrm^\mathrm is the radiant flux received by that material; * \Phi_\mathrm^\mathrm is the radiant flux transmitted by that material; * T is the transmittance of that material. The absorbance A is related to optical depth by:\tau = A \ln


Spectral optical depth

The spectral optical depth in frequency (denoted \tau_\nu) or in wavelength (\tau_\lambda) of a material is given by: \tau_\nu = \ln\!\left(\frac\right) = -\ln T_\nu\tau_\lambda = \ln\!\left(\frac\right) = -\ln T_\lambda, where * \Phi_^\mathrm is the spectral radiant flux in frequency transmitted by that material; * \Phi_^\mathrm is the spectral radiant flux in frequency received by that material; * T_\nu is the spectral transmittance in frequency of that material; * \Phi_^\mathrm is the spectral radiant flux in wavelength transmitted by that material; * \Phi_^\mathrm is the spectral radiant flux in wavelength received by that material; * T_\lambda is the spectral transmittance in wavelength of that material. Spectral absorbance is related to spectral optical depth by: \tau_\nu = A_\nu \ln 10,\tau_\lambda =A_\lambda \ln 10, where * A_\nu is the spectral absorbance in frequency; * A_\lambda is the spectral absorbance in wavelength.


Relationship with attenuation


Attenuation

Optical depth measures the attenuation of the transmitted radiant power in a material. Attenuation can be caused by absorption, but also reflection, scattering, and other physical processes. Optical depth of a material is approximately equal to its
attenuation In physics, attenuation (in some contexts, extinction) is the gradual loss of flux intensity through a Transmission medium, medium. For instance, dark glasses attenuate sunlight, lead attenuates X-rays, and water and air attenuate both light and ...
when both the absorbance is much less than 1 and the emittance of that material (not to be confused with radiant exitance or emissivity) is much less than the optical depth: \Phi_\mathrm^\mathrm + \Phi_\mathrm^\mathrm = \Phi_\mathrm^\mathrm + \Phi_\mathrm^\mathrm,T + ATT = 1 + E, where * Φet is the radiant power transmitted by that material; * Φeatt is the radiant power attenuated by that material; * Φei is the radiant power received by that material; * Φee is the radiant power emitted by that material; * ''T'' = Φetei is the transmittance of that material; * ''ATT'' = Φeattei is the attenuation of that material; * ''E'' = Φeeei is the emittance of that material, and according to the Beer–Lambert law, T = e^,so:ATT = 1 - e^ + E \approx \tau + E \approx \tau,\quad \text\ \tau \ll 1\ \text\ E \ll \tau.


Attenuation coefficient

Optical depth of a material is also related to its attenuation coefficient by:\tau = \int_0^l \alpha(z)\, \mathrmz,where * ''l'' is the thickness of that material through which the light travels; * ''α''(''z'') is the attenuation coefficient or Napierian attenuation coefficient of that material at ''z'', and if ''α''(''z'') is uniform along the path, the attenuation is said to be a linear attenuation and the relation becomes: \tau = \alpha l Sometimes the relation is given using the attenuation cross section of the material, that is its attenuation coefficient divided by its number density:\tau = \int_0^l \sigma n(z)\, \mathrmz, where * ''σ'' is the attenuation cross section of that material; * ''n''(''z'') is the number density of that material at ''z'', and if n is uniform along the path, i.e., n(z)\equiv N, the relation becomes:\tau = \sigma Nl


Applications


Atomic physics

In
atomic physics Atomic physics is the field of physics that studies atoms as an isolated system of electrons and an atomic nucleus. Atomic physics typically refers to the study of atomic structure and the interaction between atoms. It is primarily concerned wit ...
, the spectral optical depth of a cloud of atoms can be calculated from the quantum-mechanical properties of the atoms. It is given by\tau_\nu = \frac where * ''d'' is the transition dipole moment; * ''n'' is the number of atoms; * ''ν'' is the frequency of the beam; * ''c'' is the
speed of light The speed of light in vacuum, commonly denoted , is a universal physical constant exactly equal to ). It is exact because, by international agreement, a metre is defined as the length of the path travelled by light in vacuum during a time i ...
; * ''ħ'' is the
reduced Planck constant The Planck constant, or Planck's constant, denoted by h, is a fundamental physical constant of foundational importance in quantum mechanics: a photon's energy is equal to its frequency multiplied by the Planck constant, and the wavelength of a ...
; * ''ε''0 is the vacuum permittivity; * ''σ'' is the cross section of the beam; * ''γ'' is the natural linewidth of the transition.


Atmospheric sciences

In atmospheric sciences, one often refers to the optical depth of the atmosphere as corresponding to the vertical path from Earth's surface to outer space; at other times the optical path is from the observer's altitude to outer space. The optical depth for a slant path is , where ''τ′'' refers to a vertical path, ''m'' is called the relative airmass, and for a plane-parallel atmosphere it is determined as where ''θ'' is the zenith angle corresponding to the given path. Therefore,T = e^ = e^The optical depth of the atmosphere can be divided into several components, ascribed to Rayleigh scattering, aerosols, and gaseous absorption. The optical depth of the atmosphere can be measured with a Sun photometer. The optical depth with respect to the height within the atmosphere is given by \tau(z) = k_\textw_1\rho_0H e^ and it follows that the total atmospheric optical depth is given by \tau(0) = k_\textw_1\rho_0H In both equations: * ''k''a is the absorption coefficient * ''w''1 is the mixing ratio * ''ρ''0 is the density of air at sea level * ''H'' is the scale height of the atmosphere * ''z'' is the height in question The optical depth of a plane parallel cloud layer is given by\tau = Q_\text \left frac\rightwhere: * ''Q''e is the extinction efficiency * ''L'' is the liquid water path * ''H'' is the geometrical thickness * ''N'' is the concentration of droplets * ''ρ''l is the density of liquid water So, with a fixed depth and total liquid water path, \tau \propto N^.


Astronomy

In
astronomy Astronomy is a natural science that studies celestial objects and the phenomena that occur in the cosmos. It uses mathematics, physics, and chemistry in order to explain their origin and their overall evolution. Objects of interest includ ...
, the photosphere of a star is defined as the surface where its optical depth is 2/3. This means that each photon emitted at the photosphere suffers an average of less than one scattering before it reaches the observer. At the temperature at optical depth 2/3, the energy emitted by the star (the original derivation is for the Sun) matches the observed total energy emitted. Note that the optical depth of a given medium will be different for different colors (
wavelength In physics and mathematics, wavelength or spatial period of a wave or periodic function is the distance over which the wave's shape repeats. In other words, it is the distance between consecutive corresponding points of the same ''phase (waves ...
s) of light. For planetary rings, the optical depth is the (negative logarithm of the) proportion of light blocked by the ring when it lies between the source and the observer. This is usually obtained by observation of stellar occultations.


See also

* Air mass (astronomy) * Absorptance * Actinometer *
Aerosol An aerosol is a suspension (chemistry), suspension of fine solid particles or liquid Drop (liquid), droplets in air or another gas. Aerosols can be generated from natural or Human impact on the environment, human causes. The term ''aerosol'' co ...
* Angstrom exponent * Attenuation coefficient * Beer–Lambert law *
Pyranometer A pyranometer () is a type of actinometer used for measuring solar irradiance on a planar surface and it is designed to measure the solar radiation flux density (W/m2) from the hemisphere above within a wavelength range 0.3 μm to 3 μm. A typ ...
* Radiative transfer * Sun photometer *
Transparency and translucency In the field of optics, transparency (also called pellucidity or diaphaneity) is the physical property of allowing light to pass through the material without appreciable scattering of light. On a macroscopic scale (one in which the dimensions a ...


References

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External links


Optical depth equations
Optical quantities Scattering, absorption and radiative transfer (optics) Spectroscopy Visibility