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A Faraday rotator is a
polarization rotator A polarization rotator is an optical device that rotates the polarization axis of a linearly polarized light beam by an angle of choice. Such devices can be based on the Faraday effect, on birefringence, or on total internal reflection. F. J. ...
based on the
Faraday effect The Faraday effect or Faraday rotation, sometimes referred to as the magneto-optic Faraday effect (MOFE), is a physical magneto-optical phenomenon. The Faraday effect causes a polarization rotation which is proportional to the projection of the ...
, a
magneto-optic effect A magneto-optic effect is any one of a number of phenomena in which an electromagnetic wave propagates through a medium that has been altered by the presence of a quasistatic magnetic field. In such a medium, which is also called gyrotropic or g ...
involving transmission of light through a material when a longitudinal static magnetic field is present. The state of polarization (such as the axis of
linear polarization In electrodynamics, linear polarization or plane polarization of electromagnetic radiation is a confinement of the electric field vector or magnetic field vector to a given plane along the direction of propagation. The term ''linear polarizati ...
or the orientation of
elliptical polarization In electrodynamics, elliptical polarization is the polarization of electromagnetic radiation such that the tip of the electric field vector describes an ellipse in any fixed plane intersecting, and normal to, the direction of propagation. An ell ...
) is rotated as the wave traverses the device, which is explained by a slight difference in the
phase velocity The phase velocity of a wave is the rate at which the wave propagates in any medium. This is the velocity at which the phase of any one frequency component of the wave travels. For such a component, any given phase of the wave (for example, t ...
between the left and right
circular polarization In electrodynamics, circular polarization of an electromagnetic wave is a polarization state in which, at each point, the electromagnetic field of the wave has a constant magnitude and is rotating at a constant rate in a plane perpendicular to ...
s. Thus it is an example of circular birefringence, as is
optical activity Optical rotation, also known as polarization rotation or circular birefringence, is the rotation of the orientation of the plane of polarization about the optical axis of linearly polarized light as it travels through certain materials. Circul ...
, but involves a material only having this property in the presence of a
magnetic field A magnetic field (sometimes called B-field) is a physical field that describes the magnetic influence on moving electric charges, electric currents, and magnetic materials. A moving charge in a magnetic field experiences a force perpendicular ...
.


Mechanism

Circular birefringence, involving a difference in propagation between opposite circular polarizations, is distinct from linear birefringence (or simply
birefringence Birefringence, also called double refraction, is the optical property of a material having a refractive index that depends on the polarization and propagation direction of light. These optically anisotropic materials are described as birefrin ...
, when the term is not further specified) which also transforms a wave's polarization but not through a simple rotation. The polarization state is rotated in proportion to the applied longitudinal magnetic field according to: : \beta = VBd \! where \beta is the angle of rotation (in
radian The radian, denoted by the symbol rad, is the unit of angle in the International System of Units (SI) and is the standard unit of angular measure used in many areas of mathematics. It is defined such that one radian is the angle subtended at ...
s), B is the magnetic flux density in the direction of propagation (in teslas), d is the length of the path (in metres) where the light and magnetic field interact, and V is the Verdet constant for the material. This empirical proportionality constant (in units of radians per tesla per metre, rad/(T·m)) varies with wavelength and temperature and is tabulated for various materials. Faraday rotation is a rare example of non-reciprocal optical propagation. Although reciprocity is a basic tenet of
electromagnetics In physics, electromagnetism is an interaction that occurs between particles with electric charge via electromagnetic fields. The electromagnetic force is one of the four fundamental forces of nature. It is the dominant force in the interacti ...
, the ''apparent'' non-reciprocity in this case is a result of not considering the static magnetic field but only the resulting device. Unlike the rotation in an
optically active Optical rotation, also known as polarization rotation or circular birefringence, is the rotation of the orientation of the plane of polarization about the optical axis of linearly polarized light as it travels through certain materials. Circul ...
medium such as a sugar solution, reflecting a polarized beam back through the same Faraday rotator does ''not'' undo the polarization change the beam underwent in its forward pass through the medium, but actually doubles it. Then by implementing a Faraday rotator with a rotation of 45°, inadvertent downstream reflections from a linearly polarized source will return with the polarization rotated by 90° and can be simply blocked by a
polarizer A polarizer or polariser is an optical filter that lets light waves of a specific polarization (waves), polarization pass through while attenuation, blocking light waves of other polarizations. It can filter a beam of light of undefined or mixed ...
; this is the basis of
optical isolator An optical isolator, or optical diode, is an optical component which allows the transmission of light in only one direction. It is typically used to prevent unwanted feedback into an optical oscillator, such as a laser cavity. The operation ...
s used to prevent undesired reflections from disrupting an upstream optical system (particularly a laser). The difference between Faraday rotation and other polarization rotation mechanisms is as follows. In an optically active medium, the polarization direction twists or rotates in the same sense (e.g. like a right-handed screw) for either direction, thus in the case of a plane reflection the original rotation is reversed, returning the incident beam to its original polarization. On the other hand, in a Faraday rotator, passage of light in opposite directions experience a magnetic field in ''opposite'' directions relative to the propagation direction, and since the rotation (relative to the direction of propagation) is determined by the magnetic field (see above equation), that rotation is opposite between the two propagating directions.


See also

* Atomic line filter


References

{{DEFAULTSORT:Faraday Rotator Optical devices Michael Faraday Magneto-optic effects