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'''Acousto-optics''' is a branch of [[physics]] that studies the interactions between sound waves and light waves, especially the [[diffraction]] of [[laser]] [[light]] by [[ultrasound]] (or [[sound]] in general) through an [[ultrasonic grating]].


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[[Image:Beugungsbild.jpg|thumb|A diffraction image showing the acousto-optic effect.]]


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==Introduction==
Optics has had a very long and full history, from [[ancient Greece]], through the [[renaissance]] and modern times.<ref>{{cite web
  | last =Taylor
  | first =L.S.
  | title =Optics Highlights: 1. Ancient History
  | url =http://www.ece.umd.edu/~taylor/optics1.htm
  | accessdate =2007-08-07  }}
</ref>  As with optics, acoustics has a history of similar duration, again starting with the ancient Greeks.<ref>{{cite web
  | title =The History of Acoustics
  | url =http://www.wavemakers.com/science/content/kb_history_of_acoustics.cfm#
  | accessdate =2007-08-07  | archiveurl= http://web.archive.org/web/20070703020207/http://www.wavemakers.com/science/content/kb_history_of_acoustics.cfm| archivedate= 3 July 2007 <!--DASHBot-->| deadurl= no}}
</ref>  In contrast, the acousto-optic effect has had a relatively short history, beginning with [[Léon Brillouin|Brillouin]] predicting the [[diffraction of light]] by an acoustic wave, being propagated in a medium of interaction, in 1922.<ref>{{cite journal
  | last =Brillouin
  | first =L.
  | title =Diffusion of Light and X-rays by a Transparent Homogeneous Body
  | journal =Annales de Physique
  | volume =17
  | pages =88–122
  | year =1922}}</ref> This was then confirmed with experimentation in 1932 by [[Peter Debye|Debye]] and [[Francis Sears|Sears]],<ref>{{Cite journal
  | last =Debye
  | first =P.
  | last2 =Sears
  | first2 =F.W.
  | title =On the scattering of light by supersonic waves
  | journal =PNAS
  | volume =18
  | pages =409&ndash;414
  | year =1932
  | doi =10.1073/pnas.18.6.409
  | postscript =<!--None-->|bibcode = 1932PNAS...18..409D
  | issue =6 }}</ref> and also by Lucas and Biquard.<ref>{{Cite journal
  | last =Lucas
  | first =R.
  | last2 =Biquard
  | first2 =P.
  | title =Optical properties of solid and liquid medias subjected to high-frequency elastic vibrations
  | journal =Journal de Physique
  | volume =71
  | pages =464&ndash;477
  | year =1932
  | postscript =<!--None-->}}</ref>
 
The particular case of diffraction on the first order, under a certain [[angle of incidence]], (also predicted by Brillouin), has been observed by Rytow in 1935. [[C. V. Raman|Raman]] and Nath (1937) have designed a general ideal model of interaction taking into account several orders. This model was developed by Phariseau (1956) for diffraction including only one diffraction order.
 
In general, acousto-optic effects are based on the change of the [[refractive index]] of a medium due to the presence of sound waves in that medium. Sound waves produce a refractive index grating in the material, and it is this grating that is “seen” by the light wave.<ref>{{cite paper
  | author =Gal, M.
  | title =Modulation and switching of light
  | version =Lecture Notes on Optoelectronics
  | publisher =The University of New South Wales
  | year =2005 }}</ref>  These variations in the refractive index, due to the pressure fluctuations, may be detected optically by refraction, diffraction, and interference effects,<ref name="Scruby">{{cite book
  | last =Scruby
  | first =C.B.
  | coauthors =Drain, L.E.
  | title =Laser Ultrasonics: Techniques and Applications
  | publisher =Taylor & Francis
  | date =January 1, 1990
  | isbn =978-0-7503-0050-6  }}</ref> reflection may also be used.
 
The acousto-optic effect is extensively used in the measurement and study of ultrasonic waves.  However, the growing principal area of interest is in acousto-optical devices for the deflection, [[modulation]], [[signal processing]] and frequency shifting of light beams.  This is due to the increasing availability and performance of [[laser]]s, which have made the acousto-optic effect easier to observe and measure. Technical progresses in both [[crystal growth]] and high frequency [[piezoelectricity|piezoelectric]] [[transducer]]s have brought valuable benefits to acousto-optic components' improvements.
 
Along with the current applications, acousto-optics presents interesting possible application.  It can be used in [[nondestructive testing]], [[structural health monitoring]] and [[biomedical]] applications, where optically generated and optical measurements of ultrasound gives a non-contact method of imaging.
 
== Acousto-optic effect ==
The acousto-optic effect is a specific case of [[photoelasticity]], where there is a change of a material's [[permittivity]], <math>\varepsilon</math>, due to a [[Mechanics|mechanical]] [[Strain (materials science)|strain]] <math>a</math>.  Photoelasticity is the variation of the optical indicatrix coefficients <math>B_i</math> caused by the strain <math>a_j</math> given by,<ref name="Acousto-optic effect">{{cite web
  | title =Acousto-optic effect
  | url =http://www.mt-berlin.com/frames_ao/descriptions/ao_effect.htm
  | accessdate = 2007-08-07 }}</ref>
 
: <math>(1) \ \Delta B_i = p_{ij} a_j, \,</math>
 
where <math>p_{ij}</math> is the photoelastic [[tensor]] with components, <math>i</math>,<math>j</math> = 1,2,…,6.
 
Specifically in the acousto-optic effect, the strains <math>a_j</math> are a result of the acoustic wave which has been excited within a [[Transparency (optics)|transparent]] medium.  This then gives rise to the variation of the refractive index. For a plane acoustic wave propagating along the z axis, the change in the refractive index can be expressed as,<ref name="Acousto-optic effect"/>
 
: <math>(2) \ n(z,t)=n+\Delta n \cos (\omega t - kz), \,</math>
 
where <math>n</math> is the undisturbed refractive index, <math>\omega</math> is the [[angular frequency]], <math>k</math> is the [[wavenumber]], and <math>\Delta n</math> is the amplitude of variation in the refractive index generated by the acoustic wave, and is given as,<ref name="Acousto-optic effect"/>
 
: <math>(3) \ \Delta n = - \frac{1}{2}n^3p_{ij} a_j,</math>
 
The generated refractive index, (2), gives a [[diffraction grating]] moving with the [[velocity]] given by the speed of the sound wave in the medium.  Light which then passes through the transparent material, is diffracted due to this generated refraction index, forming a prominent [[diffraction pattern]].  This diffraction pattern corresponds with a conventional diffraction grating at angles <math>\theta_n</math> from the original direction, and is given by,<ref name="Scruby"/>
 
: <math>(4) \ \Lambda \sin (\theta_m) = m\lambda,\,</math>
 
where <math>\lambda</math> is the [[wavelength]] of the optical wave, <math>\Lambda</math> is the wavelength of the acoustic wave and <math>m</math> is the integer order maximum.
 
Light diffracted by an acoustic wave of a single [[frequency]] produces two distinct diffraction types.  These are [[Raman-Nath diffraction]] and [[Bragg diffraction]].
 
Raman-Nath diffraction is observed with relatively low acoustic frequencies, typically less than 10&nbsp;MHz, and with a small acousto-optic interaction length, ℓ, which is typically less than 1&nbsp;cm. This type of diffraction occurs at an arbitrary angle of incidence, <math>\theta_0</math>.
 
In contrast, Bragg diffraction occurs at higher acoustic frequencies, usually exceeding 100&nbsp;MHz. The observed diffraction pattern generally consists of two diffraction maxima; these are the zeroth and the first orders. However, even these two maxima only appear at definite incidence angles close to the Bragg angle, <math>\theta_B</math>.  The first order maximum or the Bragg maximum is formed due to a selective reflection of the light from the wave fronts of ultrasonic wave. The Bragg angle is given by the expression,<ref name="Acousto-optic effect"/>
 
: <math>(5) \ \sin \theta_B = - \frac{\lambda f}{2 n_i \nu}\left[ 1+\frac{\nu^2}{\lambda^2 f^2 } \left( n_i^2 - n_d^2 \right) \right],</math>
 
where <math>\lambda</math> is the wavelength of the incident light wave (in a vacuum), <math>f</math> is the acoustic frequency, <math>v</math> is the velocity of the acoustic wave, <math>n_i</math> is the refractive index for the incident optical wave, and <math>n_d</math> is the refractive index for the diffracted optical waves.
 
In general, there is no point at which [[Bragg diffraction]] takes over from Raman-Nath diffraction.  It is simply a fact that as the acoustic frequency increases, the number of observed maxima is gradually reduced due to the angular selectivity of the acousto-optic interaction. Traditionally, the type of diffraction, Bragg or Raman-Nath, is determined by the conditions ''Q'' >> 1 and ''Q'' << 1 respectively, where Q is given by,<ref name="Acousto-optic effect"/>
 
: <math>(6) \ Q = \frac{2\pi\lambda \ell f^2}{n \nu^2},</math>
 
which is known as the Klein-Cook parameter. Since, in general, only the first order diffraction maximum is used in acousto-optic devices, [[Bragg diffraction]] is preferable due to the lower optical losses. However, the acousto-optic requirements for [[Bragg diffraction]] limit the frequency range of acousto-optic interaction.  As a consequence, the speed of operation of acousto-optic devices is also limited.
 
==Acousto-optic devices==
 
Three categories of acousto-optic devices will be discussed.  They include the acousto-optic modulator, filter and deflector.
 
===Acousto-optic modulator===
[[Image:Acousto-optic Modulator.png|thumb|180px|right|An acousto-optic modulator]]
By varying the parameters of the acoustic wave, including the [[amplitude]], [[Phase (waves)|phase]], frequency and [[polarization (waves)|polarization]], properties of the optical wave may be modulated. The acousto-optic interaction also makes it possible to modulate the optical beam by both temporal and spatial modulation.
 
A simple method of modulating the optical beam travelling through the acousto-optic device is done by switching the acoustic field on and off.  When off the light beam is undiverted, the intensity of light directed at the Bragg diffraction angle is zero.  When switched on and Bragg diffraction occurs, the intensity at the Bragg angle increases. So the acousto-optic device is modulating the output along the Bragg diffraction angle, switching it on and off.  The device is operated as a modulator by keeping the acoustic wavelength (frequency) fixed and varying the drive power to vary the amount of light in the deflected beam.<ref>{{cite web
  | last =Simcik
  | first =J.
  | title =ELECTRO-OPTIC AND ACOUSTO-OPTIC DEVICES
  | url =http://repairfaq.ece.drexel.edu/sam/CORD/leot/course04_mod07/mod04-07.html
  | accessdate =2004-10-28  |archiveurl = http://web.archive.org/web/20041018025212/http://repairfaq.ece.drexel.edu/sam/CORD/leot/course04_mod07/mod04-07.html <!-- Bot retrieved archive --> |archivedate = 2004-10-18}}</ref>
 
There are several limitations associated with the design and performance of acousto-optic modulators.  The acousto-optic medium must be designed carefully to provide maximum light intensity in a single diffracted beam.  The time taken for the acoustic wave to travel across the diameter of the light beam gives a limitation on the switching speed, and hence limits the modulation bandwidth. The finite velocity of the acoustic wave means the light cannot be fully switched on or off until the acoustic wave has traveled across the light beam.  So to increase the bandwidth the light must be focused to a small diameter at the location of the acousto-optic interaction.  This minimum focused size of the beam represents the limit for the bandwidth.
 
===Acousto-optic filter===
 
The principle behind the operation of acousto-optic filters is based on the wavelength of the diffracted light being dependent on the acoustic frequency.  By tuning the frequency of the acoustic wave, the desired wavelength of the optical wave can be diffracted acousto-optically.
 
There are two types of the acousto-optic filters, the collinear and non-collinear filters.  The type of filter depends on geometry of acousto-optic interaction.
 
The polarization of the incident light can be either ordinary or extraordinary. For the definition, we assume ordinary polarization. Here the following list of symbols is used,<ref name="filter">{{cite web
  | title =Acousto-optic effect: Filters
  | url =http://www.mt-berlin.com/frames_ao/descriptions/ao_filters.htm
  | accessdate = 2007-08-07 }}</ref>
 
<math>\alpha</math>: the angle between the acoustic wave vector and the crystallographic axis ''z'' of the crystal;
 
<math>\gamma</math>: the wedge angle between the input and output faces of the filter cell (the wedge angle is necessary for eliminating the angular shift of the diffracted beam caused by frequency changing);
 
<math>\varphi</math>: the angle between the incident light wave vector and [110] axis of the crystal;
 
<math>\alpha_\ell</math>: the angle between the input face of the cell and acoustic wave vector;
 
<math>\beta</math>: the angle between deflected and non-deflected light at the central frequency;
 
<math>\ell</math>: the transducer length.
 
The incidence angle <math>\varphi</math> and the central frequency <math>f_i</math> of the filter are defined by the following set of equations,<ref name="filter"/>
 
: <math>(7) \ n_\varphi = \frac{n_0 n_e}{\sqrt{n_0^2 \cos \varphi + n_e^2 \sin^2 \varphi}}</math>
 
: <math>(8) \ f_i(\varphi)=\frac{\nu}{\lambda}\left[n_\varphi\cos(\varphi+\alpha)\pm\sqrt{n_0^2 - n_\varphi^2(\varphi)\sin^2(\varphi+\alpha)}\right]</math>
 
Refractive indices of the ordinary (<math>n_0</math>) and extraordinary (<math>n_e</math>) polarized beams are determined by taking into account their dispersive dependence.
 
The sound velocity, <math>v</math>, depends on the angle α, such that,<ref name="filter"/>
 
: <math>(9) \ \nu (\alpha) = \nu_{110} \sqrt{\cos^2\alpha + \left(\frac{\nu_{001}}{\nu_{110}}\right)^2 \sin^2\alpha}</math>
 
<math>v_{110}</math> and <math>v_{001}</math> are the sound velocities along the axes [110] and [001], consecutively. The value of <math>\alpha_1</math> is determined by the angles <math>\varphi</math> and <math>\alpha</math>,<ref name="filter"/>
 
: <math>(10) \ \alpha_\ell = \varphi + \alpha</math>
 
The angle <math>\beta</math> between the diffracted and non-diffracted beams defines the view field of the filter; it can be calculated from the formula,<ref name="filter"/>
 
: <math>(11) \ \beta = \arcsin \left( \frac{\lambda f_0}{n_0 \nu} \sin \alpha + \varphi \right)</math>
 
Input light need not be polarized for a non-collinear design. Unpolarized input light is scattered into orthogonally polarized beams separated by the scattering angle for the particular design and wavelength. If the optical design provides an appropriate beam block for the unscattered light, then two beams (images) are formed in an optical passband that is nearly equivalent in both orthogonally linearly polarized output beams (differing by the Stokes and Anti-Stokes scattering parameter). Because of dispersion, these beams move slightly with scanning rf frequency.
 
===Acousto-optic deflectors===
 
An acousto-optic deflector spatially controls the optical beam.  In the operation of an acousto-optic deflector the power driving the acoustic transducer is kept on, at a constant level, while the acoustic frequency is varied to deflect the beam to different angular positions. The acousto-optic deflector makes use of the acoustic frequency dependent diffraction angle, where a change in the angle <math>\Delta \theta_d</math> as a function of the change in frequency <math>\Delta f</math> is given as,<ref>{{cite web
  | title =Acousto-optic effect: Deflector
  | url =http://www.mt-berlin.com/frames_ao/descriptions/ao_deflectors.htm
  | accessdate = 2007-08-07 }}</ref>
 
: <math> (12) \ \Delta \theta_d = \frac{\lambda}{\nu}\Delta f</math>
 
where <math>\lambda</math> and <math>\nu</math> are the acoustic wavelength and velocity of the acoustic wave respectively.
 
AOD technology has made practical the [[Bose-Einstein condensation]] for which the 2001 [[Nobel Prize in Physics]] was awarded to Eric A. Cornell, Wolfgang Ketterle and Carl E. Wieman.<ref>[http://nobelprize.org/nobel_prizes/physics/laureates/2001/illpres/ The Nobel Prize in Physics 2001<!-- Bot generated title -->]</ref> Another application of acoustic-optical deflection is optical trapping of small molecules.
 
AODs are essentially the same as [[acousto-optic modulator]]s (AOMs).  In an AOM, only the amplitude of the sound wave is modulated (to modulate the intensity of the diffracted laser beam), whereas in an AOD, both the amplitude and frequency are adjusted, making the engineering requirements tighter for an AOD than an AOM.
 
==Materials==
Some materials displaying acousto-optic effect include [[fused silica]],lithium niobate, [[arsenic trisulfide]], [[tellurium dioxide]] and [[tellurite]] [[glass]]es, [[lead silicate]], [[germanium-arsenic-sulfide|Ge<sub>55</sub>As<sub>12</sub>S<sub>33</sub>]], [[mercury(I) chloride]], [[lead(II) bromide]], and other materials.
 
==See also==
*[[Acousto-optic modulator]]
*[[Acousto-optic deflector]]
*[[Nonlinear optics]]
*[[Sonoluminescence]]
*[[Schaefer-Bergmann diffraction]]
 
== References ==
 
<references/>
 
[[Category:Diffraction]]
[[Category:Light]]
[[Category:Acoustics]]
[[Category:Nonlinear optics]]
[[Category:Waves]]

Revision as of 12:01, 30 January 2014

Acousto-optics is a branch of physics that studies the interactions between sound waves and light waves, especially the diffraction of laser light by ultrasound (or sound in general) through an ultrasonic grating.

A diffraction image showing the acousto-optic effect.

Introduction

Optics has had a very long and full history, from ancient Greece, through the renaissance and modern times.[1] As with optics, acoustics has a history of similar duration, again starting with the ancient Greeks.[2] In contrast, the acousto-optic effect has had a relatively short history, beginning with Brillouin predicting the diffraction of light by an acoustic wave, being propagated in a medium of interaction, in 1922.[3] This was then confirmed with experimentation in 1932 by Debye and Sears,[4] and also by Lucas and Biquard.[5]

The particular case of diffraction on the first order, under a certain angle of incidence, (also predicted by Brillouin), has been observed by Rytow in 1935. Raman and Nath (1937) have designed a general ideal model of interaction taking into account several orders. This model was developed by Phariseau (1956) for diffraction including only one diffraction order.

In general, acousto-optic effects are based on the change of the refractive index of a medium due to the presence of sound waves in that medium. Sound waves produce a refractive index grating in the material, and it is this grating that is “seen” by the light wave.[6] These variations in the refractive index, due to the pressure fluctuations, may be detected optically by refraction, diffraction, and interference effects,[7] reflection may also be used.

The acousto-optic effect is extensively used in the measurement and study of ultrasonic waves. However, the growing principal area of interest is in acousto-optical devices for the deflection, modulation, signal processing and frequency shifting of light beams. This is due to the increasing availability and performance of lasers, which have made the acousto-optic effect easier to observe and measure. Technical progresses in both crystal growth and high frequency piezoelectric transducers have brought valuable benefits to acousto-optic components' improvements.

Along with the current applications, acousto-optics presents interesting possible application. It can be used in nondestructive testing, structural health monitoring and biomedical applications, where optically generated and optical measurements of ultrasound gives a non-contact method of imaging.

Acousto-optic effect

The acousto-optic effect is a specific case of photoelasticity, where there is a change of a material's permittivity, , due to a mechanical strain . Photoelasticity is the variation of the optical indicatrix coefficients caused by the strain given by,[8]

where is the photoelastic tensor with components, , = 1,2,…,6.

Specifically in the acousto-optic effect, the strains are a result of the acoustic wave which has been excited within a transparent medium. This then gives rise to the variation of the refractive index. For a plane acoustic wave propagating along the z axis, the change in the refractive index can be expressed as,[8]

where is the undisturbed refractive index, is the angular frequency, is the wavenumber, and is the amplitude of variation in the refractive index generated by the acoustic wave, and is given as,[8]

The generated refractive index, (2), gives a diffraction grating moving with the velocity given by the speed of the sound wave in the medium. Light which then passes through the transparent material, is diffracted due to this generated refraction index, forming a prominent diffraction pattern. This diffraction pattern corresponds with a conventional diffraction grating at angles from the original direction, and is given by,[7]

where is the wavelength of the optical wave, is the wavelength of the acoustic wave and is the integer order maximum.

Light diffracted by an acoustic wave of a single frequency produces two distinct diffraction types. These are Raman-Nath diffraction and Bragg diffraction.

Raman-Nath diffraction is observed with relatively low acoustic frequencies, typically less than 10 MHz, and with a small acousto-optic interaction length, ℓ, which is typically less than 1 cm. This type of diffraction occurs at an arbitrary angle of incidence, .

In contrast, Bragg diffraction occurs at higher acoustic frequencies, usually exceeding 100 MHz. The observed diffraction pattern generally consists of two diffraction maxima; these are the zeroth and the first orders. However, even these two maxima only appear at definite incidence angles close to the Bragg angle, . The first order maximum or the Bragg maximum is formed due to a selective reflection of the light from the wave fronts of ultrasonic wave. The Bragg angle is given by the expression,[8]

where is the wavelength of the incident light wave (in a vacuum), is the acoustic frequency, is the velocity of the acoustic wave, is the refractive index for the incident optical wave, and is the refractive index for the diffracted optical waves.

In general, there is no point at which Bragg diffraction takes over from Raman-Nath diffraction. It is simply a fact that as the acoustic frequency increases, the number of observed maxima is gradually reduced due to the angular selectivity of the acousto-optic interaction. Traditionally, the type of diffraction, Bragg or Raman-Nath, is determined by the conditions Q >> 1 and Q << 1 respectively, where Q is given by,[8]

which is known as the Klein-Cook parameter. Since, in general, only the first order diffraction maximum is used in acousto-optic devices, Bragg diffraction is preferable due to the lower optical losses. However, the acousto-optic requirements for Bragg diffraction limit the frequency range of acousto-optic interaction. As a consequence, the speed of operation of acousto-optic devices is also limited.

Acousto-optic devices

Three categories of acousto-optic devices will be discussed. They include the acousto-optic modulator, filter and deflector.

Acousto-optic modulator

An acousto-optic modulator

By varying the parameters of the acoustic wave, including the amplitude, phase, frequency and polarization, properties of the optical wave may be modulated. The acousto-optic interaction also makes it possible to modulate the optical beam by both temporal and spatial modulation.

A simple method of modulating the optical beam travelling through the acousto-optic device is done by switching the acoustic field on and off. When off the light beam is undiverted, the intensity of light directed at the Bragg diffraction angle is zero. When switched on and Bragg diffraction occurs, the intensity at the Bragg angle increases. So the acousto-optic device is modulating the output along the Bragg diffraction angle, switching it on and off. The device is operated as a modulator by keeping the acoustic wavelength (frequency) fixed and varying the drive power to vary the amount of light in the deflected beam.[9]

There are several limitations associated with the design and performance of acousto-optic modulators. The acousto-optic medium must be designed carefully to provide maximum light intensity in a single diffracted beam. The time taken for the acoustic wave to travel across the diameter of the light beam gives a limitation on the switching speed, and hence limits the modulation bandwidth. The finite velocity of the acoustic wave means the light cannot be fully switched on or off until the acoustic wave has traveled across the light beam. So to increase the bandwidth the light must be focused to a small diameter at the location of the acousto-optic interaction. This minimum focused size of the beam represents the limit for the bandwidth.

Acousto-optic filter

The principle behind the operation of acousto-optic filters is based on the wavelength of the diffracted light being dependent on the acoustic frequency. By tuning the frequency of the acoustic wave, the desired wavelength of the optical wave can be diffracted acousto-optically.

There are two types of the acousto-optic filters, the collinear and non-collinear filters. The type of filter depends on geometry of acousto-optic interaction.

The polarization of the incident light can be either ordinary or extraordinary. For the definition, we assume ordinary polarization. Here the following list of symbols is used,[10]

: the angle between the acoustic wave vector and the crystallographic axis z of the crystal;

: the wedge angle between the input and output faces of the filter cell (the wedge angle is necessary for eliminating the angular shift of the diffracted beam caused by frequency changing);

: the angle between the incident light wave vector and [110] axis of the crystal;

: the angle between the input face of the cell and acoustic wave vector;

: the angle between deflected and non-deflected light at the central frequency;

: the transducer length.

The incidence angle and the central frequency of the filter are defined by the following set of equations,[10]

Refractive indices of the ordinary () and extraordinary () polarized beams are determined by taking into account their dispersive dependence.

The sound velocity, , depends on the angle α, such that,[10]

and are the sound velocities along the axes [110] and [001], consecutively. The value of is determined by the angles and ,[10]

The angle between the diffracted and non-diffracted beams defines the view field of the filter; it can be calculated from the formula,[10]

Input light need not be polarized for a non-collinear design. Unpolarized input light is scattered into orthogonally polarized beams separated by the scattering angle for the particular design and wavelength. If the optical design provides an appropriate beam block for the unscattered light, then two beams (images) are formed in an optical passband that is nearly equivalent in both orthogonally linearly polarized output beams (differing by the Stokes and Anti-Stokes scattering parameter). Because of dispersion, these beams move slightly with scanning rf frequency.

Acousto-optic deflectors

An acousto-optic deflector spatially controls the optical beam. In the operation of an acousto-optic deflector the power driving the acoustic transducer is kept on, at a constant level, while the acoustic frequency is varied to deflect the beam to different angular positions. The acousto-optic deflector makes use of the acoustic frequency dependent diffraction angle, where a change in the angle as a function of the change in frequency is given as,[11]

where and are the acoustic wavelength and velocity of the acoustic wave respectively.

AOD technology has made practical the Bose-Einstein condensation for which the 2001 Nobel Prize in Physics was awarded to Eric A. Cornell, Wolfgang Ketterle and Carl E. Wieman.[12] Another application of acoustic-optical deflection is optical trapping of small molecules.

AODs are essentially the same as acousto-optic modulators (AOMs). In an AOM, only the amplitude of the sound wave is modulated (to modulate the intensity of the diffracted laser beam), whereas in an AOD, both the amplitude and frequency are adjusted, making the engineering requirements tighter for an AOD than an AOM.

Materials

Some materials displaying acousto-optic effect include fused silica,lithium niobate, arsenic trisulfide, tellurium dioxide and tellurite glasses, lead silicate, Ge55As12S33, mercury(I) chloride, lead(II) bromide, and other materials.

See also

References

  1. Template:Cite web
  2. Template:Cite web
  3. One of the biggest reasons investing in a Singapore new launch is an effective things is as a result of it is doable to be lent massive quantities of money at very low interest rates that you should utilize to purchase it. Then, if property values continue to go up, then you'll get a really high return on funding (ROI). Simply make sure you purchase one of the higher properties, reminiscent of the ones at Fernvale the Riverbank or any Singapore landed property Get Earnings by means of Renting

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    The data offered is for normal info purposes only and isn't supposed to be personalised investment or monetary advice. Motley Fool Singapore contributor Stanley Lim would not personal shares in any corporations talked about. Singapore private home costs increased by 1.eight% within the fourth quarter of 2012, up from 0.6% within the earlier quarter. Resale prices of government-built HDB residences which are usually bought by Singaporeans, elevated by 2.5%, quarter on quarter, the quickest acquire in five quarters. And industrial property, prices are actually double the levels of three years ago. No withholding tax in the event you sell your property. All your local information regarding vital HDB policies, condominium launches, land growth, commercial property and more

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    Discover out more about real estate funding in the area, together with info on international funding incentives and property possession. Many Singaporeans have been investing in property across the causeway in recent years, attracted by comparatively low prices. However, those who need to exit their investments quickly are likely to face significant challenges when trying to sell their property – and could finally be stuck with a property they can't sell. Career improvement programmes, in-house valuation, auctions and administrative help, venture advertising and marketing, skilled talks and traisning are continuously planned for the sales associates to help them obtain better outcomes for his or her shoppers while at Knight Frank Singapore. No change Present Rules

    Extending the tax exemption would help. The exemption, which may be as a lot as $2 million per family, covers individuals who negotiate a principal reduction on their existing mortgage, sell their house short (i.e., for lower than the excellent loans), or take part in a foreclosure course of. An extension of theexemption would seem like a common-sense means to assist stabilize the housing market, but the political turmoil around the fiscal-cliff negotiations means widespread sense could not win out. Home Minority Chief Nancy Pelosi (D-Calif.) believes that the mortgage relief provision will be on the table during the grand-cut price talks, in response to communications director Nadeam Elshami. Buying or promoting of blue mild bulbs is unlawful.

    A vendor's stamp duty has been launched on industrial property for the primary time, at rates ranging from 5 per cent to 15 per cent. The Authorities might be trying to reassure the market that they aren't in opposition to foreigners and PRs investing in Singapore's property market. They imposed these measures because of extenuating components available in the market." The sale of new dual-key EC models will even be restricted to multi-generational households only. The models have two separate entrances, permitting grandparents, for example, to dwell separately. The vendor's stamp obligation takes effect right this moment and applies to industrial property and plots which might be offered inside three years of the date of buy. JLL named Best Performing Property Brand for second year running

    The data offered is for normal info purposes only and isn't supposed to be personalised investment or monetary advice. Motley Fool Singapore contributor Stanley Lim would not personal shares in any corporations talked about. Singapore private home costs increased by 1.eight% within the fourth quarter of 2012, up from 0.6% within the earlier quarter. Resale prices of government-built HDB residences which are usually bought by Singaporeans, elevated by 2.5%, quarter on quarter, the quickest acquire in five quarters. And industrial property, prices are actually double the levels of three years ago. No withholding tax in the event you sell your property. All your local information regarding vital HDB policies, condominium launches, land growth, commercial property and more

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    A vendor's stamp duty has been launched on industrial property for the primary time, at rates ranging from 5 per cent to 15 per cent. The Authorities might be trying to reassure the market that they aren't in opposition to foreigners and PRs investing in Singapore's property market. They imposed these measures because of extenuating components available in the market." The sale of new dual-key EC models will even be restricted to multi-generational households only. The models have two separate entrances, permitting grandparents, for example, to dwell separately. The vendor's stamp obligation takes effect right this moment and applies to industrial property and plots which might be offered inside three years of the date of buy. JLL named Best Performing Property Brand for second year running

    The data offered is for normal info purposes only and isn't supposed to be personalised investment or monetary advice. Motley Fool Singapore contributor Stanley Lim would not personal shares in any corporations talked about. Singapore private home costs increased by 1.eight% within the fourth quarter of 2012, up from 0.6% within the earlier quarter. Resale prices of government-built HDB residences which are usually bought by Singaporeans, elevated by 2.5%, quarter on quarter, the quickest acquire in five quarters. And industrial property, prices are actually double the levels of three years ago. No withholding tax in the event you sell your property. All your local information regarding vital HDB policies, condominium launches, land growth, commercial property and more

    There are various methods to go about discovering the precise property. Some local newspapers (together with the Straits Instances ) have categorised property sections and many local property brokers have websites. Now there are some specifics to consider when buying a 'new launch' rental. Intended use of the unit Every sale begins with 10 p.c low cost for finish of season sale; changes to 20 % discount storewide; follows by additional reduction of fiftyand ends with last discount of 70 % or extra. Typically there is even a warehouse sale or transferring out sale with huge mark-down of costs for stock clearance. Deborah Regulation from Expat Realtor shares her property market update, plus prime rental residences and houses at the moment available to lease Esparina EC @ Sengkang
  6. Template:Cite paper
  7. 7.0 7.1 20 year-old Real Estate Agent Rusty from Saint-Paul, has hobbies and interests which includes monopoly, property developers in singapore and poker. Will soon undertake a contiki trip that may include going to the Lower Valley of the Omo.

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  9. Template:Cite web
  10. 10.0 10.1 10.2 10.3 10.4 Template:Cite web
  11. Template:Cite web
  12. The Nobel Prize in Physics 2001