Adaptive optics 216049 225626860 2008-07-14T16:56:42Z BodhisattvaBot 6228552 robot Modifying: [[sv:Teleskop#Adaptiv optik]] [[Image:Adaptive optics correct.png|thumb|A deformable mirror can be used to correct wavefront errors in an astronomical telescope.]] '''Adaptive optics''' is a [[technology]] to improve the performance of [[optics|optical systems]] by reducing the effects of rapidly changing optical distortion. It is commonly used on astronomical telescopes to remove the effects of atmospheric distortion, or [[astronomical seeing]]. Adaptive optics works by measuring the distortion and rapidly compensating for it either using deformable [[mirror]]s or material with variable refractive properties. Adaptive Optics was first envisioned by [[Horace W. Babcock]] in 1953. While the technique was theoretically understood for some time, it was only advances in [[computer]] technology during the 1990s that finally made the technique practical. Adaptive optics should not be confused with [[active optics]], which works on a longer timescale to correct the primary mirror geometry itself. The simplest form of adaptive optics is '''tip-tilt''' correction, which corresponds to correction of the [[Tilt (optics)|tilts]] of the wavefront in two dimensions (equivalent to correction of the position offsets for the image). This is performed using a rapidly moving tip-tilt mirror which makes small rotations around two of its axes. A significant fraction of the aberration introduced by the atmosphere can be removed in this way. Tip-tilt mirrors are widely used in night time and solar [[telescope]]s, to correct the aberration introduced by the [[Earth's atmosphere|atmosphere]] on the light path and improve image quality over what would be possible according to the atmospheric [[astronomical seeing|seeing]]. Tip-tilt mirrors are effectively segmented adaptive optics mirrors having only one segment which can tip and tilt, rather than having an array of multiple segments which can tip and tilt independently. [[Image:Shack hartmann.png|thumb|The [[Shack-Hartmann|Shack-Hartmann sensor]] is one type of wavefront sensor used for adaptive optics. The telescope aperture is subdivided using a lenslet array into a large number of sub-apertures and imaged on a CCD. The tilt of the optical wavefronts is measured at each sub-aperture, and the tilts are used to reconstruct a coarse ([[Pixelation|pixellated]]) model for the shape of the original wavefront.]] == Introduction == When [[light]] from a [[star]] or another [[astronomical object]] enters the [[Earth's atmosphere]], [[turbulence]] (introduced, for example, by different temperature layers and different wind speeds interacting) distort and move the image in various ways<ref>{{cite conference|last=Max|first=Claire|conference=American Astronomical Society 197th Meeting|format=pdf|title=Introduction to Adaptive Optics and its History}}</ref> (see [[astronomical seeing]] for a full discussion). Images produced by any telescope larger than a few metres are blurred by these distortions. For example, an 8-10 m telescope (like the [[Very Large Telescope|VLT]] or [[Keck telescope|Keck]]) can produce AO-corrected images with a [[angular resolution]] of 30-60 milli-[[arcsecond]] (mas) [[Image resolution|resolution]] at infrared wavelengths, while the resolution without correction is of the order of 1 [[arcsecond]]. [[Image:Ao movie.gif|thumb|right|Negative images of a star through a telescope. The left-hand panel shows the slow-motion movie of a star when the adaptive optics system is switched off. The right-hand panel shows the slow motion movie of the same star when the adaptive optics system is switched on. The image of the star is much more compact, and breaks up less with adaptive optics switched on. However, the image of the star also changes shape much more quickly when the adaptive optics system is switched on.]] An adaptive optics system tries to correct these distortions, using a [[wavefront sensor]] which takes some of the astronomical light, a deformable mirror that lies in the optical path, and a computer that receives input from the detector. The wavefront sensor measures the distortions the atmosphere has introduced on the timescale of a few milliseconds; the computer calculates the optimal mirror shape to correct the distortions and the surface of the deformable mirror is reshaped accordingly. In order to perform adaptive optics correction, the shape of the incoming wavefronts must be measured as a function of position in the telescope aperture plane. Typically the circular telescope aperture is split up into an array of [[pixel]]s in a wavefront sensor, either using an array of small [[lenslet]]s (a [[Shack-Hartmann]] sensor), or using a curvature or pyramid sensor which operates on images of the telescope aperture. The mean wavefront perturbation in each pixel is calculated. This pixellated map of the wavefronts is fed into the deformable mirror and used to correct the wavefront errors introduced by the atmosphere. It is not necessary for the shape or size of the astronomical object to be known - even [[Solar System]] objects which are not point-like can be used in a Shack-Hartmann wavefront sensor, and time-varying structure on the surface of the Sun is commonly used for adaptive optics at solar telescopes. The deformable mirror corrects incoming light so that the images appear sharp. Because a science target is often too faint to be used as a reference star for measuring the shape of the optical wavefronts, a nearby brighter [[guide star]] can be used instead. The light from the science target has passed through approximately the same atmospheric turbulence as the reference star's light and so its image is also corrected, although generally to a lower accuracy. The necessity of a reference star means that an adaptive optics system cannot work everywhere on the sky, but only where a [[guide star]] of sufficient [[luminosity]] (for current systems, about [[Apparent magnitude|magnitude]] 12-15) can be found very near to the object of the observation. This severely limits the application of the technique for astronomical observations. Another major limitation is the small field of view over which the adaptive optics correction is good. As the distance from the [[guide star]] increases, the image quality degrades. A technique known as "multiconjugate adaptive optics" uses several deformable mirrors to achieve a greater field of view. An alternative is the use of a [[laser beam]] to generate a reference light source (a [[Laser guide star]], LGS) in the atmosphere. LGSs come in two flavors: Rayleigh guide stars and [[sodium]] guide stars. Rayleigh guide stars work by propagating a laser, usually at near ultraviolet wavelengths, and detecting the backscatter from air at altitudes between 15-25 km. Sodium guide stars use laser light at 589 [[nanometer|nm]] to excite sodium atoms in the [[mesosphere]] and [[thermosphere]], which then appear to "glow". The LGS can then be used as a wavefront reference in the same way as a natural guide star - except that (much fainter) natural reference stars are still required for image position (tip/tilt) information. The lasers are often pulsed, with measurement of the atmosphere being limited to a window occurring a few microseconds after the pulse has been launched. This allows the system to ignore most scattered light at ground level; only light which has travelled for several microseconds high up into the atmosphere and back is actually detected. Other approaches that can yield resolving power exceeding the limits of atmospheric seeing include [[speckle imaging]], [[aperture synthesis]], [[lucky imaging]] and [[space-based telescope|space telescopes]] such as [[NASA]]'s [[Hubble Space Telescope]]. ==Uses of adaptive optics== <!-- Image with unknown copyright status removed: [[Image:50Wfasor.jpg|thumb|right|300pix|[[Starfire Optical Range]] Sodium Fasor built by [[Air Force Research Laboratory]] (AFRL) Directed Energy Directorate.]] --> Besides its obvious use for improving nighttime astronomical imaging, adaptive optics technology has also been used recently to image individual [[cone cell|cone]] [[photoreceptor]]s in the living, human [[eye]]. Adaptive optics is used for solar astronomy at observatories such as the [[Swedish Solar Telescope]]. It is also expected to play a military role by allowing ground-based and airborne [[laser]] weapons to reach and destroy targets at a distance including [[satellite]]s in [[orbit]]. The [[Boeing]] [[Airborne Laser]] programme is the principal example of this. Adaptive optics has been used to enhance the performance of [[Free Space Optics|free space optical communication]] systems [http://www.adaptiveoptics.org/News_0605_1.html]. Medical applications include imaging of the [[retina]], where it has been combined with [[optical coherence tomography]] [http://www.adaptiveoptics.org/News_0406_2.html]. Development of an Adaptive Optics Scanning Microscope (ASOM) was announced by [[Thorlabs]] in April 2007. Adaptive and [[active optics]] are also being developed for use in glasses to achieve better than 20/20 vision, initially for military applications[http://www.asd-network.com/press_detail_B.asp?ID=6486]. ==Beam stabilization== A rather simple example is the stabilization of the position and direction of laser beam between modules in a large free space optical communication system. [[Fourier optics]] is used to control both direction and position. The actual beam is measured by [[photo diode]]s. This signal is fed into some [[Analog-to-digital converter]]s and a [[microcontroller]] runs a [[PID controller]] algorithm. The controller drives some [[digital-to-analog converter]]s which drive [[stepper motor]]s attached to [[mirror mount]]s. If the beam is to be centered onto 4-quadrant diodes, no [[Analog-to-digital converter]] is needed. [[Operational amplifier]]s are sufficient. == See also == * [[Active optics]] * [[Nonlinear optics#Optical phase conjugation|Nonlinear optics: Optical Phase Conjugation]] * [[Wavefront]] * [[Wavefront sensor]] * [[Deformable mirror]] * [[Holography#Real-time holography|Holography: Real-time holography]] * [[Image stabilization]] * [[Angular diameter]] * [[Angular size]] * [[ADONIS: ADaptive Optics Near Infrared System|ADONIS]] ==References== <references/> {{Unreferenced|date=April 2008}} == External links == * [http://www.eso.org/projects/aot/introduction.html Description of Active & Adaptive Optics] E.S.O. * [http://www.ctio.noao.edu/~atokovin/tutorial/intro.html Adaptive Optics Tutorial at CTIO] A. Tokovinin * [http://www.adaptiveoptics.org/Establishments.html Research groups and companies with interests in Adaptive Optics] * [http://cfao.ucolick.org/ NSF Center for Adaptive Optics at UC Santa Cruz] * [http://caao.as.arizona.edu/ Center for Astronomical Adaptive Optics at The University of Arizona] * [http://www.cvs.rochester.edu/people/d_williams/ao_research/ao_research.htm Using Adaptive Optics to image photoreceptors] * [http://www.gemini.edu/bullet Gemini's Laser Vision Reveals Striking New Details in Orion Nebula] * [http://www.4engr.com/research/catalog/155/index.html Adaptive optics pinpoints on black holes] * [http://www.bostonmicromachines.com Deformable Mirrors for wavefront correction] Boston Micromachiens Corporation * [http://www.okotech.com Closed-loop AO systems] OKO Tech * [http://www.alpao.fr Deformable mirrors and AO systems] ALPAO * [http://www2.keck.hawaii.edu/news/science/uranus/ Uranus in 2004] (with and without AO) [[Category:Atmospheric and ocean optics]] [[Category:Telescopes]] [[Category:Astronomical imaging]] [[bs:Adaptivna optika]] [[de:Adaptive Optik]] [[es:Óptica adaptativa]] [[fr:Optique adaptative]] [[hr:Adaptivna optika]] [[it:Ottica adattiva]] [[lt:Adaptyvioji optika]] [[ja:補償光学]] [[pl:Optyka adaptatywna]] [[simple:Adaptive optics]] [[fi:Adaptiivinen optiikka]] [[sv:Teleskop#Adaptiv optik]] [[zh:自适应光学]]