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Spectrograph
(redirected from spectrographic)

   Also found in: Dictionary/thesaurus, Medical, Wikipedia 0.01 sec.
spectrograph [′spek·trə‚graf]
(spectroscopy)
A spectroscope provided with a photographic camera or other device for recording the spectrum.

Spectrograph

An optical instrument that consists of an entrance slit, collimator, disperser, camera, and detector and that produces and records a spectrum. A spectrograph is used to extract a variety of information about the conditions that exist where light originates and along the paths of light. It reveals the details that are stored in the light's spectral distribution, whether this light is from a source in the laboratory or a quasistellar object a billion light-years away.

Spectrograph design takes into account the type of light source to be measured, and the circumstances under which these measurements will be made. Since observational astronomy presents unusual problems in these areas, the design of astronomical spectrographs may also be unique.

Astronomical spectrographs have the same general features as laboratory spectrographs (see illustration). The width of the entrance slit influences both spectral resolution and the amount of light entering the spectrograph, two of the most important variables in spectroscopy. The collimator makes this light parallel so that the disperser (a grating or prism) may properly disperse it. The camera then focuses the dispersed spectrum onto a detector, which records it for further study.

Basic optical components of a spectrographenlarge picture
Basic optical components of a spectrograph

Laboratory spectrographs usually function properly only in a fixed orientation under controlled environmental conditions. By contrast, most astronomical spectrographs are used on a moving telescope operating at local temperature. Thus, their structures must be mechanically and optically insensitive to orientation and temperature.

The brightness, spectral characteristics, and geometry of laboratory sources may be tailored to experimental requirements and to the capabilities of a spectrograph. Astronomical sources, in the form of images at the focus of a telescope, cannot be manipulated, and their faintness and spectral diversity make unusual and difficult demands on spectrograph performance.

Typical laboratory spectrographs use either concave gratings, which effectively combine the functions of collimator, grating, and camera in one optical element, or plane reflection gratings with spherical reflectors for collimators and cameras.


Spectrograph 

a spectroscopic device in which a radiation detector records virtually simultaneously the entire spectrum that is spread out in the focal plane of the optical system. The radiation detectors in spectrographs may be photographic materials, multicomponent photodetectors, or image tubes. If the recording device is suited for the study of spectra that vary rapidly with time, then the spectrographs are known as fast spectrographs. In Soviet usage, fast spectrographs are divided, according to their design, into kinospectrographs, spectrochronographs, and chronospectrographs.



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This is because spectrographic images, which reveal the mineralogy of the surface, showed no hydrated minerals (such as clays) and no salts left behind by the water, which would have quickly evaporated in the dry Martian air.
Spectrographic analysis of speaking does provide evidence of phonemic primitives (made up of those features of a phoneme which remain stable and distinguishing regardless of context), and also substantial information about the context-dependent production of phonemes and the variations of phonemes (allophones) in different spoken word contexts (McLeod & Searl, 2006; McLeod, 2007).
Carle Pieters of Brown University in Rhode Island and colleagues reviewed data from India's Chandrayaan-1 probe - India's first mission to the moon - and found spectrographic evidence of water.
 
 
 
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