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Effects of optical axis direction on optical path difference and lateral displacement of Savart polariscope |
Zhang Chun-Min(张淳民)†ger, Ren Wen-Yi(任文艺), and Mu Ting-Kui(穆廷魁) |
School of Science, Xi'an Jiaotong University, Xi'an 710049, China; MOE Key Labaratory for Nonequilibrium Synthesis and Modulation of Condensed Matter, Xi'an Jiaotong University, Xi'an 710049, China |
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Abstract A simple method is applied to calculating the optical path difference (OPD) of a plane parallel uniaxial plate with an arbitrary optical axis direction. Then, the theoretical expressions of the OPD and lateral displacement (LD) of Savart polariscope under non-ideal conditions are obtained exactly. The variations of OPD and LD are simulated, and some important conclusions are obtained when the optical axis directions have an identical tolerance of $\pm$ 1$^{{\circ}}$. An application example is given that the tolerances of optical axis directions are gained according to the spectral resolution tolerances of the stationary polarization interference imaging spectrometer (SPIIS). Several approximate formulae are obtained for explaining some conclusions above. The work provides a theoretical guidance for the optic design, crystal processing, installation and debugging, data analysis and spectral reconstruction of the SPIIS.
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Received: 07 April 2009
Revised: 14 July 2009
Accepted manuscript online:
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PACS:
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07.60.Fs
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(Polarimeters and ellipsometers)
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42.15.Eq
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(Optical system design)
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42.15.Dp
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(Wave fronts and ray tracing)
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Fund: Project supported by the State Key
Program of National Natural Science Foundation of China (Grant
No.~40537031), the National Natural Science Foundation of China
(Grant No.~40875013), the National Defense Basic Scientific Research
Project, China (Grant No.~A1420080187), the National High Technology
Research and Development Program of China (Grant No.~2006AA12Z152). |
Cite this article:
Zhang Chun-Min(张淳民), Ren Wen-Yi(任文艺), and Mu Ting-Kui(穆廷魁) Effects of optical axis direction on optical path difference and lateral displacement of Savart polariscope 2010 Chin. Phys. B 19 024202
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