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Diffracted wavefront measurement of a volume phase holographic grating at cryogenic temperature

机译:体相全息光栅在低温下的衍射波前测量

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Flatness of the wavefront diffracted by grating can be mandatory for some applications. At ambient temperature, the wavefront diffracted by a volume phase holographic grating (VPHG) is well mastered by the manufacturing process and can be corrected or shaped by postpolishing. However, to be used in cooled infrared spectrometers, VPHGs have to stand and work properly at low temperatures. We present the measurement of the wavefront diffracted by a typical VPHG at various temperatures down to 150 K and at several thermal inhomogeneity amplitudes. The particular grating observed was produced using a dichromated gelatine technique and encapsulated between two glass blanks. Diffracted wavefront measurements show that the wavefront is extremely stable according to the temperature as long as the latter is homogeneous over the grating stack volume. Increasing the thermal inhomogeneity increases the wavefront error that pinpoints the importance of the final instrument thermal design. This concludes the dichromated gelatine VPHG technology, used more and more in visible spectrometers, can be applied as it is to cooled IR spectrometers.
机译:对于某些应用,由光栅衍射的波前的平坦度可能是强制性的。在环境温度下,由体积相全息光栅(VPHG)衍射的波阵面在制造过程中得到了很好的控制,可以通过后抛光进行校正或整形。但是,要在冷却的红外光谱仪中使用,VPHG必须在低温下站立并正常工作。我们介绍了典型的VPHG在低至150 K的各种温度和几个热不均匀振幅下衍射的波前的测量结果。观察到的特定光栅是使用重铬酸盐明胶技术生产的,并封装在两个玻璃毛坯之间。衍射波前的测量结果表明,只要温度在光栅叠层体积上均匀,波前就根据温度极其稳定。热不均匀性的增加会增加波前误差,从而明确了最终仪器热设计的重要性。由此得出结论,可见铬光谱仪中越来越多地使用了重铬酸盐明胶VPHG技术,因为它已应用于冷却的红外光谱仪中。

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