Simulation for Small Lamellar Grating FTIR Spectrometer for Passive Remote Sensing

Q Physics and Astronomy
Y. Chung, Choong-Man Jo, Seong Kyu Kim, I. Kim, Dohyun Park, Hyo-Yook Bae, Y. Kang
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引用次数: 1

Abstract

A miniaturized FTIR spectrometer based on lamellar grating interferometry is being developed for passive remote-sensing. Consisting of a pair of micro-mirror arrays, the lamellar grating can be fabricated using MEMS technology. This paper describes a method to compute the optical field in the interferometer to optimize the design parameters of the lamellar grating FTIR spectrometer. The lower limit of the micro-mirror width in the grating is related to the formation of a Talbot image in the near field and is estimated to be about 100 μm for the spectrometer to be used for the wavelength range of 7-14 μm. In calculating the far field at the detection window, the conventional Fraunhofer equation is inadequate for detection distance of our application, misleading the upper limit of the micro-mirror width to avoid interference from higher order diffractions. Instead, the far field is described by the unperturbed plane-wave combined with the boundary diffraction wave. As a result, the interference from the higher order diffractions turns out to be negligible as the micro-mirror width increases. Therefore, the upper limit of the micro-mirror width does not need to be set. Under this scheme, the interferometer patterns and their FT spectra are successfully generated.
被动遥感小片层光栅FTIR光谱仪仿真研究
研制了一种基于片层光栅干涉法的小型被动遥感红外光谱仪。由一对微镜阵列组成的层状光栅可以用MEMS技术制作。本文介绍了一种计算干涉仪光场的方法,以优化片层光栅FTIR光谱仪的设计参数。光栅微镜宽度的下限与近场Talbot像的形成有关,估计用于7 ~ 14 μm波长范围的光谱仪的下限约为100 μm。在计算探测窗口处的远场时,传统的弗劳恩霍夫方程不适合我们应用的探测距离,误导了微镜宽度的上限,以避免高阶衍射的干扰。相反,远场用无扰动平面波结合边界衍射波来描述。结果表明,随着微镜宽度的增大,高阶衍射的干涉可以忽略不计。因此不需要设置微镜宽度的上限。在此方案下,成功地生成了干涉仪图样及其傅立叶变换光谱。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
0.70
自引率
0.00%
发文量
0
审稿时长
2.3 months
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