一种为基于mems的小型化FTIR光谱仪制造表面微机械三维光学组件的新方法

SPIE MOEMS-MEMS Pub Date : 2008-02-08 DOI:10.1117/12.764006
D. Reyes, E. Schildkraut, J. Kim, R. Connors, P. Kotidis, D. J. Cavicchio
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引用次数: 17

摘要

本文描述了用于检测和识别有毒或可燃气体的小型化傅立叶变换红外(FTIR)光谱仪的设计、制造和表征。通过测量目标材料对红外辐射的吸收,可以实现明确的检测和识别。该器件的关键部件是一个能够调制2 - 14 μm光谱区域光的微机械迈克尔逊干涉仪。讨论了与开发MEMS干涉仪模块相关的两项主要技术成就:开发具有较大调制行程的微镜组件,以接近实验室仪器级光谱分辨率;采用多层表面微加工技术组装单片毫米级光学元件,生产成本极低的MEMS干涉仪,具有前所未有的光吞吐量。我们已经制造并测试了这个设备。报道的光学表征结果包括使用可见光波长从组装的迈克尔逊干涉仪获得的精确对齐的静态干涉图,这保证了其尺寸的高灵敏度FTIR光谱仪。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A novel method of creating a surface micromachined 3D optical assembly for MEMS-based miniaturized FTIR spectrometers
This paper describes design, fabrication, and characterization of a miniaturized, Fourier transform infrared (FTIR) spectrometer for the detection and identification of toxic or flammable gases. By measuring the absorption by the target material of IR radiation, unambiguous detection and identification can be achieved. The key component of the device is a micromachined Michelson interferometer capable of modulating light in the 2 - 14 μm spectral region. Two major technical achievements associated with developing a MEMS interferometer module are discussed: development of a micromirror assembly having an order of magnitude larger modulation stroke to approach laboratory instrument-grade spectral resolutions; and assembly of monolithic, millimeter-scale optical components using multi-layer surface micromachining techniques to produce an extremely low cost MEMS interferometer, which has an unprecedented optical throughput. We have manufactured and tested the device. Reported optical characterization results include a precisely aligned, static interferogram acquired from an assembled Michelson interferometer using visible light wavelengths, which promises a high sensitivity FTIR spectrometer for its size.
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