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Digital micromirror devices in Raman trace detection of explosives

机译:拉曼痕量爆炸物痕迹检测中的数字微镜设备

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Imaging Raman spectroscopy based on tunable filters is an established technique for detecting single explosives particles at stand-off distances. However, large light losses are inherent in the design due to sequential imaging at different wavelengths, leading to effective transmission often well below 1 %. The use of digital micromirror devices (DMD) and compressive sensing (CS) in imaging Raman explosives trace detection can improve light throughput and add significant flexibility compared to existing systems. DMDs are based on mature microelectronics technology, and are compact, scalable, and can be customized for specific tasks, including new functions not available with current technologies. This paper has been focusing on investigating how a DMD can be used when applying CS-based imaging Raman spectroscopy on stand-off explosives trace detection, and evaluating the performance in terms of light throughput, image reconstruction ability and potential detection limits. This type of setup also gives the possibility to combine imaging Raman with non-spatially resolved fluorescence suppression techniques, such as Kerr gating. The system used consists of a 2nd harmonics Nd:YAG laser for sample excitation, collection optics, DMD, CMOS-camera and a spectrometer with ICCD camera for signal gating and detection. Initial results for compressive sensing imaging Raman shows a stable reconstruction procedure even at low signals and in presence of interfering background signal. It is also shown to give increased effective light transmission without sacrificing molecular specificity or area coverage compared to filter based imaging Raman. At the same time it adds flexibility so the setup can be customized for new functionality.
机译:基于可调谐滤光片的成像拉曼光谱技术是一种用于在相距距离处检测单个炸药颗粒的成熟技术。但是,由于在不同波长下进行顺序成像,设计中固有的大量光损耗会导致有效透射率通常远低于1%。与现有系统相比,在成像拉曼炸药痕迹检测中使用数字微镜设备(DMD)和压缩感测(CS)可以提高光通量并增加显着的灵活性。 DMD基于成熟的微电子技术,并且结构紧凑,可扩展,并且可以针对特定任务进行定制,包括当前技术无法提供的新功能。本文一直致力于研究将基于CS的成像拉曼光谱技术应用于对峙炸药痕量检测时如何使用DMD,并在光通量,图像重建能力和潜在检测限方面评估性能。这种类型的设置还可以将拉曼成像与非空间分辨的荧光抑制技术(例如Kerr门控)相结合。所使用的系统由用于样品激发的二次谐波Nd:YAG激光器,采集光学器件,DMD,CMOS相机以及带有ICCD相机的光谱仪用于信号选通和检测。压缩感测成像拉曼的初步结果显示,即使在低信号和存在干扰背景信号的情况下,重建过程也稳定。与基于滤光片的拉曼成像相比,它还显示出在不牺牲分子特异性或面积覆盖的情况下增加了有效的透光率。同时,它增加了灵活性,因此可以针对新功能自定义设置。

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