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Deep Ultra-Violet Raman Spectroscopy for Eyesafe Standoff Chemical Threat Detection

机译:深度紫外拉曼光谱技术用于眼安全区隔化学威胁检测

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Chemical threat detection has long been of interest to military, law enforcement, environmental agencies, and forensic investigators. Recently, as the propensity for both foreign and homegrown terrorism, illegal drug manufacture, and concern for environmental regulation continues to grow, the demand for rapid, portable chemical threat detection capabilities has increased dramatically. In particular, the ability to identify chemical threats (explosives, narcotics, toxic industrial chemicals, etc.) at a distance (standoff) is of special interest as it increases the safety of the end user during interrogation. Traditional analytical laboratory techniques such as high-performance liquid chromatography or gas chromatography coupled with mass spectrometry offer excellent sensitivity for detection and identification of trace amounts of threatening material. However, these techniques often lack the portability necessary for remote on-site interrogation as samples must be physically collected and brought to a laboratory for analysis. Vibrational spectroscopic techniques offer both the chemical identification and miniaturization capabilities required for portable, on-site chemical threat detection. Most importantly, spectroscopic techniques are inherently and uniquely standoff, where emitted or scattered photons are collected at some distance from the sample. The challenge then becomes miniaturizing the instrumentation while maximizing the distance at which accurate chemical detection can be made. Here we report on portable chemical threat detection instrumentation developed by Alakai Defense Systems, which employs deep ultra-violet Raman spectroscopy. We discuss the general system aspects such as basic optical design and ambient light rejection techniques. We also present data on the performance capabilities using several substances including actual narcotics and other compounds commonly used as cutting agents. Lastly, we discuss possible future directions including the ability for rapid spectroscopy while maintaining high photon detection sensitivity by employing an intensified scientific CMOS (sCMOS) and the propensity for NIR standoff Raman detection using deep-depletion CCD technology.
机译:长期以来,化学威胁检测一直受到军事,执法,环境机构和法医调查人员的关注。近来,随着外国和本土恐怖主义,非法药物制造以及对环境法规的关注持续增长,对快速,便携式化学威胁检测功能的需求已急剧增加。特别是,在远处(对峙)识别化学威胁(爆炸物,麻醉品,有毒工业化学物质等)的能力特别受关注,因为它提高了最终用户在讯问过程中的安全性。诸如高效液相色谱法或气相色谱法与质谱联用的传统分析实验室技术为检测和鉴定痕量威胁物质提供了出色的灵敏度。但是,这些技术通常缺乏远程现场询问所必需的便携性,因为必须对样品进行物理收集并将其带到实验室进行分析。振动光谱技术可提供便携式现场化学威胁检测所需的化学识别和小型化功能。最重要的是,光谱技术是固有且独特的对峙技术,在这种技术中,发射或散射的光子在距样品一定距离处收集。然后,挑战就在于使仪器小型化,同时最大化可以进行精确化学检测的距离。在这里,我们报告由Alakai防御系统公司开发的便携式化学威胁检测仪器,该仪器采用了深紫外拉曼光谱技术。我们讨论了一般的系统方面,例如基本的光学设计和环境光抑制技术。我们还提供了使用几种物质的性能数据,包括实际的麻醉品和通常用作切削剂的其他化合物。最后,我们讨论了可能的未来方向,包括通过采用增强型科学CMOS(sCMOS)来保持高光子检测灵敏度的同时,快速光谱分析的能力以及使用深耗尽CCD技术进行近红外拉曼检测的可能性。

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