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Key Advancements from the SILMARILS Program in Chemical Sensing and Hyperspectral Imaging

机译:SILMARILS计划在化学传感和高光谱成像方面的重要进展

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The Intelligence Advanced Research Projects Activity (IARPA) SILMARILS program aims to develop a portable system for real-time standoff detection and identification of trace chemical residues on surfaces using active infrared spectroscopy at a 30-50 meter range. Program goals include compact size, rapid scan rate, high chemical sensitivity and specificity across a broad range of target classes, effective operation in a real-world environment including background clutter, uncontrolled substrates, and temperature, humidity and background light variations, and a system that is Class 1M eye safe with a visually unobservable illumination beam. Towards these goals, a number of advances have been demonstrated in infrared illumination sources and novel spectroscopic approaches that are both enablers for the program and have wider utility to the next-generation spectroscopic community. This paper describes three key program developments from both a technical capability and a future use perspective: 1) high-sensitivity QCL-based hyperspectral imaging that has demonstrated the ability to detect nanogram quantities of target chemicals as well as identify targets at >25m standoff; 2) an extremely broadband (1.5 -11.5 micron) supercontinuum laser source utilizing a novel cascade of three nonlinear optical fibers coupled to a high-speed rotating-prism Fourier Transform Infrared (FTIR) spectrometer; and 3) a compact, tri-band (Short Waye Infrared (SWIR)/Mid-Wave Infrared (MWIR)/Long Wave Infrared (LWIR) hyperspectral imaging (HSI) sensor employing a spatial interferometric element mounted inside the camera Dewar with a final package size no larger than a conventional panchromatic infrared camera.
机译:情报高级研究计划活动(IARPA)SILMARILS计划旨在开发一种便携式系统,该系统使用主动红外光谱仪在30至50米的范围内实时隔离检测和识别表面上的痕量化学残留物。程序目标包括紧凑的尺寸,快速的扫描速度,在广泛的目标类别中的高化学敏感性和特异性,在实际环境中的有效操作(包括背景混乱,不受控制的基材以及温度,湿度和背景光变化)以及系统具有视觉上无法观察到的照明光束,达到1M类人眼安全。为了实现这些目标,已经在红外照明源和新颖的光谱方法方面展示了许多进步,这些进展既是该计划的推动力,又对下一代光谱社区具有更广泛的实用性。本文从技术能力和未来用途的角度描述了三个关键的程序开发:1)基于QCL的高灵敏度高光谱成像,证明了能够检测纳克数量的目标化学物质并能够在> 25m的对峙中识别目标; 2)一种超宽带(1.5 -11.5微米)超连续谱激光源,它利用新颖的三级非线性光纤级联耦合到高速旋转棱镜傅里叶变换红外(FTIR)光谱仪上;和3)紧凑的三频(短波红外(SWIR)/中波红外(MWIR)/长波红外(LWIR)高光谱成像(HSI)传感器,采用安装在相机杜瓦瓶中的空间干涉仪,最后包装尺寸不超过常规的全色红外摄像机。

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