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Heterodyne Lidar for Chemical Sensing

机译:异源激光雷达用于化学传感

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The overall objective is to assess the detection performance of LWIR (long wavelengh infrared) coherent Lidar systems that potentially possess enhanced effluent detection capabilities. Previous work conducted by Los Alamos has demonstrated that infrared Differential Absorption Lidar (DIAL) is capable of detecting chemicals in plumes from long standoff ranges. Our DIAL approach relied on the reflectivity of topographical targets to provide a strong return signal. With the inherent advantage of applying heterodyne transceivers to approach single-photon detection in LWIR, it is projected that marked improvements in detection range or in spatial coverage can be attained. In some cases, the added photon detection sensitivity could be utilized for sensing "soft targets", such as atmospheric and threat aerosols where return signal strength is drastically reduced, as opposed to topographical targets. This would allow range resolved measurements and could lead to the mitigation of the limiting source of noise due to spectral/spatial/temporal variability of the ground scene. The ability to distinguish normal variations in the background from true chemical signatures is crucial to the further development of sensitive remote chemical sensing technologies. One main difficulty in demonstrating coherent DIAL detection is the development of suitable heterodyne transceivers that can achieve rapid multi-wavelength tuning required for obtaining spectral signature information. LANL has recently devised a novel multi-wavelength heterodyne transceiver concept that addresses this issue. A 5-KHz prototype coherent CO_2 transceiver has been constructed and is being now used to help address important issues in remote CBW agent standoff detection. Laboratory measurements of signal-to-noise ratio (SNR) will be reported. Since the heterodyne detection scheme fundamentally has poor shot-to-shot signal statistics, in order to achieve sensitive detection limits, favorable averaging statistics have to be validated. The baseline coherent DIAL detection sensitivity that can be achieved averaging multiple laser pulses and by comparisons of different wavelengths will be demonstrated. Factors that are presently limiting performance and attempts to circumvent these issues will be discussed.
机译:总体目标是评估可能具有增强的污水检测能力的LWIR(长波长红外)相干激光雷达系统的检测性能。洛斯·阿拉莫斯(Los Alamos)先前进行的工作表明,红外差分吸收激光雷达(DIAL)能够检测远距离范围内烟羽中的化学物质。我们的DIAL方法依靠地形目标的反射率来提供强大的返回信号。利用将外差式收发器应用于LWIR中的单光子检测的固有优势,预计可以实现检测范围或空间覆盖范围的显着改善。在某些情况下,增加的光子检测灵敏度可用于感测“软目标”,例如大气和威胁气溶胶,与地形目标相比,返回信号强度大大降低。由于地面场景的频谱/空间/时间变化,这将允许进行范围分辨的测量,并可能导致限制噪声源的减轻。区分背景中正常变化和真实化学特征的能力对于敏感的远程化学传感技术的进一步发展至关重要。证明相干DIAL检测的一个主要困难是开发合适的外差式收发器,该收发器可以实现获得频谱特征信息所需的快速多波长调谐。 LANL最近设计了一种新颖的多波长外差收发器概念来解决此问题。已经构建了一个5KHz的原型相干CO_2收发器,目前正用于帮助解决远程CBW代理隔离检测中的重要问题。将报告实验室测量的信噪比(SNR)。由于外差检测方案从根本上来说具有较差的逐帧信号统计,因此为了实现敏感的检测极限,必须验证有利的平均统计。将证明平均多个激光脉冲并通过比较不同波长可以实现的基线相干DIAL检测灵敏度。将讨论当前限制性能以及试图避免这些问题的因素。

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