论文标题
用于远程检测氯气体的紫外拉曼光谱
Ultraviolet Raman Spectroscopy for Remote Detection of Chlorine Gas
论文作者
论文摘要
作为行业经常使用的主要材料,氯相对容易获得,即使大量也可以使用。尽管毒性很高,但分子氯还是很容易获得的,因为它是化学工业中必不可少的选择。在过去的几十年中,发生了许多涉及受伤和死亡受害者的事故。此外,上个世纪初,它已经被滥用为战争特工,但仍报道了袭击。对来源和云运动的早期检测,本地化和监测对于保护固定设施,移动操作和公众至关重要。与大多数化学危险材料相比,可以通过振动光谱方法检测到它们(例如红外线中的被动超光谱吸收技术),卤素无效至红外吸收。基于拉曼的技术依赖于分子的极化性的变化,并提供对这种双原子分子的振动 - 光谱访问,因此缩小了红外检测能力的差距。在这里,我们为反向散射配置中的对峙拉曼检测器提供了一种直接的方法。本文使用简化的模型讨论可实现检测范围中的最佳激发波长。我们通过自发(振动)拉曼光谱测量值在20到60 〜m的隔离距离之间验证该模型。我们还简要讨论了检测性能以及技术和物理方面,作为系统设计的前景。
As a primary material frequently used in industry, chlorine is relatively easy to obtain and available even in large quantities. Despite its high toxicity, molecular chlorine is readily available since it is an essential educt in the chemical industry. Over the past decades, numerous accidents involving injured and dead victims have occurred. Furthermore, it was already misused as a warfare agent at the beginning of the last century with still reported attacks. Early detection, localization, and monitoring of sources and cloud movements are essential for protecting stationary facilities, mobile operations, and the public. In contrast to most chemical hazardous materials, where it is possible to detect them by vibrational spectroscopic methods (e.\,g., passive hyper-spectral absorption technologies in the infrared), halogens are inactive to infrared absorption. Raman-based technologies rely on changes in the polarizability of the molecule and provide vibrational-spectroscopic access to such diatomic molecules and therefore close the gap in infrared detection capabilities. Here we present a straightforward approach for a standoff Raman detector in a backscattering configuration. This paper uses a simplified model to discuss optimum excitation wavelengths in achievable detection ranges. We validate the model by spontaneous (vibrational) Raman spectroscopic measurements between 20 and 60~m standoff distance. We also briefly discuss detection performances and technical and physical aspects as prospects of system design.