Laboratory for Gas Sensors, Department of Microsystems Engineering-IMTEK, University of Freiburg, Georges-Köhler-Allee 102, 79110 Freiburg, Germany.
Fraunhofer Institute for Physical Measurement Techniques IPM, Heidenhofstraße 8, 79110 Freiburg, Germany.
Sensors (Basel). 2018 Feb 27;18(3):709. doi: 10.3390/s18030709.
Comprehensive food chain management requires the monitoring of many parameters including temperature, humidity, and multiple gases. The latter is highly challenging because no low-cost technology for the simultaneous chemical analysis of multiple gaseous components currently exists. This contribution proposes the use of cavity enhanced Raman spectroscopy to enable online monitoring of all relevant components using a single laser source. A laboratory scale setup is presented and characterized in detail. Power enhancement of the pump light is achieved in an optical resonator with a Finesse exceeding 2500. A simulation for the light scattering behavior shows the influence of polarization on the spatial distribution of the Raman scattered light. The setup is also used to measure three relevant showcase gases to demonstrate the feasibility of the approach, including carbon dioxide, oxygen and ethene.
综合食物链管理需要监测许多参数,包括温度、湿度和多种气体。后者极具挑战性,因为目前尚无低成本技术可以同时对多种气体成分进行化学分析。本研究提出利用腔增强拉曼光谱学(Cavity Enhanced Raman spectroscopy),仅使用单个激光源,即可实现所有相关成分的在线监测。本文详细介绍了实验室规模的设置和特点。在精细度超过 2500 的光学谐振器中实现了泵浦光的功率增强。散射光的空间分布对偏振的影响的模拟表明了光散射行为的影响。该设置还用于测量三种相关展示气体,以证明该方法的可行性,包括二氧化碳、氧气和乙烯。