College of Information Science and Engineering, Ocean University of China, Qingdao 266100, China.
Laser Institute, Qilu University of Technology (Shandong Academy of Sciences), Qingdao 266000, China.
Sensors (Basel). 2021 May 19;21(10):3539. doi: 10.3390/s21103539.
Multiple reflection has been proven to be an effective method to enhance the gas detection sensitivity of Raman spectroscopy, while Raman gas probes based on the multiple reflection principle have been rarely reported on. In this paper, a multi-reflection, cavity enhanced Raman spectroscopy (CERS) probe was developed and used for in situ multi-component gas detection. Owing to signal transmission through optical fibers and the miniaturization of multi-reflection cavity, the CERS probe exhibited the advantages of in situ detection and higher detection sensitivity. Compared with the conventional, backscattering Raman layout, the CERS probe showed a better performance for the detection of weak signals with a relatively lower background. According to the 3σ criteria, the detection limits of this CERS probe for methane, hydrogen, carbon dioxide and water vapor are calculated to be 44.5 ppm, 192.9 ppm, 317.5 ppm and 0.67%, respectively. The results presented the development of this CERS probe as having great potential to provide a new method for industrial, multi-component online gas detection.
多次反射已被证明是增强拉曼光谱气体检测灵敏度的有效方法,而基于多次反射原理的拉曼气体探头则很少有报道。本文开发了一种多反射、腔增强拉曼光谱(CERS)探头,并用于现场多组分气体检测。由于通过光纤传输信号和多反射腔的小型化,CERS 探头具有原位检测和更高检测灵敏度的优点。与传统的背散射拉曼布局相比,CERS 探头在检测较弱信号时具有更好的性能,背景噪声相对较低。根据 3σ 准则,计算出该 CERS 探头对甲烷、氢气、二氧化碳和水蒸气的检测限分别为 44.5ppm、192.9ppm、317.5ppm 和 0.67%。结果表明,该 CERS 探头的开发具有很大的潜力,可以为工业多组分在线气体检测提供一种新方法。