Research of High Sensitivity Cavity Ring-Down Spectroscopy Technology and Its Application

被引:0
|
作者
Liu W. [1 ]
Wang X. [1 ,2 ]
Ma G. [1 ,3 ]
Liu Y. [1 ,3 ]
Zhao Z. [4 ]
Li X. [1 ]
Deng H. [1 ]
Chen B. [1 ]
Kan R. [1 ]
机构
[1] Key Laboratory of Environmental Optics and Technology, Anhui Institute of Optics and Fine Mechanics, Hefei Institute of Physical Science, Chinese Academy of Sciences, Hefei
[2] School of Engineering Science, University of Science and Technology of China, Hefei
[3] School of Science Island, University of Science and Technology of China, Hefei
[4] College of Information Science and Engineering, Northeastern University, Shenyang
来源
Guangxue Xuebao/Acta Optica Sinica | 2021年 / 41卷 / 01期
关键词
Cavity ring-down spectroscopy; High sensitivity; Molecular detection; Spectroscopy;
D O I
10.3788/AOS202141.0130003
中图分类号
学科分类号
摘要
Cavity ring-down spectroscopy (CRDS) technology has high precision, high sensitivity, and large linear dynamic range, and is widely used in environmental carbon and water cycle monitoring, human expiratory monitoring, and deep sea/ocean dissolved gas monitoring. This review article briefly introduces the basic principle of CRDS and its development history, and summarizes the recent progress in the application of trace gas and isotope detection in domestic and foreign research institutions. The content, the achieved progress, and the existing problems of our research are given in detail in the fields of environmental atmospheric greenhouse gas detection, Qinghai-Tibet Plateau gas profile detection, and deep-sea dissolved gases and their isotopes detection. Application prospect and future development trend of CRDS in trace gas detection are prospected. © 2021, Chinese Lasers Press. All right reserved.
引用
收藏
相关论文
共 133 条
  • [61] Hu C L, Perevalov V I, Cheng C F, Et al., Optical-optical double-resonance absorption spectroscopy of molecules with kilohertz accuracy, The Journal of Physical Chemistry Letters, 11, 18, pp. 7843-7848, (2020)
  • [62] Hua T P, Sun Y R, Wang J, Et al., Frequency metrology of molecules in the near-infrared by NICE-OHMS, Optics Express, 27, 5, pp. 6106-6115, (2019)
  • [63] Zhao G., Design and optimization of ultrasensitive noise-immune cavity enhanced optical heterodyne molecular spectroscopy, pp. 91-99, (2018)
  • [64] Ma W G, Zhou Y T, Zhao G, Et al., Review on noise immune cavity enhanced optical heterodyne molecular spectroscopy, Chinese Journal of Lasers, 45, 9, (2018)
  • [65] Jia M Y, Zhao G, Hou J J, Et al., Research and data processing of double locked cavity ringdown absorption spectroscopy, Acta Physica Sinica, 65, 12, (2016)
  • [66] Jia M Y., Investigation of trace gas detection based on noise-immune cavity-enhanced optical heterodyne molecular spectroscopy, pp. 31-41, (2018)
  • [67] Zhou Y T, Liu J X, Guo S J, Et al., Laser frequency stabilization based on a universal sub-Doppler NICE-OHMS instrumentation for the potential application in atmospheric lidar, Atmospheric Measurement Techniques, 12, 3, pp. 1807-1814, (2019)
  • [68] Yang L, Lin H, Feng X J, Et al., Saturation cavity ring-down spectrometry using a dynamical relaxation model, Optics Express, 27, 3, pp. 1769-1776, (2019)
  • [69] Yang L, Lin H, Plimmer M D, Et al., Measurement of the spectral line positions in the 2v3 R(6) manifold of methane, Journal of Quantitative Spectroscopy and Radiative Transfer, 245, (2020)
  • [70] Yang L, Lin H, Feng X J, Et al., Lineshape parameter measurement of the 2ν<sub>3</sub> R1 manifold of methane using cavity ring-down spectroscopy, Spectroscopy and Spectral Analysis, 38, S1, pp. 299-300, (2018)