Detection of water vapour based on integrated cavityoutput spectroscopy

被引:0
作者
Pei S. [1 ]
Cui F. [1 ]
Zhang C. [1 ]
Li C. [1 ,2 ]
机构
[1] College of Math and Physics, Nanjing University of Information Science and Technology, Nanjing
[2] College of Electronic Engineering, Guangxi Normal University, Guilin
来源
Guangxue Xuebao/Acta Optica Sinica | 2010年 / 30卷 / 12期
关键词
Integrated cavity output spectroscopy (ICOS); Sensitivity; Spectroscopy; Tunable diode laser; Water vapour;
D O I
10.3788/AOS20103012.3655
中图分类号
学科分类号
摘要
A system of integrated cavity output spectroscopy (ICOS) based on a tunable distributed feedback (DFB) diode laser (TDL) is described. In this system a tunable DFB diode laser with the central output wavelength 1315 nm is used as the light source, the length of the absorption cell is 38 cm which is consisted by two mirrors with high reflectivity, near the laser central wavelength 1315 nm, the mirror's reflectivity is about 99.7%. Presentation of experimental principle, experimental scheme and diode laser wavelength calibration are given; As experimental result, the absorption spectrum of water vapour at 7612.026, 7612.269 and 7610.224 cm-1 are obtained and a detection sensitivity of 2.02 × 10-7 cm-1 has been achieved. It is experimentally demonstrated that ICOS is a high sensitive and high resolution spectral technology with the advantage of simple experimental setup and easy operation.
引用
收藏
页码:3655 / 3659
页数:4
相关论文
共 17 条
[1]  
Geng X., Chen B., Zhu W., Et al., Study on the relation between integration spectrum and accuracy of near infrared spectroscopic analysis, Acta Optica Sinica, 29, 12, pp. 3551-3555, (2009)
[2]  
Tan Z., Long X., Huang Y., Et al., Etaloning effects in continuous-wave cavity ring down spectroscopy, Chinese J. Lasers, 35, 10, pp. 1563-1566, (2008)
[3]  
Wei H., Wu C., Gong Z., High-resolution absorption spectra of real atmosphere at 1.315 μm, High Power Laser and Particle Beams, 14, 1, pp. 35-40, (2002)
[4]  
Reicherta L., Andres Hernandeza M.D., Burrowsa J.P., Et al., First CRDS-measurements of water vapour continuum in the 940 nm absorption band, J. Quantitative Spectroscopy & Radiative Transfer, 105, 2, pp. 303-311, (2007)
[5]  
Deng L., Gao X., Cao Z., Et al., Difference-frequency generation in PPLN and water vapor detection in air, Spectroscopy and Spectral Analysis, 127, 11, pp. 2186-2189, (2007)
[6]  
Tan Z., Long X., Huang Y., Measurement of broadening coefficients of water vapor molecules near 1.517 μm with continuous-wave cavity ring down spectroscopy, High Power Laser and Particle Beams, 21, 7, pp. 1003-1007, (2009)
[7]  
Wang J., Xiao Q., Zeng S., Dispersion measurements of water with spectral interferometry, Chin. Opt. Lett., 7, 6, pp. 486-488, (2009)
[8]  
Schermaul R., Learner R.C.M., Canas A.A.D., Et al., Weak line water vapor spectra in the region 13200~15000 cm<sup>-1</sup>, J. Molecular Spectroscopy, 211, 2, pp. 169-178, (2002)
[9]  
Taylor J.P., Newman S., Hewison T.J., Et al., Water vapour line and continuum absorption in the thermal infrared-reconciling models and observations, Quarterly J. Royal Meteorological Society, 129, 594, pp. 2949-2969, (2003)
[10]  
Toth R.A., Measurements of H<sub>2</sub><sup>16</sup>O line positions and strengths: 11610 to 12861 cm<sup>-1</sup>, J. Molecular Spectroscopy, 166, 1, pp. 176-183, (1994)