Chinese Journal of Lasers, Volume. 40, Issue 4, 408002(2013)
Laser Methane Remote Sensing Technology Based on Digital Feedback Frequency Stabilization
[2] [2] W. Johnstone, A. J. McGettrick, K. Duffin et al.. Tunable diode laser spectroscopy for industrial process applications: system characterization in conventional and new approaches[J]. IEEE Sensors Journal, 2008, 8(7): 1079~1088
[3] [3] L. C. Philippe, R. K. Hanson. Laser diode wavelength-modulation spectroscopy for simultaneous measurement of temperature, pressure, and velocity in shock-heated oxygen flows[J]. Appl. Opt., 1993, 32(30): 6090~6103
[4] [4] K. Duffin, A. J. McGettrick, W. Johnstone et al.. Tunable diode-laser spectroscopy with wavelength modulation: a calibration-free approach to the recovery of absolute gas absorption line shapes[J]. J. Lightwave Technol., 2007, 25(10): 3114~3125
[5] [5] P. Kluczynski, J. Gustafsson, . M. Lindberg et al.. Wavelength modulated absorption spectrometry—an extensive scrutiny of the generation of signals[J]. Spectrochim. Acta Part B, 2001, 56(8): 1277~1354
[6] [6] J. Reid, D. Labrie. Second-harmonic detection with tunable diode lasers—comparison of experiment and theory[J]. Appl. Phys. B, 1981, 26(3): 203~210
[8] [8] K. Uehara, H. Tai. Remote detection of methane with a 1.66 μm diode laser[J]. Appl. Opt., 1992, 31(6): 809~814
[10] [10] Dong Lei, Ma Weiguang, Yin Wangbao et al.. Frequency stabilization of an external cavity diode laser based on LabVIEW[J]. J. Optoelectronics·Laser, 2005, 16(3): 255~258
[11] [11] J. S. Margolis. Measured line positions and strengths of methane between 5500 and 6180 cm-1[J]. Appl. Opt., 1988, 27(19): 4038~4050
[12] [12] T. Iseki, H. Tai, K. Kimura. A portable remote methane sensor using a tunable diode laser[J]. Meas. Sci. Technol., 2000, 11(6): 594~602
[13] [13] T. Iseki. Calculation of the ratio between the second and first harmonic signals in wavelength-modulation spectroscopy for absorption measurement[J]. Opt. Rev., 2003, 10(1): 24~30
[14] [14] He Zhigang, Deng Lunhua, Wang Guishi et al.. Nd:YAG laser frequency stabilization technology based on digital feedback control[J]. Chinese J. Lasers, 2012, 39(7): 0702009
Get Citation
Copy Citation Text
Sun Yanguang, Dong Zuoren, Chen Dijun, Ye Qing, Cai Haiwen, Qu Ronghui, Gong Shangqing. Laser Methane Remote Sensing Technology Based on Digital Feedback Frequency Stabilization[J]. Chinese Journal of Lasers, 2013, 40(4): 408002
Category: measurement and metrology
Received: Nov. 7, 2012
Accepted: --
Published Online: Mar. 5, 2013
The Author Email: Yanguang Sun (ygsun@siom.ac.cn)