Journal of Atmospheric and Environmental Optics, Volume. 20, Issue 2, 168(2025)
Trace carbon dioxide gas sensor based on resonance photoacoustic spectroscopy
[1] Xin F X, Yang D W, Li C et al. Detection of CO2 concentration using a fiber-optic cantilever acoustic sensor in2.0-μm band[C](2020).
[2] Lewicki R, Wysocki G, Kosterev A A et al. Carbon dioxide and ammonia detection using 2 μm diode laser based quartz-enhanced photoacoustic spectroscopy[J]. Applied Physics B, 87, 157-162(2007).
[3] Wang Z, Wang Q, Ching J Y L et al. A portable low-power QEPAS-based CO2 isotope sensor using a fiber-coupled interband cascade laser[J]. Sensors and Actuators B: Chemical, 246, 710-715(2017).
[4] Qiao S D, Qu Ya C, Ma Y F et al. A sensitive carbon dioxide sensor based on photoacoustic spectroscopy with a fixed wavelength quantum cascade laser[J]. Sensors (Basel), 19, 4187(2019).
[5] Davis W J. The relationship between atmospheric carbon dioxide concentration and global temperature for the last 425 million years[J]. Climate, 5, 76-76(2017).
[6] Li W Q, Zhang F, Pan L Y et al. Gas or electricity? Regional pathway selection under carbon neutrality target: A case study of industrial boilers[J]. Journal of Cleaner Production, 349, 131313(2022).
[7] Zampolli S, Elmi I, Stürmann J et al. Selectivity enhancement of metal oxide gas sensors using a micromachined gas chromatographic column[J]. Sensors and Actuators B: Chemical, 105, 400-406(2005).
[8] Sun Y, Liu Q, Zha S L et al. Sub‐ppb nitrogen dioxide detection based on resonant photoacoustic spectroscopy[J]. Microwave and Optical Technology Letters, 63, 2058-2062(2021).
[9] Zhu Y Y, Shi J J, Zhang Z Y et al. Development of a gas sensor utilizing chemiluminescence on nanosized titanium dioxide[J]. Analytical Chemistry, 74, 120-124(2002).
[10] Zhang Z Y, Zhang C, Zhang X R. Development of a chemiluminescence ethanol sensor based on nanosized ZrO2[J]. The Analyst, 127, 792-796(2002).
[11] Bahrini C, Herbinet O, Glaude P A et al. Detection of some stable species during the oxidation of methane by coupling a jet-stirred reactor (JSR) to cw-CRDS[J]. Chemical Physics Letters, 534, 1-7(2012).
[12] McHale L E, Martinez B, Miller T W et al. Open-path cavity ring-down methane sensor for mobile monitoring of natural gas emissions[J]. Optics Express, 27, 20084-20097(2019).
[13] Jiang J, Zhao M X, Ma G M et al. TDLAS-based detection of dissolved methane in power transformer oil and field application[J]. IEEE Sensors Journal, 18, 2318-2325(2018).
[14] Dong L, Tittel F K, Li C G et al. Compact TDLAS based sensor design using interband cascade lasers for mid-IR trace gas sensing[J]. Optics Express, 24, A528-A535(2016).
[15] Koskinen V, Fonsen J, Roth K et al. Cantilever enhanced photoacoustic detection of carbon dioxide using a tunable diode laser source[J]. Applied Physics B, 86, 451-454(2007).
[16] Hanyecz V, Mohácsi Á, Pogány A et al. Multi-component photoacoustic gas analyzer for industrial applications[J]. Vibrational Spectroscopy, 52, 63-68(2010).
[17] Ma Y F, Lewicki R, Razeghi M et al. QEPAS based ppb-level detection of CO and N2O using a high power CW DFB-QCL[J]. Optics Express, 21, 1008-1019(2013).
[18] Reed Z D, Sperling B, van Zee R D et al. Photoacoustic spectrometer for accurate, continuous measurements of atmospheric carbon dioxide concentration[J]. Applied Physics B, 117, 645-657(2014).
[19] Dong L, Wu H P, Zheng H D et al. Double acoustic microresonator quartz-enhanced photoacoustic spectroscopy[J]. Optics Letters, 39, 2479-2482(2014).
[20] Liu K, Mei J X, Zhang W J et al. Multi-resonator photoacoustic spectroscopy[J]. Sensors and Actuators B: Chemical, 251, 632-636(2017).
[21] Han L, Chen X L, Xia H et al. A photoacoustic spectroscopy system for gas detection based on the multi-pass cell[C], 10025, 1-7(2016).
[22] Yang T H, Chen W G, Wang P Y. A review of all-optical photoacoustic spectroscopy as a gas sensing method[J]. Applied Spectroscopy Reviews, 56, 143-170(2021).
[23] Zha S L, Ma H L, Zha C L et al. Trace gas detection based on photoacoustic spectroscopy in 3-D printed gas cell[J]. Journal of Near Infrared Spectroscopy, 28, 236-242(2020).
[24] Ma Y F, Qiao S D, He Y et al. Highly sensitive acetylene detection based on multi-pass retro-reflection-cavity-enhanced photoacoustic spectroscopy and a fiber amplified diode laser[J]. Optics Express, 27, 14163-14172(2019).
[25] Peng Y, Yu Q X. Photoacoustic spectral detection of C2H2 gas based on tunable fiber laser[J]. Spectroscopy and Spectral Analysis, 29, 2030-2033(2009).
[26] LYU W J, Li H L, Li W D et al. Optimization and experimental research on modulation parameters of TDLAS technology[J]. Laser Technology, 45, 336-343(2021).
[27] Leleux D P, Claps R, Chen W et al. Applications of Kalman filtering to real-time trace gas concentration measurements[J]. Applied Physics B, 74, 85-93(2002).
Get Citation
Copy Citation Text
Zijian YANG, Lin LI, Guqing GUO, Ting GONG, Qiang LIU, Yali TIAN, Xiaocong SUN, Xuanbing QIU, Chuanliang LI. Trace carbon dioxide gas sensor based on resonance photoacoustic spectroscopy[J]. Journal of Atmospheric and Environmental Optics, 2025, 20(2): 168
Category:
Received: Sep. 25, 2022
Accepted: --
Published Online: May. 30, 2025
The Author Email: Chuanliang LI (clli@tyust.edu.cn)