Chinese Journal of Lasers, Volume. 47, Issue 3, 311002(2020)

Online Detection of Human-Exhaled End-Tidal Carbon Dioxide Using Tunable Semiconductor Absorption Spectroscopy

Wang Xin1, Jing Congrui1, Hou Kaixuan1, Zhang Jiantao1, Lou Cunguang1,2、*, Yao Jianquan2, and Liu Xiuling1
Author Affiliations
  • 1College of Electronic Information Engineering & Hebei Key Laboratory of Digital Medical Engineering, Hebei University, Baoding, Heibei 0 71002, China
  • 2College of Precision Instrument and Optoelectronics Engineering, Tianjin University, Tianjin 300072, China
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    References(25)

    [1] Amal H, Leja M, Broza Y Y et al. Geographical variation in the exhaled volatile organic compounds[J]. Journal of Breath Research, 7, 047102(2013).

    [3] Güntner A T, Sievi N A, Theodore S J et al. Noninvasive body fat burn monitoring from exhaled acetone with Si-doped WO3-sensing nanoparticles[J]. Analytical Chemistry, 89, 10578-10584(2017).

    [4] Zhang D, Guo D M, Yan K. A breath analysis system for diabetes screening and blood glucose level prediction[M]. ∥Breath analysis for medical applications. Singapore: Springer, 259-279(2017).

    [5] Phillips M, Gleeson K. Hughes J M B, et al. Volatile organic compounds in breath as markers of lung cancer: a cross-sectional study[J]. The Lancet, 353, 1930-1933(1999).

    [6] Chen F J, Liao H, Huang X Y et al. Importance of fractional exhaled nitric oxide in diagnosis of bronchiectasis accompanied with bronchial asthma[J]. Journal of Thoracic Disease, 8, 992-999(2016).

    [7] Weetjens B J, Mgode G F. Machang'u R S, et al. African pouched rats for the detection of pulmonary tuberculosis in sputum samples[J]. The International Journal of Tuberculosis and Lung Disease, 13, 737-743(2009).

    [8] Wang Z N, Sun M X, Zhao X M et al. Study of breath acetone in a rat mode of 126 rats with type 1 diabetes[J]. Journal of Analytical & Bioanalytical Techniques, 8, 1000344(2017).

    [9] Bagchi S. SenGupta S, Mondal S. Development and characterization of carbonic anhydrase-based CO2 biosensor for primary diagnosis of respiratory health[J]. IEEE Sensors Journal, 17, 1384-1390(2017).

    [10] Cao H, Hsu L C, Ativanichayaphong T et al. A non-invasive and remote infant monitoring system using CO2 sensors. [C]∥2007 IEEE Sensors, October 28-31, 2007, Atlanta, GA, USA. New York: IEEE, 989-992(2007).

    [11] Zare R N, Kuramoto D S, Haase C et al. High-precision optical measurements of 13C/ 12C isotope ratios in organic compounds at natural abundance[J]. Proceedings of the National Academy of Sciences of the United States of America, 106, 10928-10932(2009).

    [12] 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).

    [13] Lu H, Zhang G, Zhang G X et al. Study on simultaneous detection of CO2 and H2O based on TDLAS[J]. Jiangsu Science & Technology Information, 35, 41-43(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).

    [16] Lan L J, Chen J, Wu Y C et al. Self-calibrated multiharmonic CO2 sensor using VCSEL for urban in situ measurement[J]. IEEE Transactions on Instrumentation and Measurement, 68, 1140-1147(2019).

    [19] Cui R Y, Dong L, Wu H P et al. Highly sensitive and selective CO sensor using a 2.33 μm diode laser and wavelength modulation spectroscopy[J]. Optics Express, 26, 24318-24328(2018).

    [20] Azhar M, Mandon J, Neerincx A H et al. A widely tunable, near-infrared laser-based trace gas sensor for hydrogen cyanide (HCN) detection in exhaled breath[J]. Applied Physics B, 123, 268(2017).

    [21] Guo X Q, Zheng F, Li C L et al. A portable sensor for in situ measurement of ammonia based on near-infrared laser absorption spectroscopy[J]. Optics and Lasers in Engineering, 115, 243-248(2019).

    [22] Li J D, Du Y J, Peng Z M et al. Measurements of spectroscopic parameters of CO2 transitions for Voigt, Rautian, Galatry and speed-dependent Voigt profiles near 1.43 μm using the WM-DAS method[J]. Journal of Quantitative Spectroscopy and Radiative Transfer, 224, 197-205(2019).

    [23] Pogány A, Wagner S, Werhahn O et al. Development and metrological characterization of a tunable diode laser absorption spectroscopy (TDLAS) spectrometer for simultaneous absolute measurement of carbon dioxide and water vapor[J]. Applied Spectroscopy, 69, 257-268(2015).

    [24] Li C L, Wu Y F, Qiu X B et al. Pressure-dependent detection of carbon monoxide employing wavelength modulation spectroscopy using a Herriott-type cell[J]. Applied Spectroscopy, 71, 809-816(2017).

    [25] Ghorbani R, Schmidt F M. ICL-based TDLAS sensor for real-time breath gas analysis of carbon monoxide isotopes[J]. Optics Express, 25, 12743-12752(2017).

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    Wang Xin, Jing Congrui, Hou Kaixuan, Zhang Jiantao, Lou Cunguang, Yao Jianquan, Liu Xiuling. Online Detection of Human-Exhaled End-Tidal Carbon Dioxide Using Tunable Semiconductor Absorption Spectroscopy[J]. Chinese Journal of Lasers, 2020, 47(3): 311002

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    Paper Information

    Category: spectroscopy

    Received: Oct. 16, 2019

    Accepted: --

    Published Online: Mar. 12, 2020

    The Author Email: Cunguang Lou (loucunguang@163.com)

    DOI:10.3788/CJL202047.0311002

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