• Acta Photonica Sinica
  • Vol. 46, Issue 8, 811002 (2017)
MA Ying1、2、*, YU Liang2、3, ZHENG Hua-dan2、4, LIU Qun1, QIU Dan-gui1, HOU Jian-rong1, YIN Wang-bao2、4, and DONG Lei2、4
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • 3[in Chinese]
  • 4[in Chinese]
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    DOI: 10.3788/gzxb20174608.0811002 Cite this Article
    MA Ying, YU Liang, ZHENG Hua-dan, LIU Qun, QIU Dan-gui, HOU Jian-rong, YIN Wang-bao, DONG Lei. Optimization of Overtone Resonance Based Quartz-enhanced Photoacoustic Spectroscopy Spectrophone[J]. Acta Photonica Sinica, 2017, 46(8): 811002 Copy Citation Text show less
    References

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    [2] DONG Lei, WU Hong-peng, ZHENG Hua-dan, et al. Double acoustic microresonator quartz-enhanced photoacoustic spectroscopy[J]. Optics Letters, 2014, 39(8): 2479-2482.

    [3] WU Hong-peng, DONG Lei, ZHENG Hua-dan, et al. Beat frequency quartz-enhanced photoacoustic spectroscopy for fast and calibration-free continuous trace-gas monitoring[J]. Nature Communications 2017, 8:15331.

    [4] PATIMISCO P, SAMPAOLO A, ZHENG Hua-dan, et al. Quartz–enhanced photoacoustic spectrophones exploiting custom tuning forks: a review [J]. Advances in Physics: X, 2017, 2(1): 169-187.

    [5] ZHENG Hua-dan, DONG Lei, PATIMISCO P, et al. Double antinode excited quartz-enhanced photoacoustic spectrophone [J]. Applied Physics Letters, 2017, 110(2): 021110.

    [6] ZHENG Hua-dan, DONG Lei, SAMPAOLO A, et al. Overtone resonance enhanced single-tube on-beam quartz enhanced photoacoustic spectrophone [J]. Applied Physics Letters, 2016,109(11): 111103.

    [7] WU Hong-peng, SAMPAOLO A, DONG Lei, et al. Quartz enhanced photoacoustic H2S gas sensor based on a fiber-amplifier source and a custom tuning fork with large prong spacing [J]. Applied Physics Letters, 2015, 107(11): 111104.

    [8] ZHENG Hua-dan, DONG Lei, SAMPAOLO A, et al. Single-tube on-beam quartz-enhanced photoacoustic spectroscopy [J]. Optics Letters, 2016, 41(5): 978-981.

    [9] YIN Xu-kun, DONG Lei, ZHENG Hua-dan, et al. impact of humidity on quartz-enhanced photoacoustic spectroscopy based co detection using a near-IR telecommunication diode laser [J]. Sensors, 2016, 16(2): 162.

    [10] LIU Kun, ZHAO Wei-xiong, WANG Lei, et al. Quartz-enhanced photoacoustic spectroscopy of HCN from 6433 to 6613cm-1 [J]. Optics Communications, 2015, 340: 126-130.

    [11] YI Hong-ming, CHEN Wei-dong, VICET A, et al. T-shape microresonator-based quartz-enhanced photoacoustic spectroscopy for ambient methane monitoring using 3.38μm antimonide-distributed feedback laser diode [J]. Applied Physics B: Lasers and Optics, 2014, 116(2): 423-428.

    [12] MA Yu-fei, HE Ying, YU Xing, et al. HCl ppb-level detection based on QEPAS sensor using a low resonance frequency quartz tuning fork [J]. Sensors and Actuators B: Chemical, 2016, 233: 388-393.

    [13] WANG Fu-peng, CHANG Jun, WANG Qiang, et al. Improvement in QEPAS system based on miniaturized collimator and flat mirror [J]. Optics Communications, 2016, 381: 152-157.

    [14] LIU Yong-ning, CHANG Jun, LIAN Jie, et al. Quartz-enhanced photoacoustic spectroscopy with right-angle prism [J].Sensors, 2016, 16(2): 214.

    [15] LIN Cheng, ZHU Yong, WEI Wei, et al. A novel QEPAS with microresonator in the open environment [J]. International Journal of Thermophysics, 2013, 34(8-9): 1413-1420.

    [16] LI Zhi-li, WANG Zhen, WANG Chao, et al. Optical fiber tip-based quartz-enhanced photoacoustic sensor for trace gas detection [J]. Applied Physics B: Lasers and Optics, 2016, 122(5): 1-6.

    [17] GONG Ping, XIE Liang, QI Xiao-qiong, et al. A quartz-enhanced photoacoustic spectroscopy sensor for measurement of water vapor concentration in the air [J]. Chinese Physics B, 2015, 24(1): 014206.

    MA Ying, YU Liang, ZHENG Hua-dan, LIU Qun, QIU Dan-gui, HOU Jian-rong, YIN Wang-bao, DONG Lei. Optimization of Overtone Resonance Based Quartz-enhanced Photoacoustic Spectroscopy Spectrophone[J]. Acta Photonica Sinica, 2017, 46(8): 811002
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