• Acta Optica Sinica
  • Vol. 43, Issue 13, 1312005 (2023)
Xiaoli Liu, Ziwei Wang, and Yu Fu*
Author Affiliations
  • Shenzhen Key Laboratory of Intelligent Optical Measurement and Detection, College of Physics and Optoelectronic Engineering, Shenzhen University, Shenzhen 518060, Guangdong, China
  • show less
    DOI: 10.3788/AOS230829 Cite this Article Set citation alerts
    Xiaoli Liu, Ziwei Wang, Yu Fu. Trace Hazardous Substance Detection Based on Long-Distance Laser Vibrometer[J]. Acta Optica Sinica, 2023, 43(13): 1312005 Copy Citation Text show less
    References

    [1] Bell A G. On the production and reproduction of sound by light[J]. American Journal of Science, 305-324(1880).

    [2] McDonald F A, Wetsel G C. Generalized theory of the photoacoustic effect[J]. Journal of Applied Physics, 49, 2313-2322(1978).

    [3] Sigrist M W. Laser generation of acoustic waves in liquids and gases[J]. Journal of Applied Physics, 60, R83-R122(1986).

    [4] Castellini P, Martarelli M, Tomasini E P. Laser Doppler Vibrometry: development of advanced solutions answering to technology′s needs[J]. Mechanical Systems and Signal Processing, 20, 1265-1285(2006).

    [5] Chen X, Cheng L W, Guo D K et al. Quantum cascade laser based standoff photoacoustic chemical detection[J]. Optics Express, 19, 20251-20257(2011).

    [6] Choa F S, Wang C C, Khurgin J et al. Standoff photoacoustic detections with high-sensitivity microphones and acoustic arrays[J]. Proceedings of SPIE, 9824, 98240M(2016).

    [7] Li J S, Yu B, Fischer H et al. Contributed review: quantum cascade laser based photoacoustic detection of explosives[J]. The Review of Scientific Instruments, 86, 031501(2015).

    [8] Cho P S, Jones R M, Shuman T et al. Investigation of standoff explosives detection via photothermal/photoacoustic interferometry[J]. Proceedings of SPIE, 8018, 80181T(2011).

    [9] Wynn C M, Haupt R W, Doherty J H et al. Use of photoacoustic excitation and laser vibrometry to remotely detect trace explosives[J]. Applied Optics, 55, 9054-9059(2016).

    [10] Marcus L S, Holthoff E L, Schill J F et al. Photoacoustic chemical sensing: ultracompact sources and standoff detection[J]. Proceedings of SPIE, 9073, 907307(2014).

    [11] Fu Y, Guo M, Phua P B. Multipoint laser Doppler vibrometry with single detector: principles, implementations, and signal analyses[J]. Applied Optics, 50, 1280-1288(2011).

    [12] Hu Q, Lim J S K, Liu H A et al. Photo-vibrational spectroscopy of solid and liquid chemicals using laser Doppler vibrometer[J]. Optics Express, 24, 19148-19156(2016).

    [13] Skvortsov L A, Maksimov E M. Application of laser photothermal spectroscopy for standoff detection of trace explosive residues on surfaces[J]. Quantum Electronics, 40, 565-578(2010).

    [14] Fu Y, Liu H A, Hu Q et al. Photo-vibrational sensing of trace chemicals and explosives by long-distance differential laser Doppler vibrometer[J]. Proceedings of SPIE, 10183, 101830B(2017).

    [15] Wynn C M, Palmacci S T, Clark M L et al. High-sensitivity detection of trace gases using dynamic photoacoustic spectroscopy[J]. Optical Engineering, 53, 021103(2013).

    [16] Fu Y, Guo M, Phua P B. Spatially encoded multibeam laser Doppler vibrometry using a single photodetector[J]. Optics Letters, 35, 1356-1358(2010).

    [17] Fu Y, Hu Q, Liu H. Standoff photoacoustic sensing of trace chemicals by laser Doppler vibrometer[J]. Proceedings of SPIE, 9824, 98240O(2016).

    [18] Yin Q R[M]. Optical acoustooptic thermal technology and its application(1991).

    Xiaoli Liu, Ziwei Wang, Yu Fu. Trace Hazardous Substance Detection Based on Long-Distance Laser Vibrometer[J]. Acta Optica Sinica, 2023, 43(13): 1312005
    Download Citation