• Chinese Optics Letters
  • Vol. 19, Issue 4, 041101 (2021)
Xin Zhong1、2, Xinwei Wang1、2、3、*, Liang Sun1, and Yan Zhou1、2、3
Author Affiliations
  • 1Optoelectronics System Laboratory, Institute of Semiconductors, Chinese Academy of Sciences, Beijing 100083, China
  • 2College of Materials Science and Opto-Electronics Technology, University of Chinese Academy of Sciences, Beijing 100049, China
  • 3School of Electronic, Electrical and Communication Engineering, University of Chinese Academy of Sciences, Beijing 100049, China
  • show less
    DOI: 10.3788/COL202119.041101 Cite this Article Set citation alerts
    Xin Zhong, Xinwei Wang, Liang Sun, Yan Zhou. Enhancement of rapid lifetime determination for time-resolved fluorescence imaging in forensic examination[J]. Chinese Optics Letters, 2021, 19(4): 041101 Copy Citation Text show less
    References

    [1] W. Wei, L. Huang, X. Zhu, L. Ling, K. Guo, H. Huang. Application of reflectance transformation imaging for the display of handwriting traces. Chin. Opt. Lett., 17, 111101(2019).

    [2] T. Liu, H. Liu, Y. Li, Z. Chen, Z. Zhang, S. Liu. Flexible FTIR spectral imaging enhancement for industrial robot infrared vision sensing. IEEE Trans. Ind. Inform., 16, 544(2020).

    [3] T. Liu, H. Liu, Y. Li, Z. Zhang, S. Liu. Efficient blind signal reconstruction with wavelet transforms regularization for educational robot infrared vision sensing. IEEE Trans. Ind. Inform., 24, 384(2019).

    [4] T. Liu, H. Liu, Z. Chen, A. M. Lesgold. Fast blind instrument function estimation method for industrial infrared spectrometers. IEEE Trans. Ind. Inform., 14, 5268(2018).

    [5] Z. Zhang, J. Chang, H. Ren, K. Fan, D. Li. Snapshot imaging spectrometer based on a microlens array. Chin. Opt. Lett., 17, 011101(2019).

    [6] N. Zhao, J. Li, Q. Ma, L. Guo, Q. Zhang. Periphery excitation of laser-induced CN fluorescence in plasma using laser-induced breakdown spectroscopy for carbon detection. Chin. Opt. Lett., 18, 083001(2020).

    [7] Y. Chen, R. M. Clegg. Fluorescence lifetime-resolved imaging. Photosynth. Res., 102, 143(2009).

    [8] R. Cubeddu, D. Comelli, C. D’ Andrea, P. Taroni, G. Valentini. Time-resolved fluorescence imaging in biology and medicine. J. Phys. D, 35, R61(2002).

    [9] D. Comelli, C. D’ Andrea, G. Valentini, R. Cubeddu, C. Colombo. Fluorescence lifetime imaging and spectroscopy as tools for nondestructive analysis of works of art. Appl. Opt., 43, 2175(2004).

    [10] Z. Petrášek, H. J. Eckert, K. Kemnitz. Wide-field photon counting fluorescence lifetime imaging microscopy: application to photosynthesizing systems. Photosynth. Res., 102, 157(2009).

    [11] K. C. Benny Lee, J. Siegel, S. E. D. Webb, S. Leveque-Fort, M. J. Cole, R. Jones, K. Dowling, M. J. Lever, P. M. W. French. Application of the stretched exponential function to fluorescence lifetime imaging. Biophys. J., 81, 1265(2001).

    [12] L. K. Seah, U. S. Dinish, S. K. Ong, Z. X. Chao, V. M. Murukeshan. Time-resolved imaging of latent fingerprints with nanosecond resolution. Opt. Laser Technol., 36, 371(2004).

    [13] L. K. Seah, P. Wang, V. M. Murukeshan, Z. X. Chao. Application of fluorescence lifetime imaging (FLIM) in latent finger mark detection. Forensic. Sci. Int., 160, 109(2006).

    [14] M. Suzuki, N. Akiba, K. Kurosawa, K. Kuroki, Y. Akao, Y. Higashikawa. Wide-field time-resolved luminescence imaging and spectroscopy to decipher obliterated documents in forensic science. Opt. Eng., 55, 014101(2016).

    [15] D. K. Bird, K. M. Agg, N. W. Barnett, T. A. Smith. Time-resolved fluorescence microscopy of gunshot residue: an application to forensic science. J. Microsc., 226, 18(2007).

    [16] A. V. Agronskaia, L. Tertoolen, H. C. Gerritsen. High frame rate fluorescence lifetime imaging. J. Phys. D, 36, 1655(2003).

    [17] D. S. Elson, I. Munro, J. Requejo-Isidro, J. Mcginty, C. Dunsby, N. Galletly, G. W. Stamp, M. A. A. Neil, M. J. Lever, P. A. Kellett, A. Dymoke-Bradshaw, J. Hares, P. M. W. French. Real-time time-domain fluorescence lifetime imaging including single-shot acquisition with a segmented optical image intensifier. New J. Phys., 6, 180(2004).

    [18] D. M. Grant, J. McGinty, E. J. McGhee, T. D. Bunney, D. M. Owen, C. B. Talbot, W. Zhang, S. Kumar, I. Munro, P. M. P. Lanigan, G. T. Kennedy, C. Dunsby, A. I. Magee, P. Courtney, M. Katan, M. A. A. Neil, P. M. W. French. High speed optically sectioned fluorescence lifetime imaging permits study of live cell signaling events. Opt. Express, 15, 15656(2007).

    [19] C. W. Chang, M. A. Mycek. Enhancing precision in time-domain fluorescence lifetime imaging. J. Biomed. Opt., 15, 056013(2010).

    [20] K. K. Sharman, A. Periasamy, H. Ashworth, J. N. Demas, N. H. Snow. Error analysis of the rapid lifetime determination method for double-exponential decays and new windowing schemes. Anal. Chem., 71, 947(1999).

    [21] D. D. Li, S. Ameer-Beg, J. Arlt, D. Tyndall, R. Walker, D. R. Matthews, V. Visitkul, J. Richardson, R. K. Henderson. Time-domain fluorescence lifetime imaging techniques suitable for solid-state imaging sensor arrays. Sensors, 12, 5650(2012).

    [22] M. Pavel, G. Sperling, T. RiedI, A. Vanderbeek. Limits of visual communication: the effect of signal-to-noise ratio on the intelligibility of American Sign Language. J. Opt. Soc. Am. A, 4, 2355(1988).

    Data from CrossRef

    [1] Mahmoud Al-Salihi, Zhenjiang Chen, Soham Samanta, Ahmed Elazab, Rongxing Yi, Shiqi Wang, Fangrui Lin, Junle Qu, Liwei Liu. Improving the performance of rapid lifetime determination for wide-field time-gated imaging in live cells. Optics Express, 30, 30760(2022).

    Xin Zhong, Xinwei Wang, Liang Sun, Yan Zhou. Enhancement of rapid lifetime determination for time-resolved fluorescence imaging in forensic examination[J]. Chinese Optics Letters, 2021, 19(4): 041101
    Download Citation