• Laser & Optoelectronics Progress
  • Vol. 49, Issue 8, 80006 (2012)
Tu Long1、2、*, Yu Jin1, Fan Zhongwei1, Bian Qiang1, Ge Wenqi1, Liu Yang1, Zhang Xue1, Huang Ke1, Nie Shuzhen1, Li Han1, and Mo Zeqiang1、2
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
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    DOI: 10.3788/lop49.080006 Cite this Article Set citation alerts
    Tu Long, Yu Jin, Fan Zhongwei, Bian Qiang, Ge Wenqi, Liu Yang, Zhang Xue, Huang Ke, Nie Shuzhen, Li Han, Mo Zeqiang. Parallel Confocal Microscopic Detection Technique and Its Research Progress[J]. Laser & Optoelectronics Progress, 2012, 49(8): 80006 Copy Citation Text show less
    References

    [1] T. Wilson, S. J. Hewlett. Superresolution in confocal scanning microscopy[J]. Opt. Lett, 1991, 16(14): 1062~1064

    [2] D. K. Hamilton, T. Wilson. Three-dimensional surface measurement using the confocal scanning microscope[J]. Appl. Phys. B, 1982, 27(4): 211~213

    [3] H. J. Tiziani, M. Wengner, D. Steudie. Confocal principle for macro and microscopic surface and defect analysis[J]. Opt. Engng., 2000, 39(1): 32~39

    [4] T. Wilson, C. Sheppard. Theory and Practice of Scanning Optical Microscopy[M]. London: Academic Press, 1984

    [5] Tian Weijian, Yang Jianwen, Bao Zhengkang et al.. New method for measuring the properties of optical systems with microoptics components[C]. SPIE, 1996, 2899: 263~268

    [6] T. M. Wilson. Confocal Microscopy[M]. New York: Academic Press, 1990

    [7] D. K. Hamilton, T. Wilson, C. J. R. Sheppard. Experimental observations of the depth-discrimination properties of scanning microscopes[J]. Opt. Lett., 1981, 6(12): 625~626

    [8] W. Lukosz. Optical systems with resolving powers exceeding the classical limit Ⅱ[J]. J. Opt. Soc. Am., 1967, 57(7): 932~939

    [9] Tian Weijian, Chen Bo, Guo Lürong et al.. Theoretical analysis for parallel confocal detecting method[J]. Acta Optica Sinica, 1999, 19(10): 1381~1385

    [10] M. Gu, C. J. Sheppard. Three-dimensional image formation in confocal microscope under ultra-short-laser-pulse illumination[J]. J. Mod. Opt., 1995, 42(4): 747~748

    [11] Thomas C. Trusk. 3D Reconstruction of Confocal Image Data[M]. Charleston: Springer, 2011. 243~272

    [12] G. Q. Xiao, T. R. Corel. Real-time confocal scanning optical microscope[J]. Appl. Phys. Lett., 1988, 53(8): 716~718

    [13] H. J. Jordan, M. Wegner, H. Tiziani. Highly accurate non-contact characterization of engineering surfaces using confocal microscopy[J]. Meas. Sci. Technol., 1998, 9(7): 1142~1151

    [14] D. M. Grant, J. McGinty, E. J. McGhee et al.. High speed optically sectioned fluorescence lifetime imaging permits study of live cell signaling events[J]. Opt. Express, 2007, 15(24): 15656~15673

    [15] H. J. Tiziani, R. Achi, R. N. Kramen et al.. Theoretical analysis of confocal microscopy with microlenses[J]. Appl. Opt., 1996, 35(1): 120~125

    [16] H. J. Tiziani, H. M. Uhde. Three-dimensional analysis by a microlens-array confocal arrangement[J]. Appl. Opt., 1994, 33(4): 567~572

    [17] Mitsuhino Ishihara, Hiromi Sasaki. High-speed surface measurement using a nonscanning multiple-beam confocal microscope[J]. Opt. Engng., 1999, 38(6): 1035~1040

    [18] Tian Weijian, Ding Zhihua. A confocal method for measuring whole-field three-dimensional surface topography[J]. Acta Optica Sinica, 1998, 18(6): 757~761

    [19] M. Eisner, N. Lindlein, J. Schwider. Confocal microscopy with a refractive microlens-pinhole array[J]. Opt. Lett., 1998, 23, 748~749

    [20] Wang Yonghong, Yu Xiaofen, Li Ruijun. Non-scanning 3D profile parallel confocal detecting system based on DLP technology[C]. SPIE, 2003, 5253: 437~441

    [21] Yuan Guanwei. Theoretical Analysis and Design on Optic-Fiber Bundle Confocal Microscopical System[D]. Nanchang: Nanchang University, 2008. 30~35

    [22] Rong Yang, Qingsheng He, Minxian Wu. Parallel confocal systems for biomedical application[C]. SPIE, 2001, 4378: 127~132

    [23] Yang Rong, Xie Wenzhang, Zhang Liang et al.. Biochip reseach progress [J]. Progress in Biotechnology, 1999, 19(4): 33~38

    [24] Bi Meihua. Study for the System of Optics in Parallel Confocal Measurement Based on Astigmatism[D]. Hefei: Hefei University of Technology, 2009. 7~12

    [25] Wang Zhao, Zhu Shengcheng, Tan Yushan et al.. Parallel confocal measurement through integrated optical fiber bundle plate[J]. Chinese J. Lasers, 2005, 32(1): 105~109

    [26] Shi Yan, Wang Liqiang. Fast confocal endomicroscopy based on multi-fiber parallel scanning[C]. SPIE, 2010, 7845: 78451C

    [27] Dana Dudley, Walter Duncan, John Slaughter. Emerging digital micromirror device (DMD) applications[C]. SPIE, 2003, 4985: 14~25

    [28] Anthony H. B. de Vriesa, Donna J. Arndt-Jovina, Thomas M. Jovina. Generation-3 programmable array microscope (PAM) with digital micro-mirror device (DMD)[C]. SPIE, 2011, 7932: 79320G

    [29] V. Bansal, S. S. Patel, P. Saggau. High speed confocal laser scanning microscopy using acousto-optic deflectors and a digital micromirror device[C]. SPIE, 2004, 5324: 47~54

    [30] Y. Fainman, E. Botvinick, J. Price. 3-D quantitative imaging of the microvasculature with the Texas Instruments digital micromirror device[C]. SPIE, 2001, 4457: 137~144

    [31] Zhifeng Feng, Liqiang Wang, Huilong Duan. Confocal fluorescence microendoscopy using a digital micro-mirror device[C]. SPIE, 2010, 7845: 78451M

    [32] Wenmei Hou, Yunbo Zhang. Fast parallel 3D profilometer with DMD technology[C]. SPIE, 2011, 8321: 1~7

    [33] G. Molesini, G. Pedrini, P. Poggi. Focus wavelength encoded optical profilometer[J]. Opt. Commun., 1984, 49(4): 229~233

    [34] M. A. Browne, O. Akinyemi, A. Boyde. Confocal surface profiling using chromatic aberration[J]. Scanning, 1992, 14(3): 145~153

    [35] M. Maly, A. Boyde. Real-time stereoscopic confocal reflection microscopy using objective lens with linear longitudinal chromatic dispersion[J]. Scanning 1994, 16(3): 187~192

    [36] S. Dobson, P. C. Sun, Y. Fainman. Diffractive lenses for chromatic confocal imaging[J]. Appl. Opt., 1997, 36(20): 4744~4748

    [37] A. K. Ruprecht, K. Korner, T. F. Wiesendanger et al.. Chromatic confocal detection for high speed micro-topography measurements[C]. SPIE, 2004, 5302: 53~60

    [38] Sungdo Cha, Paul C. Lin, Lijun Zhu et al.. Nontranslational three-dimensional profilometry by chromatic confocal microscopy with dynamically configurable micromirror scanning[J]. Appl. Opt., 2000, 39(16): 2605~2613

    [39] B. S. Chun, K. Kim, D. Gweon. Three-dimensional surface profile measurement using a beam scanning chromatic confocal microscope[J]. Rev. Sci. Instrum., 2009, 80(7): 073706

    [40] James B. Pawley. Handbook of Biological Confocal Microscopy[M]. New York: Springer, 2006

    [41] Yu Qing, Yu Xiaofen, Cheng Lingli et al.. Research on the influence of Talbot effect on the imaging in laser parallel confocal microscopy system[J]. Chinese J. Scientific Instrument, 2009, 30(6): 1271~1274

    [42] Christof Pruss, Aiko Ruprecht, Klaus Korner et al.. Diffractive elements for chromatic confocal sensors[J]. DGaO Proc., 2005. 106~107

    [43] James B. Pawley. Fundamental Limits in Confocal Microscopy[M]. Madison: Springer, 2005

    CLP Journals

    [1] Tu Long, Yu Jin, Fan Zhongwei, Qiu Jisi, Zhao Tianzhuo, Wang Zhihao, Wu Quan, Ge Wenqi, Guo Guangyan, Wang Haocheng. Research on the Technology of Parallel Laser Confocal Microscopy Detection Based on Digital Micromirror Device[J]. Laser & Optoelectronics Progress, 2013, 50(10): 101702

    Tu Long, Yu Jin, Fan Zhongwei, Bian Qiang, Ge Wenqi, Liu Yang, Zhang Xue, Huang Ke, Nie Shuzhen, Li Han, Mo Zeqiang. Parallel Confocal Microscopic Detection Technique and Its Research Progress[J]. Laser & Optoelectronics Progress, 2012, 49(8): 80006
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