參考文獻 |
Chapter 1
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〔12〕 M. Gu, Three dimensional confocal microscopy, World Scientific, Singapore, (1996).
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〔14〕 C. J. R. Sheppard and D. M. Shotton, Confocal laser scanning microscopy, Information, Oxon, (1997).
〔15〕 W. Denk, J. H. Strickler, and W. W. Webb, “Two-photon laser scanning fluorescence microscopy,” Science 248, 73-76 (1990).
〔16〕 M. Gu, C. J. R. Sheppard, and X. Gan, Image information in a fiber- optic confocal scanning microscope, J. Opt. Soc. Am. A 8, 1755-1761 (1991).
〔17〕 T. Wilson, “Fluorescence imaging modes in fiber-optic based confocal scanning microscope,” Opt. Commun. 96, 133-141 (1993).
〔18〕 S. Hell and E. H. K. Stelzer, “Properties of a 4Pi confocal fluorescence microscope,” J. Opt. Soc. Am. A 9, 2159 (1992).
〔19〕 T. Nielsen, M. Fricke, D. Hellweg, and P. Andresen, “High efficiency beam splitter for multifocal multiphoton microscopy,” J. Micros. 201, 368-376 (2001).
〔20〕 C. H. Lee and J. Wang, “Noninterferometric differential confocal microscopy with 2-nm depth resolution,” Opt. Commun. 135,233 (1997).
〔21〕 L. C. Peng, C. Chou, C.W. Lyu, and J. C. Hsieh, “Zeeman laser-scanning confocal microscopy in turbid media,” Opt. Lett. 26, 349-351 (2001).
〔22〕 C. J. R. Sheppard, M. Gu, K. Brain, and H. Zhou, “Influence of spherical aberration on axial imaging of confocal reflection microscopy,” Appl. Opt. 33, 616-624 (1994).
〔23〕 M. J. Booth and T. Wilson, “Strategies for the compensation of specimen-induced spherical aberration in confocal microscopy of skin,” J. Micros. 200, 68-74 (2000).
〔24〕 S. P. Morgan, M. P. Khong, and M. G. “Somekh, Effect of polarization state and scatterer concentration on optical imaging through scattering media,” Appl. Opt. 36, 1560-1565 (1999).
〔25〕 S. P. Morgan and M. E. Ridgway, “Polarization properties of light backscattered from a two layer scattering medium,” Opt. Express 7, 395-402 (2000).
〔26〕 V. S. Sanjaran, K. Schonenberger, J. T. Walsh,Jr., and D. J. Maitland, “polarization discrimination of coherently propagating light in turbid media,” Appl. Opt. 38, 4252-4261 (1999).
〔27〕 V. S. Sanjaran, M. J. Everett, D. J. Maitland, and J. T. Walsh,Jr., “Comparison of polarized-light propagation in biological tissue and phantoms,” Opt. Lett. 26, 1044-1046 (1999).
〔28〕 T. Wilson and A. R. Carlini, “Size of the detector in confocal imaging system,” Opt. Lett. 12, 227-229 (1987).
〔29〕 M. Gu, T. Tannous, and C. J. R. Sheppard, “Effect of an annular pupil on confocal imaging through highly scattering media,” Opt. Lett. 21, 312-314 (1996).
〔30〕 J. M. Schmitt, A. Knuttel, and M. Yadlowsky, “Confocal microscopy in turbib media,” J. Opt. Soc. Am. A 11, 2226-2235 (1994).
〔31〕 X. Gan, S. P. Schilders, and M. Gu, “Imaging enhancement through turbid media under a microscope by use of polarization gating method,” J. Opt. Soc. Am. A 16, 2177-2184 (1999).
〔32〕 J. A. Izatt, M. R. Hee, and G. M. Owen, “Optical coherence microscopy in scattering media,” Opt. Lett. 19, 590-592 (1994).
〔33〕 M. Kempe, W. Rudolph, and E. Welsch, “Comparative study of confocal and heterodyne microscopy for imaging through scattering media,” J. Opt. Soc. Am. A 13, 46-52 (1996).
〔34〕 G. E. Anderson, F. Liu, and R. R. Alfano, “Microscope imaging through highly scattering media,” Opt. Lett. 19, 981-983 (1994).
〔35〕 M. Kempe, A. Z. Genack, W. Rudolph, and P. Dorn, “Ballistic and diffuse light detection in confocal and heterodyne imaging systems,” J. Opt. Soc. Am. A 14, 216-223 (1996).
〔36〕 D. Bird and M. Gu, “Compact two-photon fluorescence microscope based on a single-mode fiber coupler,” Opt. Lett. 27, 1031-1033 (2001).
〔37〕 T. D. Wang, M. J. Mandella, C. H. Contag, and G. S. Kino, “Dual-axis confocal microscope for high-resolution in vivo imaging,” Opt. Lett. 28, 414-416 (2003).
〔38〕 T. D. Wang, C. H. Contag, M. J. Mandella, N. Y. Chen, and G. S. Kino, “Dual-axis confocal microscope with post-objective scanning and low-coherence heterodyne detection,” Opt. Lett. 28, 1915-1917 (2001).
〔39〕 S. W. Hell and E. H. J. Stelzer, “Aberration in confocal fluorescence microscopy,” Handbook of Biological Confocal Microscopy, (ed. by J. B. Pawley), pp.347-354, Plenum Press, New York, (1995).
〔40〕 C. J. R. Sheppard and C. J. Cogswell, “Effet of aberrating layers and tube length on confocal imaging property,” Optik 87, 34-38 (1991).
〔41〕 C. J. R. Sheppard and M. Gu, “Aberration compensation in confocal microscopy,” Appl. Opt. 30, 3563-3568 (1991).
〔42〕 C. J. R. Sheppard and M. Gu, “Axial imaging through an aberrating layer of water in confocal microscopy,” Opt. Commun. 88, 180-190 (1992).
〔43〕 C. J. R. Sheppard, M. Gu, K. Brain, and H. Zhou, “Influence of spherical aberration on axial imaging of confocal reflection microscopy,” Appl. Opt. 33, 616-624 (1994).
〔44〕 D. S. Wan, M. Rajadhyaksha, and R. H. Webb, “Analysis of spherical aberration of a water immersion objective: application to specimen with refractive indices 1.33-1.40,” J. Micros. 197, 274-284 (2000).
Chapter 2
〔1〕 G. E. Anderson, F. Liu, and R. R. Alfano, “Microscope imaging through highly scattering media,” Opt. Lett. 19, 981-983 (1994).
〔2〕 C. Chou, L. C. Peng, Y. H. Chou, Y. H. Tang, C. Y. Han, and C.W. Lyu, “Polarized optical coherence imaging in turbid media by use of a Zeeman laser,” Opt. Lett. 25, 1517-1519 (2000).
〔3〕 M. Kempe, A. Z. Genack, W. Rudolph, and P. Dorn, “Ballistic and diffuse light detection in confocal and heterodyne imaging systems,” J. Opt. Soc. Am. A 14, 216-223 (1997).
〔4〕 M. Kempe and W. Rudolph, “Comparative study of confocal and heterodyne microscopy for imaging through scattering media,” J. Opt. Soc. Am. 13, 46-52 (1996).
〔5〕 M. Kempe and W. Rudolph, “Scanning microscopy through thick layers based on linear correlation,” Opt. Lett. 19, 1919-1921 (1994).
〔6〕 J. A. Izatt, M. R. Hee, and G. M. Owen, “Optical coherence microscopy in scattering media,” Opt. Lett. 19, 590-592 (1994).
〔7〕 C. J. R. Sheppard, M. Roy, and M. G. Sharma, “Image formation in low-coherence and confocal interference microscopes,” Appl. Opt. 43, 1493-1502 (2004).
〔8〕 M. Gu and C. J. R. Sheppard, “Effects of defocus and primary spherical aberration on images of a straight edge in confocal microscopy,” Appl. Opt. 33, 625-630 (1994).
〔9〕 A. Wax, C. Yang, R. R. Dasari, and M. S. Feld, “Measurement of angular distributions by use of low-coherence interferometry for light-scattering spectroscopy,” Opt. Lett. 26, 322-324 (2001).
〔10〕 L. C. Peng, C. Chou, C. W. Lyu, and J. C. Hsieh, “Zeeman laser-scanning confocal microscopy in turbid media,” Opt. Lett. 26, 349-351 (2001).
〔11〕 J. M. Schmitt, A. Knuttel, and M. Yadlowsty, “Confocal microscopy in turbid media,” J. Opt. Soc. Am. A 11, 2226-2235 (1994).
〔12〕 C. J. R. Sheppard, M. Gu, K. Brain, and H. Zhou, “Influence of spherical aberration on axial imaging of confocal microscopy,” Appl. Opt. 33, 616-624 (1994).
〔13〕 T. Wilson and A. R. Garlini, “Size of the detector in confocal imaging systems” Opt. Lett. 12, 227-229 (1987).
Chapter 3
〔1〕 S. W. Hell and E. H. K. Stelaer, "Lens aberration in confocal fluorescence microscopy," Handbook of Biological Confocal Microscopy. (ed. By J. Pawley), pp. 347-354. Plenum Press, New York, (1995).
〔2〕 C. J. R. Sheppard and D. M. Shotton, Confocal Laser Scanning Microscopy, p. 29-39. Springer, New York, (1997).
〔3〕 I. Escobar, G. Saavedra, M. Martínez-Corral, and J. Lancis, "Reduction of the spherical aberration effect in high-numerical-aperture optical scanning instruments," J. Opt. Soc. Am. A 23, 3150-3155 (2006).
〔4〕 J. M. Schmitt, A. Knuttel, and M. Yadlowsky, "Confocal microscopy in turbid media," J. Opt. Soc. Am. A 11, 2226-2235 (1994).
〔5〕 H. F. Chang, C. Chou, H. F. Yau, Y. H. Chan, J. N. Yih, J. S. Wu. "Angular distribution of polarized photon-pairs in a scattering medium with a Zeeman laser scanning confocal microscope" J. Microsc. 223, 26-32 (2006).
〔6〕 T. Wilson, "The role of the pinhole in confocal imaging system," Handbook of Biological Confocal Microscopy. (ed. By J. Pawley), pp.167-182, Plenum Press, New York, (1995).
〔7〕 T. Wilson and A. R. Carlini, "Size of the detector in confocal imaging systems," Opt. Lett. 12, 227- 229 (1987).
〔8〕 M. Kempe, A. Z. Genack, W. Rudolph, and P. Dorn, "Ballistic and diffuse light detection in confocal and heterodyne imaging systems," J. Opt. Soc. Am. A 14, 216-223 (1997).
〔9〕 C. J. R. Sheppard, M. Roy, and M. D. Sharma, "Image Formation in Low-Coherence and Confocal Interference Micr1oscopes," Appl. Opt. 43, 1493-1502 (2004).
〔10〕 D. Huang, E. A. Swanson, C. P. Lin, J. S. Schuman, W. G. Stinson, W. Chang, M. R. Hee, T. Flotte, K. Gregory, and C. A. Puliafito, "Optical coherence tomography," Science 254, 1178-1181 (1991).
〔11〕 M. Kempe and W. Rudolph, "Scanning microscopy through thick layers based on linear correlation," Opt. Lett. 19, 1919-1921 (1994).
〔12〕 H.-W. Wang and J. A. Izatt, “Optical Coherence Microscopy,” in Handbook of Optical Coherence Tomography, B. Bouma, G. Tearney, Eds., Marcel Dekker, New York, (2001).
〔13〕 T. D. Wang, M. J. Mandella, C. H. Contag, and G. S. Kino, "Dual-axis confocal microscope for high-resolution in vivo imaging," Opt. Lett. 28, 414-416 (2003).
〔14〕 T. D. Wang, C. H. Contag, M. J. Mandella, N. Chan, and G. S. Kino, "Dual-axes confocal microscopy with post-objective scanning and low-coherence heterodyne detection," Opt. Lett. 28, 1915-1917 (2003).
〔15〕 Jonathan T. C. Liu, Michael J. Mandella, Shai Friedland, Roy Soetikno, James M. Crawford, Christopher H. Contag, Gordon S. Kino, and Thomas D. Wang, "Dual-axes confocal reflectance microscope for distinguishing colonic neoplasia," J. Biomed. Opt. 11, 054019 (2006).
〔16〕 J.T.C. Liu, M. J. Mandella, H. Ra, L. K. Wong, O. Solgaard, G. S. Kino, W. Piyawattanametha, C. H. Contag, and T. D. Wang, "Miniature near-infrared dual-axes confocal microscope utilizing a two-dimensional microelectromechanical systems scanner," Opt. Lett. 32, 256-258 (2007).
〔17〕 C. J. R. Sheppard and M. Gu, "Aberration compensation in confocal microscopy," Appl. Opt. 30, 3563-3568 (1991).
〔18〕 D. K. Hamilton and C. J. R. Sheppard. "A confocal interference microscope, "Opt. Acta 29, 1573-1577 (1982)
〔19〕 M. Schwertner, M. Booth, and T. Wilson, "Characterizing specimen induced aberrations for high NA adaptive optical microscopy," Opt. Express 12, 6540-6552 (2004)
〔20〕 L. -C. Peng, C. Chou, C. -W. Lyu, and J. -C. Hsieh, "Zeeman laser-scanning confocal microscopy in turbid media," Opt. Lett. 26, 349-351 (2001)
〔21〕 M. Gu, Principle of three dimensional imaging in confocal microscopy, World Scientific, Singapore, (1996).
〔22〕 M. Gu and C. J. R. Sheppard, "Effects of defocus and primary spherical aberration on images of a straight edge in confocal microscopy," Appl. Opt. 33, 625-630 (1994).
Chapter 4
〔1〕 K. G. Tanaka and N. Ohta, “Effects of tilt and offset of signal field on heterodyne efficiency,” Appl. Opt. 26, 627-632 (1987).
〔2〕 D. C. Su, M. H. Chiu, and C. D. Chen, “Simple two-frequency laser,” Pre. Eng. 18, 161-163 (1996). |