Measurement and imaging of birefringent properties of the human cornea with phase-resolved, polarization-sensitive optical coherence tomography

被引:100
作者
Götzinger, E [1 ]
Pircher, M [1 ]
Sticker, M [1 ]
Fercher, AF [1 ]
Hitzenberger, CK [1 ]
机构
[1] Univ Vienna, Dept Med Phys, A-1090 Vienna, Austria
关键词
optical coherence tomography; polarization-sensitive optical coherence; tomography; cornea; birefringence; polarimetry;
D O I
10.1117/1.1629308
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Optical coherence tomography (OCT) is an emerging technology for high-resolution, noncontact imaging of transparent and scattering media. Polarization-sensitive optical coherence tomography (PS-OCT) is a functional extension of OCT that can image birefringent properties of a biological sample. PS-OCT was used to measure and image retardation and birefringent axis orientation of in vitro human cornea. We used a two-channel PS-OCT system employing a phase-sensitive recording of the interferometric signals in two orthogonal polarization channels. Using an algorithm based on a Hilbert transform, it is possible to calculate the retardation and the slow axis orientation of the sample with only a single A-scan per transversal measurement location. While the retardation information is encoded in the amplitude ratio of the two interferometric signals, the axis orientation is encoded entirely in their phase difference. We present maps of retardation and the distribution of slow axis orientation of the human cornea in longitudinal cross-sections and en face images obtained at the back surface of the cornea. The retardation increases in a radial direction and with depth; the slow axis varies in the transversal direction. Knowledge of the retardation and the slow axis distribution of the cornea might improve nerve fiber polarimetry for glaucoma diagnostics and could be useful for diagnosing different types of pathologies of the cornea. (C) 2004 Society of Photo-Optical Instrumentation Engineers.
引用
收藏
页码:94 / 102
页数:9
相关论文
共 33 条
[1]   Polarization-sensitive optical coherence tomography of dental structures [J].
Baumgartner, A ;
Dichtl, S ;
Hitzenberger, CK ;
Sattmann, H ;
Robl, B ;
Moritz, A ;
Fercher, ZF ;
Sperr, W .
CARIES RESEARCH, 2000, 34 (01) :59-69
[2]  
Bouma B.E., 2002, Handbook of Optical Coherence Tomography
[3]  
Bour L. J., 1991, VISUAL OPT INSTRUMEN, V1, P310
[4]   ON THE BIREFRINGENCE OF THE LIVING HUMAN-EYE [J].
BOUR, LJ ;
CARDOZO, NJL .
VISION RESEARCH, 1981, 21 (09) :1413-1421
[5]   Measurements of the corneal birefringence with a liquid-crystal imaging polariscope [J].
Bueno, JM ;
Vargas-Martín, F .
APPLIED OPTICS, 2002, 41 (01) :116-124
[6]   In vivo depth-resolved birefringence measurements of the human retinal nerve fiber layer by polarization-sensitive optical coherence tomography [J].
Cense, B ;
Chen, TC ;
Park, BH ;
Pierce, MC ;
de Boer, JF .
OPTICS LETTERS, 2002, 27 (18) :1610-1612
[7]  
Daxer A, 1997, INVEST OPHTH VIS SCI, V38, P121
[8]   Polarization effects in optical coherence tomography of various biological tissues [J].
de Boer, JF ;
Srinivas, SM ;
Park, BH ;
Pham, TH ;
Chen, ZP ;
Milner, TE ;
Nelson, JS .
IEEE JOURNAL OF SELECTED TOPICS IN QUANTUM ELECTRONICS, 1999, 5 (04) :1200-1204
[9]   Determination of the depth-resolved Stokes parameters of light backscattered from turbid media by use of polarization-sensitive optical coherence tomography [J].
de Boer, JF ;
Milner, TE ;
Nelson, JS .
OPTICS LETTERS, 1999, 24 (05) :300-302
[10]   Two-dimensional birefringence imaging in biological tissue by polarization-sensitive optical coherence tomography [J].
deBoer, JF ;
Milner, TE ;
vanGemert, MJC ;
Nelson, JS .
OPTICS LETTERS, 1997, 22 (12) :934-936