中国激光, 2018, 45 (2): 0207022, 网络出版: 2018-02-28   

偏振频域OCT系统光谱错位分析及光谱校准 下载: 886次

Wavelength Misalignment Analysis and Spectral Calibration for Fourier Domain Polarization-Sensitive Optical Coherence Tomography
陈艳 1,2李中梁 1,2南楠 1步扬 1,2卢宇 1,2宋思雨 1,2王向朝 1,2,*
作者单位
1 中国科学院上海光学精密机械研究所信息光学与光电技术实验室, 上海 201800
2 中国科学院大学, 北京 100049
引用该论文

陈艳, 李中梁, 南楠, 步扬, 卢宇, 宋思雨, 王向朝. 偏振频域OCT系统光谱错位分析及光谱校准[J]. 中国激光, 2018, 45(2): 0207022.

Chen Yan, Li Zhongliang, Nan Nan, Bu Yang, Lu Yu, Song Siyu, Wang Xiangzhao. Wavelength Misalignment Analysis and Spectral Calibration for Fourier Domain Polarization-Sensitive Optical Coherence Tomography[J]. Chinese Journal of Lasers, 2018, 45(2): 0207022.

参考文献

[1] Huang D, Swanson E A, Lin C P, et al. Optical coherence tomography[J]. Science, 1991, 254(5035): 1178-1181.

[2] 贺琪欲, 李中梁, 王向朝, 等. 基于光学相干层析成像的视网膜图像自动分层方法[J]. 光学学报, 2016, 36(10): 1011003.

    He Q Y, Li Z L, Wang X Z, et al. Automated retinal layer segmentation based on optical coherence tomographic images[J]. Acta Optica Sinica, 2016, 36(10): 1011003.

[3] 王瑄, 李中梁, 南楠, 等. 一种提高扫频光学相干层析成像系统灵敏度的方法[J]. 中国激光, 2017, 44(8): 0807002.

    Wang X, Li Z L, Nan N, et al. A method to improve sensitivity of swept source optical coherence tomography system[J]. Chinese Journal of Lasers, 2017, 44(8): 0807002.

[4] Hee M R, Huang D, Swanson E A, et al. Polarization-sensitive low-coherence reflectometer for birefringence characterization and ranging[J]. Journal of the Optical Society of America B, 1992, 9(6): 903-908.

[5] Roberts P, Sugita M, Deák G, et al. Automated identification and quantification of subretinal fibrosis in neovascular age-related macular degeneration using polarization-sensitive OCT[J]. Investigative Ophthalmology & Visual Science, 2016, 57(4): 1699-1705.

[6] Sakai S, Yamanari M, Lim Y, et al. In vivo evaluation of human skin anisotropy by polarization-sensitive optical coherence tomography[J]. Biomedical Optics Express, 2011, 2(9): 2623-2631.

[7] Lee R C, Kang H, Darling C L, et al. Automated assessment of the remineralization of artificial enamel lesions with polarization-sensitive optical coherence tomography[J]. Biomedical Optics Express, 2014, 5(9): 2950-2962.

[8] South F A, Chaney E J, Marjanovic M, et al. Differentiation of ex vivo human breast tissue using polarization-sensitive optical coherence tomography[J]. Biomedical Optics Express, 2014, 5(10): 3417-3426.

[9] Kiseleva E, Kirillin M, Feldchtein F, et al. Differential diagnosis of human bladder mucosa pathologies in vivo with cross-polarization optical coherence tomography[J]. Biomedical Optics Express, 2015, 6(4): 1464-1476.

[10] Wiesauer K, Pircher M, Goetzinger E, et al. Transversal ultrahigh-resolution polarization-sensitive optical coherence tomography for strain mapping in materials[J]. Optics Express, 2006, 14(13): 5945-5953.

[11] Stifter D, Leiss-Holzinger E, Major Z, et al. Dynamic optical studies in materials testing with spectral-domain polarization-sensitive optical coherence tomography[J]. Optics Express, 2010, 18(25): 25712-25725.

[12] Fercher A F, Hitzenberger C K, Kamp G, et al. Measurement of intraocular distances by backscattering spectral interferometry[J]. Optics Communications, 1995, 117(1-2): 43-48.

[13] Baumann B. Polarization sensitive optical coherence tomography: a review of technology and applications[J]. Applied Sciences, 2017, 7(5): 474.

[14] Park B H, Pierce M C, Cense B, et al. Real-time fiber-based multi-functional spectral-domain optical coherence tomography at 1.3 μm[J]. Optics Express, 2005, 13(11): 3931-3944.

[15] Mujat M, Park B H, Cense B, et al. Autocalibration of spectral-domain optical coherence tomography spectrometers for in vivo quantitative retinal nerve fiber layer birefringence determination[J]. Journal of Biomedical Optics, 2007, 12(4): 041205.

[16] Götzinger E, Pircher M, Hitzenberger C K. High speed spectral domain polarization sensitive optical coherence tomography of the human retina[J]. Optics Express, 2005, 13(25): 10217-10229.

[17] SugiyamaS, Hong YJ, KasaragodD, et al. Quantitative polarization and flow evaluation of choroid and sclera by multifunctional Jones matrix optical coherence tomography[C]. SPIE, 2016, 9693: 96930M.

[18] Wojtkowski M, Leitgeb R, Kowalczyk A, et al. In vivo human retinal imaging by Fourier domain optical coherence tomography[J]. Journal of Biomedical Optics, 2002, 7(3): 457-463.

[19] Baumann B, Götzinger E, Pircher M, et al. Single camera based spectral domain polarization sensitive optical coherence tomography[J]. Optics Express, 2007, 15(3): 1054-1063.

[20] ChenY, WangX, LiZ, et al. Full-range Fourier domain polarization-sensitive optical coherence tomography using sinusoidal phase modulation[C]. SPIE, 2014, 9230: 92301S.

[21] Lurie K L, Moritz T J, Ellerbee A K. Design considerations for polarization-sensitive optical coherence tomography with a single input polarization state[J]. Biomedical Optics Express, 2012, 3(9): 2273-2287.

陈艳, 李中梁, 南楠, 步扬, 卢宇, 宋思雨, 王向朝. 偏振频域OCT系统光谱错位分析及光谱校准[J]. 中国激光, 2018, 45(2): 0207022. Chen Yan, Li Zhongliang, Nan Nan, Bu Yang, Lu Yu, Song Siyu, Wang Xiangzhao. Wavelength Misalignment Analysis and Spectral Calibration for Fourier Domain Polarization-Sensitive Optical Coherence Tomography[J]. Chinese Journal of Lasers, 2018, 45(2): 0207022.

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