簡易檢索 / 詳目顯示

研究生: 林昱志
Yu-Chih Lin
論文名稱: 數位全像顯微術及其光學元件量測應用之研究
A Study on Digital Holographic Microscopy and Its Applications to Optical Device Measurement
指導教授: 謝美莉
Hsieh, Mei-Li
學位類別: 碩士
Master
系所名稱: 光電工程研究所
Graduate Institute of Electro-Optical Engineering
論文出版年: 2007
畢業學年度: 95
語文別: 中文
論文頁數: 77
中文關鍵詞: 數位全像顯微術波前量測偏振態液晶空間光調制器
英文關鍵詞: Digital holographic microscopy, Wavefront measurement, Polarization state, Liquid crystal spatial light modulators
論文種類: 學術論文
相關次數: 點閱:273下載:81
分享至:
查詢本校圖書館目錄 查詢臺灣博碩士論文知識加值系統 勘誤回報
  • 本文主要在探討數位全像顯微術的原理、特性及其光波量測上的應用。 本研究工作首先架設相移式無鏡成像數位全像顯微系統以量測微透鏡陣列的三維輪廓。 同時,利用此系統具有較廣的視角來量測液晶空間光調制器之振幅與相位調制特性。 為了提高數位全像顯微的空間解析度,本研究工作亦架設了相移式透鏡成像顯微系統架構,其解析度約達次微米,因而可用來分析更細微物體結構。結合此透鏡成像顯微鏡與雙埠干涉架構下,本研究同時探討光波偏振態量測之可行性,並應用之於空間光調制器之液晶晶胞偏振狀態之量測與分析。 本研究驗證了數位全像顯微術具有完整存取物體光波的振幅、相位與偏振資訊的潛力。 內文中將提出相關的實驗結果與說明。

    This work investigates the principles, properties of the digital holographic microscopy (DHM) and its applications on optical information sensing and measurement. First, this research construct a phase-shifting digital holographic microscope system with lensless imaging configuration to measure the three-dimension profile of a microlens array. Also, the DHM apparatus is applied to measure the phase and amplitude modulation of the liquid crystal spatial light modulators by means of the large angle of view. Then, we also try to equip the DHM system with an objective to achieve better spatial resolution down to submicrometer, so that the finer structure of specimen cab be further observed. In addition, by combining the DHM inaging and double-port interferometric technique, this work can study the possibility of sensing the polarization state of optical wave transmitted from the specimen. This polarization-sensitive cabibility are used to detect the polarization modulation of the liquid crystal devices. This work demonstrate that the digital holographic microscopy has great potential to completely detect the amplitude, phase and polarization information of object wavefronts. The analytical and experimental results are presented and discussed.

    中文摘要 英文摘要 目錄 圖目錄 第一章 緒論…………………………………………………………..……….1 1.1 數位全像顯微術之發展現況………………………………………….1 1.2 研究動機與挑戰…………………………………………...…………..5 1.3 文獻分析……………………………………………………………….7 1.3.1 移相式數位全像數…………………………………………….7 1.3.2 無鏡成像之數位全像顯微術………………………………….8 1.3.3 數位全像顯微術之三維量測………………………………...10 1.3.4 數位全像顯微術之偏振量測………………………………...12 1.4 論文架構……………………………………………………………...15 第二章 數位全像術之原理………………………………………………….16 2.1 全像術理論與發展………………………………………………..…16 2.2 數位全像之記錄與重建方式………………………………………...18 2.2.1記錄程序..…………………………….……………………….18 2.2.2重建程序……………………….……………………………...26 第三章 無鏡成像之數位全像顯微術……………………………………….34 3.1 無鏡顯微成像原理……………………………………………..…..34 3.1.1 無鏡成像之記錄與重建………………………………………34 3.1.2 球面波與傾斜角修正…………………………………………36 3.1.3 相位展開法……………………………………………………38 3.2 無鏡成像之實驗架構………………………………………………42 3.3 實驗結果……………………………………………………………..45 3.3.1 微透鏡陣列之量測………….………...………………………45 3.3.2 LC-SLM 振幅與相位之調制………………………………..47 第四章 偏振敏感型數位全像顯微術………………………………………51 4.1 物鏡顯微成像之原理………………………………………………..51 4.2 偏振成像原理………………………………………………………..54 4.3 偏振敏感型數位全像顯微鏡之系統架構 ….……..……………….56 4.4 偏振敏感型系統之量測結果……….…………………………….59 第五章 結論與未來工作規劃………………………………..….…….64 參考文獻……………65

    [1] T. Zhang and I. Yamaguchi , “Three-dimensional microscopy with phase-shifting digital holography ”Opt. Lett. 23, 1221–1223, (1998).
    [2] I. Yamaguchi, “Image formation in phase-shifting digital holography and applications to microscopy”, Appl. Opt. 40, 6177-6186 (2001)
    [3] P. Guo and A. J. Devaney, “Digital microscopy using phase-shifting digital holography with two reference waves”, Opt. Lett. 29, 857-859 (2004)
    [4] V. Kebbel, Hans-Jürgen Hartmann, Werner P. O. Jüptner, “Application of digital holographic microscopy for inspection of microoptical components”, Proc. SPIE 4389, 189-198 (2001).
    [5] V. Kebbel, J. Müller, W. P. O. Jüptner, “Characterization of aspherical micro-optics using digital holography: improvement of accuracy” Proc. SPIE 4778, 188-197 (2002).
    [6] V. Kebbel, H.-J. Hartmann, W. P. 0. JUptner, “Characterization of micro-optics using digital holography”, Proc. SPIE 4101, 477-487 (2000).
    [7] F. Charrière, J. Kühn, T. Colomb “Characterization of microlenses by digital holographic microscopy”, Appl Opt. 45, 829-835 (2006).
    [8] T. Colomb, E. Cuche, and C. Depeursinge, “Automatic procedure for aberration compensation in digital holographic microscopy and applications to specimen shape compensation”, Appl. Opt. 45, 851-863 (2006)
    [9] J. Sheng, E. Malkiel, and J. Katz, “Digital holographic microscope for measuring three-dimensional particle distributions and motions”, Appl. Opt. 45, 3893-3901 (2006)
    [10] E. Cuche, P. Marquet, and C. Depeursinge, “Simultaneous amplitude-contrast and quantitative phase-contrast microscopy by numerical reconstruction of Fresnel off-axis holograms”, Appl. Opt. 38, 6994–7001 (1999)
    [11] G. Pedrini and H. J. Tiziani “Short-coherence digital microscopy by use of a lensless holographic imaging system”, Appl. Opt. 41, 4489-4496 (2002)
    [12] L. Martínez-León, G. Pedrini, and W. Osten, “Applications of short-coherence digital holography in microscopy” Appl. Opt. 44, 3977-3984 (2005)
    [13] S. Tamano, Y. Hayasaki, and N. Nishida, “Phase-shifting digital holography with a low-coherence light source for reconstruction of a digital relief objecthidden behind a light-scattering medium”, Appl. Opt. 45, 963-969 (2006)
    [14] G. Indebetouw and P. Klysubun, “Imaging through scattering media with depth resolution by use of low-coherencegating in spatiotemporal digital holography”, Opt. Lett. 25, 212-214 (2000)
    [15] P. Massatsch, F. Charrière, E. Cuche, P. Marquet, and C. D. Depeursinge, “Time-domain optical coherence tomography with digital holographic microscopy”, Appl. Opt. 44, 1806–1812 (2005)
    [16] L. Yu and Myung K. Kim, “Wavelength scanning digital interference holography for tomographic three dimensional imaging by use of the angular spectrum method”, Opt. Lett. 30, 2092-2094 (2005)
    [17] F. Charrière, A. Marian, “Cell refractive index tomography by digital holographic microscopy”, Opt. Lett. 31, 178-180 (2006)
    [18] U. Schnars, Werner P O J¨uptner, “Digital recording and numerical reconstruction of holograms”, Meas. Sci. Technol., 13, R85–R101 (2002)
    [19] I. Yamaguchi and T. Zhang, “Phase-shifting digital holography”, Opt. Lett. 22, 1268–1270 (1997).
    [20] 李天嘉 “移相式數位全像研究”, 聖約翰技術學院自動化與機電整合研究所碩士論文 (2004)
    [21] 蔡亦銘, “相位移數位剪像之相位展開法研究”, 國立成功大學機械工程學系碩士論文 (2001)
    [22] D. Gabor, Nature 161, 777–778 (1948)
    [23] E. Cuche, P. Marquet, and C. Depeursinge, “Spatial filtering for zero-order and twin-image elimination in digital off-axis holography”, Appl. Opt. 39, 4070–4075 (2000)
    [24] C.J.Mann and M.K. Kim, “Quantitative phase-contrast microscopy by angular spectrum digital holography”, Proc. SPIE 6090, (2006).
    [25] M. K Kim, L.Yu and C. J Mann, “Interference techniques in digital holography”, J. Opt. A: Pure Appl. Opt. 8, S518–S523 (2006)
    [26] F. Zhang and I. Yamaguchi, “Algorithm for reconstruction of digital holograms with adjustable magnification”, Opt. Lett. 29, 1668-1670 (2004)
    [27] E. Cuche, F. Bevilacqua, and C. Depeursinge, “Digital holography for quantitative phase-contrast imaging”, Opt. Lett. 24, 291-293 (1999)
    [28] I. Yamaguchi, K. Yamamoto, G. A. Mills, and M. Yokota, “Image reconstruction only by phase data in phase-shifting digital holography”, Appl. Opt. 35, 975-983 (2006)
    [29] L. Yu and M. K. Kim, “Pixel resolution control in numerical reconstruction of digital holography”, Opt. Lett. 31, 897-899 (2006)
    [30] T. Nomura, S. Murata, E. Nitanai, and T. Numata, “Phase-shifting digital holography with a phase difference between orthogonal polarizations”, Appl. Opt. 45, 4873–4877 (2006)
    [31] T. Colomb, C. Depeursinge, “Polarization imaging by use of digital holography”, Appl. Opt. 41, 27-37 (2002)
    [32] M. Yokota, Y. Terui, I. Yamaguchi, “whole field polarization analysis by digital holography with single reference beam”, Proc. of SPIE 6293, (2006)
    [33] T. Colomb, E. Cuche and C. Depeursing, “Polarization digital holographic microscope: a single acquisition for a complete determination of polarization state” Proc. of SPIE 6252, (2006)
    [34] J. W. Goodman, “Introduction to Fourier Optics”, MeGraw-Hill, New York, 2nd ed. (1996).
    [35] P. Yeh and C. Gu, “Opitcs of liquid crystal displays”, John Wiely & Sons, New York, 1999.
    [36] C. J. Cheng and M. L. Chen, “Polarization-encoding for optical encryption using twisted nematic liquid crystal spatial light modulators”, Opt. Commun. 237, 45-52 (2004).
    [37] O. Matoba, T.J. Naughton, Y. Frauel, N. Bertaux, B. Javidi, “Real-time three-dimensional object reconstruction by use of a phase-encoded digital hologram”, Appl. Opt. 41, 6187-6192 (2002).
    [38] V. Arrizón, L. A. González, R. Ponce, and A. Serrano-Heredia, “Computer-generated holograms with optimum bandwidths obtained with twisted-nematic liquid-crystal displays”, Appl. Opt. 44, 1625-1634 (2005)
    [39] L. G. Neto, D. Roberge, and Y. Sheng, “Full-range, continuous, complex modulation by the use of two coupled-mode liquid-crystal televisions”, Appl. Opt. 35, 4567-4576 (1996)
    [40] J. Chen, T. Hirayama, G. Lai, T. Tanji, K. Ishizuka, and A. Tonomura, “Real-time electron-holographic interference microscopy with a liquid-crystal spatial light modulator”, Opt. Lett. 18, 1887-1889 (1993)
    [41] U. Schnars and W. Jueptner, “ digital holography”, Springer Berlin Heifelberg, New York, 2005

    QR CODE