博碩士論文 110226017 詳細資訊




以作者查詢圖書館館藏 以作者查詢臺灣博碩士 以作者查詢全國書目 勘誤回報 、線上人數:22 、訪客IP:52.15.160.43
姓名 熊永仁(Yung-Jeng Shyong)  查詢紙本館藏   畢業系所 光電科學與工程學系
論文名稱 基於超像素法之偏振干涉系統應用於薄膜量測
(Thin-Film Measurement Method by Polarization Interferometer Based on Super-Pixel method)
相關論文
★ 以反應性射頻磁控濺鍍搭配HMDSO電漿聚合鍍製氧化矽摻碳薄膜阻障層之研究★ 軟性電子阻水氣膜之有機層組成研究
★ 利用介電質-金屬對稱膜堆設計雙曲超穎材料並分析其光學特性★ 石墨烯透明導電膜與其成長模型之研究
★ 以磁控電漿輔助化學氣相沉積法製鍍有機矽阻障層之研究★ 以電漿聚合鍍製氧化矽摻碳氫薄膜應力之研究
★ 利用有限元素方法分析光譜合束器之多層介電質繞射光柵之繞射效率★ 化學氣相沉積石墨烯透明導電膜之製程與分析
★ 應用光學導納軌跡法提升太陽能選擇性吸收膜之光熱轉換效率研究★ 單晶銅成長石墨烯及其可撓性之研究
★ 高反射多層膜抗雷射損傷閥值之研究★ 高穿透類鑽碳膜之研究
★ 裝備具有低光斑的抗眩光膜層★ 透鏡品質檢測基於四波橫向剪切干涉儀
★ 利用介電係數趨近零材料設計層狀寬帶超穎吸收膜★ 抑制層對降低電漿輔助原子層沉積二氧化鉿薄膜結晶之研究
檔案 [Endnote RIS 格式]    [Bibtex 格式]    [相關文章]   [文章引用]   [完整記錄]   [館藏目錄]   至系統瀏覽論文 (2025-7-27以後開放)
摘要(中) 此篇論文研究是以Linnik 干涉儀架設,使用彩色偏振攝影機,完成即時動態干涉量測系統的架設,其量測功能可用於量測反射光譜與反射相位光譜並過攝影機的貝爾濾波片同時得到多波長的量測資訊。多波長量測系統之標準片量測,其誤差為1.46%,標準差為±0.201%,對薄膜樣品量測結果之誤差均小於1.11%。
該量測系統結合了偏振顯微系統完成偏振相位量測,使用彩色偏振攝影機藉由超像素分配設計並進行算法校正,將原本只能用於測量線偏振之彩色偏振攝影機用於測量圓偏振,且利用程式修正因為機械結構所造成的光學現象。
藉由算法與程式上的修正,可以減緩動態干涉儀的量測結果受到元件設備品質所帶來的影響,例如在光強度不均勻等情況下能夠通過程式校正,還原待測物的測量結果。利用提前以偏振相機校正系統建構的程式計算,量測穿透光之偏振態,並利用干涉光之偏振態還原其相位。在文章的結果討論中與其他測量方法的資料進行比對以驗證該量測系統在量測上的準確度。
摘要(英) This article aims to set up multi-wavelength dynamic interferometry based on a polarized Linniks interferometry with a polarization pixel camera. Its measurement function can be used to measure the reflection spectrum and phase spectrum. The Bell filter obtains measurement information of multiple wavelengths at the same time. The error of the standard sheet measurement of the multi-wavelength measurement system is 1.46%, the standard deviation is ±0.201%, and the error is less than 1.11%.
The system uniquely integrates a polarized microscope and a snap-shot quantitative phase system, utilizing a novel full-Stokes camera operating in the red, green, and blue (RGB) spectrum.
In this research, analyses of the uniformity light source how these improvements increase the accuracy of the thin-film measurement. The dynamic interferometry is capable to measure reflection amplitude and phase for mutli-wavelength by selecting different narrow band-pass filter. An application of full stokes interferometry on transparent thin-film measurement was achieved. The measurements were compared with reference to prove accuracy of our system.
關鍵字(中) ★ 偏振干涉儀 關鍵字(英)
論文目次 摘要 I
Abstract II
致謝 III
圖目錄 VI
表目錄 VIII
第一章 緒論 1
1-1 前言 1
1-1-1相移式干涉儀 1
1-2 研究動機 4
1-3 本文架構 5
第二章 理論 6
2-1 斯托克斯偏振理論 6
2-2 干涉儀理論 10
2-2-1 動態干涉儀理論 12
2-2-2 多波長計量 14
2-3 超像素(Super-pixel)演算法 16
2-4 薄膜理論 18
2-4-1 單層膜的反射與透射 18
2-4-2 單層膜與多層膜的膜矩陣 22
2-4-3 單層膜與多層膜的反射率、穿透率及相位 23
第三章 實驗架構與研究方法 25
3-1 實驗架構 25
3-2 研究方法 27
第四章 實驗結果與討論 29
4-1 系統校正 29
4-1-1 鏡頭偏振校正 29
4-2 實驗結果與討論 44
第五章 結論 48
參考文獻 50
參考文獻 1. Xingzhou Tu, Oliver J. Spires, Xiaobo Tian, Neal Brock, Rongguang Liang, and Stanley Pau, "Division of amplitude RGB full-Stokes camera using micro-polarizer arrays," Opt. Express 25, 33160-33175 (2017)
2. J. Rodriguez, L. Lew-Yan-Voon, R. Martins and O. Morel, "A Practical Calibration Method for RGB Micro-Grid Polarimetric Cameras," in IEEE Robotics and Automation Letters, vol. 7, no. 4, pp. 9921-9928, Oct. 2022, doi: 10.1109/LRA.2022.3192655.
3. Xiaobo Tian, Xingzhou Tu, Kimiko Della Croce, Guang Yao, Haijiang Cai, Neal Brock, Stanley Pau, and Rongguang Liang, "Multi-wavelength quantitative polarization and phase microscope," Biomed. Opt. Express 10, 1638-1648 (2019)
4. Daniel Malacara , "Optical Shop Testing," Third Edition, Wiley-Interscience A John Wiley & Sons, Inc. (2007)
5. Y. Gimenez, P.-J. Lapray, A. Foulonneau and L. Bigué, "Calibration algorithms for polarization filter array camera: Survey and evaluation", J. Electron. Imag., vol. 29, Mar. 2020.
6. S Powell and V. Gruev, "Calibration methods for division-of-focal-plane polarimeters", Opt. Exp., vol. 21, pp. 21039-21055, Sep. 2013.
7. Graham Myhre, Wei-Liang Hsu, Alba Peinado, Charles LaCasse, Neal Brock, Russell A. Chipman, and Stanley Pau, "Liquid crystal polymer full-stokes division of focal plane polarimeter," Opt. Express 20, 27393-27409 (2012)
8. J. Scott Tyo, Dennis L. Goldstein, David B. Chenault, and Joseph A. Shaw, "Review of passive imaging polarimetry for remote sensing applications," Appl. Opt. 45, 5453-5469 (2006)
9. Wei-Liang Hsu, Graham Myhre, Kaushik Balakrishnan, Neal Brock, Mohammed Ibn-Elhaj, and Stanley Pau, "Full-Stokes imaging polarimeter using an array of elliptical polarizer," Opt. Express 22, 3063-3074 (2014) 22.
10. B. M. Ratliff, C. F. LaCasse, and J. S. Tyo, “Interpolation strategies for reducing IFOV artifacts in microgrid polarimeter imagery,” Opt. Express 17(11), 9112–9125 (2009).
11. I. J. Vaughn, A. S. Alenin, and J. Scott Tyo, “Focal plane filter array engineering I: rectangular lattices,” Opt.Express 25(10), 11954–11968 (2017).
12. J. S. Tyo, C. F. LaCasse, and B. M. Ratliff, “Total elimination of sampling errors in polarization imagery obtained with integrated microgrid polarimeters,” Opt. Lett. 34(20), 3187–3189 (2009).
13. Y. Jang, J. Jang, and Y. Park, “Dynamic spectroscopic phase microscopy for quantifying hemoglobin concentration and dynamic membrane fluctuation in red blood cells,” Opt. Express 20(9), 9673–9681 (2012).
14. N. J. Brock, J. E. Millerd, J. C. Wyant, and J. B. Hayes, “Pixelated phase-mask interferometer,” U.S. Patent,7,230,717 (12 June 2007).
15. R. Smythe and R. Moore, "Instantaneous Phase Measuring Interferometry", Opt. Eng. 23(4), 361-364 (1984).
16. Andrea Hettwer, Jochen Kranz, and Johannes Schwider. "Three channel phase-shifting interferometer using polarization-optics and a diffraction grating", Opt. Eng. 39(4), 960-966 (2000).
17. James E. Millerd, Neal J. Brock, John B. Hayes and James C. Wyant, "Instantaneous phase-shift point-diffraction interferometer", Proc. SPIE 5531, Interferometry XII: Techniques and Analysis, 264-272 (2004)
18. Neal Brock, John Hayes, Brad Kimbrough, James Millerd, Michael North-Morris, Matt Novak and James C. Wyant, " Dynamic Interferometry", SPIE Vol. 5875, page 58750F-1-10 (2005)
19. Z. Chen, "Calibration method of microgrid polarimeters with image interpolation", Appl. Opt., vol. 54, pp. 995-1001, Feb. 2015.
20. Z. Ding, C. Sun, H. Han, L. Ma and Y. Zhao, "Calibration method for division-of-focal-plane polarimeters using nonuniform light", IEEE Photon. J., vol. 13, no. 1, pp. 1-9.
21. H. Fei, F.-M. Li, W.-C. Chen, R. Zhang and C.-S. Chen, "Calibration method for division of focal plane polarimeters", Appl. Opt., vol. 57, Jun. 2018.
22. M. García, I. Erausquin, C. Edmiston and V. Gruev, "Surface normal reconstruction using circularly polarized light", Opt. Exp., vol. 23, Jun. 2015.
23. N. Hagen, S. Shibata and Y. Otani, "Calibration and performance assessment of microgrid polarization cameras", Opt. Eng., vol. 58, Feb. 2019.
24. T. Ichikawa, M. Purri, R. Kawahara, S. Nobuhara, K. Dana and K. Nishino, "Shape from sky: Polarimetric normal recovery under the sky", Proc. IEEE/CVF Conf. Comput. Vis. Pattern Recognit., pp. 14832-14841, 2021.
25. C. Lane, D. Rode and T. Roesgen, "Calibration of a polarization image sensor andinvestigation of influencing factors", Appl. Opt., vol. 61, no. 6, pp. C37-C45, Oct. 2021.
26. P. Marconnet, L. Gendre, A. Foulonneau and L. Bigué, "Cancellation of motion artifacts caused by a division-of-time polarimeter", Proc. SPIE, vol. 8160, pp. 196-206, Sep. 2011.
27. O. Morel, R. Seulin and D. Fofi, "Handy method to calibrate division-of-amplitude polarimeters for the first three stokes parameters", Opt. Exp., vol. 24, Jun. 2016.
28. S. Powell, R. Garnett, J. Marshall, C. Rizk and V. Gruev, "Bioinspired polarization vision enables underwater geolocalization", Sci. Adv., vol. 4, Apr. 2018.
29. E. Salomatina-Motts, V. Neel and A. Yaroslavsky, "Multimodal polarization system for imaging skin cancer", Opt. Spectrosc., vol. 107, pp. 884-890, Dec. 2009.
30. Y. Yoav Schechner, "Self-calibrating imaging polarimetry", Proc. IEEE Int. Conf. Comput. Photogr., pp. 1-10, 2015.
31. R. W. Schmieder, "Stokes-algebra formalism", J. Opt. Soc. Amer, vol. 59, no. 3, pp. 297-302, Mar. 1969.
32. F. Snik et al., "An overview of polarimetric sensing techniques and technology with applications to different research fields" in Proc. SPIE - Int. Soc. Opt. Eng., vol. 9099, pp. 48-67, 2014.
33. J. Tyo, "Optimum linear combination strategy for an n -channel polarization- sensitive imaging or vision system", J. Opt. Soc. Amer., vol. 15, no. 2, pp. 359-366, Feb. 1998.
34. X. Wu, H. Zhang, X. Hu, M. Shakeri, C. Fan and J. Ting, "HDR reconstruction based on the polarization camera", IEEE Robot. Automat. Lett., vol. 5, no. 4, pp. 5113-5119, Oct. 2020.
35. Beth Schaefer, Edward Collett, Robert Smyth, Daniel Barrett, Beth Fraher; Measuring the Stokes polarization parameters. American Journal of Physics 1 February 2007; 75 (2): 163–168. https://doi.org/10.1119/1.2386162
36. B. E. Bayer, “Color imaging array,” U.S. Patent 3,971,065 (1976).
37. A. G. Andreou and Z. K. Kalayjian, “Polarization imaging: principles and integrated polarimeters,” IEEE Sens. J. 2(6), 566–576 (2002).
38. S. Y. Lu and R. Chipman, “Interpretation of Mueller matrices based on polar decomposition,” J. Opt. Soc. Am. A 13(5), 1106–1113 (1996).
39. C. F. LaCasse, R. A. Chipman, and J. S. Tyo, “Band limited data reconstruction in modulated polarimeters,” Opt. Express 19(16), 14976–14989 (2011).
40. S. K. Gao and V. Gruev, “Bilinear and bicubic interpolation methods for division of focal plane polarimeters,” Opt. Express 19(27), 26161–26173 (2011).
41. S. Gao and V. Gruev, “Gradient-based interpolation method for division-of-focal-plane polarimeters,” Opt. Express 21(1), 1137–1151 (2013).
指導教授 郭倩丞(Chien-Cheng Kuo) 審核日期 2023-8-15
推文 facebook   plurk   twitter   funp   google   live   udn   HD   myshare   reddit   netvibes   friend   youpush   delicious   baidu   
網路書籤 Google bookmarks   del.icio.us   hemidemi   myshare   

若有論文相關問題,請聯絡國立中央大學圖書館推廣服務組 TEL:(03)422-7151轉57407,或E-mail聯絡  - 隱私權政策聲明