博碩士論文 89226022 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:10 、訪客IP:18.224.63.87
姓名 杜堃鴻(Kun-Hung Tu)  查詢紙本館藏   畢業系所 光電科學與工程學系
論文名稱 陣列波導光柵波長多工器設計與分析
相關論文
★ 富含矽奈米結構之氧化矽薄膜之成長與其特性研究★ P型氮化鎵歐姆接觸製作研究
★ 應用聚對位苯基乙烯高分子材料製作有機發光二極體★ 氮離子佈植於氮化鎵之特性研究
★ 磷化銦鋁鎵/砷化鎵/砷化銦鎵對稱型平面摻雜場效電晶體研究★ 1550 nm 直調式光纖有線電視長距離傳輸系統
★ 以保角映射法為基礎之等效波導理論:理想光波導之設計與分析★ 銦鋅氧化膜基本特性及其與氮化鎵接觸應用之研究
★ 氮化鎵藍色發光二極體透明電極之製作與研究★ 透明導電膜與氮化鎵接觸特性研究
★ 連續時間電流式濾波與振盪電路設計與合成★ 氮化鋁鎵/氮化鎵異質接面金屬-半導體-金屬光檢測器之研究
★ 室溫沈積高穩定性之氮化矽薄膜及其光激發光譜研究★ 雙向混合DWDM系統架構在80-km LEAF上傳送CATV和OC-48信號
★ N型氮化鎵MOS元件之製作與研究★ 矽離子佈植於p型氮化鎵之特性研究
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]   [檢視]  [下載]
  1. 本電子論文使用權限為同意立即開放。
  2. 已達開放權限電子全文僅授權使用者為學術研究之目的,進行個人非營利性質之檢索、閱讀、列印。
  3. 請遵守中華民國著作權法之相關規定,切勿任意重製、散佈、改作、轉貼、播送,以免觸法。

摘要(中) 隨著光纖通信技術的日益成熟,大量資訊傳輸的光纖通信系統成為目前世界各國爭相研究及發展的論題,為達到此目的,高密度波長多工網路儼然已蔚為未來光通信傳輸系統的必然趨勢,在高密度波長多工網路系統中,高密度波長多工器為最具關鍵性的元件,而擁有易於擴大波道數、封裝成本低、適合大批量產以及可積體化等優點的陣列波導光柵(AWG)波長多工器,為未來達到多波道與窄頻道寬度需求最具發展潛力的元件。
在本論文中以氮氧化矽作為波導結構,並詳細介紹AWG元件的設計原理,且使用光波導數值模擬軟體BeamPROP來輔助完成設計的工作。在元件的設計上,完成了1×4通道AWG元件的分析模擬,並使用在平面波導區域加入折射率漸變區來達到平坦化分佈的輸出頻譜響應。
摘要(英) non
關鍵字(中) ★ 波長多工
★ 陣列波導光柵
關鍵字(英) ★ non
論文目次 第一章 前言 1
第二章 陣列波導光柵元件設計理論 5
2−1 基本工作原理 5
2−1−1 色散關係與頻道間距 8
2−1−2 自由頻譜範圍 10
2−2 理論分析 12
2−3 幾何結構 18
第三章 陣列波導光柵元件設計模擬 21
3−1 光束傳播法 21
3−2 基本波導結構與元件設計 24
3−3 輸出頻譜特性改良 31
第四章 結論 36
參考資料 37
參考文獻 [1] M. K. Smit and C. van Dam, “PHASR-Based WDM-Devices :principles, design and applications,” IEEE J. Select. Topics Quantum Electron., vol. 2, pp. 236–250, June 1996.
[2] P. Bernasconi, C. Doerr, C. Dragone, M. Cappuzzo, E. Laskowski and A. Paunescu, “Large N×N waveguide grating routers,” J. Lightwave Technol., vol. 18, pp. 985–991, July 2000.
[3] M. K. Smit, “New focusing and dispersive planar component based on an optical phased array,” Electron. Lett., vol. 24, pp. 385–386, Mar. 1988.
[4] A. R. Vellekoop and M. K. Smit, “Low-loss planar optical polarization splitter with small dimensions,” Electron. Lett., vol. 25, pp. 946–947, July 1989.
[5] A. R. Vellekoop and M. K. Smit, “Four-channel integrated- optic wavelength Demultiplexer with weak polarization dependence,” J. Lightwave Technol., vol. 9, pp. 310–314, Mar. 1991.
[6] M. K. Smit, “Optical phased arrays,” in Integrated Optics in Silicon-Based Aluminum Oxide, Ph.D. thesis, Delft Univ. of Technol., 1991.
[7] H. Takahashi, S. Suzuki, K. Kato and I. Nishi, “Arrayed- waveguide grating for wavelength division multi/Demulti- plexer with nanometer resolution,” Electron. Lett., vol. 26, pp. 87–88, Jan. 1990.
[8] H. Takahashi, Y. Hibino and I. Nishi, “Polarization-insensitive arrayed-waveguide grating wavelength multiplexer on silicon,” Opt. Lett., vol. 17, pp. 499–501, Apr. 1992.
[9] C. Dragone, “An N×N optical multiplexer using a planar arrangement of two star couplers,” IEEE Photon. Technol. Lett., vol. 3, pp. 812–815, Sept. 1991.
[10] C. Dragone, C. A. Edwards and R. C. Kistler, “Integrated optics N×N multiplexer on silicon,” IEEE Photon. Technol. Lett., vol. 3, pp. 896–899, Oct. 1991.
[11] M. Zirngibl, C. Dragone and C. H. Joyner, “Demonstration of a 15×15arrayed waveguide multiplexer on InP,” IEEE Photon. Technol. Lett., vol. 4, pp. 1250–1253, Nov. 1992.
[12] M. R. Amersfoort, C. R. de Boer, B. H. Verbeek, P. Demeester, A. Looyen and J. J. G. M. van der Tol, “Low-loss phased-array based 4-channel wavelength demultiplexer integrated with photodetectors,” IEEE Photon. Technol. Lett., vol. 6, pp. 62–64, Jan. 1994.
[13] C. H. Joyner, M. Zirngibl and J. C. Centanni, “An 8-channel digitally tunable transmitter with electroabsorption modulated output by selective-area epitaxy,” IEEE Photon. Technol. Lett., vol. 7, pp. 1013–1015, Sept. 1995.
[14] C. G. M. Vreeburg, T. Uitterdijk, Y. S. Oei, M. K. Smit, F. H. Groen, J. J. G. M. van der Tol, P. Demeester and H. J. Frankena, “Compact integrated InP-based add-drop multiplexer,” in Proc. 22nd Eur. Conf. Optical Communication(ECOC’96), Oslo, Sweden, Sept. 15–19, 1996, pp. 5.67–5.70.
[15] Y. Hida, Y. Innoue and S. Imamura, “ Polymeric arrayed- waveguide grating multiplexer operating around 1.3 mm,” Electron. Lett., vol. 30, pp. 959–960, June 1994.
[16] L. H. Spiekman, M. B. J. Diemeer, T. H. Hoekstra and M. K. Smit, “First polymeric phased array wavelength demultiplexer operating at 1550 nm,” Integrated Photonics Research 1996, Boston, MA, Apr. 29–May 2, 1996, pp.36–39.
[17] H. Okayama and M. Kawahara, “Waveguide array grating demultiplexer on LiNbO3,” Integrated Photonics Research 1995, Dana Point, CA, pp. 296–298, Feb. 23–25, 1995.
[18] H. Okayama, M. Kawahara and T. Kamijon, “Reflective waveguide array demultiplexer in LiNbO3,” J. Lightwave Technol., vol. 14, pp. 985–990, June 1996.
[19] H. Takahashi, K. Oda, H. Toba and Y. Inoue, “Transmission characteristics of arrayed waveguide N×N wavelength multiplexer,” J. Lightwave Technol., vol. 13, pp.447–455, Mar. 1995.
[20] R. März, Integrated Optics:Design and Modeling, Norwood, MA:Artech House, 1994.
[21] C. K. Madsen and J. H. Zhao, Optical Filter Design and Analysis:A Signal Processing Approach, New York:Wiley, 1999.
[22] J. W. Goodman, Introduction to Fourier Optics, San Francisco:McGraw-Hill, 1996.
[23] BeamPORP Version 5.0, Rsoft, Inc., 2001.
[24] R. Scarmozzino, A. Gopinath, R. Pregla and S. Helfert, “Numerical techniques for modeling guided-wave photonic devices,” IEEE J. Select. Topics Quantum Electron., vol. 6, pp. 150–162, Jan./Feb. 2000.
[25] G. R. Hadley, “Transparent boundary condition for the beam propagation method,” IEEE J. Quantum Electron., vol. 28, pp. 363–370, Jan. 1992.
[26] W. P. Huang and C. L. Xu, “Simulation of three-dimensional optical waveguides by a full-vector beam propagation method,” IEEE J. Quantum Electron., vol. 29, pp.2639–2649, Oct. 1993.
[27] Y. Hida, Y. Hibino, H. Okazaki and Y. Ohmori, “10-m-long silica- based waveguide with a loss of 1.7 dB/m,” Integrated Photonics Research 1995, Dana Point, CA, 1995.
[28] Y. Hibino, H. Okazaki, Y. Hida and Y. Ohmori, “Propagation loss characteristics of long silica-based optical waveguides on 5-inch Si wafers,” Electron. Lett., vol. 29, pp.1847–1848, Oct. 1993.
[29] S. Suzuki, K. Shuto, H. Takahashi and Y. Hibino, “Large-scale and high density planar lightwave circuits with high-D GeO2- doped silica waveguides,” Electron. Lett., vol. 28, pp. 1863–1864, Sept. 1992.
[30] K. Wörhoff, A. Driessen, P. V. Lambeck, L. T. H. Hilderink, P. W. C. Linders and Th. J. A. Popma, “Plasma enhanced chemical vapor deposition silicon oxynitride optimized for application in integrated optics,” Sensors and Actuators, vol. 74, pp. 9–12, 1999.
[31] H. Nishihara, M. Haruna and T. Suhara, Optical Integrated Circuits, New York:McGraw-Hill, 1985.
[32] K. Okamoto and A. Sugita, “Flat spectral response arrayed- waveguide multiplexer with parabolic waveguide horns,” Electron. Lett., vol. 32, pp. 1661–1662, Aug. 1996.
[33] M. R. Amersfoort, J. B. D. Soole, H. P. LeBlanc, N. C. Andreadakis, A. Rajhel and C. Caneau, “Passband broadening of integrated arrayed waveguide filters using multimode interference couplers,” Electron. Lett., vol. 32, pp. 449–451, Feb. 1996.
[34] C. Dragone, T. Strasser, G. A. Bogert, L. W. Stulz and P. Chou, “Waveguide grating router with maximally flat passband produced by spatial filtering,” Electron. Lett., vol. 33, pp. 1312–1314, July 1997.
[35] T. Kamalakis and T. Sphicopoulos, “An efficient technique for design of an arrayed-waveguide grating with flat spectral response,” J. Lightwave Technol., vol. 19, pp.1716–1725, Nov. 2001.
[36] K. Okamoto and H. Yamada, “Arrayed-waveguide grating multiplexer with flat spectral response,” Opt. Lett., vol. 20, pp.43–45, Jan. 1995.
[37] D. Wiesmann, J. Hübner, R. Germann, I. Massarek, H. W. M. Salemink, G. L. Bona, M. Kristensen and H. Jäckel, “Large UV-induced negative index changes in germanium-free nitrogen-doped planar SiO2 waveguides,” Electron. Lett., vol. 34, pp.364–366, Feb. 1998.
指導教授 李清庭(Ching-Ting Lee) 審核日期 2002-7-10
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