跳到主要內容

臺灣博碩士論文加值系統

(216.73.216.143) 您好!臺灣時間:2026/10/11 17:04
字體大小: 字級放大   字級縮小   預設字形  
回查詢結果 :::

詳目顯示

我願授權國圖
: 
twitterline
研究生:許忠仁
研究生(外文):Chung-jen Hsu
論文名稱:可調式Y型光子晶體波導之設計
論文名稱(外文):Design of Tunable Y-Shaped Photonic Crystal Waveguides
指導教授:于欽平
指導教授(外文):Chin-Ping Yu
學位類別:碩士
校院名稱:國立中山大學
系所名稱:光電工程研究所
學門:工程學門
學類:材料工程學類
論文種類:學術論文
論文出版年:2009
畢業學年度:97
語文別:英文
論文頁數:107
中文關鍵詞:聚苯胺、液晶、可調式、光子晶體波導
外文關鍵詞:Tunable、Liquid crystals、Polyaniline、Photonic crystal waveguides
相關次數:
  • 被引用被引用:0
  • 點閱點閱:213
  • 評分評分:
  • 下載下載:0
  • 收藏至我的研究室書目清單書目收藏:0
光子晶體是介電常數在空間中呈現週期性變化的結構,它的主要特性是存在光子能隙,能夠在特定的頻率範圍內禁止光在其中的傳播。而傳統光子晶體,其光能隙的特性在光子晶體結構製作完成之後,便難再利用外在因素調變,因此發展可應用於光積體電路中的可調式光子晶體波導元件是相當重要的。
在本論文中,我們利用了模態能隙的效應,設計了含聚苯胺類電流變液體的二維可調式Y型光子晶體波導。藉由施加外加電壓於特定的區域,便能夠控制Y型波導中光的傳播方向。此外,我們也提出了一個含聚苯胺類電流變液體的可調式多通道光子晶體波導。我們接著研究了含液晶之可調式波導結構,藉由改變液晶的方向和孔洞的尺寸,我們成功地得到了以液晶為單一線缺陷之二維光子晶體波導的傳播特性。我們也模擬了以液晶當作線性缺陷的二維Y型光子晶體波導,並探討其可調式的光傳播現象。最後,我們考慮了含有液晶的三維Y型光子晶體平板波導,並探討液晶分子排列及平板厚度對其光特性之影響。
Photonic crystals (PCs) are structures with spatially periodic variations in dielectric constants. The prime property of PCs is the existence of the photonic band gaps (PBGs) which could prohibit the propagation of light within a certain frequency range. Once the PC structures are fabricated, it is hard to tune their optical properties for the fixed geometries. Thus, it is important to develop tunable PC waveguide devices for the applications in the photonic integrated circuits.
We utilize the mode-gap effect to design two-dimensional (2-D) tunable Y-shaped PC waveguides with the polyaniline type electrorheological (ER) fluids. The propagation of light on the Y-shaped waveguide can be controlled by applying the electric field in specific regions. Besides, we also propose a tunable multi-channel PC waveguide with the polyaniline type ER fluids. We then investigate the tunable propagation characteristics of a 2-D single line-defect PC waveguide with liquid crystals (LCs) by varying the direction of LCs and the hole sizes. We also simulate the tunable optical properties of a 2-D Y-shaped PC waveguide utilizing LCs. Finally, we consider a 3-D Y-shaped PC slab waveguide with LCs. The effects of the direction of LCs and the slab thickness are discussed.
1 Introduction 1

1.1 Overview 1

1.2 Chapter Outline 4

2 Numerical Methods 7

2.1 Introduction 7

2.2 Plane Wave Expansion Method 7

2.3 Finite-Difference Time-Domain Method 10

3 Tunable Photonic Crystal Waveguides Using Polyaniline Type Electrorheological Fluids 15

3.1 Mode-Gap Effect 15

3.2 Properties of Polyaniline Type Electrorheological Fluids 17

3.3 Tunable Y-Shaped Waveguides 18

3.4 Tunable Multi-Channel Waveguides 21

4 Tunable Photonic Crystal Waveguides Using Liquid Crystals 50

4.1 Optical Properties of Liquid Crystals 50

4.2 2-D Single Line-Defect PC Waveguides with LCs 51

4.3 2-D Tunable Y-Shaped Waveguides with LCs 53

4.4 3-D Tunable Y-Shaped Waveguides with LCs 55

5 Conclusions 87

Bibliography 89
[1] Baba, T., A. Motegi, T. Iwai, N. Fukaya, Y. Watanabe, and A. Sakai, “Light propagation characteristics of straight single-line-defect waveguides in photonic crystal slabs fabricated into a silicon-on-insulator substrate,” IEEE J. Quantum Electron., vol. 38, pp. 743−752, 2002.
[2] Bell, P. M., J. B. Pendry, L. M. Moreno, and A. J. Ward, “A program for calculating photonic band structures and transmission coefficients of complex structures,” Comput. Phys. Commun., vol. 85, pp.306−322, 1995.
[3] Busch, K., and S. John, “Liquid-crystal photonic-band-gap materials: the tunable electromagnetic vacuum,” Phys. Rev. Lett., vol. 83, pp. 967−970, 1999.
[4] Chandrasekhar, S., Liquid crystals. New York: Cambridge Univ. Press, 1995.
[5] Chen, C. C., H. D. Chien, and P. G. Luan, “Photonic crystal beam splitters,” Appl. Opt., vol. 43, pp. 6188−6190, 2004.
[6] Chien, F. S., Y. J. Hsu, W. F. Hsieh, and S. C. Cheng, “Dual wavelength demultiplexing by coupling and decoupling of photonic crystal waveguides,” Opt. Express, vol. 12, pp. 1119−1125, 2004.
[7] Djavid, M., A. Ghaffari, F. Monifi, and M. S. Abrishamian, “Heterostructure photonic crystal channel drop filters using mirror cavities,” J. Opt. A: Pure Appl. Opt., vol. 10, pp. 055203−055210, 2008.
[8] Djavid, M., F. Monifi, A. Ghaffari, and M. S. Abrishamian, “Heterostructure wavelength division demultiplexers using photonic crystal ring resonators,” Opt. Comm., vol. 281, pp. 4028−4032, 2008.
[9] Fan, S., P. R. Villeneuve, and J. D. Joannopolous, “Theoretical analysis of channel drop tunneling processes,” Phys. Rev. B, vol. 59, pp. 15882−15892, 1999.
[10] Hao, T., “Electrorheological fluids,” Adv. Mater., vol. 24, pp. 1847−1857, 2001.
[11] Javan, A. R. M., and N. Granpayeh, “Terahertz wave switch based on photonic crystal ring resonators,” Opt. Quant. Electron., vol. 40, pp. 695−705, 2008.
[12] Joannopoulos, J. D., S. G. Johnson, R. D. Meade, and J. N. Winn, Photonic crystals: molding the flow of light. New York: Princeton Univ. Press, 2008.
[13] John, S., “Strong localization of photons in certain disordered dielectric super lattices,” Phys. Rev. Lett., vol. 58, pp. 2486−2489, 1987.
[14] Johnson, S. G., S. Fan, P. R. Villeneuve, and J. D. Joannopoulos, “Guided modes in photonic-crystal slabs,” Phys. Rev. B, vol. 60, pp. 5751−5758, 1999.
[15] Johnson, S. G., S. Fan, P. R. Villeneuve, and J. D. Joannopoulos, “Linear waveguides in photonic-crystal slabs,” Phys. Rev. B, vol. 62, pp. 8212−8222, 2000.
[16] Kuo, H. F., “The design of multi-channel wavelength division multiplexing based on two-dimensional photonic crystals,” M. S. Thesis, Department of Electrical Engineering, National Sun Yat-sen University, Kaohsiung, Taiwan, June 2007.
[17] Leung, K. M., and Y. F. Liu, “Photon band structures: the plane-wave method,” Phys. Rev. B, vol.41, pp.10188−10190, 1990.
[18] Li, J., “Terahertz modulator using photonic crystals,” Opt. Comm., vol. 269, pp. 98−101, 2007.
[19] Lin, D. D., Z. J. Zhang, B. Y. Zhao, L. S. Chen, and K. Hu, “Rapid synthesis of porous polyaniline and its application in electrorheological fluid,” Smart Mater. Struct., vol. 15, pp. 1641−1645, 2006.
[20] Lin, H. B., R. J. Tonucci, and A. J. Campillo, “Two-dimensional photonic bandgap optical limiter in the visible,” Opt. Lett., vol. 23, pp. 94−96, 1998.
[21] Liu, C. Y., and L. W. Chen, “Tunable field-sensitive polarizer using hybrid conventional waveguides and photonic crystal structures with nematic liquid crystals,” Opt. Comm., vol. 256, pp. 114−122, 2005.
[22] Liu, C. Y., and L. W. Chen, “Tunable photonic crystal waveguide coupler with nematic liquid crystals,” IEEE Pho. Tech. Lett., vol. 16, pp. 1849−1851, 2004.
[23] Liu, C. Y., and L. W. Chen, “Tunable photonic-crystal waveguide Mach-Zehnder interferometer achieved by nematic liquid-crystal phase modulation,” Opt. Express, vol. 12, pp. 2616−2624, 2004.
[24] Liu, C. Y., Y. T. Peng, and L. W. Chen, “Creation of tunable bandgaps in a three dimensional anisotropic photonic crystal modulated by a nematic liquid crystal,” Phys. B: Condensed matter, vol. 388, pp. 124−129, 2007.
[25] Notomi, M., K. Yamada, A. Shinya, J. Takahashi, C. Takahashi, and I. Yokohama, “Extremely large group-velocity dispersion of line-defect waveguides in photonic crystal slabs,” Phys. Rev. Lett., vol. 87, pp. 253901−253904, 2001.
[26] Quadrat, O., and J. Stejskal, “Polyaniline in electrorheology,” J. Ind. Eng. Chem., vol. 12, pp. 352−361, 2006.
[27] Rajic, S., J. L. Corbeilb, and P. G. Datskos, “Feasibility of tunable MEMS photonic crystal devices,” Ultramicroscopy, vol. 97, pp. 473−479, 2003.
[28] Sakoda, K., Optical properties of photonic crystals. Berlin: Springer Series, 2001.
[29] Shih, M. H., W. J. Kim, W. Kuang, J. R. Cao, H. Yukawa, S. J. Choi, J. D. O’Brien, P. D. Dapkus, and W. K. Marshall, “Two-dimensional photonic crystal Mach–Zehnder interferometers,” Appl. Phys. Lett., vol. 84, pp. 460−462, 2004.
[30] Sluckin, T. J., D. A. Dunmur, and H. Stegemeyer, Crystals that flow − classic papers from the history of liquid crystals. London: Taylor & Francis, 2004.
[31] Smith, G. S., M. P. Kesier, J. G. Maloney, and B. L. Shirely, “Antenna design with the use of photonic band-gap materials as all-dielectric planar reflectors,” Microwave Opt. Technol. Lett., vol. 11, pp.169−174, 1996.
[32] Snjezana, T. H., C. M. Sterke, and M. J. Stell, “Design of high-Q cavities in photonic crystal slab heterostructures by air-holes infiltration,” Opt. Express, vol. 14, pp. 12451−12456, 2006.
[33] Snjezana, T. H., C. M. Sterke, M. J. Stell, and D. J. Moss, “High-Q cavities in photosensitive photonic crystals,” Opt. Lett., vol. 32, pp. 542−544, 2007.
[34] Song, B. S., S. Noda, T. Asano, and Y. Akahane, “Ultra-high Q photonic double-heterostructure nanocavity,” Nature Mater., vol. 4, pp. 207−210, 2005.
[35] Song, B. S., T. Asano, and S. Noda, “Heterostructures in two-dimensional photonic-crystal slabs and their application to nanocavities,” J. Phys. D: Appl. Phys., vol. 40, pp. 2629−2634, 2007.
[36] Song, B. S., T. Asano, Y. Akahane, Y. Tanaka, and S. Noda, “Transmission and reflection characteristics of in-plane hetero-photonic crystals,” Appl. Phys. Lett., vol. 85, pp. 4591−4593, 2004.
[37] Sun, Y. H., “The designs of logic gates and drop filter based on photonic crystals,” M. S. Thesis, Department of Electrical Engineering, National Sun Yat-sen University, Kaohsiung, Taiwan, June 2007.
[38] Taflove, A., and S. C. Hagness, Computational electrodynamics: the finite- difference time-domain method. Boston: Artech House, 2005.
[39] Takano, H., B. S. Song, T. Asano, and S. Noda, “Highly efficient multi-channel drop filter in a two-dimensional hetero photonic crystal,” Opt. Express, vol. 14, pp. 3491−3496, 2006.
[40] Takeda, H., and K. Yoshino, “Tunable photonic band schemes of opals and inverse opals infiltrated with liquid crystals,” J. Appl. Phys., vol. 92, pp. 5658−5662, 2002.
[41] Takeda, H., and K. Yoshino, “Tunable light propagation in Y-shaped waveguides in two-dimensional photonic crystals composed of semiconductors depending on temperature,” Opt. Comm., vol. 219, pp. 177−182, 2003.
[42] Takeda, H., and K. Yoshino, “Tunable light propagation in Y-shaped waveguides in two-dimensional photonic crystals utilizing liquid crystals as linear defects,” Phys. Rev. B, vol. 67, pp. 073106-1−073106-4, 2003.
[43] Valsov, Y., and S. McNab, “Losses in single mode silicon-on-insulator strip waveguides and bends,” Opt. Express, vol. 12, pp. 1622−1631, 2004.
[44] Wu, Q., E. Schonbrun, and W. Park, “Tunable superlensing by a mechanically controlled photonic crystal,” J. Opt. Soc. Am. B, vol. 23, pp. 479−484, 2006.
[45] Yablonovitch, E., “Inhibited spontaneous emission in solid-state physics and electronics,” Phys. Rev. Lett., vol. 58, pp. 2059−2062, 1987.
[46] Yee, K. S., “Numerical solution of initial boundary value problems involving Maxwell’s equations in isotropic media,” IEEE Trans. Ant. and Propa., vol. 14, pp. 302−307, 1966.
[47] Yoshino, K., Y. Kawagishi, M. Ozaki, and A. Kose, “Mechanical tuning of the optical properties of plastic opal as a photonic crystal,” Jpn. J. Appl. Phys., vol. 38, pp. 786−788, 1999.
[48] Yoshino, K., Y. Shimoda, Y. Kawagishi, K. Nakayama, and M. Ozaki, “Temperature tuning of the stop band in transmission spectra of liquid-crystal infiltrated synthetic opal as tunable photonic crystal,” Appl. Phys. Lett., vol. 75, pp. 932−934, 1999.
[49] Yu, C. P., and H. C. Chang, “Yee-mesh-based finite difference eigenmode solver with PML absorbing boundary conditions for optical waveguides and photonic crystal fibers,” Opt. Express, vol. 12, pp. 6165−6177, 2004.
QRCODE
 
 
 
 
 
                                                                                                                                                                                                                                                                                                                                                                                                               
第一頁 上一頁 下一頁 最後一頁 top