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  1. NTU Theses and Dissertations Repository
  2. 電機資訊學院
  3. 光電工程學研究所
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/29828
完整後設資料紀錄
DC 欄位值語言
dc.contributor.advisor楊志忠
dc.contributor.authorJie-Ken Shiaoen
dc.contributor.author蕭桔根zh_TW
dc.date.accessioned2021-06-13T01:20:34Z-
dc.date.available2008-01-16
dc.date.copyright2007-07-20
dc.date.issued2007
dc.date.submitted2007-07-19
dc.identifier.citation[1] T. W. Ebbesen, H.J. Lezec, H. F. Ghaemi, T.Thio, P. A. Wolff, “Extraordinary optical transmission through sub-wavelength holes arrays,” Nature, vol. 391, pp. 667-669, 1998.
[2] J. A. Porto, F. J. Garcia-Vidal, and J. B. Pendry, “Transmission Resonances on Metallic Gratings with Very Narrow Slits,” Phys. Rev. Lett., vol. 83, pp. 2845-2848, 1999.
[3] F. Marquier, J.J. Greffet, “Resonant transmission through a metallic film due to coupled modes,” Opt. Express, vol. 13, pp. 1-10, 2005.
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[7] W. L. Barnes, T. W. Preist, S. C. Kitson, J. R. Sambles, “Physical origin of photonic energy gaps in the propagation of surface plasmons on gratings,” Phys. Rev. B, vol. 54, pp. 6227–6244, 1996.
[8] R. M. Amos and W. L. Barnes, “Modification of spontaneous emission lifetimes in the presence of corrugated metallic surfaces,” Phys. Rev. B, vol.59, pp. 7708-7714, 1999.
[9] I. Gontijo, M. Boroditsky, and E. Yablonovitch, “Coupling of InGaN quantum-well photoluminescence to silver surface plasmons,” Phys. Rev. B, vol. 60, pp. 11564-11567, 1999.
[10] A. Neogi et al., “Enhancement of spontaneous recombination rate in a quantum well by resonant surface plasmon coupling,” Phys. Rev. B, vol. 66, pp. 153302-153305, 2002.
[11] N. E. Hecker et al., “Surface plasmon-enhanced photoluminescence from a single quantum well,” Appl. Phys. Lett., vol. 75, pp. 1577-1579, 1999.
[12] K. Okamoto et al., “Surface plasmon enhanced light-emitters based on InGaN quantum wells, ”Nat. Mater., vol.3, pp. 601-605, 2004.
[13] K. Okamoto, I. Niki, A.l Scherer, Y. Narukawa, T. Mukai, and Y.Kawakami, “Surface plasmon enhanced spontaneous emission rate of InGaN/GaN quantum wells probed by time-resolved photoluminescence spectroscopy,” Appl. Phys. Lett., vol. 87, p. 071102, 2005.
[14] A. Neogi et al., “Coupling of spontaneous emission from GaN-AlN quantum dots into silver surface plasmons,” Opt. Lett., vol. 30, pp. 93-95, 2005.
[15] R. Paiella, “Tunable surface plasmons in coupled metallo-dielectric multiple layers for light-emission efficiency enhancement,” Appl. Phys. Lett., vol. 87, p.111104, 2005.
[16] A. V. Zayats and I. I. Smolyaninov, “Near-field photonics: surface plasmon polaritons and localized surface plasmons,” J. Opt. A: Pure Appl. Opt. vol. 5, pp. S16–S50, 2003.
[17] G. Veronis, Y. Liu, W. Suh, M. Han, Z. Wang, R.Dutton, and S. Fan, “Coupled optical and electronic simulations of electrically pumped photonic-crystal-based LEDs,” Proc. of SPIE, vol. 5733, pp. 422-431, 2005.
[18] C. Kittel, Introduction to Solid State Physics, 8th edition, John Wiley & Sons, New York, 2005.
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[21] R. Paiella, “Tunable surface plasmons in coupled metal-diellectric multiple layers for light-emission efficiency enhancement,” Appl. Phys. Lett., vol. 87, p. 111104, 2005.
[22] I. Gontijo, M. Boroditsky, and E. Yablonovitch, “Coupling of InGaN quantum well photoluminescence to silver surface plasmons,” Phys. Rev. B, vol. 60, pp. 564-567, 1999.
[23] S. H. Talisa, “Application of Davidenko’s Method to the Solution of Dispersion Relations in Lossy Waveguiding Systems,” IEEE transactions on microwave theory and techniques, vol. 33, no. 10, 1985.
[24] H. A. N. Hejase, “On the Use of Davidenko’s Method in Complex Root Search,” IEEE transaction on microwave theory and techniques, vol. 41, no. 1, 1993.
[25] Chin-Ping Yu and Hung-chun Chang, “Compact finite-difference frequency-domain method for the analysis of two-dimensional photonic crystals,” Opt. Express, vol. 12, no. 7, p. 1397, 2004.
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[27] Chien C. Chang,R. L. Chern, C. Chung Chang, and R.R. Hwang, “Interfacial operator approach to computing modes of surface plasmon polaritons for periodic structures,” Phys. Rev. B, vol. 72, p. 205112, 2005.
[28] F. A. Porto, F. J. Garcia-Vidal, and J. B. Pendry, “Transmission resonances on metallic gratings with very narrow slits,” Phys. Rev. Lett., vol. 83, pp. 2845-2848, 1999.
[29] S. Collin, F. Pardo, R. Teissier, and H. Pelouard, “Horizontal and vertical surface resonances in transmission metallic gratings,” J. Opt. A: Pure Appl. Opt, vol. 4, pp. S154-S160, 2002.
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[32] Changjun Min, Xiaojin Jiao, Pei Wang, and Hai Ming, “Investigation of enhanced and suppressed optical transmission through a cupped surface metallic grating structure,” Opt. Express, vol. 14, pp. 5657-5663, 2006.
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dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/29828-
dc.description.abstract本論文的重點在於以研究表面電漿波在多層金屬以及在次波長金屬光柵之光學特性為基礎,來展現各種與表面電漿激發有關之現象,如表面電漿之色散曲線及高穿透效率。首先以分析表面電漿在多層金屬結構下之解析解,來探討在多層不同金屬的結構下,不同金屬厚度改變時以及不同組合狀況之下,其表面電漿之色散曲線之擾動及場分布變化的情形。之後,我們藉由頻域有限差分法來分析在結構金屬具有次波長金屬光柵情況下,及在光頻範圍內,穿透效率對其頻率隨著不同結構參數的變化而有所改變,以及在結構附近之近場場型分佈的情況,來討論表面電漿對其高穿透特性的影響。此外,比較以不同金屬組合成金屬光柵與單金屬組成之金屬光柵情況下,其穿透效率特性的不同之處。zh_TW
dc.description.abstractA surface plasmon polariton (SPP) is an excitation on the boundary of a metal whose oscillations of surface charges produced by exterior electromagnetic waves. The aim of this thesis is to discuss the properties of SPs in the multi-layer structures and in metallic gratings. First, through Davidenko’s method to find the analytical solutions of the multi-layer structures, the dispersion relation of the SPs and its modal fields can be plotted for us to know the subtle variations of SPs by varying the thickness of metals. Then, since the activities of SP are so sensitive to metallic structures, we introduce the finite-difference frequency-domain method to study the interactions between SP and shaped structures. By analysis of the transmission and field distributions, we show how the SP to affect the transmission spectra with different parameters of one-dimensional metallic gratings. Besides, we also calculate the cases of one-dimensional metallic gratings consisting of two kinds of metals to compare with that of only one kind of metal.en
dc.description.provenanceMade available in DSpace on 2021-06-13T01:20:34Z (GMT). No. of bitstreams: 1
ntu-96-R94941072-1.pdf: 1012057 bytes, checksum: 8c125158696a3e74268376a3de1fbc39 (MD5)
Previous issue date: 2007
en
dc.description.tableofcontentsContents
Abstract
Table of Contents
List of Figures
List of Tables
Chapter 1 Introduction 1
1.1 Research Background and Motivations 2
1.2 Literature Reviews 2
Chapter 2 Theories 11
2.1 Surface Plasmon Theory 11
2.1.1 Background Knowledge 11
2.1.2 Drude Model 12
2.1.3 Surface Plasmons Polaritons at a Dielectric/metal Interface 13
2.1.4 SPPs Excitation Configurations 17
2.1.5 Interaction between Quantum well (QW) and Surface
Plasmons 19
2.2 Formula for Surface Plasmons in Multi-layer Structures 21
2.3 Davidenko’s Method 23
2.4 Finite-Difference Frequency-Domain Method (FDFD) 26
2.4.1 Formula of Finite-difference Frequency-Domain Method 27
2.4.2 Perfectly Matched Layer (PML) 33
2.4.3 Periodic Boundary Condition (PBC) 35
Chapter 3 Surface Plasmons in Multi-layer
Structures 37
3.1 SP Dispersion Relation of a Structure with an Interface of a Semi-infinity Geometry 37
3.2 Properties of Surface Plasmons in a Three-layer Structure with Lossless Metals 38
3.3 Properties of Surface Plasmons in a Four-layer Structure with Lossless Metals 39
3.4 Properties of Surface Plasmons in Three-layer Structure with Lossy Metals…………………………………………..…………………43
Chapter 4 Transmission with One-dimensional Metallic Gratings 59
4.1 Surface Plasmons in Structures of Metallic Gratings on Flat GaN Surface 59
4.2 Surface Plasmons in Structures of One-dimensional Metallic Gratings on Flat Metal/GaN Surface……………………..….……63
4.3 Surface Plasmons in Structures Containing a Layer on a GaN Grating 66
Chapter 5 Conclusions 106
References 107
dc.language.isoen
dc.subject表面電漿子zh_TW
dc.subject多層金屬zh_TW
dc.subject一維周期性金屬zh_TW
dc.subject穿透特性zh_TW
dc.subjectMulti-metal-layer Structuresen
dc.subjectTransmissionen
dc.subjectin One-dimensional Metal Grating Structuresen
dc.subjectSurface Plasmonen
dc.title於具有多層金屬結構及一維金屬光柵結構內
表面電漿子特性研究
zh_TW
dc.titleSurface Plasmon Characteristics in Multi-metal-layer Structures and in One-dimensional Metal Grating Structuresen
dc.typeThesis
dc.date.schoolyear95-2
dc.description.degree碩士
dc.contributor.oralexamcommittee江衍偉,吳育任
dc.subject.keyword表面電漿子,多層金屬,一維周期性金屬,穿透特性,zh_TW
dc.subject.keywordSurface Plasmon,Multi-metal-layer Structures,in One-dimensional Metal Grating Structures,Transmission,en
dc.relation.page112
dc.rights.note有償授權
dc.date.accepted2007-07-19
dc.contributor.author-college電機資訊學院zh_TW
dc.contributor.author-dept光電工程學研究所zh_TW
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