請用此 Handle URI 來引用此文件:
http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/9171完整後設資料紀錄
| DC 欄位 | 值 | 語言 |
|---|---|---|
| dc.contributor.advisor | 江衍偉(Yean-Woei Kiang) | |
| dc.contributor.author | Liang-Yu Ou Yang | en |
| dc.contributor.author | 歐陽良昱 | zh_TW |
| dc.date.accessioned | 2021-05-20T20:11:42Z | - |
| dc.date.available | 2009-07-30 | |
| dc.date.available | 2021-05-20T20:11:42Z | - |
| dc.date.copyright | 2009-07-30 | |
| dc.date.issued | 2009 | |
| dc.date.submitted | 2009-07-27 | |
| dc.identifier.citation | 1. K. Okamoto, I. Niki, A. Shvartser, Y. Narukawa, T. Mukai, and A. Scherer, “Surface-plasmon-enhanced light emitters based on InGaN quantum wells,” Nat. Mater., vol. 3, pp. 601-605, 2004.
2. K. Okamoto, I. Niki, A. 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. 3. K. Okamoto, I. Niki, A. Shvartser, G. Maltezos, Y. Narukawa, T. Mukai, Y. Kawakami, and A. Scherer, “Surface plasmon enhanced bright light emission from InGaN/GaN,” Phys. Stat. Sol., vol. 204, pp. 2103-2107, 2007. 4. C. Y. Chen, Y. C. Lu, D. M. Yeh, and C. C. Yang, “Influence of the quantum-confined Stark effect in an InGaN/GaN quantum well on its coupling with surface plasmon for light emission enhancement,” Appl. Phys. Lett., vol. 90, p. 183114, 2007. 5. Y. C. Lu, C. Y. Chen, D. M. Yeh, C. F. Huang, T. Y. Tang, J. J. Huang, and C. C. Yang, “Temperature dependence of the surface plasmon coupling with an InGaN/GaN quantum well,” Appl. Phys. Lett., vol. 90, p. 193103, 2007. 6. D. M. Yeh, C. F. Huang, Y. C. Lu, C. Y. Chen, T. Y. Tang, J. J. Huang, K. C. Shen, Y. J. Yang, and C. C. Yang, “Surface plasmon leakage in its coupling with an InGaN/GaN quantum well through an Ohmic contact,” Appl. Phys. Lett., vol. 91, p. 063121, 2007. 7. D. M. Yeh, C. F. Huang, C. Y. Chen, Y. C. Lu, and C. C. Yang, “Surface plasmon coupling effect in an InGaN/GaN single-quantum-well light-emitting diode,” Appl. Phys. Lett., vol. 91, p. 171103, 2007. 8. D. M. Yeh, C. Y. Chen, Y. C. Lu, C. F. Huang, and C. C. Yang, “Formation of various metal nanostructures with thermal annealing to control the effective coupling energy between a surface plasmon and an InGaN/GaN quantum well,” Nanotechnology, vol. 18, p. 265402, 2007. 9. G. Sun, J. B. Khurgin, and R. A. Soref, “Practicable enhancement of spontaneous emission using surface plasmons,” Appl. Phys. Lett., vol. 90, p. 111107, 2007. 10. J. B. Khurgin, G. Sun, and R. A. Soref, “Enhancement of luminescence efficiency using surface plasmon polaritons: figures of merit,” J. Opt. Soc. Am. B, vol. 24, pp. 1968-1980, 2007. 11. 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. 12. R. Paiella, “Tunable surface plasmons in coupled metallo-dielectric multiple layers for light-emission efficiency enhancement,” Appl. Phys. Lett., vol. 87, p. 111104, 2005. 13. D. Lepage and J. J. Dubowski, “Surface plasmon assisted photoluminescence in GaAs-AlGaAs quantum well microstructures,” Appl. Phys. Lett., vol. 91, p. 163106, 2007. 14. J. Chen, N. H. Shen, C. Cheng, Y. X. Fan, J. Ding, and H. T. Wang, “Tunable resonance in surface-plasmon-polarition enhanced spontaneous emission using a denser dielectric cladding,” Appl. Phys. Lett., vol. 89, p. 051916, 2006. 15. D. Crouse, ”Numerical modeling and electromagnetic resonant modes in complex grating structures and optoelectronic device applications,” IEEE Transactions on Electron Devices, vol. 52, pp. 2365-2373, 2005. 16. D. Crouse and P. Keshavareddy, “Role of optical and surface plasmon modes in enhanced transmission and applications,” Opt. Express, vol. 13, pp. 7760-7771, 2005. 17. Wei-Chih Liu and Din Ping Tsai, “Optical tunneling effect of surface plasmon polaritons and localized surface plasmon resonance,” Phys. Rev. B, vol. 65, p. 155423, 2002. 18. J. Y. Wang, Y. W. Kiang, and C. C. Yang, “Emission enhancement behaviors in the coupling between surface plasmon polariton on a one-dimensional metallic grating and a light emitter,” Appl. Phys. Lett., vol. 91, p. 233104, 2007. 19. J. P. Dowling and C. M. Bowden, “Atomic emission rates in inhomogeneous-media with applications to photonic band structures,” Phys. Rev. A, vol. 46, pp. 612-622, 1992. 20. S. Kirkpatrick, C. D. Gelatt, Jr., and M. P. Vecchi, “Optimization by simulated annealing,” Science, vol. 220, pp. 671-680, 1983. 21. N. Metropolis, A. Rosenbluth, M. Rosenbluth, A. Teller, and E. Teller, “Equation of state calculations by fast computing machines,” J. Chem. Phys. vol. 21, pp. 1087-1092, 1953. 22. F. Wooten, Optical Properties of Solids, New York: Academic Press, 1972. 23. S. A. Maier, Plasmonics, New York: Springer, 2007. 24. R. E. Plonsey and R. E. Collin, Principles and Applications of Electromagnetic Fields, New York: McGraw-Hill, 1961. 25. J. A. Kong, Electromagnetic Wave Theory, New York: John Wiley & Sons, 1986. 26. C. F. Bohren and D. R. Huffman, Absorption and Scattering of Light by Small Particles, New York: John Wiley & Sons, 1983. 27. A. Neogi, C. W. Lee, H. O. Everitt, T. Kuroda, A. Tackeuchi, and E. Yablonovitch, “Enhancement of spontaneous recombination rate in a quantum well by resonant surface plasmon coupling,” Phys. Rev. B, vol. 66, p. 153305, 2002. 28. A. Yariv, Quantum Electronics, New York: John Wiley & Sons, 1989. 29. K. Yashiro and S. Ohkawa, “Boundary element method for electromagnetic scattering from cylinders,” IEEE Trans. Antennas Propagat., vol. 33, pp. 383-389, 1985. 30. L. C. Trintinalia and H. Ling, “Integral equation modeling of multilayered doubly-periodic lossy structures using periodic boundary condition and a connection scheme,” IEEE Trans. Antennas Propagat., vol. 52, pp. 2253-2261, 2004. 31. T. Sondergaard, S. I. Bozhevolnyi, and A. Boltasseva, “Theoretical analysis of ridge grating for long-range surface plasmon polaritons,” Phys. Rev. B, vol. 73, p. 045320, 2006. 32. C. A. Balanis, Advanced Engineering Electromagnetics, New York: John Wiley & Sons, 1989. 33. K. M. Chen, “A mathematical formulation of the equivalence principle,” IEEE Trans. Microwave Theory Tech, vol. 37, pp. 1576-1581, 1989. 34. J. A. Stratton, Electromagnetic Theory, New York: McGraw-Hill, 1941. 35. J. Y. Wang, C. C. Yang, and Y. W. Kiang, “Numerical study on surface plasmon polariton behaviors in periodic metal-dielectric structures using a plane-wave-assisted boundary integral-equation method ,” Opt. Express, vol. 15, pp. 9048-9062, 2007. 36. 呂辰陽, “無螢光體雙波長白光LED,” 全亞文化 Asia-info - ET電子技術雜誌, 264 期, 2008. | |
| dc.identifier.uri | http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/9171 | - |
| dc.description.abstract | 我們利用模擬退火法與邊界積分方程法來合成在特定波長具有表面電漿共振特性的金屬奈米結構。數值結果依應用可分為: 藍光LED (波長435 nm)、白光LED (波長450 nm 與570 nm)、與綠光LED(波長535 nm)。藍光LED 係由二金屬圓柱部分嵌於金屬半空間之奈米結構所組成。吾人首先合成一結構,其表面電漿極化子和局域表面電漿子在單一波長 (435 nm) 能有效耦合。接著再合成另一結構,使其在另一波長 (520 nm) 僅有局域表面電漿子之共振。數值模擬顯示:
表面電漿極化子和局域表面電漿子在單一波長有效耦合時,確實可提升其附近電偶極之輻射量。白光LED 係由二分離之金屬圓柱與一金屬半空間之奈米結構所組成。吾人合成一結構,在藍光波長(450 nm)與黃光波長 (570 nm) 皆具有局域表面電漿子共振,因而提升混光而成的白光發光量。綠光LED 係由二分離之金屬橢圓柱與一金屬半空間之奈米結構所組成。吾人合成一結構,其表面電漿極化子和局域表面電漿子在單一波長 (535 nm) 能有效耦合,因而提升電偶極之輻射量與輻射效率。 | zh_TW |
| dc.description.abstract | The simulated annealing and the boundary integral-equation methods are used to synthesize metallic nanostructures with surface-plasmon resonance properties at designated wavelengths. The numerical results include three parts according to the possible applications: blue-light LEDs (wavelength 435 nm), white-light LEDs (wavelengths 450 nm and 570 nm), and green-light LEDs (wavelength 535 nm). For the blue-light LEDs, the structure consists of two metallic circular cylinders partially embedded in a metallic half-space. We first synthesize a metallic nanostructure such that the surface plasmon polariton (SPP) and the localized surface plasmon (LSP) couple effectively at their common resonant wavelength (435 nm). Next, we synthesize another structure for optimization at wavelength 520 nm, at which only the LSP resonance occurs. From numerical simulations, it is demonstrated that the enhancement of the dipole emission is better for optimization at wavelength 435 nm than that at wavelength 520 nm. In the aspect of white-light LEDs, the structure is composed of two separate metallic circular cylinders and a metallic half-space. We synthesize a metallic nanostructure, which has LSP resonances at wavelength 450 nm (blue light) and at wavelength 570 nm (yellow light), leading to the enhancement of white-light emission. For the green-light LEDs, the structure consists of two separate metallic elliptical cylinders and a metallic half-space. We synthesize a metallic nanostructure such that the SPP and LSP couple effectively at their common resonant wavelength (535 nm), leading to the enhancement of both the dipole emission and the emission efficiency. | en |
| dc.description.provenance | Made available in DSpace on 2021-05-20T20:11:42Z (GMT). No. of bitstreams: 1 ntu-98-R96941009-1.pdf: 6908985 bytes, checksum: f8786332bc5bd6a62f6d04817c1130c3 (MD5) Previous issue date: 2009 | en |
| dc.description.tableofcontents | Chapter 1 Introduction 1
Chapter 2 Surface Plasmon (SP) 4 2.1 Surface plasmon polariton (SPP) 4 2.2 Localized surface plasmon (LSP) 6 2.3 Dipole-SP coupling phenomenon 8 Chapter 3 Numerical Methods 13 3.1 Boundary integral-equation method (BIEM) 13 3.2 Simulated annealing method 18 3.2.1 Basic principles 18 3.2.2 Synthesis of metallic nanostructures by using simulated annealing method 20 Chapter 4 Numerical Results 24 4.1 Metallic nanostructures consisting of two circular cylinders partially embedded in a half-space 24 4.2 Metallic nanostructures consisting of a half-space and separate circular cylinders 31 4.3 Metallic nanostructures consisting of a half-space and separate elliptical cylinders 39 Chapter 5 Conclusions 91 References 93 | |
| dc.language.iso | en | |
| dc.title | 合成在特定波長有表面電漿共振之金屬奈米結構 | zh_TW |
| dc.title | Synthesis of Metallic Nanostructures with Surface-Plasmon
Resonance at Designated Wavelengths | en |
| dc.type | Thesis | |
| dc.date.schoolyear | 97-2 | |
| dc.description.degree | 碩士 | |
| dc.contributor.oralexamcommittee | 楊志忠(Chih-Chung Yang),張宏鈞(Hung-Chun Chang),吳育任(Yuh-Renn Wu) | |
| dc.subject.keyword | 表面電漿共振, | zh_TW |
| dc.subject.keyword | Surface-Plasmon Resonance, | en |
| dc.relation.page | 97 | |
| dc.rights.note | 同意授權(全球公開) | |
| dc.date.accepted | 2009-07-27 | |
| 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 |
| 顯示於系所單位: | 光電工程學研究所 | |
文件中的檔案:
| 檔案 | 大小 | 格式 | |
|---|---|---|---|
| ntu-98-1.pdf | 6.75 MB | Adobe PDF | 檢視/開啟 |
系統中的文件,除了特別指名其著作權條款之外,均受到著作權保護,並且保留所有的權利。
