請用此 Handle URI 來引用此文件:
http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/17997完整後設資料紀錄
| DC 欄位 | 值 | 語言 |
|---|---|---|
| dc.contributor.advisor | 薛文証(Wen-Jeng Hsueh) | |
| dc.contributor.author | Husuan-Ting Tsai | en |
| dc.contributor.author | 蔡煊婷 | zh_TW |
| dc.date.accessioned | 2021-06-08T00:48:05Z | - |
| dc.date.copyright | 2015-10-12 | |
| dc.date.issued | 2015 | |
| dc.date.submitted | 2015-07-22 | |
| dc.identifier.citation | [1] K. S. Novoselov, A. K. Geim, S. V. Morozov, D. Jiang, Y. Zhang, S. V. Dubonos, I. V. Grigorieva, and A. A. Firsov, 'Electric field effect in atomically thin carbon films,' Science 306, 666-669 (2004). [2] Q. Bao and K. P. Loh, 'Graphene photonics, pasmonics, and boadband otoelectronic Devices,' ACS Nano 6, 3677-3694 (2012). [3] F. Bonaccorso, Z. Sun, T. Hasan, and A. C. Ferrari, 'Graphene photonics and optoelectronics,' Nat. Photon. 4, 611-622 (2010). [4] Y. M. Lin, A. V. Garica, S. J. Han, D. B. Farmer, I. Meric, Y. Sun, Y. Wum, C. Dimitrakopoulos, A. Grill, P. Avouris-, K. A. Jenkins 'Wafer-scale gaphene itegrated crcuit,' Science 332, 1294-1297 (2011). [5] M. Midrio, S. Boscolo, M. Moresco, M. Romagnoli, C. D. Angelis, A. Locatelli, and A.-D. Capobianco, 'Graphene-assisted critically-coupled optical ring modulator,' Opt. Express 20, 23144-23155 (2012). [6] G. W. Hanson, 'Dyadic Green’s functions and guided surface waves for a surface conductivity model of graphene,' J. Appl. Phys. 103, 064302 (2008). [7] S. A. Mikhailov and K. Ziegler, 'New electromagnetic mode in graphene,' Phys. Rev. Lett. 99, 016803 (2007). [8] Y. Xiang, J. Guo, X. Dai, S. Wen, and D. Tang, 'Engineered surface bloch waves in graphene-based hyperbolic metamaterials,' Opt. Express 22, 3054-3062 (2014). [9] B. Zhu, G. Ren, S. Zheng, Z. Lin, and S. Jian, 'Nanoscale dielectric-graphene-dielectric tunable infrared waveguide with ultrahigh refractive indices,' Opt. Express 21, 17089-17096 (2013). [10] S. H. Lee, M. Choi, T.-T. Kim, S. Lee, M. Liu, X. Yin, H. K. Choi, S. S. Lee, C.-G. Choi, S.-Y. Choi, X. Zhang, and B. Min, 'Switching terahertz waves with gate-controlled active graphene metamaterials,' Nat. Mater. 11, 936-941 (2012). [11] Y. Yao, M. A. Kats, R. Shankar, Y. Song, J. Kong, M. Loncar, F.Capasso, 'Wide wavelength tuning of optical antennas on graphene with nanosecond response time,' Nano Lett. 14, 214-219 (2014). [12] L. H. Hess, M. Seifert, J. A. Garrido,'Graphene transistors for bioelectrons, ' Proc. IEEE. 101, 1780(2013). [13] P. Blake, P. D. Brimicombe, R. R. Nair, T. J. Booth, D. Jiang, F. Schedin, L. A. Ponomarenko, S. V. Morozov, H. F. Gleeson, E. W. Hill, A. K. Geim, and K. S. Novoselov, 'Graphene-based liquid crystal device,' Nano Lett. 8, 1704-1708 (2008). [14] S. Bae, H. Kim, Y. Lee, X. Xu, J.-S. Park, Y. Zheng, J. Balakrishnan, T. Lei, H. Ri Kim, Y. I. Song, Y.-J. Kim, K. S. Kim, B. Ozyilmaz, J.-H. Ahn, B. H. Hong, and S. Iijima, 'Roll-to-roll production of 30-inch graphene films for transparent electrodes,' Nature Nanotech. 5, 574-578 (2010). [15] L. Gomez De Arco, Y. Zhang, C. W. Schlenker, K. Ryu, M. E. Thompson, and C. Zhou, 'Continuous, highly flexible, and transparent graphene films by chemical vapor deposition for organic photovoltaics,' ACS Nano 4, 2865-2873 (2010). [16] J. Wu, H. A. Becerril, Z. Bao, Z. Liu, Y. Chen, and P. Peumans, 'Organic solar cells with solution-processed graphene transparent electrodes,' Appl. Phys. Lett. 92, 263302 (2008). [17] X. Wang, L. Zhi, N. Tsao, Ž. Tomović, J. Li, and K. M uuml;llen, 'Transparent carbon films as electrodes in organic solar cells,' Angew. Chem. Int. Ed. 47, 2990-2992 (2008). [18] J. Wu, M. Agrawal, H. A. Becerril, Z. Bao, Z. Liu, Y. Chen, and P. Peumans, 'Organic light-emitting diodes on solution-processed graphene transparent electrodes,' ACS Nano 4, 43-48 (2009). [19] A. Ludwig and K. J. Webb, 'Dark materials based on graphene sheet stacks,' Opt. Lett. 36, 106-108 (2011). [20] X. Gan, K. F. Mak, Y. Goa, Y. You, F. Hatami, J. Hone, T. F. Heinz, D. Englund, 'Strong enhancement of light-matter interaction in graphene coupled to a photonic crystal nanocavity,' Nano Lett. 12, 5626-5631 (2012). [21] M. Furchi, A. Urich, A. Pospischil, G. Lilley, K. Unterrainer, H. Detz, P. Klang, A. M. Andrews, W. Schrenk, G. Strasser, and T. Mueller, 'Microcavity-integrated graphene photodetector,' Nano Lett. 12, 2773-2777 (2012). [22] A. H. Safavi-Naeini, T. P. M. Alegre, J. Chan, M. Eichenfield, M. Winger, Q. Lin, J. T. Hill, D. E. Chang, and O. Painter, 'Electromagnetically induced transparency and slow light with optomechanics, ' Nature 472, 69-73 (2011). [23] H. Altug, and J. Vučkovic, 'Experimental demonstrations of the slow group velocity of light in two-dimensional photonic crystal microcavity arrays, ' Appl. Phys. Lett.86, 111102 (2005). [24] A. H. Castro Neto, F. Guinea, N. M. R. Peres, K. S. Novoselov, 'The electronic properties of graphene,' Rev. Mod. Phys. 81, 109-162 (2009). [25] P. R. Wallace, 'The band theory of graphite,' Phys. Rev. 71, 622-634 (1947). [26] A. K. Geim and K. S. Novoselov, 'The rise of graphene,' Nat. Mater. 6, 183-191 (2007). [27] T. Ando, 'The electronic properties of graphene and carbon nanotubes,' NPG Asia Mater. 1, 17-21 (2009). [28] X. Du, I. Skachko, F. Duerr, A. Luican, and E. Y. Andrei, 'Fractional quantum hall effect and insulating phase of dirac electrons in graphene,' Nature 462, 192-195 (2009). [29] Y. Zhang, Y.-W. Tan, H. L. Stormer, and P. Kim, 'Experimental observation of the quantum hall effect and berry's phase in graphene,' Nature 438, 201-204 (2005). [30] S. V. Morozov, K. S. Novoselov, M. I. Katsnelson, F. Schedin, D. C. Elias, J. A. Jaszczak, and A. K. Geim, 'Giant intrinsic carrier mobilities in graphene and its bilayer,' Phys. Rev. Lett. 100, 016602 (2008). [31] H. Li, Y. Anugrah, S. J. Koester, and M. Li, 'Optical absorption in graphene integrated on silicon waveguides,' Appl. Phys. Lett. 101, 111110 (2012). [32] Y. Zhang, T. Liu, B. Meng, X. Li, G. Liang, X. Hu, Q. J. Wang, 'Broadband high photoresponse from pure monolayer graphene photofetector,' Nature Communicatios, 4, 1811 (2013). [33] C. Lee, X. Wei, J. W. Kysar, and J. Hone, 'Measurement of the elastic properties and intrinsic strength of monolayer graphene, ' Science 321, 385 (2008) [34] T. Stauber, N. M. R. Peres, and A. K. Geim, 'Optical conductivity of graphene in the visible region of the spectrum,' Phys. Rev. B 78, 085432 (2008). [35] L. A. Falkovsky, 'Optical properties of graphene,' J. Phys.: Conf. Ser. 129, 012004 (2008). [36] L. A. Falkovsky and S. S. Pershoguba, 'Optical far-infrared properties of a graphene monolayer and multilayer,' Phys. Rev. B 76, 153410 (2007). [37] H. Hajian, A. Soltani-Vala, and M. Kalafi, 'Characteristics of band structure and surface plasmons supported by a one-dimensional graphene-dielectric photonic crystal,' Opt. Commun. 292, 149-157 (2013). [38] P. Yeh, Optical Waves in Layered Media, Wiley, New York (1988). [39] N. Narayana Rao, Elements of Engineering Electromagnetics, Prentice-Hall, New Jersey (2004). [40] W. P. Huang, S. T. Chu, A. Goss, and S. K. Chaudhuri, 'A scalar finite-difference time-domain approach to guided-wave optics,' IEEE Photon. Technol. Lett 3, 524-526 (1991). [41] K. Sakoda, 'Optical transmittance of a two-dimensional triangular photonic lattice,' Phys. Rev. B 51, 4672-4675 (1995). [42] B. C. Gupta, C.-H. Kuo, and Z. Ye, 'Propagation inhibition and localization of electromagnetic waves in two-dimensionalrandom dielectric systems,' Phys. Rev. E 69, 066615 (2004). [43] Y. Gong, X. Liu, and L. Wang, 'High-channel-count plasmonic filter with the metal-insulator-metal fibonacci-sequence gratings,' Opt. Lett. 35, 285-287 (2010). [44] E. Maci aacute;, 'Optical engineering with fibonacci dielectric multilayers,' Appl. Phys. Lett. 73, 3330-3332 (1998). [45] R. W. Peng, X. Q. Huang, F. Qiu, M. Wang, A. Hu, S. S. Jiang, and M. Mazzer, ' Symmetry-induced perfect transmission of light waves in quasiperiodic dielectric multilayers,' Appl. Phys. Lett. 80, 3063-3065 (2002). [46] S. Cheon, K. D. Kihm, J. S. Park, J. S. Lee, B. J. Lee, H. Kim, and B. H. Hong, 'How to optically count graphene layers,' Opt. Lett. 37, 3765-3767 (2012). [47] Z. Tianrong, S. Xi, D. Yunyun, L. Xiaohan, and Z. Jian, 'Transfer matrix method for optics in graphene layers,' J. Phys.: Condens. Matter 25, 215301 (2013). [48] G. W. Hanson, 'Quasi-transverse electromagnetic modes supported by a graphene parallel-plate waveguide, ' J. Appl. Phys. 104, 084314 (2008). [49] P. Grinberg, K. Bencheikh, M. Brunstein, A. M. Yacomotti, Y. Dumeige, I. Sagnes, F. Raineri, L. Bigot, and J. A. Levenson, ' Nanocavity linewidth narrowing and group delay enhancement by slow light propagation and nonlinear effects, ' Phys. Rev. Lett 109, 113903-1 (2012). [50] Y. Fan, Z. Wei, H. Li, H. Chen, and C. M. Soukoulis, 'Photonic band gap of a graphene-embedded quarter-wave stack, ' Phys. Rev. B 88, 241403 (2013). [51] C. T. Tsao, Y. H. Cheng, and W. J. Hsueh, 'Localized modes in one-dimensional symmetric thue-morse quasicarystals, ' Opt. Express. 22, 24378-24383 (2014). [52] H. Hajian, A. Soltani-Vala, and M. Kalafi, 'Tunable far-IR bandgaps in a one- dimensional graphene-dielectric photonic crystal, ' Phys. Status. Solid. C 12, 2614-2617 (2012). [53] J. F. Woodley, and M. Mojahedi, 'Negative group velocity and group delay in left-handed media, ' Phys. Rev. E 70, 046603-1 (2004). | |
| dc.identifier.uri | http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/17997 | - |
| dc.description.abstract | 本論文研究對稱介電石墨烯結構之光傳輸特性,首先簡單探討石墨烯,第二章介紹馬克斯威爾方程式、赫姆霍茲方程式等電磁波的理論。第三章介紹本研究論文所使用的傳遞理論,第四章模擬三種不同結構參數的對稱介電石墨烯結構,包含對稱雙介電質結構、對稱單介電石墨烯結構及對稱雙介電石墨烯結構,模擬特性包含其反射率、穿透率、吸收率、相移、群延遲及群速度,研究結果顯示在對稱結構當中,其反射率、穿透率、吸收率、相移、群延遲及群速度會隨著空腔相位及週期層數變化,不同結構的變化趨勢不同,而藉由調整空腔相位、週期層數及介電係數,可以控制其結構的反射率、穿透率吸收率、相移、群延遲及群速度來製成需要的光學元件。 | zh_TW |
| dc.description.abstract | The main purpose of this thesis is to analyze the light propagation in symmetric dielectric-graphene structures. First, the optical properties and history of graphene are briefly introduced. Second, the theories about electromagnetic waves such as Maxwell’s equations and Helmoholtz equation are analyzed in detail. Third, the author analyzes the light propagations in symmetric structures using transfer-matrix method. Finally, by analyzing the reflection, transmission, absorption, phase-shift and group-delay of the symmetric structures, it turns out that the reflection, transmission, absorption, phase shift ,group delay and group velocity are sensitive not only to the thickness of cavity but also to the period of structure. Based on this result, by modulating the thickness of cavity and the period of structures, the reflection, transmission and absorption can be controlled, which is beneficial for the production devices. | en |
| dc.description.provenance | Made available in DSpace on 2021-06-08T00:48:05Z (GMT). No. of bitstreams: 1 ntu-104-R02525099-1.pdf: 1459360 bytes, checksum: 53f0be9f8afe4a1832cfedf3c0dc3ddd (MD5) Previous issue date: 2015 | en |
| dc.description.tableofcontents | 中文摘要 i 英文摘要 ii 目錄 iii 圖目錄 v 符號表 x 第一章 導論 1 1.1 背景與研究動機 1 1.2 歷史文獻回顧 2 1.3 論文架構 3 第二章 石墨烯及電磁波理論 4 2.1 石墨烯特性 4 2.2 電磁波理論 6 2.2.1 馬克斯威爾方程式 7 2.2.2 赫姆霍茲方程式 8 2.2.3 波印亭定理 9 2.2.4 布洛赫定理 11 2.2.5 邊界條件 11 第三章 光在週期結構中傳遞之理論 13 3.1 極化電磁波與非極化電磁波 13 3.2 色散方程式 19 3.3 反射率、穿透率及吸收 20 3.4 相移 25 3.5 群延遲及群速度 26 第四章 對稱介電石墨烯結構之光傳輸特性 27 4.1 對稱雙介電結構 28 4.2 對稱單介電石墨烯結構 36 4.3 對稱雙介電石墨烯結構 45 4.3.1 布拉格條件 46 4.3.2 石墨烯產生的能帶 58 第五章 結論與展望 71 5.1 結論 71 5.2 未來展望 72 | |
| dc.language.iso | zh-TW | |
| dc.title | 對稱介電石墨烯結構之光傳輸特性 | zh_TW |
| dc.title | Light Propagation in Symmetric Dielectric-Graphene Structures | en |
| dc.type | Thesis | |
| dc.date.schoolyear | 103-2 | |
| dc.description.degree | 碩士 | |
| dc.contributor.oralexamcommittee | 李佳翰,林志昌,黃俊穎 | |
| dc.subject.keyword | 石墨烯,對稱結構,能帶結構,群延遲, | zh_TW |
| dc.subject.keyword | graphene,symmetric structures,bandstructure,interference,group delay, | en |
| dc.relation.page | 78 | |
| dc.rights.note | 未授權 | |
| dc.date.accepted | 2015-07-22 | |
| dc.contributor.author-college | 工學院 | zh_TW |
| dc.contributor.author-dept | 工程科學及海洋工程學研究所 | zh_TW |
| 顯示於系所單位: | 工程科學及海洋工程學系 | |
文件中的檔案:
| 檔案 | 大小 | 格式 | |
|---|---|---|---|
| ntu-104-1.pdf 未授權公開取用 | 1.43 MB | Adobe PDF |
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。
