基于超材料的选择透射结构设计任务书

 2022-01-29 07:01

全文总字数:6030字

1. 毕业设计(论文)的内容和要求

本课题主要利用CST MicroStudio软件理论研究基于基于超材料的选择透射效应,主要研究内容如下:1. 研究基于I字形孔阵列的透射系数Txx和Tyy,分析其选择透射效应;2. 研究I字形孔阵列的选择透射效应的物理机制;3. 研究基于I字形孔阵列的电磁场分布,包括:电场、磁场和电流分布;4. 研究结构参数对I字形孔阵列的透射系数Txx和Tyy的影响;5. 研究基于I字形孔阵列的透射系数Txx和Tyy随入射角θ的变化趋势。

2. 实验内容和要求

本课题是理论研究,主要利用CST MicroStudio软件进行仿真模拟。

3. 参考文献

1. W. L. Barnes, A. Dereux, and T. W. Ebbesen, 揝urface plasmon subwavelength optics,?Nature 424(6950), 824?830 (2003).2. M. Schnell, A. Garc韆-Etxarri, A. J. Huber, K. Crozier, J. Aizpurua, and R. Hillenbrand, 揅ontrolling the nearfieldoscillations of loaded plasmonic nanoantennas,?Nat. Photonics 3(5), 287?91 (2009).3. T. Ha, Th. Enderle, D. F. Ogletree, D. S. Chemla, P. R. Selvin, and S. Weiss, 揚robing the interaction betweentwo single molecules: fluorescence resonance energy transfer between a single donor and a single acceptor,?Proc. Natl. Acad. Sci. U.S.A. 93(13), 6264?268 (1996).4. S. M. Nie, and S. R. Emory, 揚robing single molecules and single nanoparticles by surface-enhanced Ramanscattering,?Science 275(5303), 1102?106 (1997).5. D. Pacifici, H. J. Lezec, and H. A. Atwater, 揂ll-optical modulation by plasmonic excitation of CdSe quantumdots,?Nat. Photonics 1(7), 402?06 (2007).6. S. E. Harris, 揈lectromagnetically induced transparency,?Phys. Today 50(7), 36?2 (1997).7. B. S. Ham, M. S. Shahriar, and P. R. Hemmer, 揈nhanced nondegenerate four-wave mixing owing toelectromagnetically induced transparency in a spectral hole-burning crystal,?Opt. Lett. 22(15), 1138?140(1997).8. M. C. Phillips, and H. Wang, 揝pin coherence and electromagnetically induced transparency via excitoncorrelations,?Phys. Rev. Lett. 89(18), 186401 (2002).9. M. Fleischhauer, A. Imamoglu, and J. P. Marangos, 揈lectromagnetically induced transparency: Optics incoherence media,?Rev. Mod. Phys. 77(2), 633?73 (2005).10. P. R. Hemmer, D. P. Katz, J. Donoghue, M. Cronin-Golomb, M. S. Shahriar, and P. Kumar, 揈fficient lowintensityoptical phase conjugation based on coherent population trapping in sodium,?Opt. Lett. 20(9), 982?84(1995).11. S. E. Harris, and L. Hau, 揘onlinear optics at low light levels,?Phys. Rev. Lett. 82(23), 4611?614 (1999).12. L. V. Hau, S. E. Harris, Z. Dutton, and C. H. Behroozi, 揕ight speed reduction to 17 metres per second in anultracold atomic gas,?Nature 397(6720), 594?98 (1999).13. A. V. Turukhin, V. S. Sudarshanam, M. S. Shahriar, J. A. Musser, B. S. Ham, and P. R. Hemmer, 揙bservationof ultraslow and stored light pulses in a solid,?Phys. Rev. Lett. 88(2), 023602 (2002).14. M. G. Payne, and L. Deng, 換uantum entanglement of Fock states with perfectly efficient ultraslow single-probephoton four-wave mixing,?Phys. Rev. Lett. 91(12), 123602 (2003).15. B. S. Ham, and J. Hahn, 揙bservation of ultraslow light-based photon logic gates: NAND/OR,?Appl. Phys. Lett.94(10), 101110 (2009).16. S. Zhang, D. A. Genov, Y. Wang, M. Liu, and X. Zhang, 揚lasmon-induced transparency in metamaterials,?Phys. Rev. Lett. 101(4), 047401 (2008).17. N. Verellen, Y. Sonnefraud, H. Sobhani, F. Hao, V. V. Moshchalkov, P. Van Dorpe, P. Nordlander, and S. A.Maier, 揊ano resonances in individual coherent plasmonic nanocavities,?Nano Lett. 9(4), 1663?667 (2009).18. A. Taflove, and S. C. Hagness, Computational electrodynamics: The finite-difference time杁omain method(Artech, 2000).19. A. Farjadpour, D. Roundy, A. Rodriguez, M. Ibanescu, P. Bermel, J. D. Joannopoulos, S. G. Johnson, and G. W.Burr, 揑mproving accuracy by subpixel smoothing in the finite-difference time domain,?Opt. Lett. 31(20), 2972?2974 (2006).20. A. F. Oskooi, D. Roundy, M. Ibanescu, P. Bermel, J. D. Joannopoulos, and S. G. Johnson, 揗eep: A flexiblefree-software package for electromagnetic simulations by the FDTD method,?Comput. Phys. Commun. 181(3),687?02 (2010).21. M. A. Ordal, L. L. Long, R. J. Bell, S. E. Bell, R. R. Bell, R. W. Alexander, Jr., and C. A. Ward, 揙pticalproperties of the metals Al, Co, Cu, Au, Fe, Pb, Ni, Pd, Pt, Ag, Ti, and W in the infrared and far infrared,?Appl.Opt. 22(7), 1099?0 (1983).22. S. Zhang, D. A. Genov, Y. Wang, M. Liu, and X. Zhang, 揚lasmonic metamaterial with coupling inducedtransparency,?arXiv: 0801.1536v1 [physics. optics].23. http://ab-initio.mit.edu/wiki/index.php/Dielectric_materials_in_Meep.24. P. M黨lschlegel, H.-J. Eisler, O. J. F. Martin, B. Hecht, and D. W. Pohl, 揜esonant optical antennas,?Science308(5728), 1607?609 (2005).25. Q. H. Park, 揙ptical antennas and plasmonics,?Contemp. Phys. 50(2), 407?23 (2009).26. G. W. Bryant, F. J. Garc韆 de Abajo, and J. Aizpurua, 揗apping the plasmon resonances of metallicnanoantennas,?Nano Lett. 8(2), 631?36 (2008).27. N. Liu, L. Langguth, T. Weiss, J. K鋝tel, M. Fleischhauer, T. Pfau, and H. Giessen, 揚lasmonic analogue ofelectromagnetically induced transparency at the Drude damping limit,?Nat. Mater. 8(9), 758?62 (2009).28. D. J. Cho, F. Wang, X. Zhang, and Y. R. Shen, 揅ontribution of the electric quadrupole resonance in opticalmetamaterials,?Phys. Rev. B 78(12), 121101 (2008).29. H. Xu, and B. S. Ham, 揚lasmon-induced photonic switching in a metamaterial,?arXiv: 0905.3102v4 [quant-ph].30. B. S. Ham, and P. R. Hemmer, 揅oherence switching in a four-level system: quantum switching,?Phys. Rev.Lett. 84(18), 4080?083 (2000).31. B. S. Ham, 揈xperimental demonstration of all-optical 1x2 quantum routing,?Appl. Phys. Lett. 85(6), 893?96(2004).32. S. E. Harris, and Y. Yamamoto, 揚hoton switching by quantum interference,?Phys. Rev. Lett. 81(17), 3611?3614 (1998).33. M. D. Lukin, S. F. Yelin, M. Fleischhauer, and M. O. Scully, 換uantum interference effects induced byinteracting dark resonances,?Phys. Rev. A 60(4), 3225?228 (1999).34. J. Harden, A. Joshi, and J. D. Serna, arXiv:1006.5167v1 [quant-ph].35. C. L. Garrido Alzar, M. A. G. Martinez, and P. Nussenzveig, 揅lassical analog of electromagnetically inducedtransparency,?Am. J. Phys. 70(1), 37?1 (2002).

4. 毕业设计(论文)计划

(1)2月5日前,完成开题报告;(2)2月20日前,完成外文翻译;(3)3月10前,完成CST软件的操作的学习;(4)4月15日前,完成数值模拟工作;(5)4月30日前,完成实验工作;(6)5月10日前,完成数据的绘图工作;(7)6月1日前,完成毕业论文的写作工作;

剩余内容已隐藏,您需要先支付 10元 才能查看该篇文章全部内容!立即支付

以上是毕业论文任务书,课题毕业论文、开题报告、外文翻译、程序设计、图纸设计等资料可联系客服协助查找。