期刊文献+

负折射率薄膜热辐射的TM偏振特性研究

原文传递
导出
摘要 利用传输矩阵方法及基尔霍夫定律推导了TM偏振波的偏振特性计算公式.在研究TM波特性的同时,评估了体系参数对薄膜辐射方向性及相干性的影响,以及倏逝波对TM偏振波偏振特性的影响.结果表明负折射率薄膜的热辐射特性是由两个作用共同影响所产生的结果,一个作用是薄膜结构对电磁波的干涉效应,另一个作用是负折射率材料对倏逝波的放大导致的光子隧道效应.通过调整薄膜结构的体系参数,可以对其热辐射的方向特征和光谱特征进行相应的调制.
出处 《科学通报》 EI CAS CSCD 北大核心 2009年第1期110-114,共5页 Chinese Science Bulletin
基金 国家自然科学基金(批准号:50606003) 航空科学基金(编号:2007ZA51006)资助项目
  • 相关文献

参考文献15

  • 1Veselago V G. The electrodynamics of substances with simultaneously negative values of ε and μ. Soy Phys Usp, 1968, 10:509-514
  • 2Shelby R A, Smith D R, Schutz S. Experimental verification of a negative index of refraction. Science, 2001, 292(5514): 77-79
  • 3Grigorenko A N, Geim A K, Gleeson H F, et al. Nanofabricated media with negative permeability at visible frequencies. Nature, 2005, 438(7066): 335-338
  • 4Shalaev V M, Cai W S, Chettiar U K, et al. Negative index of refraction in optical metamaterials. Opt Lett, 2005, 30(24): 3356-3358
  • 5曹云建,文光俊,吴凯敏,徐新河.一种新型负折射率微波媒质的设计与仿真模拟[J].科学通报,2006,51(22):2612-2617. 被引量:1
  • 6Pendry J B. Negative refraction makes a perfect lens. Phys Rev Lett, 2000, 85:3966-3969
  • 7Grigorenko A N, Geim A K, Gleeson H F, et al. Nanofabricated media with negative permeability at visible frequencies. Nature, 2005, 438(7066): 335-338
  • 8Valentine J, Zhang S, Zentgraf T, et al. Three-dimensional optical metamaterial with a negative refractive index. Nature, 2008, 455(7211): 376-379
  • 9Yao J, Liu Z W, Liu Y M, et al. Optical negative refraction in bulk metamaterials of nanowires. Science, 2008, 321 (5891): 930-930
  • 10Cho A. Physics: Voilal Cloak of invisibility unveiled. Science, 2006, 314(5798): 403-403

二级参考文献24

  • 1Gall J L, Oliver M, Greffet J J. Experimental and theoretical study of reflection and coherent thermal emission by a SiC grating supporting a surface-phonon polariton. Phys Rev B, 1997, 55: 10105~10114.
  • 2Greffet J J, Carminati R, Joulain K, et al. Coherent emission of light by thermal sources. Nature, 2002, 416: 61~64.
  • 3Carminati R, Greffet J J. Near-field effects in spatial coherence of thermal sources. Phys Rev Lett, 1999, 82: 1660~1663.
  • 4Shchegrov A V, Joulain K, Carminati R, et al. Near-field spectral effects due to electromagnetic surface excitations. Phys Rev Lett, 2000, 85: 1548~1551.
  • 5Marquier F, Joulain K, Mulet J P, et al. Coherent spontaneous emission of light by thermal sources. Phys Rev B, 2004, 69: 155412.
  • 6Liptuga A I, Shishkina N B. Thermal radiation of semitransparent plane-parallel objects. Infrared Physics & Technology, 2003, 44: 85~89.
  • 7Guga K Y, Kollyukh A G, Liptuga A I, et al. Features of thermal radiation of plane-parallel semiconductor wafers. Semiconductors, 2004, 38: 524~528.
  • 8Roe K J, Katulka G, Kolodzey J, et al. Silicon carbide and silicon carbide germanium heterostructure bipolar transistors. Appl Phys Lett, 2001, 78: 2073~2075.
  • 9Lee J W, Lim K S. In situ hydrogenation of visible a-SiC: H-based p-i-n type thin-film light-emitting diodes using the photochemical vapour deposition method. Semicond Sci Technol, 1996, 11: 597~600.
  • 10Wuu D S, Horng R H, Chan C C, et al. Plasma-deposited amorphous silicon carbide films for micromachined fluidic channels. Applied Surface Science, 1999, 144-145: 708~712.

共引文献2

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部