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首页> 外文期刊>Journal of Applied Physics >Giant enhancement of the controllable in-plane anisotropy of biased isotropic noncentrosymmetric materials with epsiIon-negative multilayers
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Giant enhancement of the controllable in-plane anisotropy of biased isotropic noncentrosymmetric materials with epsiIon-negative multilayers

机译:带有负电多层的偏置各向同性非中心对称材料的可控面内各向异性的巨大增强

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摘要

Giant in-plane anisotropy can be exhibited by a finitely thick periodic multilayer comprising bilayers of an isotropic noncentrosymmetric material and a non-dissipative isotropic medium of negative permittivity, when a dc electric field is applied in the thickness direction. Compared to a homogeneous layer of the noncentrosymmetric material with the same thickness as the periodic multilayer, the latter exhibits an effective in-plane anisotropy that can be three orders larger in magnitude. This enhancement gets more substantial at higher frequencies and is electrically controllable. The incorporation of dissipation reduces the enhancement of the effective in-plane anisotropy, which nevertheless remains significant. We expect the finitely thick periodic multilayer to be useful as a polarization transformer or a modulator in the terahertz regime fully controllable via external dc bias.
机译:当在厚度方向上施加直流电场时,由各向同性非中心对称材料和负介电常数的非耗散性各向同性介质的双层构成的有限厚度的周期性多层可以表现出巨大的面内各向异性。与具有与周期性多层相同厚度的非中心对称材料的均匀层相比,后者具有有效的面内各向异性,其幅度可以大三倍。这种增强在更高的频率下变得更加重要,并且可以电气控制。耗散的结合降低了有效平面内各向异性的增强,但是仍然很明显。我们希望有限厚度的周期性多层膜可用作太赫兹制中的偏振变压器或调制器,可通过外部直流偏置完全控制。

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  • 来源
    《Journal of Applied Physics 》 |2017年第6期| 063102.1-063102.10| 共10页
  • 作者单位

    Department of Physics, School of Science and Technology, Nazarbayev University, 53 Qahanbay Batyr Ave, Astana KZ-010000, Kazakhstan;

    Department of Informatics, Aristotle University of Thessaloniki, Thessaloniki GR-54124, Greece;

    Department of Engineering Science and Mechanics, Pennsylvania State University, University Park, Pennsylvania 16802-6812, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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  • 正文语种 eng
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