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Tunable surface waves at the interface separating different graphene-dielectric composite hyperbolic metamaterials

机译:在界面处可调谐的表面波分离不同的石墨烯 - 电介质复合双曲线超材料

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摘要

Despite the fact that metal is the most common conducting constituent element in the fabrication of metamaterials, one of the advantages of graphene over metal is that its conductivity can be controlled by the Fermi energy. Here, we theoretically investigate multilayer structures comprising alternating graphene and dielectric layers as a class of hyperbolic metamaterials for THz frequencies based on a general simple model of the graphene and the dielectric layers. By employing a method of matching the tangential components of the electrical and magnetic fields, we derive the relevant dispersion relations and demonstrate that tuning can be achieved by modifying the Fermi energy. Moreover, tunability of the graphene-dielectric heterostructures can be enhanced further by changing either the thickness of the dielectric layers or the number of graphene sheets employed. Calculated dispersion relations, propagation lengths of plasmon modes in the system are presented. This allows us to characterize and categorize the modes into two groups: FerrelBerreman modes and surface plasmon polaritons.
机译:尽管金属是超材料制造中最常见的导电组成元素,但石墨烯相对于金属的优点之一是其导电性可以通过费米能量来控制。在这里,我们基于石墨烯和介电层的简单模型,理论上研究了包含交替交替的石墨烯和介电层作为THz频率双曲超材料的一类多层结构。通过采用匹配电场和磁场切向分量的方法,我们得出了相关的色散关系,并证明可以通过修改费米能量来实现调谐。此外,通过改变介电层的厚度或所采用的石墨烯片的数量,可以进一步增强石墨烯-介电异质结构的可调性。给出了计算的色散关系,等离激元模在系统中的传播长度。这使我们可以将模式表征和分为两类:FerrelBerreman模式和表面等离激元极化子。

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  • 作者

    Gric, T; Hess, O;

  • 作者单位
  • 年度 2017
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  • 原文格式 PDF
  • 正文语种 English
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