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Plasmonics of magnetic and topological graphene-based nanostructures

机译:基于磁性和拓扑石墨烯的纳米结构的等离子体学

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Graphene is a unique material in the study of the fundamental limits of plasmonics. Apart from the ultimate single-layer thickness, its carrier concentration can be tuned by chemical doping or applying an electric field. In this manner, the electrodynamic properties of graphene can be varied from highly conductive to dielectric. Graphene supports strongly confined, propagating surface plasmon polaritons (SPPs) in a broad spectral range from terahertz to mid-infrared frequencies. It also possesses a strong magneto-optical response and thus provides complimentary architectures to conventional magneto-plasmonics based on magneto-optically active metals or dielectrics. Despite a large number of review articles devoted to plasmonic properties and applications of graphene, little is known about graphene magneto-plasmonics and topological effects in graphene-based nanostructures, which represent the main subject of this review. We discuss several strategies to enhance plasmonic effects in topologically distinct closed surface landscapes, i.e. graphene nanotubes, cylindrical nanocavities and toroidal nanostructures. A novel phenomenon of the strongly asymmetric SPP propagation on chiral meta-structures and the fundamental relations between structural and plasmonic topological indices are reviewed.
机译:石墨烯是研究等离子体基本极限的独特材料。除了最终的单层厚度外,其载流子浓度还可以通过化学掺杂或施加电场来调节。以这种方式,石墨烯的电动力学特性可以从高导电性变化到电介质。石墨烯支持从太赫兹到中红外频率的宽光谱范围内的强约束传播表面等离子体极化激元(SPP)。它还具有很强的磁光响应,因此为基于磁光活性金属或电介质的传统磁等离子体提供了互补的架构。尽管有大量关于石墨烯的等离子体性质和应用的评论文章,但对石墨烯磁等离子体和石墨烯纳米结构中的拓扑效应知之甚少,这是本综述的主要主题。我们讨论了几种在拓扑学上不同的封闭表面景观中增强等离子体效应的策略,即石墨烯纳米管、圆柱形纳米腔和环形纳米结构。综述了SPP在手性元结构上强不对称传播的新现象以及结构与等离子体拓扑指数之间的基本关系。

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