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用于传感应用的双层石墨烯超表面中的拓扑谷等离激元传输

Topological valley plasmon transport in bilayer graphene metasurfaces for sensing applications.

作者信息

Wang Yupei, Wei You Jian, Lan Zhihao, Panoiu Nicolae C

出版信息

Opt Lett. 2020 Jun 1;45(11):3151-3154. doi: 10.1364/OL.393302.

Abstract

Topologically protected plasmonic modes located inside topological bandgaps are attracting increasing attention, chiefly due to their robustness against disorder-induced backscattering. Here, we introduce a bilayer graphene metasurface that possesses plasmonic topological valley interface modes when the mirror symmetry of the metasurface is broken by horizontally shifting the lattice of holes of the top layer of the two freestanding graphene layers in opposite directions. In this configuration, light propagation along the domain-wall interface of the bilayer graphene metasurface shows unidirectional features. Moreover, we have designed a molecular sensor based on the topological properties of this metasurface using the fact that the Fermi energy of graphene varies upon chemical doping. This effect induces strong variation of the transmission of the topological guided modes, which can be employed as the underlying working principle of gas sensing devices. Our work opens up new ways of developing robust integrated plasmonic devices for molecular sensing.

摘要

位于拓扑带隙内的拓扑保护等离子体模式正吸引着越来越多的关注,主要是因为它们对无序诱导的背散射具有鲁棒性。在这里,我们介绍一种双层石墨烯超表面,当通过沿相反方向水平移动两个独立石墨烯层顶层的孔晶格来打破超表面的镜面对称性时,该超表面具有等离子体拓扑谷界面模式。在这种配置下,沿双层石墨烯超表面畴壁界面的光传播呈现单向特性。此外,我们利用石墨烯的费米能量随化学掺杂而变化这一事实,基于该超表面的拓扑特性设计了一种分子传感器。这种效应会引起拓扑导模传输的强烈变化,可将其用作气体传感装置的基本工作原理。我们的工作为开发用于分子传感的鲁棒集成等离子体装置开辟了新途径。

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