Optically and Chemically Controllable Light Flow in Topological Plasmonic Waveguides Based on Graphene Metasurfaces

Y. Wang, J. You, Z. Lan, N. Panoiu
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Abstract

In this work, topologically-protected plasmon transport is demonstrated in graphene-based plasmonic crystal waveguides, the main ideas being subsequently applied to optically and chemically controllable nanodevices. In two configurations of topological graphene metasurfaces created by breaking their inversion symmetry, symmetry-protected Dirac cones associated to the underlying metasurfaces are gapped out, which leads to the formation of topological valley modes inside the nontrivial bandgap. The propagation of the corresponding topological modes shows unidirectional characteristics in both cases. Based on the proposed plasmonic topological waveguides, an active optical nanoswitch and a gas molecular sensor are designed by optically and chemically tuning the frequency dispersion of graphene metasurfaces via Kerr effect and gas molecular absorption, respectively. Specifically, the variation of the frequency dispersion of graphene can switch the topological mode into the region of leaky bulk modes, resulting in a dramatic variation of the plasmon transmission. Our work may contribute to the development of new ultracompact and ultrafast active photonic nanodevices based on graphene.
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基于石墨烯超表面的拓扑等离子体波导中的光学和化学可控光流
在这项工作中,拓扑保护的等离子体激元传输在石墨烯基等离子体晶体波导中得到了证明,其主要思想随后被应用于光学和化学可控的纳米器件。在两种构型的拓扑石墨烯超表面中,对称性保护的狄拉克锥与底层的超表面相关联,从而导致在非平凡带隙内形成拓扑谷模式。在这两种情况下,相应拓扑模式的传播都表现出单向特性。基于所提出的等离子体拓扑波导,分别通过克尔效应和气体分子吸收对石墨烯超表面的频散进行光学和化学调谐,设计了有源光学纳米开关和气体分子传感器。具体而言,石墨烯的频率色散变化可以将拓扑模式切换到泄漏体模式区域,从而导致等离子体传输的剧烈变化。我们的工作可能有助于开发新的基于石墨烯的超紧凑和超快有源光子纳米器件。
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