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Dynamically Tunable Plasmon-Induced Transparency in On-chip Graphene-Based Asymmetrical Nanocavity-Coupled Waveguide System

机译:基于片上石墨烯的非对称纳米腔耦合波导系统中动态可调的等离激元诱导的透明度。

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A graphene-based on-chip plasmonic nanostructure composed of a plasmonic bus waveguide side-coupled with a U-shaped and a rectangular nanocavities has been proposed and modeled by using the finite element method in this paper. The dynamic tunability of the plasmon-induced transparency (PIT) windows has been investigated. The results reveal that the PIT effects can be tuned via modifying the chemical potential of the nanocavities and plasmonic bus waveguide or by varying the geometrical parameters including the location and width of the rectangular nanocavity. Further, the proposed plasmonic nanostructure can be used as a plasmonic refractive index sensor with a sensing sensibility of 333.3?nm/refractive index unit (RIU) at the the PIT transmission peak. Slow light effect is also realized in the PIT system. The proposed nanostructure may pave a new way towards the realization of graphene-based on-chip integrated nanophotonic devices.
机译:本文提出了一种基于石墨烯的片上等离子体纳米结构,该结构由侧面耦合有U形和矩形纳米腔的等离子体总线波导构成,并采用有限元方法进行建模。已经研究了等离子体激元诱导的透明性(PIT)窗口的动态可调性。结果表明,可以通过修改纳米腔和等离子总线波导的化学势或通过改变几何参数(包括矩形纳米腔的位置和宽度)来调整PIT效果。此外,所提出的等离激元纳米结构可以用作在PIT透射峰处具有333.3μnm/折射率单位(RIU)的感测灵敏度的等离激元折射率传感器。在PIT系统中也可以实现慢光效果。提出的纳米结构可能为实现基于石墨烯的芯片上集成纳米光子器件铺平新途径。

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