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Plasmonic Manipulation and Applications in Nanostructures/Nanomaterials

机译:等离子操纵及其在纳米结构/纳米材料中的应用

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Nanostructures and nanomaterials provide promising building blocks for plasmonic manipulation and applications. To significantly combine the nanostructures with nanomaterials, we have investigated the mid-infrared (MIR) plasmonic response mimicking electromagnetically induced transparency (EIT) in a graphene nanowaveguide system, consisting of the graphene sheets coupling with double graphene ribbons parallel to each other. The results demonstrate that the EIT-like spectral profile and position are strongly dependent on the graphene ribbon width. The resonant spectral width can be effectively controlled by adjusting the coupling strength (gap distance) between the graphene ribbons. Especially, the active tunability of spectral profile can be realized by altering the chemical potential ( or Fermi level) of graphene ribbon. The finite element method (FEM) numerical simulations agree well with the results theoretically calculated by the coupled mode theory (CMT). Our results will offer a new pathway toward the realization of graphene-based active plasmonic controlling and devices.
机译:纳米结构和纳米材料为等离激元操纵和应用提供了有希望的基础。为了将纳米结构与纳米材料有效地结合在一起,我们研究了在石墨烯纳米波导系统中模仿电磁感应透明性(EIT)的中红外(MIR)等离子体响应,该系统由石墨烯片与相互平行的双石墨烯带耦合而成。结果表明,类EIT的光谱轮廓和位置在很大程度上取决于石墨烯带的宽度。通过调节石墨烯带之间的耦合强度(间隙距离),可以有效地控制共振光谱宽度。特别地,可以通过改变石墨烯带的化学势(或费米能级)来实现光谱轮廓的主动可调性。有限元方法(FEM)的数值模拟与耦合模式理论(CMT)的理论计算结果非常吻合。我们的结果将为实现基于石墨烯的有源等离子体控制和器件提供一条新途径。

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