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Modeling the excitation of graphene plasmons in periodic grids of graphene ribbons: an analytical approach

机译:建模石墨烯碳带周期性网格中石墨烯等离子体激元的激发:一种分析方法

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摘要

We study electromagnetic scattering and subsequent plasmonic excitations in periodic grids of graphene ribbons. To address this problem, we develop an analytical method to describe the plasmon-assisted absorption of electromagnetic radiation by a periodic structure of graphene ribbons forming a diffraction grating for THz and mid-IR light. The major advantage of this method lies in its ability to accurately describe the excitation of graphene surface plasmons (GSPs) in one-dimensional (1D) graphene gratings without the use of both time-consuming, and computationally-demanding full-wave numerical simulations. We thus provide analytical expressions for the reflectance, transmittance and plasmon-enhanced absorbance spectra, which can be readily evaluated in any personal laptop with little-to-none programming. We also introduce a semi-analytical method to benchmark our previous results and further compare the theoretical data with spectra taken from experiments, to which we observe a very good agreement. These theoretical tools may therefore be applied to design new experiments and cutting-edge nanophotonic devices based on graphene plasmonics.
机译:我们研究石墨烯带的周期性网格中的电磁散射和随后的等离子体激发。为了解决这个问题,我们开发了一种分析方法,该方法通过形成用于THz和中红外光的衍射光栅的石墨烯带的周期性结构来描述等离激元辅助的电磁辐射吸收。该方法的主要优点在于,它能够准确地描述一维(1D)石墨烯光栅中石墨烯表面等离子体激元(GSP)的激发,而无需同时使用费时且计算量大的全波数值模拟。因此,我们提供了反射率,透射率和等离激元增强的吸收光谱的解析表达式,可以在几乎不需要编程的任何个人笔记本电脑中轻松评估它们。我们还引入了一种半分析方法来对我们之前的结果进行基准测试,并将理论数据与从实验中获得的光谱进行比较,我们观察到了很好的一致性。因此,这些理论工具可用于设计新的实验和基于石墨烯等离子体的尖端纳米光子器件。

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