Emadi Ramin, Firouzeh Zaker Hossein, Safian Reza, Zeidaabadi Nezhad Abolghasem
Appl Opt. 2019 Sep 10;58(26):7241-7250. doi: 10.1364/AO.58.007241.
Graphene is capable of supporting very slow waves due to sustaining surface plasmon polaritons (SPPs) at THz frequencies, whereas the metal counterpart can support such modes only at optical frequencies. In this paper, a graphene-based resonator-coupled waveguide supporting transverse-magnetic-polarized SPP modes is rigorously studied, which is capable of providing ultra-deep sub-wavelength mode confinement at the working frequency of 40 THz. First, graphene is described both electronically and electromagnetically, as in these regards, graphene's quantum capacitance plays an important role, which is calculated via its DC characteristic. Since we aim to excite extremely slow waves in graphene waveguides, namely, SPP modes, it is necessary to contemplate a non-local conductivity model to characterize graphene. Furthermore, SPP modes create strong fields at the vicinity of a graphene strip in addition to high mode confinement, accentuating the importance of including nonlinear phenomena in characterizing the wave vector of SPP (WVP) modes. Furthermore, the WVP associated with a graphene waveguide is perturbed when placing another waveguide next to it. In this work, these phenomena are explored in detail to design a graphene-based resonator-coupled waveguide, which is superior to a single graphene-based waveguide in terms of confining propagating waves. Here, a comprehensive methodology is established for assessing miniaturized graphene devices, in which nonlinear, coupling, and spatial dispersion phenomena significantly affect their characteristics.
由于在太赫兹频率下能够维持表面等离激元极化激元(SPP),石墨烯能够支持非常慢的波,而金属则只能在光频率下支持这种模式。本文对一种支持横向磁极化SPP模式的基于石墨烯的谐振器耦合波导进行了深入研究,该波导能够在40太赫兹的工作频率下提供超深亚波长模式限制。首先,从电子和电磁方面对石墨烯进行了描述,在这些方面,石墨烯的量子电容起着重要作用,它是通过其直流特性计算得出的。由于我们旨在在石墨烯波导中激发极慢的波,即SPP模式,因此有必要考虑一个非局部电导率模型来表征石墨烯。此外,SPP模式除了具有高模式限制外,还会在石墨烯条带附近产生强场,这突出了在表征SPP(波矢)模式的波矢时纳入非线性现象的重要性。此外,当在其旁边放置另一个波导时,与石墨烯波导相关的波矢会受到扰动。在这项工作中,对这些现象进行了详细研究,以设计一种基于石墨烯的谐振器耦合波导,该波导在限制传播波方面优于单个基于石墨烯的波导。在此,建立了一种用于评估小型化石墨烯器件的综合方法,其中非线性、耦合和空间色散现象会显著影响其特性。