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Parallel plate waveguide with anisotropic graphene plates: Effect of electric and magnetic biases

机译:具有各向异性石墨烯板的平行板波导:电磁偏置的影响

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摘要

The performances of a parallel plate waveguide (PPWG) supported by perfect electric conductor (PEC)-graphene and graphene-graphene plates are evaluated. The graphene plate behavior is modeled as an anisotropic medium with both diagonal and Hall conductivities derived from Kubo formula. The PPWG modes supported by PEC-graphene and graphene-graphene plates are studied. Maxwell’s equations are solved for these two waveguides, while the graphene layers are biasedudwith an electric field only and with both electric and magnetic fields. It is shown that when both electric and magnetic biases are applied to the graphene, a hybrid mode (simultaneous transverseudelectric (TE) and transverse magnetic (TM) modes) will propagate inside the waveguide. The intensity of each TE and TM modes can be adjusted with the applied external bias fields. Study ofuddifferent waveguides demonstrates that by decreasing the plate separation (d), the wave confinement improves. However, it increases the waveguide attenuation. A dielectric layer inserted between the plates can also be used to improve the wave confinement. The presented analytical procedure is applicable to other guiding structures having walls with isotropic or anisotropic conductivities.
机译:评估了由完美电导体(PEC)-石墨烯和石墨烯-石墨烯板支撑的平行板波导(PPWG)的性能。石墨烯板行为被建模为各向异性介质,其对角和霍尔电导率均源自Kubo公式。研究了PEC-石墨烯和石墨烯-石墨烯板支持的PPWG模式。解决了这两个波导的麦克斯韦方程,而石墨烯层仅在电场,电场和磁场的作用下被偏置。结果表明,在石墨烯上同时施加电偏压和磁偏压时,混合模式(同时的横向非电动(TE)和横向磁性(TM)模式)将在波导内传播。每个TE和TM模式的强度都可以通过施加的外部偏置场进行调整。对不同波导的研究表明,通过减小板间距(d),波限制得到改善。但是,它增加了波导的衰减。插入板之间的介电层也可用于改善波限制。提出的分析程序适用于其他具有各向同性或各向异性电导率的壁的导向结构。

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