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Current Sheets in the Discontinuous Galerkin Time-Domain method: An Application to Graphene

机译:间断Galerkin时域方法中的当前工作表:在石墨烯中的应用

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We describe the treatment of thin conductive sheets within the Discontinuous Galerkin Time-Domain (DGTD) method for solving the Maxwell equations and apply this approach to the efficient computation of the optical properties of graphene-based systems. In particular, we show that a thin conductive sheet can be handled by incorporating the associated jump conditions of the electromagnetic field into the numerical flux of the DGTD approach. This results in a flexible and efficient numerical scheme that can be applied to a number of systems. Specifically, we show how to treat individual graphene sheets on substrates as well as finite stacks of alternating graphene and dielectric layers by modeling the dispersive and dissipative properties of graphene via a two-term critical-point model for its electrostatically doped conductivity.
机译:我们描述了不连续Galerkin时域(DGTD)方法中用于解决麦克斯韦方程组的薄导电片的处理方法,并将该方法应用于基于石墨烯的系统的光学性能的有效计算。特别是,我们表明,可以通过将电磁场的关联跳跃条件合并到DGTD方法的数值通量中来处理薄导电片。这导致可以应用于许多系统的灵活而有效的数值方案。具体来说,我们展示了如何通过对石墨烯的静电掺杂电导率进行两点临界点模型化,来对石墨烯的分散和耗散特性进行建模,从而处理基底上的单个石墨烯片以及交替堆叠的石墨烯和介电层的有限堆叠。

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