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首页> 外文期刊>Journal of the Optical Society of America, A. Optics, image science, and vision >Transient analysis of electromagnetic wave interactions on plasmonic nanostructures using a surface integral equation solver
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Transient analysis of electromagnetic wave interactions on plasmonic nanostructures using a surface integral equation solver

机译:使用表面积分方程求解器对等离子体纳米结构上电磁波相互作用的瞬态分析

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摘要

Transient electromagnetic interactions on plasmonic nanostructures are analyzed by solving the Poggio-MillerChan-Harrington-Wu-Tsai (PMCHWT) surface integral equation (SIE). Equivalent (unknown) electric and magnetic current densities, which are introduced on the surfaces of the nanostructures, are expanded using Rao-Wilton-Glisson and polynomial basis functions in space and time, respectively. Inserting this expansion into the PMCHWT-SIE and Galerkin testing the resulting equation at discrete times yield a system of equations that is solved for the current expansion coefficients by a marching on-in-time (MOT) scheme. The resulting MOT-PMCHWT-SIE solver calls for computation of additional convolutions between the temporal basis function and the plasmonic medium's permittivity and Green function. This computation is carried out with almost no additional cost and without changing the computational complexity of the solver. Time-domain samples of the permittivity and the Green function required by these convolutions are obtained from their frequency-domain samples using a fast relaxed vector fitting algorithm. Numerical results demonstrate the accuracy and applicability of the proposed MOT-PMCHWT solver. (C) 2016 Optical Society of America
机译:通过求解Poggio-MillerChan-Harrington-Wu-Tsai(PMCHWT)表面积分方程(SIE),分析了等离子体纳米结构上的瞬态电磁相互作用。引入纳米结构表面的等效(未知)电流和磁电流密度分别使用Rao-Wilton-Glisson和多项式基函数在空间和时间上进行扩展。将此扩展插入PMCHWT-SIE和Galerkin中,在离散时间测试所得方程,将产生一个方程组,该系统可以通过按时间进行(MOT)方案求解当前的膨胀系数。生成的MOT-PMCHWT-SIE求解器需要计算时间基函数与等离子体介质的介电常数和格林函数之间的其他卷积。该计算几乎没有额外的费用,并且不会改变求解器的计算复杂性。这些卷积所需的介电常数和格林函数的时域样本是使用快速松弛矢量拟合算法从其频域样本获得的。数值结果证明了所提出的MOT-PMCHWT求解器的准确性和适用性。 (C)2016美国眼镜学会

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