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Multilevel fast multipole method based on a potential formulation for 3D electromagnetic scattering problems

机译:基于势公式的多级快速多极方法解决3D电磁散射问题

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摘要

A combination of the multilevel fast multipole method (MLFMM) and boundary element method (BEM) can solve large scale photonics problems of arbitrary geometry. Here, MLFMM-BEM algorithm based on a scalar and vector potential formulation, instead of the more conventional electric and magnetic field formulations, is described. The method can deal with multiple lossy or lossless dielectric objects of arbitrary geometry, be they nested, in contact, or dispersed. Several examples are used to demonstrate that this method is able to efficiently handle 3D photonic scatterers involving large numbers of unknowns. Absorption, scattering, and extinction efficiencies of gold nanoparticle spheres, calculated by the MLFMM, are compared with Mie's theory. MLFMM calculations of the bistatic radar cross section (RCS) of a gold sphere near the plasmon resonance and of a silica coated gold sphere are also compared with Mie theory predictions. Finally, the bistatic RCS of a nanoparticle gold-silver heterodimer calculated with MLFMM is compared with unmodified BEM calculations.
机译:多级快速多极方法(MLFMM)和边界元方法(BEM)的组合可以解决任意几何形状的大规模光子学问题。在这里,描述了基于标量和矢量势公式的MLFMM-BEM算法,而不是更常规的电场和磁场公式。该方法可以处理任意几何形状的多个有损或无损介电对象,无论它们是嵌套的,接触的还是分散的。使用几个示例来证明此方法能够有效处理涉及大量未知数的3D光子散射体。 MLFMM计算的金纳米粒子球的吸收,散射和消光效率与Mie理论进行了比较。还将等离振子共振附近的金球和涂有二氧化硅的金球的双基地雷达横截面(RCS)的MLFMM计算与Mie理论预测进行了比较。最后,将用MLFMM计算的纳米粒子金-银异二聚体的双基地RCS与未经修改的BEM计算进行了比较。

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