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Improved performance of numerical simulation algorithms for nanoscale electromagnetics

机译:纳米电磁学数值模拟算法的改进性能

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The optical response of nanostructures that exhibit pronounced plasmonic effects is studied and analyzed. Various approaches to solve light scattering problems in the time domain and in the frequency domain, using both the domain and the boundary discretization methods were used. Far-field and near-field characteristics of plasmonic nanostructures are investigated with several numerical algorithms to study the shape effect and the effects of the illumination angles on the resonance behavior. Numerical results with high accuracy, reduced complexity and reduced computational time due to extensive use of semi-analytical solutions are obtained. This set of numerical experiments demonstrates significant differences in the performances of different numerical methods. We observed that even simple geometries of plasmonic nanostructures may pose severe problems for various methods. We identify a strong need to select and modify numerical simulation algorithms according to the plasmonic effects, in addition to the standard selection of numerical method according to the geometrical settings and length scales.
机译:研究和分析了表现出明显的等离子体效应的纳米结构的光学响应。使用时域和边界离散化方法来解决时域和频域中光散射问题的各种方法。用几种数值算法研究了等离子体纳米结构的远场和近场特性,以研究形状效应和照明角度对共振行为的影响。由于大量使用了半解析解,因此获得了具有高精度,降低复杂性和减少计算时间的数值结果。这组数值实验表明,不同数值方法的性能存在显着差异。我们观察到,即使是简单的等离激元纳米结构几何形状也可能对各种方法造成严重的问题。除了确定根据几何设置和长度尺度的数值方法的标准选择之外,我们还确定了根据等离子效应选择和修改数值模拟算法的强烈需求。

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