MENP:纳米光子学多极扩展的开源MATLAB实现

arXiv: Optics Pub Date : 2020-11-07 DOI:10.1364/OSAC.425189
Tatsuki Hinamoto, M. Fujii
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引用次数: 16

摘要

在现代纳米光子学中,多极干涉对于实现以超表面为代表的新型光学器件具有前所未有的功能起着不可或缺的作用。不仅要设计构成这种器件的亚波长结构,而且要实现和解释纳米光子学中的非自然现象,一个有效地进行多极扩展的程序是非常需要的。MENP是一个MATLAB程序,用于计算纳米光子谐振器中诱导的电流密度分布对光散射的多极贡献。MENP的主要目的是为全场模拟进行刚性多极展开的后处理,原则上提供所有近场和远场相互作用的信息(例如,作为总散射截面)。MENP基于最近发展的精确多极展开公式,将总散射截面分解为由于电偶极子和磁偶极子和高阶项的部分散射截面。我们通过比较理想和现实纳米球的结果与用Mie理论得到的结果来验证程序。我们还通过计算长波长近似下的多极展开,证明了MENP分析拟极态的潜力,这使我们能够引入环向偶极矩。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
MENP: an open-source MATLAB implementation of multipole expansion for nanophotonics
In modern nanophotonics, multipolar interference plays an indispensable role to realize novel optical devices represented by metasurfaces with unprecedented functionalities. Not only to engineer sub-wavelength structures that constitute such devices but also to realize and interpret unnatural phenomena in nanophotonics, a program that efficiently carries out multipole expansion is highly demanded. MENP is a MATLAB program for computation of multipole contributions to light scattering from current density distributions induced in nanophotonic resonators. The main purpose of MENP is to carry out post-processing of a rigid multipole expansion for full-field simulations which in principle provide the information of all near- and far-field interactions (e.g. as a total scattering cross section). MENP decomposes total scattering cross sections into partial ones due to electric and magnetic dipoles and higher-order terms based on recently developed exact multipole expansion formulas. We validate the program by comparing results for ideal and realistic nanospheres with those obtained with the Mie theory. We also demonstrate the potential of MENP for analysis of anapole states by calculating the multipole expansion under the long-wavelength approximation which enables us to introduce toroidal dipole moments.
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