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Generalized non-local surface susceptibility model and Fresnel coefficients for the characterization of periodic metafilms with bianisotropic scatterers

机译:广义非局部表面磁化率模型和菲涅耳系数,用于表征带各向异性的周期性超薄膜

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摘要

A non-local surface susceptibility model for the consistent description of periodic metafilms formed by arbitrarily-shaped, electrically-small, bianisotropic scatterers is developed in this paper. The rigorous scheme is based on the point-dipole approximation technique and is valid for any polarization and propagation direction of an electromagnetic wave impinging upon the metafilm, unlike existing approaches whose applicability is practically confined to very specific cases of incidence. Next, the universal form of the resulting surface susceptibility matrix is employed for the derivation of the generalized Fresnel coefficients for such surfaces, which enable the comprehensive interpretation of several significant, yet relatively unexamined, physical interactions. Essentially, these coefficients include eight distinct terms, corresponding to the co-polarized and cross-polarized reflection and transmission coefficients for the two orthogonal eigenpolarizations of a linearly-polarized incident plane wave. The above formulas are, then, utilized for the prediction of the scattering properties of metafilms with different planar and non-planar resonators, which are characterized via the featured model and two previously reported local ones. Their comparison with numerical simulation outcomes substantiates the merits of the proposed method, reveals important aspects of the underlying physics, and highlights the differences between the various modeling procedures. (C) 2014 Elsevier Inc. All rights reserved.
机译:本文建立了一个非局部表面敏感性模型,用于一致描述由任意形状,电小,各向异性的散射体形成的周期性超膜。严格的方案基于点-偶极子近似技术,并且对于撞击在超薄膜上的电磁波的任何极化和传播方向均有效,这与现有方法的适用范围实际上限于非常特殊的入射情况不同。接下来,将所得表面敏感性矩阵的通用形式用于此类表面的广义菲涅耳系数的推导,这使得能够全面解释几种重要的但相对未经审查的物理相互作用。本质上,这些系数包括八个不同的项,分别对应于线性偏振入射平面波的两个正交本征偏振的同极化和交叉极化反射和透射系数。然后,将上述公式用于预测具有不同平面和非平面谐振器的超薄膜的散射特性,这些特性通过特征模型和两个先前报道的局部谐振器进行表征。他们与数值模拟结果的比较证实了所提出方法的优点,揭示了基础物理的重要方面,并突出了各种建模程序之间的差异。 (C)2014 Elsevier Inc.保留所有权利。

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