Investigation of the microwave chiral metamaterial based on a uniform set of C-shaped conductive inclusions

I. Buchnev, Dmitry S. Kushnir, O. Osipov, M. A. Frolova
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Abstract

The paper considers an artificial chiral metamaterial created on a homogeneous container basefrom foamed dielectric, in which flat conducting S-shaped microelements are evenly placed and arbitrarily oriented. To describe the metamaterial, a particular mathematical model was constructed that takes into account chirality, dispersion, and heterogeneity of the structure. The Maxwell Garnett model was used to account for heterogeneity. To take into account the dispersion of the chirality parameter, the Condon model known from the theory of optically active media was used. The partial domain method was used to solve the problem of the incidence of a plane electromagnetic wave of linear polarization on a planar layer created on the base of the investigated chiral metamaterial. The solution of the problem was reduced to an inhomogeneous system of linear algebraic equations for unknown reflection and transmission coefficients, taking into account the cross-polarization of the electromagnetic field. An analysis of the numerical results showed that the structure has pronounced frequency selective properties, in particular, as in the case of chiral metamaterial based on three-dimensional conductive elements, discrete frequencies were determined at which the structure is transparent to microwave radiation. Chiral metamaterial based on C-shaped microelements can be used to create narrow-band frequency-selective microwave energy concentrators of planar type.
基于均匀c形导电包体的微波手性超材料研究
本文研究了一种以泡沫介质为基材,在均匀容器上均匀放置并任意取向的s型扁平导电微元素的人工手性超材料。为了描述这种超材料,建立了一个特殊的数学模型,考虑了结构的手性、色散和非均质性。麦克斯韦-加内特模型用于解释异质性。为了考虑手性参数的色散,采用了光活性介质理论中已知的Condon模型。采用部分域法求解了线极化平面电磁波在所研究的手性超材料上形成的平面层上的入射问题。考虑电磁场的交叉极化,将该问题的解简化为反射系数和透射系数未知的非齐次线性代数方程组。数值分析结果表明,该结构具有明显的频率选择性,特别是在基于三维导电元件的手性超材料的情况下,确定了该结构对微波辐射透明的离散频率。基于c型微元素的手性超材料可用于制造平面型窄带选频微波能量集中器。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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