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Realization of Bidirectional, Bandwidth-Enhanced Metamaterial Absorber for Microwave Applications

机译:微波应用的双向,带宽增强超材料吸收器的实现

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摘要

The ever-increasing interest towards metamaterial absorbers owes to its remarkable features such as ultra-thin nature and design flexibility. Subduing the inherent narrow bandwidth of such absorbers is the prime goal in metamaterial absorber research, as this can widen the applications areas. A greater challenge is to construct bidirectional absorber, which provides direction-insensitive absorption, as most of the existing designs exhibit single sided absorption due to the complete metal film used in the design. This work presents the realization of a bidirectional, bandwidth-enhanced metamaterial absorber with basic elements such as strips and squares optimized to have adjacent resonances leading to a bandwidth-enhanced absorption. The structural evolution of the constituent metallic components towards the formation of bandwidth-enhanced absorption is described. The bidirectional absorber exhibits more than 90% absorption between 13.40?GHz and 14.25?GHz from the two incident directions. The mechanism of absorption is studied with the surface current analysis and the effective parameters of the structure. The choice of the metallic components with four-fold rotation symmetry renders the proposed design to be polarization independent and wide-angle receptive. The numerical studies are verified experimentally at microwave frequencies, which shows a good agreement between them.
机译:对于超薄性质和设计灵活性,对超薄性质的兴趣不断增加的利益归功于其卓越的特征。脱节这种吸收器的固有窄带宽是超材料吸收器研究中的主要目标,因为这可以扩大应用领域。更大的挑战是构建双向吸收器,该吸收器提供方向性吸收,因为大多数现有设计由于设计中使用的完整金属膜而表现出单一面吸收。该工作介绍了一种双向的带宽增强的超材料吸收器,其基本元件如条形和正方形优化,以具有相邻的谐振,导致带宽增强的吸收。描述了构成金属组分朝向形成带宽增强的吸收的结构演变。双向吸收剂在两个入射方向上表现出超过90%的吸收,从两个入射方向上的14.25?GHz。利用表面电流分析和结构的有效参数研究了吸收机理。具有四倍旋转对称性的金属组分的选择使得所提出的设计是偏振独立和广角的接受。数值研究在微波频率下实验验证,它们在它们之间显示出良好的一致性。

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