Design, Realization and Characterization of a Wide-Angle Microwave Metasurface Absorber

F. Frezza
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Abstract

In this article, we present a metamaterial absorber (MMA), and more specifically a metasurface based on a periodic structure consisting of double split-ring resonators (dSRR) which efficiently absorbs electromagnetic radiation for a wide range of incidence angles for both the transverse electric (TE) and the transverse magnetic (TM) polarizations. The proposed unit cell was designed employing a full 3-D electromagnetic solver based on the Finite Element Method (FEM). The unit cell consists of a square split-ring resonator and a thin metallic plate separated by a dielectric layer. Investigations of parameterization and optimization have shown that small modifications in the geometry of the resonator led to enhanced angular absorption. The numerical simulation stage was followed by design and fabrication of a prototype containing several unit cells. The measurements on the prototype show an absorbance peak larger than 84% and 58% for the incidence angles θ=0˚ and θ=70˚ respectively, at 9.73 GHz. The proposed MMA and its variations enable numerous applications such as defense systems, communication and stealth technologies.
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广角微波超表面吸收器的设计、实现与特性研究
在本文中,我们提出了一种超材料吸收体(MMA),更具体地说,是一种基于双分裂环谐振器(dSRR)组成的周期结构的超表面,它可以有效地吸收横向电(TE)和横向磁(TM)极化的大范围入射角的电磁辐射。采用基于有限元法的全三维电磁求解器对所提出的单元胞进行了设计。单元电池由一个方形分环谐振器和一个由介电层隔开的薄金属板组成。参数化和优化的研究表明,谐振器几何形状的微小修改导致角吸收增强。数值模拟阶段之后,设计和制造了一个包含几个单元的原型。在样机上的测量结果表明,当入射角θ=0˚和θ=70˚时,在9.73 GHz处吸光度峰值分别大于84%和58%。拟议的MMA及其变体能够实现许多应用,如防御系统、通信和隐身技术。
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