基于感应磁的单层聚焦超表面

H. Hao, Xuehong Ran, Yihao Tang, Sen Zheng, Wei Ruan
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引用次数: 8

摘要

提出了一种基于感应磁性的透射单层惠更斯单元电池,用于设计低轮廓多聚焦超表面。惠更斯单元电池由一对反对称金属元件和厚度仅为1.2mm(在37GHz时为λ0/6.8)的介电衬底组成。在相反方向流动的表面电流形成循环电流,以感应与电流正交的磁电流。通过优化金属元素的参数,实现了2π相的全覆盖,解决了层数减少导致的相覆盖不完全的问题。利用全息理论计算了补偿相位在超表面上的分布。入射平面波可以以任何方式收敛到指定的点,包括焦点数、位置和强度分布,具有出色的操纵能力。仿真和实测结果表明,所设计的超表面具有良好的多焦点聚焦特性。中心频率处的聚焦效率为43.78%,聚焦效率为20%时的相对带宽超过20%。所设计的超表面具有外形低、加工简单、效率高等优点,在毫米波成像、生物医学诊断检测等领域具有广泛的应用前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A SINGLE-LAYER FOCUSING METASURFACE BASED ON INDUCED MAGNETISM
A transmissive single-layer Huygens unit cell based on induced magnetism is proposed to design low-profile and multi-focus metasurface. The Huygens unit cell consists of a pair of antisymmetric metal elements and a dielectric substrate with only 1.2mm thickness (λ0/6.8 at 37GHz). The surface currents flowing in the opposite directions form the circulating electric currents to induce the magnetic currents orthogonal to the electric currents. The full coverage of 2π phase is achieved through optimizing the parameters of the metal elements, which solves the problem of the incomplete phase coverage caused by layer number reduction. With Holographic theory, the compensating phase distribution on the metasurface is calculated. The incident plane wave can be converged to designated points in any desired fashion including focal number, location, and intensity distribution, which exhibits outstanding manipulation capability. As the simulations and measured results show, the designed metasurface can achieve good multi-focus focusing characteristics. The focusing efficiency at the center frequency is 43.78%, and the relative bandwidth with 20% focusing efficiency exceeds 20%. The designed metasurface has the advantages of low profile, simple processing, and high efficiency, which has a wide range of application prospects in the fields of millimeter wave imaging, biomedical diagnosis and detection.
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