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首页> 外文期刊>ACS Omega >Asymmetric Spatial Power Dividers Using Phase–Amplitude Metasurfaces Driven by Huygens Principle
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Asymmetric Spatial Power Dividers Using Phase–Amplitude Metasurfaces Driven by Huygens Principle

机译:惠更斯原理驱动的使用相振幅超表面的非对称空间功率分配器

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摘要

Recent years have witnessed an extraordinary spurt in attention toward the wave-manipulating strategies revealed by phase–amplitude metasurfaces. Recently, it has been shown that, when two different phase-encoded metasurfaces responsible for doing separate missions are added together based on the superposition theorem, the mixed digital phase distribution will realize both missions at the same time. In this paper, via a semi-analytical procedure, we demonstrate that such a theorem is not necessarily valid when using phase-only metasurfaces or ignoring the element pattern functions. We introduce the concept of asymmetric spatial power divider (ASPD) with arbitrary power ratio levels in which modulating both amplitude and phase of the meta-atoms is inevitable to fully control the power intensity pattern of a reflective metasurface. Numerical simulations illustrate that the proposed ASPD designed by proper phase and amplitude distribution over the surface can directly generate a desired number of beams with predetermined orientations and power budgets. The C-shaped Pancharatnam–Berry meta-atoms locally realize the optimal phase and amplitude distribution in each case, and the good conformity between simulations and theoretical predictions verifies the presented formalism. A prototype of our ASPD designs is also fabricated and measured, and the experimental results corroborate well our numerical and semi-analytical predictions. Our findings not only offer possibilities to realize arbitrary spatial power dividers over subwavelength scale but also reveal an economical and simple alternative for a beamforming array antenna.
机译:近年来,对相位幅度超颖表面揭示的波操纵策略的关注激增。最近,已经显示出,当基于叠加定理将负责执行单独任务的两个不同的相位编码超表面加在一起时,混合数字相位分布将同时实现两个任务。在本文中,通过半解析过程,我们证明了当使用仅相位超表面或忽略元素模式函数时,该定理不一定有效。我们引入具有任意功率比水平的非对称空间功率分配器(ASPD)的概念,其中不可避免地需要同时调制亚原子的振幅和相位来完全控制反射型超表面的功率强度模式。数值模拟表明,通过在表面上进行适当的相位和幅度分布设计的建议ASPD可以直接生成具有预定方向和功率预算的所需数量的光束。 C形的Pancharatnam–Berry亚原子在每种情况下都局部实现了最佳的相位和振幅分布,并且模拟与理论预测之间的良好一致性验证了所提出的形式主义。我们还制造并测量了ASPD设计的原型,实验结果很好地证实了我们的数值和半分析预测。我们的发现不仅为实现亚波长范围内的任意空间功率分配器提供了可能性,而且还揭示了波束成形阵列天线的经济,简单的替代方案。

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