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用于全空间电磁波前控制的可重构多功能超表面

Reconfigurable Multifunctional Metasurfaces for Full-Space Electromagnetic Wave Front Control.

作者信息

Zhang Shunlan, Cao Weiping, Wang Jiao, Wu Tiesheng, Wang Yiying, Wang Yanxia, Zhou Dongsheng

机构信息

School of Information and Communication, Guilin University of Electronic Technology, Guilin 541004, China.

Hebei Jinghe Electronic Technology Incorporated Company, Shijiazhuang 050200, China.

出版信息

Micromachines (Basel). 2024 Oct 22;15(11):1282. doi: 10.3390/mi15111282.

Abstract

In order to implement multiple electromagnetic (EM) wave front control, a reconfigurable multifunctional metasurface (RMM) has been investigated in this paper. It can meet the requirements for 6G communication systems. Considering the full-space working modes simultaneously, both reflection and transmission modes, the flexible transmission-reflection-integrated RMM with p-i-n diodes and anisotropic structures is proposed. By introducing a 45°-inclined H-shaped AS and grating-like micro-structure, the polarization conversion of linear to circular polarization (LP-to-CP) is achieved with good angular stability, in the transmission mode from top to bottom. Meanwhile, reflection beam patterns can be tuned by switching four p-i-n diodes to achieve a 1-bit reflection phase, which are embedded in the bottom of unit cells. To demonstrate the multiple reconfigurable abilities of RMMs to regulate EM waves, the RMMs working in polarization conversion mode, transmitted mode, reflected mode, and transmission-reflection-integrated mode are designed and simulated. Furthermore, by encoding two proper reflection sequences with 13×13 elements, reflection beam patterns with two beams and four beams can be achieved, respectively. The simulation results are consistent with the theoretical method. The suggested metasurface is helpful for radar and wireless communications because of its compact size, simple construction, angular stability, and multi-functionality.

摘要

为了实现多电磁(EM)波前控制,本文研究了一种可重构多功能超表面(RMM)。它能够满足6G通信系统的要求。同时考虑全空间工作模式,即反射和透射模式,提出了一种具有p-i-n二极管和各向异性结构的柔性透射-反射集成RMM。通过引入一个45°倾斜的H形各向异性结构(AS)和类光栅微结构,在从顶部到底部的透射模式下,实现了从线偏振到圆偏振(LP-to-CP)的偏振转换,且具有良好的角度稳定性。同时,反射波束方向图可通过切换四个嵌入在单元底部的p-i-n二极管来调节,以实现1位反射相位。为了展示RMM调节电磁波的多种可重构能力,设计并仿真了工作在偏振转换模式、透射模式、反射模式和透射-反射集成模式下的RMM。此外,通过对两个13×13单元的合适反射序列进行编码,分别可实现具有两束和四束波束的反射波束方向图。仿真结果与理论方法一致。所提出的超表面由于其紧凑的尺寸、简单的结构、角度稳定性和多功能性,对雷达和无线通信有帮助。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7131/11596193/115f6d6d6421/micromachines-15-01282-g001.jpg

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