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具有高增益大角度光束偏转的偏振不敏感超表面

Polarization-Insensitive Metasurface with High-Gain Large-Angle Beam Deflection.

作者信息

Qiu Huanran, Fang Liang, Xi Rui, Mu Yajie, Han Jiaqi, Feng Qiang, Li Ying, Li Long, Zheng Bin

机构信息

Hangzhou Institute of Technology, Xidian University, Hangzhou 311231, China.

Key Laboratory of High-Speed Circuit Design and EMC of Ministry of Education, School of Electronic Engineering, Xidian University, Xi'an 710071, China.

出版信息

Materials (Basel). 2024 Nov 21;17(23):5688. doi: 10.3390/ma17235688.

Abstract

Metasurfaces have shown great potential in achieving low-cost and low-complexity signal enhancement and redirection. Due to the low transmission power and high attenuation issues of current high-frequency communication technology, it is necessary to explore signal redirection technology based on metasurfaces. This paper presents an innovative metasurface for indoor signal enhancement and redirection, featuring thin thickness, high gain, and wide-angle deflection. The metasurface integrates the design principles of a Fabry-Perot cavity (FPC) theory with a Phase Gradient Partially Reflective Metasurface (PGPRM). Its unit is a fishnet structure with a substrate only 1/33 λ thin. Based on the precise phase control of the dual-layer PGPRM (with an inter-layer distance of 8 mm), the proposed metasurface can obtain phase coverage as small as 78° while achieving high-gain beam deflection as large as 47°. Simulation results show that within the band 8.6-9.2 GHz (6.7%), a single-layer metasurface can deflect the beam to 29° with a maximum gain of 16.9 dBi. In addition, it is also 360° polarization-insensitive in the plane at 9 GHz with large-angle deflection characteristic retained. Moreover, cascading PGPRM can effectively improve the beam deflection angle. After analysis, the scheme with a double-layer spacing of 8 mm was ultimately selected. Simulation results show a double-layer metasurface can deflect the beam to 47° with a maximum gain of 16.4 dBi. This design provides an efficient and cost-effective solution for large-angle beam deflection with gain enhancement for indoor wireless communication.

摘要

超表面在实现低成本、低复杂度的信号增强和重定向方面已展现出巨大潜力。由于当前高频通信技术存在低发射功率和高衰减问题,有必要探索基于超表面的信号重定向技术。本文提出了一种用于室内信号增强和重定向的创新型超表面,其特点是厚度薄、增益高且具有广角偏转特性。该超表面将法布里 - 珀罗腔(FPC)理论的设计原理与相位梯度部分反射超表面(PGPRM)相结合。其单元是一种渔网结构,基板厚度仅为1/33λ。基于双层PGPRM(层间距为8毫米)的精确相位控制,所提出的超表面在获得高达47°的高增益波束偏转的同时,可实现低至78°的相位覆盖。仿真结果表明,在8.6 - 9.2 GHz频段(6.7%)内,单层超表面可将波束偏转到29°,最大增益为16.9 dBi。此外,在9 GHz时,它在 平面内也是360°极化不敏感的,且保留了大角度偏转特性。而且,级联PGPRM可有效提高波束偏转角。经过分析,最终选择了层间距为8毫米的双层方案。仿真结果表明,双层超表面可将波束偏转到47°,最大增益为16.4 dBi。该设计为室内无线通信中具有增益增强的大角度波束偏转提供了一种高效且经济高效的解决方案。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6da6/11642181/5f0840cd95ea/materials-17-05688-g001.jpg

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