A Multi-Frequency Low-Coupling MIMO Antenna Based on Metasurface

Author:

Tang Guangpu12,Xiao Tong12,Cao Lifeng12ORCID,Cheng Runsheng12,Liu Chengguo12ORCID,Huang Lifeng34,Xu Xin5

Affiliation:

1. School of Science, Wuhan University of Technology, Wuhan 430070, China

2. Hubei Engineering Research Center of RF-Microwave Technology and Application, Wuhan University of Technology, Wuhan 430070, China

3. School of Information Engineering, Wuhan University of Technology, Wuhan 430070, China

4. China Research Institute of Radio-Wave Propagation, Qingdao 266107, China

5. Aerospace Information Research Institute, Chinese Academy of Sciences, Beijing 100190, China

Abstract

In this paper, a multi-frequency MIMO antenna for 5G and Wi-Fi 6E is presented. The antenna uses a cosine-shape monopole and split-ring resonator (SRR) structure for tri-band radiation, and frequency band expansion is achieved through SRR, folded split-ring resonators (FSRR) and Archimedean spiral metasurfaces for decoupling, with which a combination of surface wave and space wave decoupling is achieved. The Archimedean spiral metasurface unit can achieve space wave decoupling in the tri-band. By adopting the method of combining space wave decoupling and surface wave decoupling, the miniature antenna is achieved. The measured results closely align with the simulated results. Specifically, maintaining a reflection coefficient of −10 dB, the measured results indicate an increase in isolation of 3.5 dB, 36.47 dB, and 6.42 dB for the frequency bands of 3.45–3.55 GHz, 5.7–5.9 GHz, and 6.75–7 GHz, respectively. Additionally, the MIMO antenna demonstrates an average efficiency of approximately 89%, with an average envelope correlation coefficient (ECC) of 0.0025. Furthermore, the antenna’s peak gain increases by 4.3 dB at 3.5 GHz, 3.8 dB at 5.8 GHz, and 1.9 dB at 6.9 GHz upon integrating the metasurface. The proposed method and structure are anticipated to contribute significantly to decoupling in multi-frequency MIMO antennas.

Funder

the National Natural Science Foundation of China

Publisher

MDPI AG

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