Wideband and High-Gain Folded Transmit-Array Antenna Based on 3-Bit FPTP Metasurface

IF 1 4区 工程技术 Q4 ENGINEERING, ELECTRICAL & ELECTRONIC
Qiang Wang, Jun Zou, Yu Cheng Yang, Xiaomeng Cheng, Mingzhu Jiang, Jun Chen Ke, Lei Wang
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Abstract

Metasurfaces provide an unprecedented capability for manipulating electromagnetic waves. In this study, a wideband and high-gain folded transmit-array antenna (FTA) based on a 3-bit Fabry–Perot transmission polarizer (FPTP) metasurface was proposed and realized. The proposed FTA comprises three key components: (1) top-layer FPTP metasurface, (2) bottom-layer miniaturized waveguide horn feed, and (3) reflector array. The FPTP metasurface adopts a sandwich structure, integrating two orthogonal metallic grids with an embedded 3-bit digitally encoded C-shaped ring, which simultaneously achieves polarization conversion and high-precision phase compensation while avoiding insertion losses caused by multilayer stacking. The feed employs a customized miniaturized waveguide horn, and the reflector incorporates a 90° polarization conversion function, effectively mitigating the impact of missing central elements in the primary reflector without requiring additional polarization layers. Through synergistic optimization of the FPTP metasurface, feed, and reflector, the system achieves high-gain and wideband performance while maintaining a low-profile geometry (thickness reduced to one-quarter of the focal length). A prototype with 45 × 45 unit cells was fabricated and tested, demonstrating an operational bandwidth of 11.3–17 GHz, a measured peak gain of 27.1 dBi, a 3-dB gain bandwidth of 36.4%, and an aperture efficiency of 38%, all of which align closely with simulations. The proposed 3-bit FPTP metasurface provides a novel solution for low-profile, high-gain antenna design and is expected to find potential applications in next-generation wireless communication systems.

基于3位FPTP超表面的宽带高增益折叠发射阵列天线
元表面为操纵电磁波提供了前所未有的能力。本研究提出并实现了一种基于三位法布里-珀罗透射极化器(FPTP)元面的宽带高增益折叠发射阵列天线(FTA)。拟议的 FTA 由三个关键组件组成:(1) 顶层 FPTP 元表面,(2) 底层小型化波导喇叭馈电,以及 (3) 反射器阵列。FPTP 元表面采用三明治结构,集成了两个正交金属网格和一个嵌入式 3 位数字编码 C 形环,可同时实现偏振转换和高精度相位补偿,同时避免多层堆叠造成的插入损耗。馈电采用定制的小型化波导喇叭,反射器具有 90° 偏振转换功能,可有效减轻主反射器中心元件缺失的影响,而无需额外的偏振层。通过对 FPTP 元表面、馈电和反射器进行协同优化,该系统实现了高增益和宽带性能,同时保持了低矮的几何形状(厚度减至焦距的四分之一)。我们制作并测试了一个具有 45 × 45 单元尺寸的原型,其工作带宽为 11.3-17 GHz,测量峰值增益为 27.1 dBi,3-dB 增益带宽为 36.4%,孔径效率为 38%,所有这些都与模拟结果非常吻合。所提出的 3 位 FPTP 元表面为低剖面、高增益天线设计提供了一种新的解决方案,有望在下一代无线通信系统中找到潜在应用。
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来源期刊
Microwave and Optical Technology Letters
Microwave and Optical Technology Letters 工程技术-工程:电子与电气
CiteScore
3.40
自引率
20.00%
发文量
371
审稿时长
4.3 months
期刊介绍: Microwave and Optical Technology Letters provides quick publication (3 to 6 month turnaround) of the most recent findings and achievements in high frequency technology, from RF to optical spectrum. The journal publishes original short papers and letters on theoretical, applied, and system results in the following areas. - RF, Microwave, and Millimeter Waves - Antennas and Propagation - Submillimeter-Wave and Infrared Technology - Optical Engineering All papers are subject to peer review before publication
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