High-Transmittance Beam-Scanning Antenna Based on Double-Layer Quasi-One-Dimensional Periodic Trapezoidal Metallic Lines

This article presents a high radio-frequency (RF) transmittance beam-scanning antenna based on a double-layer quasi-one-dimensional (QOD) structure, realized by periodically loading two trapezoidal metallic lines on both sides of a central feeding structure. The trapezoidal strips are hollowed out to improve RF transmittance. The measured prototype achieves a wide scanning range of 58° over 13.5–18.5 GHz, covering both backward and forward quadrants, with a peak gain of 12.7 dBi and an in-band gain consistently above 5.9 dBi. The measured RF transmittance peaks at nearly 90%, and the experimental results agree closely with the simulations. Compared with conventional two-dimensional (2D) periodic structures, the proposed QOD structure exhibits superior RF transmittance, making it more suitable for electromagnetic stealth device design.

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Publication Details

Journal
Electronics
Published
2026-10-01
DOI
https://doi.org/10.3390/electronics15194493
Primary Topic
Advanced Antenna and Metasurface Technologies
Type
article
Field-Weighted Citation Impact
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article

High-Transmittance Beam-Scanning Antenna Based on Double-Layer Quasi-One-Dimensional Periodic Trapezoidal Metallic Lines

Ke Gong, Hang Qian, Min Mao, Qing Liu et al.
Electronics
Advanced Antenna and Metasurface Technologies
article

High-Transmittance Beam-Scanning Antenna Based on Double-Layer Quasi-One-Dimensional Periodic Trapezoidal Metallic Lines

Ke Gong, Hang Qian, Min Mao, Qing Liu, Chunfeng Fan, Ruolin Xu
article en

Abstract

This article presents a high radio-frequency (RF) transmittance beam-scanning antenna based on a double-layer quasi-one-dimensional (QOD) structure, realized by periodically loading two trapezoidal metallic lines on both sides of a central feeding structure. The trapezoidal strips are hollowed out to improve RF transmittance. The measured prototype achieves a wide scanning range of 58° over 13.5–18.5 GHz, covering both backward and forward quadrants, with a peak gain of 12.7 dBi and an in-band gain consistently above 5.9 dBi. The measured RF transmittance peaks at nearly 90%, and the experimental results agree closely with the simulations. Compared with conventional two-dimensional (2D) periodic structures, the proposed QOD structure exhibits superior RF transmittance, making it more suitable for electromagnetic stealth device design.

ElectronicsVol. 15(19)
Xinyang Normal University (CN), PLA Information Engineering University (CN)
Openalex Percentile: Top 8%
Advanced Antenna and Metasurface Technologies
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