Dual-Polarized Super-Wideband Antenna with Artificial Materials-Enhanced Gain for 5G Millimeter-Wave and Remote Sensing Applications
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This paper presents a high-performance dual-polarized super-wideband (SWB) antenna that employs optimized slots and an Artificial Material (AM) array to achieve remarkable enhancements in both bandwidth and gain. The proposed design features a compact Vivaldi configuration with integrated arrow-shaped slots, enabling SWB operation while maintaining a low-profile size of 0.66× 0.49× 0.01λ3. A constrained trust-region gradient-based optimization is used to refine the slot geometry and antenna parameters, achieving an operating range from 8.4 to 42.8 GHz with a stable gain of approximately 10 dBi at frequencies above 17 GHz. The incorporation of AMs further enhances the gain and extends the bandwidth. The AM antenna, with dimensions of 0.94× 0.49× 0.01λ3 , achieves peak gains of 13.3 dBi at 24 and 38 GHz and covers a wide operating range of 8.3-45 GHz. Dual polarization is realized by employing two orthogonally oriented Vivaldi elements, resulting in a high polarization isolation exceeding 25 dB across the entire operating bandwidth. The experimental results demonstrate excellent agreement with the simulation-based findings. Featuring SWB performance, high gain, strong polarization isolation, polarization diversity, and a compact low-profile structure, the proposed antenna is well suited for 5G millimeter-wave (MMW) and satellite remote sensing applications.
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Publisher Copyright: © 2013 IEEE.
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AMs, antenna optimization, dual-polarization antenna, millimeter-wave, remote sensing, General Computer Science, General Materials Science, General Engineering
Citation
Esmail, B A F, Isleifson, D, Koziel, S & Pietrenko-Dabrowska, A 2026, 'Dual-Polarized Super-Wideband Antenna with Artificial Materials-Enhanced Gain for 5G Millimeter-Wave and Remote Sensing Applications', IEEE Access, vol. 14, pp. 68568-68579. https://doi.org/10.1109/ACCESS.2026.3690562