Compact High‐Gain Volumetric Phased Array Antenna with Genetically Designed Interelement Resonances for 5G Applications

Author:

Burtsev Vladimir Denisovich1ORCID,Vosheva Tatyana S.1ORCID,Bulatov Nikita O.1ORCID,Khudykin Anton A.2,Ginzburg Pavel3ORCID,Filonov Dmitry S.1ORCID

Affiliation:

1. Center for Photonics and 2D Materials MIPT 141701 Dolgoprudny Russia

2. Telecom R&D Center MIPT 141701 Dolgoprudny Russia

3. School of Electrical Engineering Tel Aviv University Tel Aviv 69978 Israel

Abstract

High‐gain directive antennas are used to support point‐to‐point long‐range wireless communication channels. In typical designs, the array factor plays the key role, while individual elements’ layout is simplified. Herein, a four‐element phased array is demonstrated, where a volumetric form factor of each element is taken as an advantage to elevate the antenna gain while keeping the device footprint small. The two‐step design process, encompassing a genetic topology optimization and finite tuning with a particle swarm algorithm, is applied and subsequently demonstrated. This shows that exploring the third dimension allows obtaining more than 25 dB isolation between adjacent radiating elements and, at the same time, grants them highly directive radiation patterns. This operation principle is verified by demonstrating a large number of resonating multipoles constructively interfering to create a directional beam. The antenna with a πλ2 aperture demonstrates more than 13 dB gain around 3 GHz frequency range. Antenna elements are 3D printed in resin and then metallize electrochemically. Additive manufacturing of complex volumetric architectures with a small interelement spacing allows implementing new devices, encompassing the advantages of resonant approaches and arrays factors. Miniaturized 3D antenna array devices can be used in wireless communications where controllable beam properties are demanded.

Publisher

Wiley

Subject

Condensed Matter Physics,General Materials Science

Reference48 articles.

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