4.4 Article

Isolation enhancement of densely packed array antennas with periodic MTM-photonic bandgap for SAR and MIMO systems

期刊

IET MICROWAVES ANTENNAS & PROPAGATION
卷 14, 期 3, 页码 183-188

出版社

INST ENGINEERING TECHNOLOGY-IET
DOI: 10.1049/iet-map.2019.0362

关键词

periodic structures; microstrip antennas; synthetic aperture radar; metamaterials; photonic band gap; MIMO communication; transmit-receive sections; synthetic aperture radar; multiple-input-multiple-output; MTM-PBG structure; surface wave propagations; MTM-PBG layer; periodic arrangement; cross-shaped microstrip frame; noise figure 12; 0 dB; frequency 9; 25 GHz; frequency 9; 25 GHz to 11; 0 GHz; decoupling frame; metamaterial photonic bandgap periodic structure; periodic MTM-photonic bandgap; densely packed array antenna; isolation enhancement; array antennas; three-dimensional metal walls; short-circuited via-holes

资金

  1. UK Engineering and Physical Sciences Research Council (EPSRC) [H2020-MSCA-ITN-2016 SECRET-722424]
  2. [EP/E022936/1]

向作者/读者索取更多资源

A metamaterial photonic bandgap (MTM-PBG) periodic structure is used as a decoupling frame to improve the isolation between transmit-receive (T/R) sections of the densely packed array antenna in synthetic aperture radar (SAR) and multiple-input-multiple-output (MIMO) systems. With this technique the MTM-PBG structure is shown to effectively suppress surface wave propagations between the T/R array antennas by an average of 12 dB. MTM-PBG layer comprises a periodic arrangement of dielectric circles etched in the cross-shaped microstrip frame that is inserted between the radiating elements. Unlike other recently reported methods, the advantages of the proposed technique are: (i) simplicity; (ii) cost effectiveness as there is no need for short-circuited via-holes or three-dimensional metal walls; and (iii) can be retrofitted in existing array antennas. The proposed T/R array antennas were designed to operate over an arbitrary frequency range (9.25-11 GHz) with a fractional bandwidth of 17.28%. With this technique (i) the side-lobes are reduced; (ii) there is minimal effect on the gain performance; and (iii) the minimum edge-to-edge gap between adjacent radiating elements can be reduced to 0.15 lambda at 9.25 GHz.

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