Title :
A broad-band dual-polarized microstrip patch antenna with aperture coupling
Author :
Gao, S. ; Li, L.W. ; Leong, M.S. ; Yeo, T.S.
Author_Institution :
Sch. of Eng., Northumbria Univ., Newcastle upon Tyne, UK
fDate :
4/1/2003 12:00:00 AM
Abstract :
In this communication, a dual-polarized aperture-coupled microstrip patch antenna with a broad-bandwidth high-isolation low cross-polarization levels, and low-backward radiation levels is designed and its features are presented. For broad bandwidth and easy integration with active circuits, it uses the aperture-coupled stacked patches. The corner feeding of square microstrip patches is applied and the coupling aperture is the H-shaped aperture. The theoretical analysis is based on the finite-difference time-domain (FDTD) method. A dual-polarized antenna is designed, fabricated, and measured. The measured return loss exhibits an impedance bandwidth of over 24.4% and the isolation is better than 30 dB over the bandwidth. The cross-polarization levels in both E and H planes are better than -23 dB. The front-to-back ratio of the antenna radiation pattern is better than 22 dB. Both theoretical and experimental results for S parameters and radiation patterns are presented and discussed.
Keywords :
S-parameters; antenna radiation patterns; antenna testing; broadband antennas; electric impedance; electromagnetic coupling; electromagnetic wave polarisation; finite difference time-domain analysis; microstrip antennas; FDTD; H-shaped aperture; S parameters; antenna radiation pattern; aperture coupling; aperture-coupled stacked patches; broad-band dual-polarized microstrip patch antenna; corner feeding; coupling aperture; cross-polarization levels; design; dual-polarized aperture-coupled microstrip patch antenna; fabrication; finite-difference time-domain method; front-to-back ratio; impedance bandwidth; isolation; radiation levels; return loss; square microstrip patches; Antenna measurements; Antenna radiation patterns; Apertures; Bandwidth; Coupling circuits; Finite difference methods; Integrated circuit measurements; Microstrip antennas; Patch antennas; Time domain analysis;
Journal_Title :
Antennas and Propagation, IEEE Transactions on
DOI :
10.1109/TAP.2003.811080