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Compact Single-/Dual-Polarized Filtering Dielectric Resonator Antennas | IEEE Journals & Magazine | IEEE Xplore

Compact Single-/Dual-Polarized Filtering Dielectric Resonator Antennas


Abstract:

A compact single-polarized filtering dielectric resonator (DR) antenna (DRA) with high selectivity is investigated. The DRA is fed by hybrid microstrip line/conformal str...Show More

Abstract:

A compact single-polarized filtering dielectric resonator (DR) antenna (DRA) with high selectivity is investigated. The DRA is fed by hybrid microstrip line/conformal strip, excited in its fundamental TE1δ1y mode. Owing to different loading effects of the microstrip stub and conformal strip, the resonance frequency of TE1δ1y mode excited by the two feed lines is slightly different. Such stepping resonances yield a wide bandwidth of 21.9% and a very flat gain of 5.1 dBi. The hybrid-feeding scheme also establishes a cross-coupled structure in the DRA, which introduces two radiation nulls right near the band edges. A compact wideband filtering DRA (FDRA) with quasi-elliptic bandpass response is, therefore, obtained without requiring any specific filtering circuit. This single-polarized design is also modified to realize a dual-polarized FDRA by adding another orthogonal port with the same feeding scheme. To reduce mutual coupling between the two ports, the microstrip stubs are folded to L shape, and four additional metal posts are inserted into the DR. As a result, the isolation is improved by 14 dB, from 7.2 to 21.2 dB.
Published in: IEEE Transactions on Antennas and Propagation ( Volume: 66, Issue: 9, September 2018)
Page(s): 4474 - 4484
Date of Publication: 08 June 2018

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I. Introduction

In mobile communications, a transmitted electromagnetic wave will generally reach a receiver through different paths, leading to fluctuations in the amplitude and phase of received signals. To tackle the multipath fading problem and settle polarization mismatch issue, dual-polarized antennas are often required in end user or base station. Patch antennas [1], magnetoelectric dipole antennas [2], traveling-wave antennas [3], and dielectric resonator antennas (DRAs) [4] that with dual polarization have been extensively investigated. On the other hand, it is increasingly popular to integrate the bandpass filter and antenna into a single module for reducing the system size [5]–[7] as well as insertion loss [8], [9]. Various filtering antennas that featuring filter-like frequency response for both the reflection coefficient and antenna gain have been proposed in recent years, including filtering patch antennas [10]–[12], slot antennas [13]–[15], and dipole/ monopole antennas [16]–[21]. However, thus far, most of the existing designs are limited to single polarization, and there are very few dual-polarized filtering antennas [6], [9]. The dual-polarized filtering patch antenna in [6] was designed based on the filter synthesis approach. A second-order stub-loaded resonator filter was used as the feeding network, whereas the patch antenna was taken as the last-stage resonator of the filter. This antenna working at 5 GHz had an impedance bandwidth of 10% and an average gain of about 5 dBi. Differently, the dual-polarized patch antenna in [9] was realized using antenna fusion approach. Small modifications were introduced into the radiator and feeding circuit of the antenna to control its input impedance, providing a filter-like frequency response [22]. More specifically, two orthogonal H-shaped microstrip feeding lines were coupled to the driven patch to realize dual polarization. The H-shaped line also provided a sharp roll-off rate at the lower band edge, whereas the stacked patch offered a radiation null at the upper stopband. Quasi-elliptic bandpass response was consequently achieved for both polarizations. Due to the stacked patch, the antenna could provide a wider impedance bandwidth of 13% and a higher gain of about 9 dBi.

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References

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