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Differential-Fed Wideband Circularly Polarized SIW Cavity-Backed Slot Antenna Array
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This paper presents a wideband circularly polarized (CP) substrate-integrated waveguide (SIW) cavity-backed slot antenna array arranged in a 2 × 2 configuration with differential feeding structures. The design features arc-shaped microstrips within the SIW cavity to excite the TE011x/TE101y and TE211y/TE121x modes. By overlapping the center frequencies of the two modes, wideband CP radiation is achieved. The introduction of four modified ring couplers composes a simple but efficient differential feeding network, eliminating the need for balanced resistors like baluns, making it more suitable for millimeter wave or even higher frequency applications. Experimental results show that the antenna array achieves a −10 dB impedance bandwidth of 32.6% (from 17.28 to 24.00 GHz), a 3 dB axial ratio (AR) bandwidth of 13.8% (from 17.05 to 19.57 GHz), a 3 dB gain bandwidth of 41.8% (from 15.39 to 23.51 GHz) and a peak gain of 10.6 dBi, with results closely matching simulation data. This study enhances the development of differential CP SIW cavity-backed slot antenna arrays, offering a potential solution for creating compact integrated front-end circuits in the millimeter wave or Terahertz frequency range.
Title: Differential-Fed Wideband Circularly Polarized SIW Cavity-Backed Slot Antenna Array
Description:
This paper presents a wideband circularly polarized (CP) substrate-integrated waveguide (SIW) cavity-backed slot antenna array arranged in a 2 × 2 configuration with differential feeding structures.
The design features arc-shaped microstrips within the SIW cavity to excite the TE011x/TE101y and TE211y/TE121x modes.
By overlapping the center frequencies of the two modes, wideband CP radiation is achieved.
The introduction of four modified ring couplers composes a simple but efficient differential feeding network, eliminating the need for balanced resistors like baluns, making it more suitable for millimeter wave or even higher frequency applications.
Experimental results show that the antenna array achieves a −10 dB impedance bandwidth of 32.
6% (from 17.
28 to 24.
00 GHz), a 3 dB axial ratio (AR) bandwidth of 13.
8% (from 17.
05 to 19.
57 GHz), a 3 dB gain bandwidth of 41.
8% (from 15.
39 to 23.
51 GHz) and a peak gain of 10.
6 dBi, with results closely matching simulation data.
This study enhances the development of differential CP SIW cavity-backed slot antenna arrays, offering a potential solution for creating compact integrated front-end circuits in the millimeter wave or Terahertz frequency range.
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