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Circularly polarized dual-port MIMO DRA for future Wi-Fi 6E applications

Published online by Cambridge University Press:  30 May 2024

Javed Iqbal*
Affiliation:
Electrical Engineering Department, Gomal University, Dera Ismail Khan, KPK, Pakistan
Usman Illahi
Affiliation:
Electrical Engineering Department, Gomal University, Dera Ismail Khan, KPK, Pakistan
Shahid Mahmood Ramay
Affiliation:
Physics and Astronomy Department, College of Science, King Saud University, Riyadh, Kingdom of Saudi Arabia
Mohamad Ismail Sulaiman
Affiliation:
Science Team, University of Sheffield International College, Sheffield, United Kingdom
*
Corresponding author: Javed Iqbal; Email: Javediqbal.iet@gu.edu.pk
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Abstract

This research article proposes a dual-sense dual-port wideband circularly polarized (CP) multi-input multi-output (MIMO) antenna designed for Wi-Fi 6E applications. The main novelty lies in achieving CP for both ports using a truncated rectangular-shaped aperture. By incorporating design and spatial diversity and defective ground structure between the two radiators, the design improves isolation and enables the antenna to generate Left-Hand Circular Polarization (LHCP)depending on the selected feed port. The proposed MIMO rectangular dielectric resonator antenna demonstrates an impressive impedance-matching bandwidth (IBW)from 5.5 to 8.0 GHz (37.10%) as well as an axial ratio bandwidth (ARBW) covering from 6.0 to 6.55 GHz (12.20%). Additionally, the dual-port wideband CP MIMO antenna exhibits satisfactory diversity performance parameters. To validate the simulated results, a physical prototype is fabricated and subjected to experimental testing. The measured outcomes of the fabricated model align closely with the simulated results, confirming the accuracy of the design. With both MIMO and CP capabilities and improved isolation, this proposed model proves beneficial in reducing latency and minimizing the impact of multipath fading. Therefore, it stands as an excellent choice for future devices utilizing the Wi-Fi 6E band due to its broad IBW and overlappingAR.

Information

Type
Research Paper
Creative Commons
Creative Common License - CCCreative Common License - BY
This is an Open Access article, distributed under the terms of the Creative Commons Attribution licence (http://creativecommons.org/licenses/by/4.0), which permits unrestricted re-use, distribution and reproduction, provided the original article is properly cited.
Copyright
© The Author(s), 2024. Published by Cambridge University Press in association with The European Microwave Association.
Figure 0

Table 1. Augmented dimension of the projected wide band CP MIMO antenna

Figure 1

Figure 1. Schematic diagram of the single element antenna: (a) 3D-design; (b) reflection coefficient; (c) axial ratio; and (d) gain.

Figure 2

Figure 2. Schematic diagram of the proposed wideband CP MIMO antenna: (a) proposed design, (b) feeding structure, back side of the ground; and (c) DGS/truncated rectangular-shaped apertures 3D view.

Figure 3

Figure 3. Evolution of the 3D view of the RDRA, (a) a basic RDRA pair. (b) Truncated rectangular-shaped apertures base RDRA. (c) Proposed design (DGS). (d) Backside view of microstrip lines.

Figure 4

Figure 4. S-parameter parametric analysis results of all three antennas: (a) S11 antenna (a), (b) S11 antenna (b), (c) S11 antenna (c), and (d) isolation S21.

Figure 5

Figure 5. Linearly polarized RDAR field distribution of $\text{TE}_{1 \delta 1}^{y}$ at 6.84 GHz. (a) E-field and (b) H-field.

Figure 6

Figure 6. AR antenna evolution results (a) axial ratio antenna (a) and (b) axial ratio proposed design.

Figure 7

Figure 7. E-field distribution of the proposed circularly polarized RDRA: (a) $\text{TE}_{\delta11}^x$ excited at 6.3 GHz and (b) $\text{TE}_{1 \delta 1}^{y}$ excited at 6.49 GHz.

Figure 8

Figure 8. Simulated E-field vectors w.r.t. angles of reference antenna: (a) 0, (b) 90, (c) 180, and (d) 270.

Figure 9

Figure 9. Current distributions of CP MIMO antenna at 6 GHz (a) with and (b) without DGS.

Figure 10

Figure 10. This figure showcases images of the constructed antenna: (a) provides a bottom view, (b) illustrates the feeding structure, and (c) displays the proposed antenna.

Figure 11

Figure 11. Tested and simulated outcomes of the two-port CP antenna in terms of (a) S11, (b) S12, and (c) 3-dB axial ratio.

Figure 12

Figure 12. Results of MIMO antenna at 7 GHz in terms of (a) beamwidth at Θ = 0 and (b) beamwidth at Θ = 90.

Figure 13

Figure 13. Radiation patterns of the proposed CP MIMO DRA at 7 GHz. (a) Port 1. (b) Port 2.

Figure 14

Figure 14. Tested and simulated gain.

Figure 15

Figure 15. ECC of CP MIMO antenna parameters.

Figure 16

Figure 16. Antenna efficiency of the proposed circularly polarized MIMO DRA.

Figure 17

Table 2. Augmented dimension of the projected wideband CP MIMO antenna