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Quad Element MIMO Antenna for C, X, Ku, and Ka-Band Applications

This article presents a quad-element MIMO antenna designed for multiband operation. The prototype of the design is fabricated and utilizes a vector network analyzer (VNA-AV3672D) to measure the S-parameters. The proposed antenna is capable of operating across three broad frequency bands: 3–15.5 GHz,...

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Autores principales: Mistri, Raj Kumar, Mahto, Santosh Kumar, Singh, Ajit Kumar, Sinha, Rashmi, Al-Gburi, Ahmed Jamal Abdullah, Alghamdi, Thamer A. H., Alathbah, Moath
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10610986/
https://www.ncbi.nlm.nih.gov/pubmed/37896656
http://dx.doi.org/10.3390/s23208563
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author Mistri, Raj Kumar
Mahto, Santosh Kumar
Singh, Ajit Kumar
Sinha, Rashmi
Al-Gburi, Ahmed Jamal Abdullah
Alghamdi, Thamer A. H.
Alathbah, Moath
author_facet Mistri, Raj Kumar
Mahto, Santosh Kumar
Singh, Ajit Kumar
Sinha, Rashmi
Al-Gburi, Ahmed Jamal Abdullah
Alghamdi, Thamer A. H.
Alathbah, Moath
author_sort Mistri, Raj Kumar
collection PubMed
description This article presents a quad-element MIMO antenna designed for multiband operation. The prototype of the design is fabricated and utilizes a vector network analyzer (VNA-AV3672D) to measure the S-parameters. The proposed antenna is capable of operating across three broad frequency bands: 3–15.5 GHz, encompassing the C band (4–8 GHz), X band (8–12.4 GHz), and a significant portion of the Ku band (12.4–15.5 GHz). Additionally, it covers two mm-wave bands, specifically 26.4–34.3 GHz and 36.1–48.9 GHz, which corresponds to 86% of the Ka-band (27–40 GHz). To enhance its performance, the design incorporates a partial ground plane and a top patch featuring a dual-sided reverse 3-stage stair and a straight stick symmetrically placed at the bottom. The introduction of a defected ground structure (DGS) on the ground plane serves to provide a wideband response. The DGS on the ground plane plays a crucial role in improving the electromagnetic interaction between the grounding surface and the top patch, contributing to the wideband characteristics of the antenna. The dimensions of the proposed MIMO antenna are 31.7 mm × 31.7 mm × 1.6 mm. Furthermore, the article delves into the assessment of various performance metrics related to antenna diversity, such as ECC, DG, TARC, MEG, CCL, and channel capacity, with corresponding values of 0.11, 8.87 dB, −6.6 dB, ±3 dB, 0.32 bits/sec/Hz, and 18.44 bits/sec/Hz, respectively. Additionally, the equivalent circuit analysis of the MIMO system is explored in the article. It’s worth noting that the measured results exhibit a strong level of agreement with the simulated results, indicating the reliability of the proposed design. The MIMO antenna’s ability to exhibit multiband response, good diversity performance, and consistent channel capacity across various frequency bands renders it highly suitable for integration into multi-band wireless devices. The developed MIMO system should be applicable on n77/n78/n79 5G NR (3.3–5 GHz); WLAN (4.9–5.725 GHz); Wi-Fi (5.15–5.85 GHz); LTE5537.5 (5.15–5.925 GHz); WiMAX (5.25–5.85 GHz); WLAN (5.725–5.875 GHz); long-distance radio telecommunication (4–8 GHz; C-band); satellite, radar, space communications and terrestrial broadband (8–12 GHz; X-band); and various satellite communications (27–40 GHz; Ka-band).
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spelling pubmed-106109862023-10-28 Quad Element MIMO Antenna for C, X, Ku, and Ka-Band Applications Mistri, Raj Kumar Mahto, Santosh Kumar Singh, Ajit Kumar Sinha, Rashmi Al-Gburi, Ahmed Jamal Abdullah Alghamdi, Thamer A. H. Alathbah, Moath Sensors (Basel) Article This article presents a quad-element MIMO antenna designed for multiband operation. The prototype of the design is fabricated and utilizes a vector network analyzer (VNA-AV3672D) to measure the S-parameters. The proposed antenna is capable of operating across three broad frequency bands: 3–15.5 GHz, encompassing the C band (4–8 GHz), X band (8–12.4 GHz), and a significant portion of the Ku band (12.4–15.5 GHz). Additionally, it covers two mm-wave bands, specifically 26.4–34.3 GHz and 36.1–48.9 GHz, which corresponds to 86% of the Ka-band (27–40 GHz). To enhance its performance, the design incorporates a partial ground plane and a top patch featuring a dual-sided reverse 3-stage stair and a straight stick symmetrically placed at the bottom. The introduction of a defected ground structure (DGS) on the ground plane serves to provide a wideband response. The DGS on the ground plane plays a crucial role in improving the electromagnetic interaction between the grounding surface and the top patch, contributing to the wideband characteristics of the antenna. The dimensions of the proposed MIMO antenna are 31.7 mm × 31.7 mm × 1.6 mm. Furthermore, the article delves into the assessment of various performance metrics related to antenna diversity, such as ECC, DG, TARC, MEG, CCL, and channel capacity, with corresponding values of 0.11, 8.87 dB, −6.6 dB, ±3 dB, 0.32 bits/sec/Hz, and 18.44 bits/sec/Hz, respectively. Additionally, the equivalent circuit analysis of the MIMO system is explored in the article. It’s worth noting that the measured results exhibit a strong level of agreement with the simulated results, indicating the reliability of the proposed design. The MIMO antenna’s ability to exhibit multiband response, good diversity performance, and consistent channel capacity across various frequency bands renders it highly suitable for integration into multi-band wireless devices. The developed MIMO system should be applicable on n77/n78/n79 5G NR (3.3–5 GHz); WLAN (4.9–5.725 GHz); Wi-Fi (5.15–5.85 GHz); LTE5537.5 (5.15–5.925 GHz); WiMAX (5.25–5.85 GHz); WLAN (5.725–5.875 GHz); long-distance radio telecommunication (4–8 GHz; C-band); satellite, radar, space communications and terrestrial broadband (8–12 GHz; X-band); and various satellite communications (27–40 GHz; Ka-band). MDPI 2023-10-18 /pmc/articles/PMC10610986/ /pubmed/37896656 http://dx.doi.org/10.3390/s23208563 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Mistri, Raj Kumar
Mahto, Santosh Kumar
Singh, Ajit Kumar
Sinha, Rashmi
Al-Gburi, Ahmed Jamal Abdullah
Alghamdi, Thamer A. H.
Alathbah, Moath
Quad Element MIMO Antenna for C, X, Ku, and Ka-Band Applications
title Quad Element MIMO Antenna for C, X, Ku, and Ka-Band Applications
title_full Quad Element MIMO Antenna for C, X, Ku, and Ka-Band Applications
title_fullStr Quad Element MIMO Antenna for C, X, Ku, and Ka-Band Applications
title_full_unstemmed Quad Element MIMO Antenna for C, X, Ku, and Ka-Band Applications
title_short Quad Element MIMO Antenna for C, X, Ku, and Ka-Band Applications
title_sort quad element mimo antenna for c, x, ku, and ka-band applications
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10610986/
https://www.ncbi.nlm.nih.gov/pubmed/37896656
http://dx.doi.org/10.3390/s23208563
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