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A Novel Low-Cost Compact High-Performance Flower-Shaped Radiator Design for Modern Smartphone Applications

This manuscript examines the design principle and real-world validation of a new miniaturized high-performance flower-shaped radiator (FSR). The antenna prototype consists of an ultracompact square metallic patch of 0.116λ(0) × 0.116λ(0) (λ(0) is the free space wavelength at 3.67 GHz), a rectangular...

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Autores principales: Dayo, Zaheer Ahmed, Aamir, Muhammad, Rahman, Ziaur, Khoso, Imran A., Lodro, Mir Muhammad, Dayo, Shoaib Ahmed, Soothar, Permanand, Pathan, Muhammad Salman, Al-Gburi, Ahmed Jamal Abdullah, Memon, Aftab Ahmed, Chowdhry, Bhawani Shankar
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9962356/
https://www.ncbi.nlm.nih.gov/pubmed/36838163
http://dx.doi.org/10.3390/mi14020463
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author Dayo, Zaheer Ahmed
Aamir, Muhammad
Rahman, Ziaur
Khoso, Imran A.
Lodro, Mir Muhammad
Dayo, Shoaib Ahmed
Soothar, Permanand
Pathan, Muhammad Salman
Al-Gburi, Ahmed Jamal Abdullah
Memon, Aftab Ahmed
Chowdhry, Bhawani Shankar
author_facet Dayo, Zaheer Ahmed
Aamir, Muhammad
Rahman, Ziaur
Khoso, Imran A.
Lodro, Mir Muhammad
Dayo, Shoaib Ahmed
Soothar, Permanand
Pathan, Muhammad Salman
Al-Gburi, Ahmed Jamal Abdullah
Memon, Aftab Ahmed
Chowdhry, Bhawani Shankar
author_sort Dayo, Zaheer Ahmed
collection PubMed
description This manuscript examines the design principle and real-world validation of a new miniaturized high-performance flower-shaped radiator (FSR). The antenna prototype consists of an ultracompact square metallic patch of 0.116λ(0) × 0.116λ(0) (λ(0) is the free space wavelength at 3.67 GHz), a rectangular microstrip feed network, and a partial metal ground plane. A novel, effective, and efficient approach based on open circuit loaded stubs is employed to achieve the antenna’s optimal performance features. Rectangular, triangular, and circular disc stubs were added to the simple structure of the square radiator, and hence, the FSR configuration was formed. The proposed antenna was imprinted on a low-cost F4B laminate with low profile thickness of 0.018λ(0), relative permittivity ε(r) = 2.55, and dielectric loss tangent δ = 0.0018. The designed radiator has an overall small size of 0.256λ(0) × 0.354λ(0). The parameter study of multiple variables and their influence on the performance results has been extensively studied. Moreover, the impact of different substrate materials, impedance bandwidths, resonance tuning, and impedance matching has also been analyzed. The proposed antenna model has been designed, simulated, and fabricated. The designed antenna exhibits a wide bandwidth of 5.33 GHz ranging from 3.67 to 9.0 GHz at 10 dB return loss, which resulted in an 83.6% fractional impedance bandwidth; a maximum gain of 7.3 dBi at 8.625 GHz; optimal radiation efficiency of 89% at 4.5 GHz; strong intensity current flow across the radiator; and stable monopole-like far-field radiation patterns. Finally, a comparison between the scientific results and newly published research has been provided. The antenna’s high-performance simulated and measured results are in a good agreement; hence, they make the proposed antenna an excellent choice for modern smartphones’ connectivity with the sub-6 GHz frequency spectrum of modern fifth-generation (5G) mobile communication application.
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spelling pubmed-99623562023-02-26 A Novel Low-Cost Compact High-Performance Flower-Shaped Radiator Design for Modern Smartphone Applications Dayo, Zaheer Ahmed Aamir, Muhammad Rahman, Ziaur Khoso, Imran A. Lodro, Mir Muhammad Dayo, Shoaib Ahmed Soothar, Permanand Pathan, Muhammad Salman Al-Gburi, Ahmed Jamal Abdullah Memon, Aftab Ahmed Chowdhry, Bhawani Shankar Micromachines (Basel) Article This manuscript examines the design principle and real-world validation of a new miniaturized high-performance flower-shaped radiator (FSR). The antenna prototype consists of an ultracompact square metallic patch of 0.116λ(0) × 0.116λ(0) (λ(0) is the free space wavelength at 3.67 GHz), a rectangular microstrip feed network, and a partial metal ground plane. A novel, effective, and efficient approach based on open circuit loaded stubs is employed to achieve the antenna’s optimal performance features. Rectangular, triangular, and circular disc stubs were added to the simple structure of the square radiator, and hence, the FSR configuration was formed. The proposed antenna was imprinted on a low-cost F4B laminate with low profile thickness of 0.018λ(0), relative permittivity ε(r) = 2.55, and dielectric loss tangent δ = 0.0018. The designed radiator has an overall small size of 0.256λ(0) × 0.354λ(0). The parameter study of multiple variables and their influence on the performance results has been extensively studied. Moreover, the impact of different substrate materials, impedance bandwidths, resonance tuning, and impedance matching has also been analyzed. The proposed antenna model has been designed, simulated, and fabricated. The designed antenna exhibits a wide bandwidth of 5.33 GHz ranging from 3.67 to 9.0 GHz at 10 dB return loss, which resulted in an 83.6% fractional impedance bandwidth; a maximum gain of 7.3 dBi at 8.625 GHz; optimal radiation efficiency of 89% at 4.5 GHz; strong intensity current flow across the radiator; and stable monopole-like far-field radiation patterns. Finally, a comparison between the scientific results and newly published research has been provided. The antenna’s high-performance simulated and measured results are in a good agreement; hence, they make the proposed antenna an excellent choice for modern smartphones’ connectivity with the sub-6 GHz frequency spectrum of modern fifth-generation (5G) mobile communication application. MDPI 2023-02-16 /pmc/articles/PMC9962356/ /pubmed/36838163 http://dx.doi.org/10.3390/mi14020463 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
Dayo, Zaheer Ahmed
Aamir, Muhammad
Rahman, Ziaur
Khoso, Imran A.
Lodro, Mir Muhammad
Dayo, Shoaib Ahmed
Soothar, Permanand
Pathan, Muhammad Salman
Al-Gburi, Ahmed Jamal Abdullah
Memon, Aftab Ahmed
Chowdhry, Bhawani Shankar
A Novel Low-Cost Compact High-Performance Flower-Shaped Radiator Design for Modern Smartphone Applications
title A Novel Low-Cost Compact High-Performance Flower-Shaped Radiator Design for Modern Smartphone Applications
title_full A Novel Low-Cost Compact High-Performance Flower-Shaped Radiator Design for Modern Smartphone Applications
title_fullStr A Novel Low-Cost Compact High-Performance Flower-Shaped Radiator Design for Modern Smartphone Applications
title_full_unstemmed A Novel Low-Cost Compact High-Performance Flower-Shaped Radiator Design for Modern Smartphone Applications
title_short A Novel Low-Cost Compact High-Performance Flower-Shaped Radiator Design for Modern Smartphone Applications
title_sort novel low-cost compact high-performance flower-shaped radiator design for modern smartphone applications
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9962356/
https://www.ncbi.nlm.nih.gov/pubmed/36838163
http://dx.doi.org/10.3390/mi14020463
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