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Flexible Wearable Composite Antennas for Global Wireless Communication Systems

Although wearable antennas have made great progress in recent years, how to design high-performance antennas suitable for most wireless communication systems has always been the direction of RF workers. In this paper, a new approach for the design and manufacture of a compact, low-profile, broadband...

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Autores principales: Zhang, Rui, Liu, Jingwen, Wang, Yangyang, Luo, Zhongbao, Zhang, Binzhen, Duan, Junping
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8468086/
https://www.ncbi.nlm.nih.gov/pubmed/34577287
http://dx.doi.org/10.3390/s21186083
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author Zhang, Rui
Liu, Jingwen
Wang, Yangyang
Luo, Zhongbao
Zhang, Binzhen
Duan, Junping
author_facet Zhang, Rui
Liu, Jingwen
Wang, Yangyang
Luo, Zhongbao
Zhang, Binzhen
Duan, Junping
author_sort Zhang, Rui
collection PubMed
description Although wearable antennas have made great progress in recent years, how to design high-performance antennas suitable for most wireless communication systems has always been the direction of RF workers. In this paper, a new approach for the design and manufacture of a compact, low-profile, broadband, omni-directional and conformal antenna is presented, including the use of a customized flexible dielectric substrate with high permittivity and low loss tangent to realize the compact sensing antenna. Poly-di-methyl-siloxane (PDMS) is doped a certain proportion of aluminum trioxide (Al(2)O(3)) and Poly-tetra-fluoro-ethylene (PTFE) to investigate the effect of dielectric constant and loss tangent. Through a large number of comparative experiments, data on different doping ratios show that the new doped materials are flexible enough to increase dielectric constant, reduce loss tangent and significantly improve the load resistance capacity. The antenna is configured with a multisection microstrip stepped impedance resonator structure (SIR) to expand the bandwidth. The measured reflection return loss (S11) showed an operating frequency band from 0.99 to 9.41 GHz, with a band ratio of 146%. The antenna covers two important frequency bands, 1.71–2.484 GHz (personal communication system and wireless body area network (WBAN) systems) and 5.15–5.825 GHz (wireless local area network-WLAN)]. It also passed the SAR test for human safety. Therefore, the proposed antenna offers a good chance for full coverage of WLAN and large-scale development of wearable products. It also has potential applications in communication systems, wireless energy acquisition systems and other wireless systems.
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spelling pubmed-84680862021-09-27 Flexible Wearable Composite Antennas for Global Wireless Communication Systems Zhang, Rui Liu, Jingwen Wang, Yangyang Luo, Zhongbao Zhang, Binzhen Duan, Junping Sensors (Basel) Article Although wearable antennas have made great progress in recent years, how to design high-performance antennas suitable for most wireless communication systems has always been the direction of RF workers. In this paper, a new approach for the design and manufacture of a compact, low-profile, broadband, omni-directional and conformal antenna is presented, including the use of a customized flexible dielectric substrate with high permittivity and low loss tangent to realize the compact sensing antenna. Poly-di-methyl-siloxane (PDMS) is doped a certain proportion of aluminum trioxide (Al(2)O(3)) and Poly-tetra-fluoro-ethylene (PTFE) to investigate the effect of dielectric constant and loss tangent. Through a large number of comparative experiments, data on different doping ratios show that the new doped materials are flexible enough to increase dielectric constant, reduce loss tangent and significantly improve the load resistance capacity. The antenna is configured with a multisection microstrip stepped impedance resonator structure (SIR) to expand the bandwidth. The measured reflection return loss (S11) showed an operating frequency band from 0.99 to 9.41 GHz, with a band ratio of 146%. The antenna covers two important frequency bands, 1.71–2.484 GHz (personal communication system and wireless body area network (WBAN) systems) and 5.15–5.825 GHz (wireless local area network-WLAN)]. It also passed the SAR test for human safety. Therefore, the proposed antenna offers a good chance for full coverage of WLAN and large-scale development of wearable products. It also has potential applications in communication systems, wireless energy acquisition systems and other wireless systems. MDPI 2021-09-10 /pmc/articles/PMC8468086/ /pubmed/34577287 http://dx.doi.org/10.3390/s21186083 Text en © 2021 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
Zhang, Rui
Liu, Jingwen
Wang, Yangyang
Luo, Zhongbao
Zhang, Binzhen
Duan, Junping
Flexible Wearable Composite Antennas for Global Wireless Communication Systems
title Flexible Wearable Composite Antennas for Global Wireless Communication Systems
title_full Flexible Wearable Composite Antennas for Global Wireless Communication Systems
title_fullStr Flexible Wearable Composite Antennas for Global Wireless Communication Systems
title_full_unstemmed Flexible Wearable Composite Antennas for Global Wireless Communication Systems
title_short Flexible Wearable Composite Antennas for Global Wireless Communication Systems
title_sort flexible wearable composite antennas for global wireless communication systems
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8468086/
https://www.ncbi.nlm.nih.gov/pubmed/34577287
http://dx.doi.org/10.3390/s21186083
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AT luozhongbao flexiblewearablecompositeantennasforglobalwirelesscommunicationsystems
AT zhangbinzhen flexiblewearablecompositeantennasforglobalwirelesscommunicationsystems
AT duanjunping flexiblewearablecompositeantennasforglobalwirelesscommunicationsystems