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The Design and Manufacturing Process of an Electrolyte-Free Liquid Metal Frequency-Reconfigurable Antenna

This communication provides an integrated process route of smelting gallium-based liquid metal (GBLM) in a high vacuum, and injecting GBLM into the antenna channel in high-pressure protective gas, which avoids the oxidation of GBLM during smelting and filling. Then, a frequency-reconfigurable antenn...

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Autores principales: Qin, Peng, Wang, Lei, Liu, Tian-Ying, Wang, Qian-Yu, Fu, Jun-Heng, Huang, Guan-Long, Gui, Lin, Liu, Jing, Deng, Zhong-Shan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7961392/
https://www.ncbi.nlm.nih.gov/pubmed/33807518
http://dx.doi.org/10.3390/s21051793
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author Qin, Peng
Wang, Lei
Liu, Tian-Ying
Wang, Qian-Yu
Fu, Jun-Heng
Huang, Guan-Long
Gui, Lin
Liu, Jing
Deng, Zhong-Shan
author_facet Qin, Peng
Wang, Lei
Liu, Tian-Ying
Wang, Qian-Yu
Fu, Jun-Heng
Huang, Guan-Long
Gui, Lin
Liu, Jing
Deng, Zhong-Shan
author_sort Qin, Peng
collection PubMed
description This communication provides an integrated process route of smelting gallium-based liquid metal (GBLM) in a high vacuum, and injecting GBLM into the antenna channel in high-pressure protective gas, which avoids the oxidation of GBLM during smelting and filling. Then, a frequency-reconfigurable antenna, utilizing the thermal expansion characteristic of GBLM, is proposed. To drive GBLM into an air-proof space, the thermal expansion characteristics of GBLM are required. The dimensions of the radiating element of the liquid metal antenna can be adjusted at different temperatures, resulting in the reconfigurability of the operating frequency. To validate the proposed concept, an L-band antenna prototype was fabricated and measured. Experimental results demonstrate that the GBLM in the antenna was well filled, and the GBLM was not oxidized. Due to the GBLM being in an air-proof channel, the designed liquid metal antenna without electrolytes could be used in an air environment for a long time. The antenna is able to achieve an effective bandwidth of over 1.25–2.00 GHz between 25 °C and 100 °C. The maximum radiation efficiency and gain in the tunable range are 94% and 2.9 dBi, respectively. The designed antenna also provides a new approach to the fabrication of a temperature sensor that detects temperature in some situations that are challenging for conventional temperature sensing technology.
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spelling pubmed-79613922021-03-17 The Design and Manufacturing Process of an Electrolyte-Free Liquid Metal Frequency-Reconfigurable Antenna Qin, Peng Wang, Lei Liu, Tian-Ying Wang, Qian-Yu Fu, Jun-Heng Huang, Guan-Long Gui, Lin Liu, Jing Deng, Zhong-Shan Sensors (Basel) Communication This communication provides an integrated process route of smelting gallium-based liquid metal (GBLM) in a high vacuum, and injecting GBLM into the antenna channel in high-pressure protective gas, which avoids the oxidation of GBLM during smelting and filling. Then, a frequency-reconfigurable antenna, utilizing the thermal expansion characteristic of GBLM, is proposed. To drive GBLM into an air-proof space, the thermal expansion characteristics of GBLM are required. The dimensions of the radiating element of the liquid metal antenna can be adjusted at different temperatures, resulting in the reconfigurability of the operating frequency. To validate the proposed concept, an L-band antenna prototype was fabricated and measured. Experimental results demonstrate that the GBLM in the antenna was well filled, and the GBLM was not oxidized. Due to the GBLM being in an air-proof channel, the designed liquid metal antenna without electrolytes could be used in an air environment for a long time. The antenna is able to achieve an effective bandwidth of over 1.25–2.00 GHz between 25 °C and 100 °C. The maximum radiation efficiency and gain in the tunable range are 94% and 2.9 dBi, respectively. The designed antenna also provides a new approach to the fabrication of a temperature sensor that detects temperature in some situations that are challenging for conventional temperature sensing technology. MDPI 2021-03-05 /pmc/articles/PMC7961392/ /pubmed/33807518 http://dx.doi.org/10.3390/s21051793 Text en © 2021 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Communication
Qin, Peng
Wang, Lei
Liu, Tian-Ying
Wang, Qian-Yu
Fu, Jun-Heng
Huang, Guan-Long
Gui, Lin
Liu, Jing
Deng, Zhong-Shan
The Design and Manufacturing Process of an Electrolyte-Free Liquid Metal Frequency-Reconfigurable Antenna
title The Design and Manufacturing Process of an Electrolyte-Free Liquid Metal Frequency-Reconfigurable Antenna
title_full The Design and Manufacturing Process of an Electrolyte-Free Liquid Metal Frequency-Reconfigurable Antenna
title_fullStr The Design and Manufacturing Process of an Electrolyte-Free Liquid Metal Frequency-Reconfigurable Antenna
title_full_unstemmed The Design and Manufacturing Process of an Electrolyte-Free Liquid Metal Frequency-Reconfigurable Antenna
title_short The Design and Manufacturing Process of an Electrolyte-Free Liquid Metal Frequency-Reconfigurable Antenna
title_sort design and manufacturing process of an electrolyte-free liquid metal frequency-reconfigurable antenna
topic Communication
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7961392/
https://www.ncbi.nlm.nih.gov/pubmed/33807518
http://dx.doi.org/10.3390/s21051793
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