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Compact Antenna in 3D Configuration for Rectenna Wireless Power Transmission Applications

This work presents methods for miniaturizing and characterizing a modified dipole antenna dedicated to the implementation of wireless power transmission systems. The antenna size should respect the planar dimensions of 60 mm × 30 mm to be integrated with small IoT devices such as a Bluetooth Lower E...

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Autores principales: Sidibe, Alassane, Takacs, Alexandru, Loubet, Gaël, Dragomirescu, Daniela
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8124383/
https://www.ncbi.nlm.nih.gov/pubmed/34064497
http://dx.doi.org/10.3390/s21093193
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author Sidibe, Alassane
Takacs, Alexandru
Loubet, Gaël
Dragomirescu, Daniela
author_facet Sidibe, Alassane
Takacs, Alexandru
Loubet, Gaël
Dragomirescu, Daniela
author_sort Sidibe, Alassane
collection PubMed
description This work presents methods for miniaturizing and characterizing a modified dipole antenna dedicated to the implementation of wireless power transmission systems. The antenna size should respect the planar dimensions of 60 mm × 30 mm to be integrated with small IoT devices such as a Bluetooth Lower Energy Sensing Node. The provided design is based on a folded short-circuited dipole antenna, also named a T-match antenna. Faced with the difficulty of reducing the physical dimensions of the antenna, we propose a 3D configuration by adding vertical metallic arms on the edges of the antenna. The adopted 3D design has an overall size of 56 mm × 32 mm × 10 mm at 868 MHz. Three antenna-feeding techniques were evaluated to characterize this antenna. They consist of soldering a U.FL connector on the input port; vertically connecting a tapered balun to the antenna; and integrating a microstrip transition to the layer of the antenna. The experimental results of the selected feeding techniques show good agreements and the antenna has a maximum gain of +1.54 dBi in the elevation plane (E-plane). In addition, a final modification was operated to the designed antenna to have a more compact structure with a size of 40 mm × 30 mm × 10 mm at 868 MHz. Such modification reduces the radiation surface of the antenna and so the antenna gain and bandwidth. This antenna can achieve a maximum gain of +1.1 dBi in the E-plane. The two antennas proposed in this paper were then associated with a rectifier to perform energy harvesting for powering Bluetooth Low Energy wireless sensors. The measured RF-DC (radiofrequency to direct current) conversion efficiency is 73.88% (first design) and 60.21% (second design) with an illuminating power density of 3.1 µW/cm(2) at 868 MHz with a 10 kΩ load resistor.
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spelling pubmed-81243832021-05-17 Compact Antenna in 3D Configuration for Rectenna Wireless Power Transmission Applications Sidibe, Alassane Takacs, Alexandru Loubet, Gaël Dragomirescu, Daniela Sensors (Basel) Communication This work presents methods for miniaturizing and characterizing a modified dipole antenna dedicated to the implementation of wireless power transmission systems. The antenna size should respect the planar dimensions of 60 mm × 30 mm to be integrated with small IoT devices such as a Bluetooth Lower Energy Sensing Node. The provided design is based on a folded short-circuited dipole antenna, also named a T-match antenna. Faced with the difficulty of reducing the physical dimensions of the antenna, we propose a 3D configuration by adding vertical metallic arms on the edges of the antenna. The adopted 3D design has an overall size of 56 mm × 32 mm × 10 mm at 868 MHz. Three antenna-feeding techniques were evaluated to characterize this antenna. They consist of soldering a U.FL connector on the input port; vertically connecting a tapered balun to the antenna; and integrating a microstrip transition to the layer of the antenna. The experimental results of the selected feeding techniques show good agreements and the antenna has a maximum gain of +1.54 dBi in the elevation plane (E-plane). In addition, a final modification was operated to the designed antenna to have a more compact structure with a size of 40 mm × 30 mm × 10 mm at 868 MHz. Such modification reduces the radiation surface of the antenna and so the antenna gain and bandwidth. This antenna can achieve a maximum gain of +1.1 dBi in the E-plane. The two antennas proposed in this paper were then associated with a rectifier to perform energy harvesting for powering Bluetooth Low Energy wireless sensors. The measured RF-DC (radiofrequency to direct current) conversion efficiency is 73.88% (first design) and 60.21% (second design) with an illuminating power density of 3.1 µW/cm(2) at 868 MHz with a 10 kΩ load resistor. MDPI 2021-05-04 /pmc/articles/PMC8124383/ /pubmed/34064497 http://dx.doi.org/10.3390/s21093193 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 Communication
Sidibe, Alassane
Takacs, Alexandru
Loubet, Gaël
Dragomirescu, Daniela
Compact Antenna in 3D Configuration for Rectenna Wireless Power Transmission Applications
title Compact Antenna in 3D Configuration for Rectenna Wireless Power Transmission Applications
title_full Compact Antenna in 3D Configuration for Rectenna Wireless Power Transmission Applications
title_fullStr Compact Antenna in 3D Configuration for Rectenna Wireless Power Transmission Applications
title_full_unstemmed Compact Antenna in 3D Configuration for Rectenna Wireless Power Transmission Applications
title_short Compact Antenna in 3D Configuration for Rectenna Wireless Power Transmission Applications
title_sort compact antenna in 3d configuration for rectenna wireless power transmission applications
topic Communication
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8124383/
https://www.ncbi.nlm.nih.gov/pubmed/34064497
http://dx.doi.org/10.3390/s21093193
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AT dragomirescudaniela compactantennain3dconfigurationforrectennawirelesspowertransmissionapplications