Cargando…

A Low Frequency Mechanical Transmitter Based on Magnetoelectric Heterostructures Operated at Their Resonance Frequency

Magneto-elasto-electric (ME) coupling heterostructures, consisting of piezoelectric layers bonded to magnetostrictive ones, provide for a new class of electromagnetic emitter materials on which a portable (area ~ 16 cm(2)) very low frequency (VLF) transmitter technology could be developed. The propo...

Descripción completa

Detalles Bibliográficos
Autores principales: Xu, Junran, Leung, Chung Ming, Zhuang, Xin, Li, Jiefang, Bhardwaj, Shubhendu, Volakis, John, Viehland, Dwight
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6412229/
https://www.ncbi.nlm.nih.gov/pubmed/30791378
http://dx.doi.org/10.3390/s19040853
_version_ 1783402556745056256
author Xu, Junran
Leung, Chung Ming
Zhuang, Xin
Li, Jiefang
Bhardwaj, Shubhendu
Volakis, John
Viehland, Dwight
author_facet Xu, Junran
Leung, Chung Ming
Zhuang, Xin
Li, Jiefang
Bhardwaj, Shubhendu
Volakis, John
Viehland, Dwight
author_sort Xu, Junran
collection PubMed
description Magneto-elasto-electric (ME) coupling heterostructures, consisting of piezoelectric layers bonded to magnetostrictive ones, provide for a new class of electromagnetic emitter materials on which a portable (area ~ 16 cm(2)) very low frequency (VLF) transmitter technology could be developed. The proposed ME transmitter functions as follows: (a) a piezoelectric layer is first driven by alternating current AC electric voltage at its electromechanical resonance (EMR) frequency, (b) subsequently, this EMR excites the magnetostrictive layers, giving rise to magnetization change, (c) in turn, the magnetization oscillations result in oscillating magnetic fields. By Maxwell’s equations, a corresponding electric field, is also generated, leading to electromagnetic field propagation. Our hybrid piezoelectric-magnetostrictive transformer can take an input electric voltage that may include modulation-signal over a carrier frequency and transmit via oscillating magnetic field or flux change. The prototype measurements reveal a magnetic dipole like near field, demonstrating its transmission capabilities. Furthermore, the developed prototype showed a 10(4) times higher efficiency over a small-circular loop of the same area, exhibiting its superiority over the class of traditional small antennas.
format Online
Article
Text
id pubmed-6412229
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-64122292019-04-03 A Low Frequency Mechanical Transmitter Based on Magnetoelectric Heterostructures Operated at Their Resonance Frequency Xu, Junran Leung, Chung Ming Zhuang, Xin Li, Jiefang Bhardwaj, Shubhendu Volakis, John Viehland, Dwight Sensors (Basel) Article Magneto-elasto-electric (ME) coupling heterostructures, consisting of piezoelectric layers bonded to magnetostrictive ones, provide for a new class of electromagnetic emitter materials on which a portable (area ~ 16 cm(2)) very low frequency (VLF) transmitter technology could be developed. The proposed ME transmitter functions as follows: (a) a piezoelectric layer is first driven by alternating current AC electric voltage at its electromechanical resonance (EMR) frequency, (b) subsequently, this EMR excites the magnetostrictive layers, giving rise to magnetization change, (c) in turn, the magnetization oscillations result in oscillating magnetic fields. By Maxwell’s equations, a corresponding electric field, is also generated, leading to electromagnetic field propagation. Our hybrid piezoelectric-magnetostrictive transformer can take an input electric voltage that may include modulation-signal over a carrier frequency and transmit via oscillating magnetic field or flux change. The prototype measurements reveal a magnetic dipole like near field, demonstrating its transmission capabilities. Furthermore, the developed prototype showed a 10(4) times higher efficiency over a small-circular loop of the same area, exhibiting its superiority over the class of traditional small antennas. MDPI 2019-02-19 /pmc/articles/PMC6412229/ /pubmed/30791378 http://dx.doi.org/10.3390/s19040853 Text en © 2019 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 Article
Xu, Junran
Leung, Chung Ming
Zhuang, Xin
Li, Jiefang
Bhardwaj, Shubhendu
Volakis, John
Viehland, Dwight
A Low Frequency Mechanical Transmitter Based on Magnetoelectric Heterostructures Operated at Their Resonance Frequency
title A Low Frequency Mechanical Transmitter Based on Magnetoelectric Heterostructures Operated at Their Resonance Frequency
title_full A Low Frequency Mechanical Transmitter Based on Magnetoelectric Heterostructures Operated at Their Resonance Frequency
title_fullStr A Low Frequency Mechanical Transmitter Based on Magnetoelectric Heterostructures Operated at Their Resonance Frequency
title_full_unstemmed A Low Frequency Mechanical Transmitter Based on Magnetoelectric Heterostructures Operated at Their Resonance Frequency
title_short A Low Frequency Mechanical Transmitter Based on Magnetoelectric Heterostructures Operated at Their Resonance Frequency
title_sort low frequency mechanical transmitter based on magnetoelectric heterostructures operated at their resonance frequency
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6412229/
https://www.ncbi.nlm.nih.gov/pubmed/30791378
http://dx.doi.org/10.3390/s19040853
work_keys_str_mv AT xujunran alowfrequencymechanicaltransmitterbasedonmagnetoelectricheterostructuresoperatedattheirresonancefrequency
AT leungchungming alowfrequencymechanicaltransmitterbasedonmagnetoelectricheterostructuresoperatedattheirresonancefrequency
AT zhuangxin alowfrequencymechanicaltransmitterbasedonmagnetoelectricheterostructuresoperatedattheirresonancefrequency
AT lijiefang alowfrequencymechanicaltransmitterbasedonmagnetoelectricheterostructuresoperatedattheirresonancefrequency
AT bhardwajshubhendu alowfrequencymechanicaltransmitterbasedonmagnetoelectricheterostructuresoperatedattheirresonancefrequency
AT volakisjohn alowfrequencymechanicaltransmitterbasedonmagnetoelectricheterostructuresoperatedattheirresonancefrequency
AT viehlanddwight alowfrequencymechanicaltransmitterbasedonmagnetoelectricheterostructuresoperatedattheirresonancefrequency
AT xujunran lowfrequencymechanicaltransmitterbasedonmagnetoelectricheterostructuresoperatedattheirresonancefrequency
AT leungchungming lowfrequencymechanicaltransmitterbasedonmagnetoelectricheterostructuresoperatedattheirresonancefrequency
AT zhuangxin lowfrequencymechanicaltransmitterbasedonmagnetoelectricheterostructuresoperatedattheirresonancefrequency
AT lijiefang lowfrequencymechanicaltransmitterbasedonmagnetoelectricheterostructuresoperatedattheirresonancefrequency
AT bhardwajshubhendu lowfrequencymechanicaltransmitterbasedonmagnetoelectricheterostructuresoperatedattheirresonancefrequency
AT volakisjohn lowfrequencymechanicaltransmitterbasedonmagnetoelectricheterostructuresoperatedattheirresonancefrequency
AT viehlanddwight lowfrequencymechanicaltransmitterbasedonmagnetoelectricheterostructuresoperatedattheirresonancefrequency