,
том 67
,
издание 6
,
страницы 1219-1229
Dual Vibration and Magnetic Energy Harvesting With Bidomain LiNbO3-Based Composite
João V Vidal
1
,
A. V. Turutin
2
,
Ilya V Kubasov
2
,
Dmitry Kiselev
3
,
Svetlana P Kobeleva
4
,
N.A. Sobolev
5
,
Тип публикации: Journal Article
Дата публикации: 2020-06-01
scimago Q1
wos Q1
БС1
SJR: 0.814
CiteScore: 8.3
Impact factor: 3.7
ISSN: 08853010, 15258955
PubMed ID:
31985416
Electrical and Electronic Engineering
Instrumentation
Acoustics and Ultrasonics
Краткое описание
With the recent thriving of low-power electronic microdevices and sensors, the development of components capable of scavenging environmental energy has become imperative. In this article, we studied bidomain congruent LiNbO
3
(LN) single crystals combined with magnetic materials for dual, mechanical, and magnetic energy harvesting applications. A simple magneto-mechano-electric composite cantilever, with a trilayered long-bar bidomain LN/spring-steel/metglas structure and a large tip proof permanent magnet, was fabricated. Its vibration and magnetic energy harvesting capabilities were tested while trying to optimize its resonant characteristics, load impedance, and tip proof mass. The vibration measurements yielded a peak open-circuit voltage of 2.42 kV/g, a short-circuit current of 60.1 μA/g, and an average power of up to 35.6 mW/g
2
, corresponding to a power density of 6.9 mW/(cm
3
· g
2
), at a low resonance frequency of 29.22 Hz and with an optimal load of 40 MΩ. The magnetic response revealed a resonant peak open-circuit voltage of 90.9 V/Oe and an average power of up to 49.9 μW/Oe
2
, corresponding to a relatively large magnetoelectric coefficient of 1.82 kV/(cm·Oe) and a power density of 9.7 μW/(cm
3
· Oe
2
). We thus developed a system that is, in principle, able to scavenge electrical power simultaneously from low-level ambient mechanical and magnetic sources to feed low-power electronic devices.
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ГОСТ
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Vidal J. V. et al. Dual Vibration and Magnetic Energy Harvesting With Bidomain LiNbO3-Based Composite // IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control. 2020. Vol. 67. No. 6. pp. 1219-1229.
ГОСТ со всеми авторами (до 50)
Скопировать
Vidal J. V., Turutin A. V., Kubasov I. V., Kislyuk A. M., Kiselev D., Malinkovich M. D., Parkhomenko Y. N., Kobeleva S. P., Sobolev N., Kholkin A. L. Dual Vibration and Magnetic Energy Harvesting With Bidomain LiNbO3-Based Composite // IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control. 2020. Vol. 67. No. 6. pp. 1219-1229.
Цитировать
RIS
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TY - JOUR
DO - 10.1109/TUFFC.2020.2967842
UR - https://doi.org/10.1109/TUFFC.2020.2967842
TI - Dual Vibration and Magnetic Energy Harvesting With Bidomain LiNbO3-Based Composite
T2 - IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control
AU - Vidal, João V
AU - Turutin, A. V.
AU - Kubasov, Ilya V
AU - Kislyuk, Alexander M
AU - Kiselev, Dmitry
AU - Malinkovich, Mikhail D
AU - Parkhomenko, Yu. N.
AU - Kobeleva, Svetlana P
AU - Sobolev, N.A.
AU - Kholkin, Andrei L.
PY - 2020
DA - 2020/06/01
PB - Institute of Electrical and Electronics Engineers (IEEE)
SP - 1219-1229
IS - 6
VL - 67
PMID - 31985416
SN - 0885-3010
SN - 1525-8955
ER -
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BibTex (до 50 авторов)
Скопировать
@article{2020_Vidal,
author = {João V Vidal and A. V. Turutin and Ilya V Kubasov and Alexander M Kislyuk and Dmitry Kiselev and Mikhail D Malinkovich and Yu. N. Parkhomenko and Svetlana P Kobeleva and N.A. Sobolev and Andrei L. Kholkin},
title = {Dual Vibration and Magnetic Energy Harvesting With Bidomain LiNbO3-Based Composite},
journal = {IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control},
year = {2020},
volume = {67},
publisher = {Institute of Electrical and Electronics Engineers (IEEE)},
month = {jun},
url = {https://doi.org/10.1109/TUFFC.2020.2967842},
number = {6},
pages = {1219--1229},
doi = {10.1109/TUFFC.2020.2967842}
}
Цитировать
MLA
Скопировать
Vidal, João V., et al. “Dual Vibration and Magnetic Energy Harvesting With Bidomain LiNbO3-Based Composite.” IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control, vol. 67, no. 6, Jun. 2020, pp. 1219-1229. https://doi.org/10.1109/TUFFC.2020.2967842.
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