Low-frequency magnetic sensing by magnetoelectric metglas/bidomain LiNbO3 long bars
A. V. Turutin
1, 2
,
João V Vidal
3
,
Ilya V Kubasov
4
,
Yurii N Parkhomenko
4
,
Svetlana P Kobeleva
4
,
Andrei L. Kholkin
5, 6
,
N.A. Sobolev
1, 2
Publication type: Journal Article
Publication date: 2018-04-30
scimago Q1
wos Q2
SJR: 0.650
CiteScore: 6.4
Impact factor: 3.2
ISSN: 00223727, 13616463
Surfaces, Coatings and Films
Electronic, Optical and Magnetic Materials
Condensed Matter Physics
Acoustics and Ultrasonics
Abstract
We present an investigation into the magnetic sensing performance of magnetoelectric bilayered metglas / bidomain LiNbO 3 long thin bars operating in a cantilever or free vibrating regime and under quasi-static and low-frequency resonant conditions. Bidomain single crystals of Y+128 o -cut LiNbO 3 were engineered by an improved diffusion annealing technique with a polarization macrodomain structure of the “head-to-head” and “tail-to-tail” type. Long composite bars with lengths of 30, 40 and 45 mm, as well as with and without attached small tip proof masses, were studied. ME coefficients as large as 550 V/cm∙Oe, corresponding to a con version ratio of 27.5 V/Oe, were obtained under resonance conditions at frequencies of the order of 100 Hz in magnetic bias fields as low as 2 Oe. Equivalent magnetic noise spectral densities down to 120 pT/Hz 1/2 at 10 Hz and to 68 pT/Hz 1/2 at a resonance frequency as low as 81 Hz were obtained for the 45 mm long cantilever bar with a tip proof mass of 1.2 g. In the same composite without any added mass the magnetic noise was shown to be as low as 37 pT/Hz 1/2 at a resonance frequency of 244 Hz and 1.2 pT/Hz 1/2 at 1335 Hz in a fixed cantilever and free vibrating regimes, respectively. A simple unidimensional dynamic model predicted the possibility to drop the low-frequency magnetic noise by more than one order of magnitude in case all the extrinsic noise sources are suppressed, especially those related to external vibrations, and the thickness ratio of the magnetic-to-piezoelectric phases is optimized. Thus, we have shown that such systems might find use in simple and sensitive room-temperature low-frequency magnetic sensors, e.g., for biomedical applications.
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Turutin A. V. et al. Low-frequency magnetic sensing by magnetoelectric metglas/bidomain LiNbO3 long bars // Journal Physics D: Applied Physics. 2018. Vol. 51. No. 21. p. 214001.
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Turutin A. V., Vidal J. V., Kubasov I. V., Kislyuk A. M., Malinkovich M. D., Parkhomenko Y. N., Kobeleva S. P., Kholkin A. L., Sobolev N. Low-frequency magnetic sensing by magnetoelectric metglas/bidomain LiNbO3 long bars // Journal Physics D: Applied Physics. 2018. Vol. 51. No. 21. p. 214001.
Cite this
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TY - JOUR
DO - 10.1088/1361-6463/aabda4
UR - https://doi.org/10.1088/1361-6463/aabda4
TI - Low-frequency magnetic sensing by magnetoelectric metglas/bidomain LiNbO3 long bars
T2 - Journal Physics D: Applied Physics
AU - Turutin, A. V.
AU - Vidal, João V
AU - Kubasov, Ilya V
AU - Kislyuk, Alexander M
AU - Malinkovich, Mikhail D
AU - Parkhomenko, Yurii N
AU - Kobeleva, Svetlana P
AU - Kholkin, Andrei L.
AU - Sobolev, N.A.
PY - 2018
DA - 2018/04/30
PB - IOP Publishing
SP - 214001
IS - 21
VL - 51
SN - 0022-3727
SN - 1361-6463
ER -
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BibTex (up to 50 authors)
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@article{2018_Turutin,
author = {A. V. Turutin and João V Vidal and Ilya V Kubasov and Alexander M Kislyuk and Mikhail D Malinkovich and Yurii N Parkhomenko and Svetlana P Kobeleva and Andrei L. Kholkin and N.A. Sobolev},
title = {Low-frequency magnetic sensing by magnetoelectric metglas/bidomain LiNbO3 long bars},
journal = {Journal Physics D: Applied Physics},
year = {2018},
volume = {51},
publisher = {IOP Publishing},
month = {apr},
url = {https://doi.org/10.1088/1361-6463/aabda4},
number = {21},
pages = {214001},
doi = {10.1088/1361-6463/aabda4}
}
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MLA
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Turutin, A. V., et al. “Low-frequency magnetic sensing by magnetoelectric metglas/bidomain LiNbO3 long bars.” Journal Physics D: Applied Physics, vol. 51, no. 21, Apr. 2018, p. 214001. https://doi.org/10.1088/1361-6463/aabda4.