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Magnetoelectric Effect in Amorphous Ferromagnetic FeCoSiB/Langatate Monolithic Heterostructure for Magnetic Field Sensing

This paper investigates the possibilities of creating magnetic field sensors using the direct magnetoelectric (ME) effect in a monolithic heterostructure of amorphous ferromagnetic material/langatate. Layers of 1.5 μm-thick FeCoSiB amorphous ferromagnetic material were deposited on the surface of th...

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Autores principales: Fetisov, L. Y., Dzhaparidze, M. V., Savelev, D. V., Burdin, D. A., Turutin, A. V., Kuts, V. V., Milovich, F. O., Temirov, A. A., Parkhomenko, Y. N., Fetisov, Y. K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10181502/
https://www.ncbi.nlm.nih.gov/pubmed/37177727
http://dx.doi.org/10.3390/s23094523
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author Fetisov, L. Y.
Dzhaparidze, M. V.
Savelev, D. V.
Burdin, D. A.
Turutin, A. V.
Kuts, V. V.
Milovich, F. O.
Temirov, A. A.
Parkhomenko, Y. N.
Fetisov, Y. K.
author_facet Fetisov, L. Y.
Dzhaparidze, M. V.
Savelev, D. V.
Burdin, D. A.
Turutin, A. V.
Kuts, V. V.
Milovich, F. O.
Temirov, A. A.
Parkhomenko, Y. N.
Fetisov, Y. K.
author_sort Fetisov, L. Y.
collection PubMed
description This paper investigates the possibilities of creating magnetic field sensors using the direct magnetoelectric (ME) effect in a monolithic heterostructure of amorphous ferromagnetic material/langatate. Layers of 1.5 μm-thick FeCoSiB amorphous ferromagnetic material were deposited on the surface of the langatate single crystal using magnetron sputtering. At the resonance frequency of the structure, 107 kHz, the ME coefficient of linear conversion of 76.6 V/(Oe∙cm) was obtained. Furthermore, the nonlinear ME effect of voltage harmonic generation was observed with an increasing excitation magnetic field. The efficiency of generating the second and third harmonics was about 6.3 V/(Oe(2)∙cm) and 1.8 V/(Oe(3)∙cm), respectively. A hysteresis dependence of ME voltage on a permanent magnetic field was observed due to the presence of α-Fe iron crystalline phases in the magnetic layer. At the resonance frequency, the monolithic heterostructure had a sensitivity to the AC magnetic field of 4.6 V/Oe, a minimum detectable magnetic field of ~70 pT, and a low level of magnetic noise of 0.36 pT/Hz(1/2), which allows it to be used in ME magnetic field sensors.
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spelling pubmed-101815022023-05-13 Magnetoelectric Effect in Amorphous Ferromagnetic FeCoSiB/Langatate Monolithic Heterostructure for Magnetic Field Sensing Fetisov, L. Y. Dzhaparidze, M. V. Savelev, D. V. Burdin, D. A. Turutin, A. V. Kuts, V. V. Milovich, F. O. Temirov, A. A. Parkhomenko, Y. N. Fetisov, Y. K. Sensors (Basel) Article This paper investigates the possibilities of creating magnetic field sensors using the direct magnetoelectric (ME) effect in a monolithic heterostructure of amorphous ferromagnetic material/langatate. Layers of 1.5 μm-thick FeCoSiB amorphous ferromagnetic material were deposited on the surface of the langatate single crystal using magnetron sputtering. At the resonance frequency of the structure, 107 kHz, the ME coefficient of linear conversion of 76.6 V/(Oe∙cm) was obtained. Furthermore, the nonlinear ME effect of voltage harmonic generation was observed with an increasing excitation magnetic field. The efficiency of generating the second and third harmonics was about 6.3 V/(Oe(2)∙cm) and 1.8 V/(Oe(3)∙cm), respectively. A hysteresis dependence of ME voltage on a permanent magnetic field was observed due to the presence of α-Fe iron crystalline phases in the magnetic layer. At the resonance frequency, the monolithic heterostructure had a sensitivity to the AC magnetic field of 4.6 V/Oe, a minimum detectable magnetic field of ~70 pT, and a low level of magnetic noise of 0.36 pT/Hz(1/2), which allows it to be used in ME magnetic field sensors. MDPI 2023-05-06 /pmc/articles/PMC10181502/ /pubmed/37177727 http://dx.doi.org/10.3390/s23094523 Text en © 2023 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 Article
Fetisov, L. Y.
Dzhaparidze, M. V.
Savelev, D. V.
Burdin, D. A.
Turutin, A. V.
Kuts, V. V.
Milovich, F. O.
Temirov, A. A.
Parkhomenko, Y. N.
Fetisov, Y. K.
Magnetoelectric Effect in Amorphous Ferromagnetic FeCoSiB/Langatate Monolithic Heterostructure for Magnetic Field Sensing
title Magnetoelectric Effect in Amorphous Ferromagnetic FeCoSiB/Langatate Monolithic Heterostructure for Magnetic Field Sensing
title_full Magnetoelectric Effect in Amorphous Ferromagnetic FeCoSiB/Langatate Monolithic Heterostructure for Magnetic Field Sensing
title_fullStr Magnetoelectric Effect in Amorphous Ferromagnetic FeCoSiB/Langatate Monolithic Heterostructure for Magnetic Field Sensing
title_full_unstemmed Magnetoelectric Effect in Amorphous Ferromagnetic FeCoSiB/Langatate Monolithic Heterostructure for Magnetic Field Sensing
title_short Magnetoelectric Effect in Amorphous Ferromagnetic FeCoSiB/Langatate Monolithic Heterostructure for Magnetic Field Sensing
title_sort magnetoelectric effect in amorphous ferromagnetic fecosib/langatate monolithic heterostructure for magnetic field sensing
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10181502/
https://www.ncbi.nlm.nih.gov/pubmed/37177727
http://dx.doi.org/10.3390/s23094523
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