Ferromagnetic resonance in Fe1–xCoxFe2O4 nanoparticles precipitated from diethylene glycol

Subject and Purpose. One of the ways to gain in the efficiency of the hyperthermia technique is through the synthesis of new magnetic nanomaterials offering high coercive force without affecting biocompatibility. A proven technology is the doping of biocompatible materials, such as Fe3O4, with atoms...

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Main Authors: A.S. Vakula, О.А. Kravchuk, S.I. Tarapov, A.G. Belous
Format: Article
Language:English
Published: Akademperiodyka 2020-09-01
Series:Радиофизика и электроника
Subjects:
Online Access:http://re-journal.org.ua/sites/default/files/file_attach/2020-3/8.pdf
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author A.S. Vakula
О.А. Kravchuk
S.I. Tarapov
A.G. Belous
author_facet A.S. Vakula
О.А. Kravchuk
S.I. Tarapov
A.G. Belous
author_sort A.S. Vakula
collection DOAJ
description Subject and Purpose. One of the ways to gain in the efficiency of the hyperthermia technique is through the synthesis of new magnetic nanomaterials offering high coercive force without affecting biocompatibility. A proven technology is the doping of biocompatible materials, such as Fe3O4, with atoms of highly coercive substances, such as Co atoms. Despite it has been the theme of much investigation, magnetic state of such nanoparticles is still not completely understood. The present study is devoted to the magnetic and magnetic resonance properties of Fe1–xCoxFe2O4 nanoparticles synthesized by the precipitation from diethylene glycol at two, T = 200 °C and 500 °C, temperatures. The purpose is to study magnetic and magnetic resonance properties of Fe1-xCoxFe2O4 nanoparticles at various concentrations x. Method and Methodology. The magnetometric method and the electron spin resonance method were employed to obtain, correspondingly, magnetic hysteresis loops of magnetic nanoparticles and ferromagnetic resonance (FMR) spectra in the frequency band f = 8…20 GHz at the temperature T = 294 K. Transmission electron microscopy was used for nanoparticle observations. Results. The analysis of the measuring results has shown that among Fe1–xCoxFe2O4 nanoparticle samples with concentrations x = 0.0, 0.5, and 1.0, the total magnetic anisotropy field at x = 0.5 is the largest of the three because its crystalline anisotropy field is the largest compared to x = 0.0 and 1.0. Conclusion. The presented results have advanced our understanding of the fundamental interaction between magnetic Co and Fe atoms inside the crystal lattice of AFe2O4, where A is Co or Fe. The gained knowledge can contribute to the development of magnetically controlled high-frequency filters and frequency selectors.
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spelling doaj.art-bf6211548a1d4b14bc1ef2ab302737cd2022-12-22T03:05:12ZengAkademperiodykaРадиофизика и электроника1028-821X2415-34002020-09-01253545910.15407/rej2020.03.054Ferromagnetic resonance in Fe1–xCoxFe2O4 nanoparticles precipitated from diethylene glycolA.S. Vakula0О.А. Kravchuk1S.I. Tarapov2https://orcid.org/0000-0002-8958-5003A.G. Belous3O.Ya. Usikov Institute of Radiophysics and ElectronicsKharkiv National University of Radio ElectronicsO.Ya. Usikov Institute of Radiophysics and Electronics, Kharkiv National University of Radio Electronics, V.N. Karazin Kharkiv National UniversityInstitute of General and Inorganic ChemistrySubject and Purpose. One of the ways to gain in the efficiency of the hyperthermia technique is through the synthesis of new magnetic nanomaterials offering high coercive force without affecting biocompatibility. A proven technology is the doping of biocompatible materials, such as Fe3O4, with atoms of highly coercive substances, such as Co atoms. Despite it has been the theme of much investigation, magnetic state of such nanoparticles is still not completely understood. The present study is devoted to the magnetic and magnetic resonance properties of Fe1–xCoxFe2O4 nanoparticles synthesized by the precipitation from diethylene glycol at two, T = 200 °C and 500 °C, temperatures. The purpose is to study magnetic and magnetic resonance properties of Fe1-xCoxFe2O4 nanoparticles at various concentrations x. Method and Methodology. The magnetometric method and the electron spin resonance method were employed to obtain, correspondingly, magnetic hysteresis loops of magnetic nanoparticles and ferromagnetic resonance (FMR) spectra in the frequency band f = 8…20 GHz at the temperature T = 294 K. Transmission electron microscopy was used for nanoparticle observations. Results. The analysis of the measuring results has shown that among Fe1–xCoxFe2O4 nanoparticle samples with concentrations x = 0.0, 0.5, and 1.0, the total magnetic anisotropy field at x = 0.5 is the largest of the three because its crystalline anisotropy field is the largest compared to x = 0.0 and 1.0. Conclusion. The presented results have advanced our understanding of the fundamental interaction between magnetic Co and Fe atoms inside the crystal lattice of AFe2O4, where A is Co or Fe. The gained knowledge can contribute to the development of magnetically controlled high-frequency filters and frequency selectors.http://re-journal.org.ua/sites/default/files/file_attach/2020-3/8.pdfelectron spin resonanceferromagnetic resonancemagnetitemicrowaves
spellingShingle A.S. Vakula
О.А. Kravchuk
S.I. Tarapov
A.G. Belous
Ferromagnetic resonance in Fe1–xCoxFe2O4 nanoparticles precipitated from diethylene glycol
Радиофизика и электроника
electron spin resonance
ferromagnetic resonance
magnetite
microwaves
title Ferromagnetic resonance in Fe1–xCoxFe2O4 nanoparticles precipitated from diethylene glycol
title_full Ferromagnetic resonance in Fe1–xCoxFe2O4 nanoparticles precipitated from diethylene glycol
title_fullStr Ferromagnetic resonance in Fe1–xCoxFe2O4 nanoparticles precipitated from diethylene glycol
title_full_unstemmed Ferromagnetic resonance in Fe1–xCoxFe2O4 nanoparticles precipitated from diethylene glycol
title_short Ferromagnetic resonance in Fe1–xCoxFe2O4 nanoparticles precipitated from diethylene glycol
title_sort ferromagnetic resonance in fe1 xcoxfe2o4 nanoparticles precipitated from diethylene glycol
topic electron spin resonance
ferromagnetic resonance
magnetite
microwaves
url http://re-journal.org.ua/sites/default/files/file_attach/2020-3/8.pdf
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AT oakravchuk ferromagneticresonanceinfe1xcoxfe2o4nanoparticlesprecipitatedfromdiethyleneglycol
AT sitarapov ferromagneticresonanceinfe1xcoxfe2o4nanoparticlesprecipitatedfromdiethyleneglycol
AT agbelous ferromagneticresonanceinfe1xcoxfe2o4nanoparticlesprecipitatedfromdiethyleneglycol