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Synthesis and investigation of the applicability of Fe3O4/ZnO nanoparticles as a basis for hyperthermic studies

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dc.contributor.author Kaliyekperova, Kamila B.
dc.contributor.author Rusakov, Vyacheslav S.
dc.contributor.author Kozlovskiy, Artem L.
dc.contributor.author Fadeev, Maxim S.
dc.contributor.author Shlimas, Dmitriy I.
dc.contributor.author Zdorovets, Maxim V.
dc.date.accessioned 2026-03-06T09:38:20Z
dc.date.available 2026-03-06T09:38:20Z
dc.date.issued 2025
dc.identifier.issn 2666-0164
dc.identifier.other doi.org/10.1016/j.cscee.2025.101195
dc.identifier.uri http://repository.enu.kz/handle/enu/29956
dc.description.abstract Ferrimagnetic nanoparticles, which are compounds of iron oxide with other types of metal oxides, are one of the promising types of nanoparticles among a wide variety. Interest in this type of nanostructures is primarily due to the great prospects for their use in biomedical applications, targeted drug delivery, alongside hyperthermia and magnetic resonance therapy. The relevance of the research consists in obtaining new knowledge in the field of research of phase transformations in ferritic Fe3O4/ZnO nanoparticles under variation of synthesis conditions, alongside assessing their practical application in comparison with literature data, and determining the limits of applicability in hyperthermia. The key result of this study is to evaluate the effectiveness of using Fe3O4/ZnO nanoparticles, as well as determining the influence of thermal annealing conditions on the phase transformation processes in nanoparticles. According to X-ray phase analysis data, the dynamics of phase transformations in Fe3O4/ZnO nanoparticles contingent upon the thermal annealing temperature was established. These phase transformations can be written in the following form: Fe3O4/ZnO → Fe2O3/ZnO → Fe2O3/ZnFe2O4 → ZnFe2O4/ ZnO. During the studies, it was found that the formation of the ZnFe2O4 phase leads not only to the heating rate growth, but also to the formation of a linear dependence of the change in the solution temperature on the time of exposure to an alternating magnetic field. ru
dc.language.iso en ru
dc.publisher Case Studies in Chemical and Environmental Engineering ru
dc.relation.ispartofseries 11 (2025) 101195;
dc.subject Fe2O3/ZnFe2O4 nanoparticles ru
dc.subject Magnetic materials ru
dc.subject Hyperthermia ru
dc.subject Phase transformations ru
dc.subject Magnetite ru
dc.title Synthesis and investigation of the applicability of Fe3O4/ZnO nanoparticles as a basis for hyperthermic studies ru
dc.type Article ru


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