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JOURNALS // Fizika Tverdogo Tela // Archive

Fizika Tverdogo Tela, 2019 Volume 61, Issue 6, Pages 1175–1183 (Mi ftt8798)

This article is cited in 4 papers

Low dimensional systems

Properties of MgFe$_{2}$O$_{4}$ nanoparticles synthesized by ultrasonic aerosol pyrolysis for biomedical applications

A. S. Kamzina, A. A. Valiullinb, V. G. Semenovc, Harinarayan Dasd, Naoki Wakiyae

a Ioffe Institute, St. Petersburg
b Kazan (Volga Region) Federal University
c Saint Petersburg State University
d Materials Science Division, Atomic Energy Centre, Dhaka 1000, Bangladesh
e Department of Electronics and Materials Science, Shizuoka University, 3-5-1 Johoku, Naka-ku, Hamamatsu 432-8561, Japan

Abstract: We present the data of studies on the structure, phase states, and magnetic properties of magnetic nanoparticles (MNPs) of magnesium ferrite spinel (MgFe$_{2}$O$_{4}$), synthesized by ultrasonic aerosols pyrolysis. Primary single-phase MNPs with an average size of 9.6, 11.5, and 14.0 nm, synthesized from precursors at concentrations of 0.06, 0.12, and 0.24 M, respectively, agglomerate into tightly aggregated spherical particles (secondary particles) with sizes of 206, 300, and 340 nm, respectively. Primary particles inside the spheres do not interact with each other and are in a superparamagnetic state. There is a layer on the surface of the particles, the magnetic structure of which differs from the structure of the inner part of the MNP; this is explained by the formation of a canted spin structure or a spin glass state in the surface layer of the MNPs. MgFe$_{2}$O$_{4}$ nanospheres obtained from a precursor at a concentration of 0.06 M are most promising as valid sources of heat in magnetic hyperthermia therapy.

Received: 10.01.2019
Revised: 10.01.2019
Accepted: 15.01.2019

DOI: 10.21883/FTT.2019.06.47696.354


 English version:
Physics of the Solid State, 2019, 61:6, 1113–1121

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