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JOURNALS // Nanosystems: Physics, Chemistry, Mathematics // Archive

Nanosystems: Physics, Chemistry, Mathematics, 2024 Volume 15, Issue 1, Pages 80–97 (Mi nano1250)

CHEMISTRY AND MATERIAL SCIENCE

Single-domain particles of manganese-for-iron substituted M-type barium hexaferrite: synthesis, crystal structure, and magnetic properties

Pavel E. Kazina, Anastasia E. Sleptsovab, Alexander V. Vasilieva, Artem A. Eliseeva, Robert E. Dinnebierb, Sebastian Betteb

a Department of Chemistry, Lomonosov Moscow State University, Moscow, Russia
b Max Planck Institute for Solid State Research, Stuttgart, Germany

Abstract: Single-phase barium hexaferrite powders with crystallite sizes in a single-domain region and with the general composition BaFe$_{12-x}$Mn$_x$O$_{19}$, where $x$ = 0, 2, 4, 6, were synthesized applying a citric sol-gel auto-combustion technique with final annealing temperatures of 900 – 1200$^\circ$C. The crystal structures were refined, and the magnetic properties were studied. The observed variations in atomic positions with the Mn-for-Fe substitution revealed presence of Mn in three oxidation state +2, +3, and +4, with a preference of Mn$^{2+}$ to the tetrahedral 4f$_1$ site and Mn$^{4+}$ to the octahedral 2a and 12k sites. With the Mn-doping, the samples’ magnetization decreased, while coercivity increased and reached 8.4 kOe for $x$ = 6. The rise of the annealing temperature resulted in a slight growth of magnetization with a general tendency of the coercivity to decrease. A Curie temperature decreased with the Mn-doping remaining above room temperature for the maximal doping.

Keywords: magnetic materials, ferrites, crystal structure, magnetization, coercivity.

Received: 29.12.2023
Revised: 02.01.2024
Accepted: 03.01.2024

Language: English

DOI: 10.17586/2220-8054-2024-15-1-80-97



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© Steklov Math. Inst. of RAS, 2025