Chemical Prehistory Effects on the Room‐Temperature Magnetic Response of BiFeO 3 Particles

ABSTRACT Multiferroic BiFeO 3 nanoparticles with tunable average crystallite sizes from 40 to 150 nm were synthesized via the solution combustion method. Crystallite size control was achieved through two distinct routes: sequential high‐temperature annealing and variation of the fuel‐to‐oxidizer ratio (ϕ) in the precursor. The magnetic properties exhibited a strong dependence on the chemical prehistory of the samples. For the annealed series, the room‐temperature magnetic response follows a modified core‐shell model featuring an effective surface shell thickness of 1–4 nm. Conversely, the samples synthesized by varying ϕ demonstrated an exponential magnetization decay with size. Identifying these magnetization models enables precise performance tailoring in multiferroic materials for advanced magnetoelectric applications.

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Publication Details

Journal
Particle & Particle Systems Characterization
Published
2026-09-28
DOI
https://doi.org/10.1002/ppsc.70139
Primary Topic
Multiferroics and related materials
Type
article
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Chemical Prehistory Effects on the Room‐Temperature Magnetic Response of BiFeO 3 Particles

Natalia A. Lomanova
Particle & Particle Systems Characterization
Multiferroics and related materials
article

Chemical Prehistory Effects on the Room‐Temperature Magnetic Response of BiFeO 3 Particles

Natalia A. Lomanova
article en

Abstract

ABSTRACT Multiferroic BiFeO 3 nanoparticles with tunable average crystallite sizes from 40 to 150 nm were synthesized via the solution combustion method. Crystallite size control was achieved through two distinct routes: sequential high‐temperature annealing and variation of the fuel‐to‐oxidizer ratio (ϕ) in the precursor. The magnetic properties exhibited a strong dependence on the chemical prehistory of the samples. For the annealed series, the room‐temperature magnetic response follows a modified core‐shell model featuring an effective surface shell thickness of 1–4 nm. Conversely, the samples synthesized by varying ϕ demonstrated an exponential magnetization decay with size. Identifying these magnetization models enables precise performance tailoring in multiferroic materials for advanced magnetoelectric applications.

Particle & Particle Systems CharacterizationVol. 43(10)
Ioffe Institute (RU)
Openalex Percentile: Top 30%
Multiferroics and related materials
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