Temperature-Induced Hexagonal-Orthorhombic Phase Transition in Lutetium Ferrite Nanoparticles
Olena M. Fesenko, Igor V. Fesych, Igor V. Zatovsky, Andrii D., Yaremkevych, Maxim Rallev, Andrii V. Bodnaruk, Eugene A. Eliseev, Anna N., Morozovska

TL;DR
This study investigates how sintering temperature influences the phase transition between hexagonal and orthorhombic structures in LuFeO3 nanoparticles, affecting their multiferroic properties and stability.
Contribution
It combines experimental spectroscopy and magnetic measurements with theoretical Gibbs modeling to analyze phase stability and predict size and temperature effects on properties.
Findings
Gradual phase transition observed with increasing sintering temperature.
Hexagonal phase can be stabilized at room temperature in nanoparticles.
Theoretical model predicts size and temperature influence on phase stability.
Abstract
The X-ray diffraction, Raman and infrared spectroscopies and magnetic measurements were used to explore the correlated changes of the structure, lattice dynamics and magnetic properties of the LuFeO3 nanoparticles, which appear in dependence on their sintering temperature. We revealed a gradual substitution of the hexagonal phase by the orthorhombic phase in the nanoparticles, which sintering temperature increases from 700 C to 1100 C. The origin and stability of the hexagonal phase in the LuFeO3 nanoparticles is of the special interest, because the nanoparticle in the phase can be a room-temperature multiferroic with a weak ferromagnetic and pronounced structural and ferroelectric long-range ordering, while the antiferromagnetic and nonpolar orthorhombic phase is more stable in the bulk LuFeO3. To define the ranges of the hexagonal phase stability, we determine the bulk and interface…
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Taxonomy
TopicsMultiferroics and related materials · Magnetic Properties and Synthesis of Ferrites · Ferroelectric and Piezoelectric Materials
