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Temperature-Driven Transformation of the Crystal and Magnetic Structures of BiFe(0.7)Mn(0.3)O(3) Ceramics

The compound BiFe(0.7)Mn(0.3)O(3) consisting at room temperature of coexistent anti-polar orthorhombic and polar rhombohedral phases has a metastable structural state, which has been studied by laboratory X-ray, synchrotron and neutron diffraction, magnetometry, differential thermal analysis, and di...

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Autores principales: Karpinsky, Dmitry V., Silibin, Maxim V., Latushka, Siarhei I., Zhaludkevich, Dmitry V., Sikolenko, Vadim V., Svetogorov, Roman, Sayyed, M. I., Almousa, Nouf, Trukhanov, Alex, Trukhanov, Sergei, Belik, Alexei А.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9413088/
https://www.ncbi.nlm.nih.gov/pubmed/36014678
http://dx.doi.org/10.3390/nano12162813
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author Karpinsky, Dmitry V.
Silibin, Maxim V.
Latushka, Siarhei I.
Zhaludkevich, Dmitry V.
Sikolenko, Vadim V.
Svetogorov, Roman
Sayyed, M. I.
Almousa, Nouf
Trukhanov, Alex
Trukhanov, Sergei
Belik, Alexei А.
author_facet Karpinsky, Dmitry V.
Silibin, Maxim V.
Latushka, Siarhei I.
Zhaludkevich, Dmitry V.
Sikolenko, Vadim V.
Svetogorov, Roman
Sayyed, M. I.
Almousa, Nouf
Trukhanov, Alex
Trukhanov, Sergei
Belik, Alexei А.
author_sort Karpinsky, Dmitry V.
collection PubMed
description The compound BiFe(0.7)Mn(0.3)O(3) consisting at room temperature of coexistent anti-polar orthorhombic and polar rhombohedral phases has a metastable structural state, which has been studied by laboratory X-ray, synchrotron and neutron diffraction, magnetometry, differential thermal analysis, and differential scanning calorimetry. Thermal annealing of the sample at temperatures above the temperature-driven phase transition into the single phase rhombohedral structure (~700 K) causes an increase of the volume fraction of the rhombohedral phase at room temperature from ~10% up to ~30%, which is accompanied by the modification of the magnetic state, leading to strengthening of a ferromagnetic component. A strong external magnetic field (~5 T) applied to the sample notably changes its magnetic properties, as well as provides a reinforcement of the ferromagnetic component, thus leading to an interaction between two magnetic subsystems formed by the antiferromagnetic matrix with non-collinear alignment of magnetic moments and the nanoscale ferromagnetic clusters coexisting within it. The modification of the structural state and magnetic properties of the compounds and a correlation between different structural and magnetic phases are discussed focusing on the effect of thermal annealing and the impact of an external magnetic field.
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spelling pubmed-94130882022-08-27 Temperature-Driven Transformation of the Crystal and Magnetic Structures of BiFe(0.7)Mn(0.3)O(3) Ceramics Karpinsky, Dmitry V. Silibin, Maxim V. Latushka, Siarhei I. Zhaludkevich, Dmitry V. Sikolenko, Vadim V. Svetogorov, Roman Sayyed, M. I. Almousa, Nouf Trukhanov, Alex Trukhanov, Sergei Belik, Alexei А. Nanomaterials (Basel) Article The compound BiFe(0.7)Mn(0.3)O(3) consisting at room temperature of coexistent anti-polar orthorhombic and polar rhombohedral phases has a metastable structural state, which has been studied by laboratory X-ray, synchrotron and neutron diffraction, magnetometry, differential thermal analysis, and differential scanning calorimetry. Thermal annealing of the sample at temperatures above the temperature-driven phase transition into the single phase rhombohedral structure (~700 K) causes an increase of the volume fraction of the rhombohedral phase at room temperature from ~10% up to ~30%, which is accompanied by the modification of the magnetic state, leading to strengthening of a ferromagnetic component. A strong external magnetic field (~5 T) applied to the sample notably changes its magnetic properties, as well as provides a reinforcement of the ferromagnetic component, thus leading to an interaction between two magnetic subsystems formed by the antiferromagnetic matrix with non-collinear alignment of magnetic moments and the nanoscale ferromagnetic clusters coexisting within it. The modification of the structural state and magnetic properties of the compounds and a correlation between different structural and magnetic phases are discussed focusing on the effect of thermal annealing and the impact of an external magnetic field. MDPI 2022-08-16 /pmc/articles/PMC9413088/ /pubmed/36014678 http://dx.doi.org/10.3390/nano12162813 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Karpinsky, Dmitry V.
Silibin, Maxim V.
Latushka, Siarhei I.
Zhaludkevich, Dmitry V.
Sikolenko, Vadim V.
Svetogorov, Roman
Sayyed, M. I.
Almousa, Nouf
Trukhanov, Alex
Trukhanov, Sergei
Belik, Alexei А.
Temperature-Driven Transformation of the Crystal and Magnetic Structures of BiFe(0.7)Mn(0.3)O(3) Ceramics
title Temperature-Driven Transformation of the Crystal and Magnetic Structures of BiFe(0.7)Mn(0.3)O(3) Ceramics
title_full Temperature-Driven Transformation of the Crystal and Magnetic Structures of BiFe(0.7)Mn(0.3)O(3) Ceramics
title_fullStr Temperature-Driven Transformation of the Crystal and Magnetic Structures of BiFe(0.7)Mn(0.3)O(3) Ceramics
title_full_unstemmed Temperature-Driven Transformation of the Crystal and Magnetic Structures of BiFe(0.7)Mn(0.3)O(3) Ceramics
title_short Temperature-Driven Transformation of the Crystal and Magnetic Structures of BiFe(0.7)Mn(0.3)O(3) Ceramics
title_sort temperature-driven transformation of the crystal and magnetic structures of bife(0.7)mn(0.3)o(3) ceramics
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9413088/
https://www.ncbi.nlm.nih.gov/pubmed/36014678
http://dx.doi.org/10.3390/nano12162813
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