Epitaxially stabilized thin films of ε-Fe2O3 (001) grown on YSZ (100)
Abstract Epsilon ferrite (ε-Fe2O3) is a metastable phase of iron(III) oxide, intermediate between maghemite and hematite. It has recently attracted interest because of its magnetocrystalline anisotropy, which distinguishes it from the other polymorphs, and results in a gigantic coercive field and a...
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doaj-f5ae3492e61145d8afcbe3890a9077322020-12-08T00:51:12ZengNature Publishing GroupScientific Reports2045-23222017-06-01711910.1038/s41598-017-02742-9Epitaxially stabilized thin films of ε-Fe2O3 (001) grown on YSZ (100)Luca Corbellini0Christian Lacroix1Catalin Harnagea2Andreas Korinek3Gianluigi A. Botton4David Ménard5Alain Pignolet6Centre Énergie, Matériaux et Télécommunications, INRSDépartement de Génie Physique & Regroupement québécois sur les matériaux de pointe (RQMP), Polytechnique MontréalCentre Énergie, Matériaux et Télécommunications, INRSDepartment of Materials Science and Engineering and Canadian Centre for Electron Microscopy, McMaster UniversityDepartment of Materials Science and Engineering and Canadian Centre for Electron Microscopy, McMaster UniversityDépartement de Génie Physique & Regroupement québécois sur les matériaux de pointe (RQMP), Polytechnique MontréalCentre Énergie, Matériaux et Télécommunications, INRSAbstract Epsilon ferrite (ε-Fe2O3) is a metastable phase of iron(III) oxide, intermediate between maghemite and hematite. It has recently attracted interest because of its magnetocrystalline anisotropy, which distinguishes it from the other polymorphs, and results in a gigantic coercive field and a natural ferromagnetic resonance frequency in the THz range. Moreover, it possesses a polar crystal structure, making it a potential ferroelectric, hence a potential multiferroic. Due to the need of size confinement to stabilize the metastable phase, ε-Fe2O3 has been synthesized mainly as nanoparticles. However, to favor integration in devices, and take advantage of its unique functional properties, synthesis as epitaxial thin films is desirable. In this paper, we report the growth of ε-Fe2O3 as epitaxial thin films on (100)-oriented yttrium-stabilized zirconia substrates. Structural characterization outlined the formation of multiple in-plane twins, with two different epitaxial relations to the substrate. Transmission electron microscopy showed how such twins develop in a pillar-like structure from the interface to the surface. Magnetic characterization confirmed the high magnetocrystalline anisotropy of our film and revealed the presence of a secondary phase which was identified as the well-known magnetite. Finally, angular analysis of the magnetic properties revealed how the presence of twins impacts their azimuthal dependence.https://doi.org/10.1038/s41598-017-02742-9 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Luca Corbellini Christian Lacroix Catalin Harnagea Andreas Korinek Gianluigi A. Botton David Ménard Alain Pignolet |
spellingShingle |
Luca Corbellini Christian Lacroix Catalin Harnagea Andreas Korinek Gianluigi A. Botton David Ménard Alain Pignolet Epitaxially stabilized thin films of ε-Fe2O3 (001) grown on YSZ (100) Scientific Reports |
author_facet |
Luca Corbellini Christian Lacroix Catalin Harnagea Andreas Korinek Gianluigi A. Botton David Ménard Alain Pignolet |
author_sort |
Luca Corbellini |
title |
Epitaxially stabilized thin films of ε-Fe2O3 (001) grown on YSZ (100) |
title_short |
Epitaxially stabilized thin films of ε-Fe2O3 (001) grown on YSZ (100) |
title_full |
Epitaxially stabilized thin films of ε-Fe2O3 (001) grown on YSZ (100) |
title_fullStr |
Epitaxially stabilized thin films of ε-Fe2O3 (001) grown on YSZ (100) |
title_full_unstemmed |
Epitaxially stabilized thin films of ε-Fe2O3 (001) grown on YSZ (100) |
title_sort |
epitaxially stabilized thin films of ε-fe2o3 (001) grown on ysz (100) |
publisher |
Nature Publishing Group |
series |
Scientific Reports |
issn |
2045-2322 |
publishDate |
2017-06-01 |
description |
Abstract Epsilon ferrite (ε-Fe2O3) is a metastable phase of iron(III) oxide, intermediate between maghemite and hematite. It has recently attracted interest because of its magnetocrystalline anisotropy, which distinguishes it from the other polymorphs, and results in a gigantic coercive field and a natural ferromagnetic resonance frequency in the THz range. Moreover, it possesses a polar crystal structure, making it a potential ferroelectric, hence a potential multiferroic. Due to the need of size confinement to stabilize the metastable phase, ε-Fe2O3 has been synthesized mainly as nanoparticles. However, to favor integration in devices, and take advantage of its unique functional properties, synthesis as epitaxial thin films is desirable. In this paper, we report the growth of ε-Fe2O3 as epitaxial thin films on (100)-oriented yttrium-stabilized zirconia substrates. Structural characterization outlined the formation of multiple in-plane twins, with two different epitaxial relations to the substrate. Transmission electron microscopy showed how such twins develop in a pillar-like structure from the interface to the surface. Magnetic characterization confirmed the high magnetocrystalline anisotropy of our film and revealed the presence of a secondary phase which was identified as the well-known magnetite. Finally, angular analysis of the magnetic properties revealed how the presence of twins impacts their azimuthal dependence. |
url |
https://doi.org/10.1038/s41598-017-02742-9 |
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