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Synthesis of Sandwiched Composite Nanomagnets by Epitaxial Growth of Fe(3)O(4) Layers on SrFe(10)Cr(2)O(19) Nanoplates in High-Boiling Organic Solvent

Herein, we demonstrate the synthesis of sandwiched composite nanomagnets, which consist of hard magnetic Cr-substituted hexaferrite cores and magnetite outer layers. The hexaferrite plate-like nanoparticles, with average dimensions of 36.3 nm × 5.2 nm, were prepared via a glass crystallization metho...

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Autores principales: Anokhin, Evgeny O., Deyankov, Danila A., Xia, Zitian, Kozlyakova, Ekaterina S., Lebedev, Vasily A., Morozov, Anatolii V., Kozlov, Daniil A., Nygaard, Roy R., Petukhov, Dmitry I., Trusov, Lev A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9824539/
https://www.ncbi.nlm.nih.gov/pubmed/36616077
http://dx.doi.org/10.3390/nano13010167
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author Anokhin, Evgeny O.
Deyankov, Danila A.
Xia, Zitian
Kozlyakova, Ekaterina S.
Lebedev, Vasily A.
Morozov, Anatolii V.
Kozlov, Daniil A.
Nygaard, Roy R.
Petukhov, Dmitry I.
Trusov, Lev A.
author_facet Anokhin, Evgeny O.
Deyankov, Danila A.
Xia, Zitian
Kozlyakova, Ekaterina S.
Lebedev, Vasily A.
Morozov, Anatolii V.
Kozlov, Daniil A.
Nygaard, Roy R.
Petukhov, Dmitry I.
Trusov, Lev A.
author_sort Anokhin, Evgeny O.
collection PubMed
description Herein, we demonstrate the synthesis of sandwiched composite nanomagnets, which consist of hard magnetic Cr-substituted hexaferrite cores and magnetite outer layers. The hexaferrite plate-like nanoparticles, with average dimensions of 36.3 nm × 5.2 nm, were prepared via a glass crystallization method and were covered by spinel-type iron oxide via thermal decomposition of iron acetylacetonate in a hexadecane solution. The hexaferrite nanoplates act as seeds for the epitaxial growth of the magnetite, which results in uniform continuous outer layers on both sides. The thickness of the layers can be adjusted by controlling the concentration of metal ions. In this way, layers with an average thickness of 3.7 and 4.9 nm were obtained. Due to an atomically smooth interface, the magnetic composites demonstrate the exchange coupling effect, acting as single phases during remagnetization. The developed approach can be applied to any spinel-type material with matching lattice parameters and opens the way to expand the performance of hexaferrite nanomagnets due to a combination of various functional properties.
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spelling pubmed-98245392023-01-08 Synthesis of Sandwiched Composite Nanomagnets by Epitaxial Growth of Fe(3)O(4) Layers on SrFe(10)Cr(2)O(19) Nanoplates in High-Boiling Organic Solvent Anokhin, Evgeny O. Deyankov, Danila A. Xia, Zitian Kozlyakova, Ekaterina S. Lebedev, Vasily A. Morozov, Anatolii V. Kozlov, Daniil A. Nygaard, Roy R. Petukhov, Dmitry I. Trusov, Lev A. Nanomaterials (Basel) Article Herein, we demonstrate the synthesis of sandwiched composite nanomagnets, which consist of hard magnetic Cr-substituted hexaferrite cores and magnetite outer layers. The hexaferrite plate-like nanoparticles, with average dimensions of 36.3 nm × 5.2 nm, were prepared via a glass crystallization method and were covered by spinel-type iron oxide via thermal decomposition of iron acetylacetonate in a hexadecane solution. The hexaferrite nanoplates act as seeds for the epitaxial growth of the magnetite, which results in uniform continuous outer layers on both sides. The thickness of the layers can be adjusted by controlling the concentration of metal ions. In this way, layers with an average thickness of 3.7 and 4.9 nm were obtained. Due to an atomically smooth interface, the magnetic composites demonstrate the exchange coupling effect, acting as single phases during remagnetization. The developed approach can be applied to any spinel-type material with matching lattice parameters and opens the way to expand the performance of hexaferrite nanomagnets due to a combination of various functional properties. MDPI 2022-12-30 /pmc/articles/PMC9824539/ /pubmed/36616077 http://dx.doi.org/10.3390/nano13010167 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
Anokhin, Evgeny O.
Deyankov, Danila A.
Xia, Zitian
Kozlyakova, Ekaterina S.
Lebedev, Vasily A.
Morozov, Anatolii V.
Kozlov, Daniil A.
Nygaard, Roy R.
Petukhov, Dmitry I.
Trusov, Lev A.
Synthesis of Sandwiched Composite Nanomagnets by Epitaxial Growth of Fe(3)O(4) Layers on SrFe(10)Cr(2)O(19) Nanoplates in High-Boiling Organic Solvent
title Synthesis of Sandwiched Composite Nanomagnets by Epitaxial Growth of Fe(3)O(4) Layers on SrFe(10)Cr(2)O(19) Nanoplates in High-Boiling Organic Solvent
title_full Synthesis of Sandwiched Composite Nanomagnets by Epitaxial Growth of Fe(3)O(4) Layers on SrFe(10)Cr(2)O(19) Nanoplates in High-Boiling Organic Solvent
title_fullStr Synthesis of Sandwiched Composite Nanomagnets by Epitaxial Growth of Fe(3)O(4) Layers on SrFe(10)Cr(2)O(19) Nanoplates in High-Boiling Organic Solvent
title_full_unstemmed Synthesis of Sandwiched Composite Nanomagnets by Epitaxial Growth of Fe(3)O(4) Layers on SrFe(10)Cr(2)O(19) Nanoplates in High-Boiling Organic Solvent
title_short Synthesis of Sandwiched Composite Nanomagnets by Epitaxial Growth of Fe(3)O(4) Layers on SrFe(10)Cr(2)O(19) Nanoplates in High-Boiling Organic Solvent
title_sort synthesis of sandwiched composite nanomagnets by epitaxial growth of fe(3)o(4) layers on srfe(10)cr(2)o(19) nanoplates in high-boiling organic solvent
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9824539/
https://www.ncbi.nlm.nih.gov/pubmed/36616077
http://dx.doi.org/10.3390/nano13010167
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