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Propagation Control of Octahedral Tilt in SrRuO(3) via Artificial Heterostructuring

Bonding geometry engineering of metal–oxygen octahedra is a facile way of tailoring various functional properties of transition metal oxides. Several approaches, including epitaxial strain, thickness, and stoichiometry control, have been proposed to efficiently tune the rotation and tilt of the octa...

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Autores principales: Jeong, Seung Gyo, Han, Gyeongtak, Song, Sehwan, Min, Taewon, Mohamed, Ahmed Yousef, Park, Sungkyun, Lee, Jaekwang, Jeong, Hu Young, Kim, Young‐Min, Cho, Deok‐Yong, Choi, Woo Seok
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7435247/
https://www.ncbi.nlm.nih.gov/pubmed/32832374
http://dx.doi.org/10.1002/advs.202001643
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author Jeong, Seung Gyo
Han, Gyeongtak
Song, Sehwan
Min, Taewon
Mohamed, Ahmed Yousef
Park, Sungkyun
Lee, Jaekwang
Jeong, Hu Young
Kim, Young‐Min
Cho, Deok‐Yong
Choi, Woo Seok
author_facet Jeong, Seung Gyo
Han, Gyeongtak
Song, Sehwan
Min, Taewon
Mohamed, Ahmed Yousef
Park, Sungkyun
Lee, Jaekwang
Jeong, Hu Young
Kim, Young‐Min
Cho, Deok‐Yong
Choi, Woo Seok
author_sort Jeong, Seung Gyo
collection PubMed
description Bonding geometry engineering of metal–oxygen octahedra is a facile way of tailoring various functional properties of transition metal oxides. Several approaches, including epitaxial strain, thickness, and stoichiometry control, have been proposed to efficiently tune the rotation and tilt of the octahedra, but these approaches are inevitably accompanied by unnecessary structural modifications such as changes in thin‐film lattice parameters. In this study, a method to selectively engineer the octahedral bonding geometries is proposed, while maintaining other parameters that might implicitly influence the functional properties. A concept of octahedral tilt propagation engineering is developed using atomically designed SrRuO(3)/SrTiO(3) (SRO/STO) superlattices. In particular, the propagation of RuO(6) octahedral tilt within the SRO layers having identical thicknesses is systematically controlled by varying the thickness of adjacent STO layers. This leads to a substantial modification in the electromagnetic properties of the SRO layer, significantly enhancing the magnetic moment of Ru. This approach provides a method to selectively manipulate the bonding geometry of strongly correlated oxides, thereby enabling a better understanding and greater controllability of their functional properties.
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spelling pubmed-74352472020-08-20 Propagation Control of Octahedral Tilt in SrRuO(3) via Artificial Heterostructuring Jeong, Seung Gyo Han, Gyeongtak Song, Sehwan Min, Taewon Mohamed, Ahmed Yousef Park, Sungkyun Lee, Jaekwang Jeong, Hu Young Kim, Young‐Min Cho, Deok‐Yong Choi, Woo Seok Adv Sci (Weinh) Communications Bonding geometry engineering of metal–oxygen octahedra is a facile way of tailoring various functional properties of transition metal oxides. Several approaches, including epitaxial strain, thickness, and stoichiometry control, have been proposed to efficiently tune the rotation and tilt of the octahedra, but these approaches are inevitably accompanied by unnecessary structural modifications such as changes in thin‐film lattice parameters. In this study, a method to selectively engineer the octahedral bonding geometries is proposed, while maintaining other parameters that might implicitly influence the functional properties. A concept of octahedral tilt propagation engineering is developed using atomically designed SrRuO(3)/SrTiO(3) (SRO/STO) superlattices. In particular, the propagation of RuO(6) octahedral tilt within the SRO layers having identical thicknesses is systematically controlled by varying the thickness of adjacent STO layers. This leads to a substantial modification in the electromagnetic properties of the SRO layer, significantly enhancing the magnetic moment of Ru. This approach provides a method to selectively manipulate the bonding geometry of strongly correlated oxides, thereby enabling a better understanding and greater controllability of their functional properties. John Wiley and Sons Inc. 2020-06-25 /pmc/articles/PMC7435247/ /pubmed/32832374 http://dx.doi.org/10.1002/advs.202001643 Text en © 2020 The Authors. Published by WILEY‐VCH Verlag GmbH & Co. KGaA, Weinheim This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Communications
Jeong, Seung Gyo
Han, Gyeongtak
Song, Sehwan
Min, Taewon
Mohamed, Ahmed Yousef
Park, Sungkyun
Lee, Jaekwang
Jeong, Hu Young
Kim, Young‐Min
Cho, Deok‐Yong
Choi, Woo Seok
Propagation Control of Octahedral Tilt in SrRuO(3) via Artificial Heterostructuring
title Propagation Control of Octahedral Tilt in SrRuO(3) via Artificial Heterostructuring
title_full Propagation Control of Octahedral Tilt in SrRuO(3) via Artificial Heterostructuring
title_fullStr Propagation Control of Octahedral Tilt in SrRuO(3) via Artificial Heterostructuring
title_full_unstemmed Propagation Control of Octahedral Tilt in SrRuO(3) via Artificial Heterostructuring
title_short Propagation Control of Octahedral Tilt in SrRuO(3) via Artificial Heterostructuring
title_sort propagation control of octahedral tilt in srruo(3) via artificial heterostructuring
topic Communications
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7435247/
https://www.ncbi.nlm.nih.gov/pubmed/32832374
http://dx.doi.org/10.1002/advs.202001643
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