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Orbital Order Melting at Reduced Dimensions SCIE SCOPUS

Title
Orbital Order Melting at Reduced Dimensions
Authors
Kim, Yong-JinPark, Heung-SikYeo, YoungkiSafarina, Giovanni AnnurLe, Duc DuyBang, DaehyeonPark, Jae-HoonKo, Kyung-TaeYang, Chan-HoLee, ChanghoonKim, Jeong-GyuCho, Byeong-GwanKoo, Tae YeongShim, Ji Hoon
Date Issued
2022-02
Publisher
American Chemical Society
Abstract
© 2022 American Chemical Society.The orbital degree of freedom, strongly coupled with the lattice and spin, is an important factor when designing correlated functions. Whether the long-range orbital order is stable at reduced dimensions and, if not, what the critical thickness is remains a tantalizing question. Here, we report the melting of orbital ordering, observed by controlling the dimensionality of the canonical eg1 orbital system LaMnO3. Epitaxial films are synthesized with vertically aligned orbital ordering planes on an orthorhombic substrate, so that reducing film thickness changes the two-dimensional planes into quasi-one-dimensional nanostrips. The orbital order appears to be suppressed below the critical thickness of about six unit cells by changing the characteristic phonon modes and making the Mn d orbital more isotropic. Density functional calculations reveal that the electronic energy instability induced by bandwidth narrowing via the dimensional crossover and the interfacial effect causes the absence of orbital order in the ultrathin thickness.
URI
https://oasis.postech.ac.kr/handle/2014.oak/113370
DOI
10.1021/acs.nanolett.1c04117
ISSN
1530-6984
Article Type
Article
Citation
Nano Letters, vol. 22, no. 3, page. 1059 - 1066, 2022-02
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심지훈SHIM, JI HOON
Dept of Chemistry
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