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오윤석

Oh, Yoon Seok
Laboratory for Strong Correlation in Quantum Materials
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A Room‐Temperature Ferroelectric Ferromagnet in a 1D Tetrahedral Chain Network

Author(s)
Kang, Kyeong TaeRoh, Chang JaeLim, JinyoungMin, TaewonLee, Jun HanLee, KyoungjunLee, Tae YoonKang, SeunghunSeol, DaeheeKim, JiwoongOhta, HiromichiKhare, AmitPark, SungkyunKim, YunseokChae, Seung ChulOh, Yoon SeokLee, JaekwangYu, JaejunLee, Jong SeokChoi, Woo Seok
Issued Date
2019-06
DOI
10.1002/adma.201808104
URI
https://scholarworks.unist.ac.kr/handle/201301/27193
Fulltext
https://onlinelibrary.wiley.com/doi/full/10.1002/adma.201808104
Citation
ADVANCED MATERIALS, v.31, no.24, pp.1808104
Abstract
Ferroelectricity occurs in crystals with broken spatial inversion symmetry. In conventional perovskite oxides, concerted ionic displacements within a 3D network of transition‐metal–oxygen polyhedra (MOx) manifest spontaneous polarization. Meanwhile, some 2D networks of MOx foster geometric ferroelectricity with magnetism, owing to the distortion of the polyhedra. Because of the fundamentally different mechanism of ferroelectricity in a 2D network, one can further challenge an uncharted mechanism of ferroelectricity in a 1D channel of MOx and estimate its feasibility. Here, ferroelectricity and coupled ferromagnetism in a 1D FeO4 tetrahedral chain network of a brownmillerite SrFeO2.5 epitaxial thin film are presented. The result provides a new paradigm for designing low‐dimensional MOx networks, which is expected to benefit the realization of macroscopic ferro‐ordering materials including ferroelectric ferromagnets.
Publisher
WILEY-V C H VERLAG GMBH
ISSN
0935-9648
Keyword (Author)
1D tetrahedral networksferroelectricitymagnetoelectric couplingmultiferroicitySrFeO2.5
Keyword
IMPROPER FERROELECTRICITYSOFT MODEOXIDEPEROVSKITESTRANSITIONSR2FE2O5CRYSTALDRIVEN

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