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Atomically engineered cobaltite layers for robust ferromagnetism

delete2022-10-28
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OA
AI
S
Shengru Chen
张庆华 (Qinghua Zhang)
X
Xujing Li
J
Jiali Zhao
S
Shan Lin
Q
Qiao Jin
H
Haitao Hong
A
Amanda Huon
T
Timothy Charlton
李清朋 cover
李清朋 (Qian Li)
闫文盛 (Wensheng Yan)
J
Jiaou Wang
C
Chen Ge
王灿 (Can Wang)
B
Bao‐Tian Wang
M
M. R. Fitzsimmons
郭海中 (Haizhong Guo)
谷林 cover
谷林 (Lin Gu)
W
Wen Yin *
金奎娟 (Kuijuan Jin)
E
Er‐Jia Guo *
DOI:10.1126/sciadv.abq3981delete
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Abstract

Abstract

En 中文
Emergent phenomena at heterointerfaces are directly associated with the bonding geometry of adjacent layers. Effective control of accessible parameters, such as the bond length and bonding angles, offers an elegant method to tailor competing energies of the electronic and magnetic ground states. In this study, we construct unit-thick syntactic layers of cobaltites within a strongly tilted octahedral matrix via atomically precise synthesis. The octahedral tilt patterns of adjacent layers propagate into cobaltites, leading to a continuation of octahedral tilting while maintaining substantial misfit tensile strain. These effects induce severe rumpling within an atomic plane of neighboring layers, further triggering the electronic reconstruction between the splitting orbitals. First-principles calculations reveal that the cobalt ions transit to a higher spin state level upon octahedral tilting, resulting in robust ferromagnetism in ultrathin cobaltites. This work demonstrates a design methodology for fine- tuning the lattice and spin degrees of freedom in correlated quantum heterostructures by exploiting epitaxial geometric engineering.
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Journal

Science Advances cover
Science Advances
IF:
12.5
Papers:
2.0W
Citations:
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U
university of chinese academy of sciences, cas
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Citations: 75
S
Songshan Lake Materials Laboratory
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1.9K
Papers: 1.3K
Citations: 5.4K
I
institute of high energy physics, cas
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O
oak ridge national laboratory
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1.4W
Papers: 1.0W
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C
chinese academy of sciences
Scholars:
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Papers: 44.6W
Citations: 704
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