Author
Listed:
- Meng Meng
(Chinese Academy of Sciences)
- Yuanwei Sun
(Peking University)
- Yuehui Li
(Peking University)
- Qichang An
(Chinese Academy of Sciences
University of Chinese Academy of Sciences)
- Zhenzhen Wang
(Chinese Academy of Sciences
University of Chinese Academy of Sciences)
- Zijian Lin
(Chinese Academy of Sciences
University of Chinese Academy of Sciences)
- Fang Yang
(Chinese Academy of Sciences)
- Xuetao Zhu
(Chinese Academy of Sciences
University of Chinese Academy of Sciences
Songshan Lake Materials Laboratory)
- Peng Gao
(Peking University
Collaborative Innovation Center of Quantum Matter)
- Jiandong Guo
(Chinese Academy of Sciences
University of Chinese Academy of Sciences
Songshan Lake Materials Laboratory
Beijing Academy of Quantum Information Sciences)
Abstract
The d-band-filling of transition metals in complex oxides plays an essential role in determining their structural, electronic and magnetic properties. Traditionally, at the oxide heterointerface, band-filling control has been achieved via electrostatic modification in the structure of field-effect transistors or electron transfer, which is limited to the quasi-two-dimension at the interface. Here we report a three-dimensional (3D) band-filling control by changing the local lattice coordination in a designed oxide heterostructure. At the LaCoO3/LaTiO3 heterointerface, due to the Fermi level mismatch, electrons transfer from LaTiO3 to LaCoO3. This triggers destabilisation of the CoO6 octahedrons, i.e. the formation of lattice configurations with a reduced Co valence. The associated oxygen migration results in the 3D topotactic phase transition of LaCoO3. Tuned by the thickness of LaTiO3, different crystalline phases and band-fillings of Co occur, leading to the emergence of different magnetic ground states.
Suggested Citation
Meng Meng & Yuanwei Sun & Yuehui Li & Qichang An & Zhenzhen Wang & Zijian Lin & Fang Yang & Xuetao Zhu & Peng Gao & Jiandong Guo, 2021.
"Three dimensional band-filling control of complex oxides triggered by interfacial electron transfer,"
Nature Communications, Nature, vol. 12(1), pages 1-8, December.
Handle:
RePEc:nat:natcom:v:12:y:2021:i:1:d:10.1038_s41467-021-22790-0
DOI: 10.1038/s41467-021-22790-0
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