Tunable room-temperature ferromagnetism in Co-doped two-dimensional van der Waals ZnO

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作者
Rui Chen
Fuchuan Luo
Yuzi Liu
Yu Song
Yu Dong
Shan Wu
Jinhua Cao
Fuyi Yang
Alpha N’Diaye
Padraic Shafer
Yin Liu
Shuai Lou
Junwei Huang
Xiang Chen
Zixuan Fang
Qingjun Wang
Dafei Jin
Ran Cheng
Hongtao Yuan
Robert J. Birgeneau
Jie Yao
机构
[1] University of California,Department of Materials Science and Engineering
[2] Lawrence Berkeley National Laboratory,Materials Sciences Division
[3] University of Electronic Science and Technology of China,National Engineering Research Center of Electromagnetic Radiation Control Materials
[4] Argonne National Laboratory,Center for Nanoscale Materials, Nanoscience and Technology Division
[5] University of California,Department of Physics
[6] Nanjing University,National Laboratory of Solid
[7] Lawrence Berkeley National Laboratory,State Microstructures, College of Engineering and Applied Sciences, and Collaborative Innovation Center of Advanced Microstructures
[8] University of California,Advanced Light Source
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摘要
The recent discovery of ferromagnetism in two-dimensional van der Waals crystals has provoked a surge of interest in the exploration of fundamental spin interaction in reduced dimensions. However, existing material candidates have several limitations, notably lacking intrinsic room-temperature ferromagnetic order and air stability. Here, motivated by the anomalously high Curie temperature observed in bulk diluted magnetic oxides, we demonstrate room-temperature ferromagnetism in Co-doped graphene-like Zinc Oxide, a chemically stable layered material in air, down to single atom thickness. Through the magneto-optic Kerr effect, superconducting quantum interference device and X-ray magnetic circular dichroism measurements, we observe clear evidences of spontaneous magnetization in such exotic material systems at room temperature and above. Transmission electron microscopy and atomic force microscopy results explicitly exclude the existence of metallic Co or cobalt oxides clusters. X-ray characterizations reveal that the substitutional Co atoms form Co2+ states in the graphitic lattice of ZnO. By varying the Co doping level, we observe transitions between paramagnetic, ferromagnetic and less ordered phases due to the interplay between impurity-band-exchange and super-exchange interactions. Our discovery opens another path to 2D ferromagnetism at room temperature with the advantage of exceptional tunability and robustness.
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