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Room-Temperature Magnetic Phase Transition in an Electrically Tuned van der Waals Ferromagnet.
Tan, Cheng; Liao, Ji-Hai; Zheng, Guolin; Algarni, Meri; Lin, Jia-Yi; Ma, Xiang; Mayes, Edwin L H; Field, Matthew R; Albarakati, Sultan; Panahandeh-Fard, Majid; Alzahrani, Saleh; Wang, Guopeng; Yang, Yuanjun; Culcer, Dimitrie; Partridge, James; Tian, Mingliang; Xiang, Bin; Zhao, Yu-Jun; Wang, Lan.
Afiliación
  • Tan C; Lab of Low Dimensional Magnetism and Spintronic Devices, School of Physics, Hefei University of Technology, Hefei, Anhui 230009, China.
  • Liao JH; ARC Centre of Excellence in Future Low-Energy Electronics Technologies (FLEET), School of Science, RMIT University, Melbourne, Victoria 3001, Australia.
  • Zheng G; Department of Physics, South China University of Technology, Guangzhou 510640, China.
  • Algarni M; Anhui Province Key Laboratory of Condensed Matter Physics at Extreme Conditions, High Magnetic Field Laboratory, Chinese Academy of Sciences (CAS), Hefei, Anhui 230031, China.
  • Lin JY; ARC Centre of Excellence in Future Low-Energy Electronics Technologies (FLEET), School of Science, RMIT University, Melbourne, Victoria 3001, Australia.
  • Ma X; Physics Department, Faculty of Science, Al-Baha University, Alaqiq 65779, Saudi Arabia.
  • Mayes ELH; Department of Physics, South China University of Technology, Guangzhou 510640, China.
  • Field MR; Hefei National Laboratory for Physical Sciences at the Microscale, Department of Materials Science & Engineering, CAS Key Lab of Materials for Energy Conversion, University of Science and Technology of China, Hefei, Anhui 230026, China.
  • Albarakati S; RMIT Microscopy & Microanalysis Facility, RMIT University, Melbourne, Victoria 3000, Australia.
  • Panahandeh-Fard M; RMIT Microscopy & Microanalysis Facility, RMIT University, Melbourne, Victoria 3000, Australia.
  • Alzahrani S; ARC Centre of Excellence in Future Low-Energy Electronics Technologies (FLEET), School of Science, RMIT University, Melbourne, Victoria 3001, Australia.
  • Wang G; Physics Department, Faculty of Science and Arts, University of Jeddah, P.O. Box 80200, 21589 Khulais, Saudi Arabia.
  • Yang Y; ARC Centre of Excellence in Future Low-Energy Electronics Technologies (FLEET), School of Science, RMIT University, Melbourne, Victoria 3001, Australia.
  • Culcer D; ARC Centre of Excellence in Future Low-Energy Electronics Technologies (FLEET), School of Science, RMIT University, Melbourne, Victoria 3001, Australia.
  • Partridge J; Department of Physics, School of Physics and Materials Science, Anhui University, Hefei, Anhui 230601, China.
  • Tian M; Lab of Low Dimensional Magnetism and Spintronic Devices, School of Physics, Hefei University of Technology, Hefei, Anhui 230009, China.
  • Xiang B; School of Physics and ARC Centre of Excellence in Future Low-Energy Electronics Technologies, UNSW Node, University of New South Wales, Sydney, New South Wales 2052, Australia.
  • Zhao YJ; ARC Centre of Excellence in Future Low-Energy Electronics Technologies (FLEET), School of Science, RMIT University, Melbourne, Victoria 3001, Australia.
  • Wang L; Anhui Province Key Laboratory of Condensed Matter Physics at Extreme Conditions, High Magnetic Field Laboratory, Chinese Academy of Sciences (CAS), Hefei, Anhui 230031, China.
Phys Rev Lett ; 131(16): 166703, 2023 Oct 20.
Article en En | MEDLINE | ID: mdl-37925723
Finding tunable van der Waals (vdW) ferromagnets that operate at above room temperature is an important research focus in physics and materials science. Most vdW magnets are only intrinsically magnetic far below room temperature and magnetism with square-shaped hysteresis at room temperature has yet to be observed. Here, we report magnetism in a quasi-2D magnet Cr_{1.2}Te_{2} observed at room temperature (290 K). This magnetism was tuned via a protonic gate with an electron doping concentration up to 3.8×10^{21} cm^{-3}. We observed nonmonotonic evolutions in both coercivity and anomalous Hall resistivity. Under increased electron doping, the coercivities and anomalous Hall effects (AHEs) vanished, indicating a doping-induced magnetic phase transition. This occurred up to room temperature. DFT calculations showed the formation of an antiferromagnetic (AFM) phase caused by the intercalation of protons which induced significant electron doping in the Cr_{1.2}Te_{2}. The tunability of the magnetic properties and phase in room temperature magnetic vdW Cr_{1.2}Te_{2} is a significant step towards practical spintronic devices.

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Idioma: En Revista: Phys Rev Lett Año: 2023 Tipo del documento: Article País de afiliación: China

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Idioma: En Revista: Phys Rev Lett Año: 2023 Tipo del documento: Article País de afiliación: China
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