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Unconventional Charge–Spin Conversion in Weyl-Semimetal WTe2
Authors:Bing Zhao  Bogdan Karpiak  Dmitrii Khokhriakov  Annika Johansson  Anamul Md Hoque  Xiaoguang Xu  Yong Jiang  Ingrid Mertig  Saroj P Dash
Affiliation:1. Beijing Advanced Innovation Center for Materials Genome Engineering, School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing, 100083 China

Department of Microtechnology and Nanoscience, Chalmers University of Technology, Göteborg, SE-41296 Sweden;2. Department of Microtechnology and Nanoscience, Chalmers University of Technology, Göteborg, SE-41296 Sweden;3. Institute of Physics, Martin Luther University Halle-Wittenberg, Halle, 06099 Germany

Max Planck Institute of Microstructure Physics, Weinberg 2, Halle, 06120 Germany;4. Beijing Advanced Innovation Center for Materials Genome Engineering, School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing, 100083 China

Abstract:An outstanding feature of topological quantum materials is their novel spin topology in the electronic band structures with an expected large charge-to-spin conversion efficiency. Here, a charge-current-induced spin polarization in the type-II Weyl semimetal candidate WTe2 and efficient spin injection and detection in a graphene channel up to room temperature are reported. Contrary to the conventional spin Hall and Rashba–Edelstein effects, the measurements indicate an unconventional charge-to-spin conversion in WTe2, which is primarily forbidden by the crystal symmetry of the system. Such a large spin polarization can be possible in WTe2 due to a reduced crystal symmetry combined with its large spin Berry curvature, spin–orbit interaction with a novel spin-texture of the Fermi states. A robust and practical method is demonstrated for electrical creation and detection of such a spin polarization using both charge-to-spin conversion and its inverse phenomenon and utilized it for efficient spin injection and detection in the graphene channel up to room temperature. These findings open opportunities for utilizing topological Weyl materials as nonmagnetic spin sources in all-electrical van der Waals spintronic circuits and for low-power and high-performance nonvolatile spintronic technologies.
Keywords:current-induced spin polarization  Edelstein effect  graphene  spin-momentum locking  type-II  unconventional charge–spin conversion  van der Waals heterostructures  Weyl-semimetals  WTe 2
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