TY - JOUR
T1 - Canted persistent spin texture and quantum spin hall effect in WTe2
AU - Garcia, José H.
AU - Vila Tusell, Marc
AU - Hsu, Chuang-Han
AU - Waintal, Xavier
AU - Pereira, Vitor M.
AU - Roche, Stephan
PY - 2020
Y1 - 2020
N2 - We report an unconventional quantum spin Hall phase in the monolayer WTe2, which exhibits hitherto unknown features in other topological materials. The low symmetry of the structure induces a canted spin texture in the yz plane, which dictates the spin polarization of topologically protected boundary states. Additionally, the spin Hall conductivity gets quantized (2e2/h) with a spin quantization axis parallel to the canting direction. These findings are based on large-scale quantum simulations of the spin Hall conductivity tensor and nonlocal resistances in multiprobe geometries using a realistic tight-binding model elaborated from first-principle methods. The observation of this canted quantum spin Hall effect, related to the formation of topological edge states with nontrivial spin polarization, demands for specific experimental design and suggests interesting alternatives for manipulating spin information in topological materials.
AB - We report an unconventional quantum spin Hall phase in the monolayer WTe2, which exhibits hitherto unknown features in other topological materials. The low symmetry of the structure induces a canted spin texture in the yz plane, which dictates the spin polarization of topologically protected boundary states. Additionally, the spin Hall conductivity gets quantized (2e2/h) with a spin quantization axis parallel to the canting direction. These findings are based on large-scale quantum simulations of the spin Hall conductivity tensor and nonlocal resistances in multiprobe geometries using a realistic tight-binding model elaborated from first-principle methods. The observation of this canted quantum spin Hall effect, related to the formation of topological edge states with nontrivial spin polarization, demands for specific experimental design and suggests interesting alternatives for manipulating spin information in topological materials.
KW - First principle method
KW - Quantum simulations
KW - Quantum Spin hall effect
KW - Quantum spin Hall phase
KW - Spin hall conductivity
KW - Spin quantization
KW - Tight binding model
KW - Topological materials
UR - https://www.scopus.com/pages/publications/85098136876
U2 - 10.1103/PhysRevLett.125.256603
DO - 10.1103/PhysRevLett.125.256603
M3 - Article
SN - 0031-9007
VL - 125
JO - Physical Review Letters
JF - Physical Review Letters
IS - 25
ER -