Symmetry, spin-texture, and tunable quantum geometry in WTe2 monolayer

ORAL

Abstract

The spin orientation of electronic wavefunctions in crystals is an internal degree of freedom, typically insensitive to electrical knobs. We argue from a general symmetry analysis and a k.p perspective, that monolayer 1T'-WTe2 possesses an electrically tunable bulk band quantum geometry arising from a gate-activated canted spin texture. In particular, we find that due to its out-of-plane asymmetry, an applied out-of-plane electric field breaks inversion symmetry to induce both in-plane and out-of-plane electric dipoles. These in-turn generate spin-orbit coupling to lift the spin degeneracy and enable a bulk band Berry curvature and magnetic moment distribution to develop. Further, due to its low symmetry, Berry curvature and magnetic moment in 1T'-WTe2 possess a dipolar distribution in momentum space, and can lead to unconventional effects such as a current induced magnetization and quantum non-linear anomalous Hall effect. These render 1T'-WTe2 a rich two-dimensional platform for all-electrical control over quantum geometric effects.

Presenters

  • Justin Song

    Division of Physics and Applied Physics, Nanyang Technological University, Nanyang Technological University Singapore and Institute of High Performance Computing Singapore, Nanyang Technological University, Singapore, Nanyang Technological University

Authors

  • Li-kun Shi

    Institute of High Performance Computing

  • Justin Song

    Division of Physics and Applied Physics, Nanyang Technological University, Nanyang Technological University Singapore and Institute of High Performance Computing Singapore, Nanyang Technological University, Singapore, Nanyang Technological University