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Investigations into the nature of edge conduction in monolayer WTe<sub>2</sub>

ORAL

Abstract

Monolayer WTe2 displays edge conduction that is consistent with the material being a two-dimensional topological insulator, where the current is confined to helical edge modes while the interior region is insulating. The helical nature of the edge conduction should limit the conductance between adjacent contacts on an edge to e2/h, and this is consistent with experiments to date. However, the helical nature has not been supported by experiments that probe the spin properties of the edge states, and the reason the conductance is always less than e2/h is not yet established. To address this, we investigate the dependence on magnetic field orientation of the conduction of edges and cracks in monolayer WTe2 flakes as a function of gate voltage, temperature, and edge direction relative to the crystal axes. Most importantly, we find that the conductance is suppressed by the component of the field perpendicular to a particular axis in the crystal. A theoretical model of the bands accounting for the crystal symmetries is consistent with this being the spin axis, implying a very simple form for the spin-orbit coupling in this material.

Publication: W. Zhao, E. Runburg, Z. Fei, J. Mutch, P. Malinowski, B. Sun, X. Huang, D. Pesin, Y. Cui, X. Xu, J. Chu, D. Cobden, "Determination of the Spin Axis in Quantum Spin Hall Insulator Candidate Monolayer WTe2". Physical Review X. Accepted.

Presenters

  • Elliott Runburg

    University of Washington

Authors

  • Elliott Runburg

    University of Washington

  • Wenjin Zhao

    University of Washington

  • Zaiyao Fei

    University of Washington

  • Joshua C Mutch

    University of Washington

  • Paul T Malinowski

    University of Washington

  • Bosong Sun

    University of Washington

  • Xiong Huang

    University of California, Riverside

  • Dmytro Pesin

    University of Virginia, Univ of Virginia

  • Yongtao Cui

    University of California, Riverside

  • Xiaodong Xu

    University of Washington

  • Jiun-Haw Chu

    University of Washington

  • David H Cobden

    University of Washington