Quantum spin Hall phase in 2D trigonal lattice

ORAL

Abstract

The quantum spin Hall (QSH) phase is an exotic phenomena in condensed-matter physics. Here we show that a minimal basis of three orbitals (s, px, py) is required to produce a QSH phase via nearest-neighbour hopping in a two-dimensional trigonal lattice. Tight-binding model analyses and calculations show that the QSH phase arises from a spin–orbit coupling (SOC)-induced s–p band inversion or p–p bandgap opening at Brillouin zone centre, whose topological phase diagram is mapped out in the parameter space of orbital energy and SOC. Remarkably, based on first-principles calculations, this exact model of QSH phase is shown to be realizable in an experimental system of Au/GaAs(111), facilitating the possible room-temperature measurement. Our results will extend the search for substrate supported QSH materials to new lattice and orbital types.

*This work was supported by Chinese Youth One Thousand Talents Program, Fundamental Research Funds for the Central Universities and DOE-BES (No. DE-FG02-04ER46148).

Presenters

  • Zhengfei Wang

    • Univ of Sci & Tech of China

Authors

  • Zhengfei Wang

    • Univ of Sci & Tech of China
  • Kyung-Hwan Jin

    • Univ of Utah
    • University of Utah
    • Department of Materials Science and Engineering, Univ of Utah
  • Feng Liu

    • University of Utah
    • Univ of Utah
    • Department of Materials Science and Engineering, Univ of Utah
    • Department of Materials Science and Engineering, University of Utah