Collective modes of a helical liquid

ORAL

Abstract

We study low energy collective modes and transport properties of the ``helical metal" on the surface of a topological insulator. At low energies, electrical transport and spin dynamics at the surface are exactly related by an operator identity equating the electric current to the in-plane components of the spin degrees of freedom. From this relation it follows that an undamped spin wave always accompanies the sound mode in the helical metal -- thus it is possible to `hear' the sound of spins. In the presence of long range Coulomb interactions, the surface plasmon mode is also coupled to the spin wave, giving rise to a hybridized ``spin-plasmon" mode. We make quantitative predictions for the spin-plasmon in ${\rm Bi}_2{\rm Se}_3$, and discuss its detection in a spin-grating experiment.

*This work is supported by the Department of Energy, Office of Basic Energy Sciences, Division of Materials Sciences and Engineering, under contract DE-AC02-76SF00515, and by the Stanford Institutefor Theoretical Physics (SITP) postdoctoral fellowship.

Authors

  • Srinivas Raghu

    • Stanford University
  • Suk Bum Chung

    • Stanford University
  • Xiao-Liang Qi

    • Stanford University
    • Dept. Physics, Stanford Univ
    • Microsoft Station Q
    • Department of Physics, Stanford University
  • Shoucheng Zhang

    • Stanford University
    • Dept. Physics, Stanford Univ
    • Department of Physics, Stanford University