English

3D quantum Hall effect of Fermi arcs in topological semimetals

Mesoscale and Nanoscale Physics 2017-10-05 v3 Materials Science

Abstract

The quantum Hall effect is usually observed in 2D systems. We show that the Fermi arcs can give rise to a distinctive 3D quantum Hall effect in topological semimetals. Because of the topological constraint, the Fermi arc at a single surface has an open Fermi surface, which cannot host the quantum Hall effect. Via a "wormhole" tunneling assisted by the Weyl nodes, the Fermi arcs at opposite surfaces can form a complete Fermi loop and support the quantum Hall effect. The edge states of the Fermi arcs show a unique 3D distribution, giving an example of (d-2)-dimensional boundary states. This is distinctly different from the surface-state quantum Hall effect from a single surface of topological insulator. As the Fermi energy sweeps through the Weyl nodes, the sheet Hall conductivity evolves from the 1/B dependence to quantized plateaus at the Weyl nodes. This behavior can be realized by tuning gate voltages in a slab of topological semimetal, such as the TaAs family, Cd3_3As2_2, or Na3_3Bi. This work will be instructive not only for searching transport signatures of the Fermi arcs but also for exploring novel electron gases in other topological phases of matter.

Keywords

Cite

@article{arxiv.1705.07403,
  title  = {3D quantum Hall effect of Fermi arcs in topological semimetals},
  author = {C. M. Wang and Hai-Peng Sun and Hai-Zhou Lu and X. C. Xie},
  journal= {arXiv preprint arXiv:1705.07403},
  year   = {2017}
}

Comments

5 pages, 3 figures