Topology- and symmetry-protected domain wall conduction in quantum Hall nematics
Abstract
We consider domain walls in nematic quantum Hall ferromagnets predicted to form in multivalley semiconductors, recently probed by scanning tunnelling microscopy experiments on Bi(111) surfaces. We show that the domain wall properties depend sensitively on the filling factor of the underlying (integer) quantum Hall states. For and in the absence of impurity scattering we argue that the wall hosts a single-channel Luttinger liquid whose gaplessness is a consequence of valley and charge conservation. For , it supports a two-channel Luttinger liquid, which for sufficiently strong interactions enters a symmetry-preserving thermal metal phase with a charge gap coexisting with gapless neutral intervalley modes. The domain wall physics in this state is identical to that of a bosonic topological insulator protected by symmetry, and we provide a formal mapping between these problems. We discuss other unusual properties and experimental signatures of these `anomalous' one-dimensional systems.
Keywords
Cite
@article{arxiv.1807.10293,
title = {Topology- and symmetry-protected domain wall conduction in quantum Hall nematics},
author = {Kartiek Agarwal and Mallika T. Randeria and A. Yazdani and S. L. Sondhi and S. A. Parameswaran},
journal= {arXiv preprint arXiv:1807.10293},
year = {2019}
}
Comments
11 pages, 3 figures, published version