Emergent topological properties in interacting one-dimensional systems with spin-orbit coupling
Abstract
We present analysis of a single channel interacting quantum wire problem in the presence of spin-orbit interaction. The spin-orbit coupling breaks the spin-rotational symmetry from SU(2) to U(1) and breaks inversion symmetry. The low-energy theory is then a two band model with a difference of Fermi velocities . Using bosonization and a two-loop renormalization group procedure we show that electron-electron interactions can open a gap in the spin sector of the theory when the interaction strength is smaller than in appropriate units. For repulsive interactions, the resulting strong coupling phase is of the spin-density-wave type. We show that this phase has peculiar emergent topological properties. The gapped spin sector behaves as a topological insulator, with zero-energy edge modes with fractional spin. On the other hand, the charge sector remains critical, meaning the entire system is metallic. However, this bulk electron liquid as a whole exhibits properties commonly associated with the one-dimensional edge states of two-dimensional spin-Hall insulators, in particular, the conduction of is robust against nonmagnetic impurities.
Cite
@article{arxiv.1504.05016,
title = {Emergent topological properties in interacting one-dimensional systems with spin-orbit coupling},
author = {Nikolaos Kainaris and Sam T. Carr},
journal= {arXiv preprint arXiv:1504.05016},
year = {2015}
}
Comments
16 pages, 3 figures