Parity anomaly driven topological transitions in magnetic field
Abstract
Recent developments in solid state physics give a prospect to observe the parity anomaly in (2+1)D massive Dirac systems. Here we show, that the quantum anomalous Hall (QAH) state in orbital magnetic fields originates from the Dirac mass term and induces an anomalous four-current related to the parity anomaly. This differentiates the QAH from the quantum Hall (QH) state for the experimentally relevant case of an effective constant density (seen by the gate). A direct signature of QAH phase in magnetic fields is a long () plateau in Cr(BiSb)Te (HgMnTe quantum wells). Furthermore, we predict a new transition between the quantum spin Hall (QSH) and the QAH state in magnetic fields, for constant effective carrier density, without magnetic impurities but driven by effective g-factors and particle-hole asymmetry. This transition can be related to the stability of edge states in the Dirac mass gap of 2D topological insulators (TIs), even in high magnetic fields.
Cite
@article{arxiv.1607.07768,
title = {Parity anomaly driven topological transitions in magnetic field},
author = {Jan Böttcher and Ewelina M. Hankiewicz},
journal= {arXiv preprint arXiv:1607.07768},
year = {2019}
}
Comments
After submission, we gained a deeper understanding of the parity anomaly (from the perspective of QFT and time-dependent perturbation theory) and found new experimental hallmarks in the condensed matter context. It is due to these developments that we decided to withdraw this (unpublished) manuscript and submitted a completely new paper to arXiv:1901.05425