Topological Gap Opening without Symmetry Breaking from Dynamical Quantum Correlations
Abstract
Topological phase transitions are typically associated with the formation of gapless states. Spontaneous symmetry breaking can lead to a gap opening thereby obliterating the topological nature of the system. Here we highlight a completely different destiny for a topological transition in presence of interaction. Solving a Bernevig-Hughes-Zhang model with local interaction, we show that dynamical quantum fluctuations can lead to the opening of a gap without any symmetry breaking. As we vary the interaction and the bare mass of the model, the continuous gapless topological transition turns into a first-order one, associated with the presence of massive Dirac fermion at the transition point showing a Gross-Neveu critical behaviour near the quantum critical endpoint. We identify the gap opening as a condensed matter analog of the Coleman-Weinberg mechanism of mass generation.
Cite
@article{arxiv.2311.10024,
title = {Topological Gap Opening without Symmetry Breaking from Dynamical Quantum Correlations},
author = {Francesca Paoletti and Laura Fanfarillo and Massimo Capone and Adriano Amaricci},
journal= {arXiv preprint arXiv:2311.10024},
year = {2025}
}
Comments
6 pages, 2 figures