English

First-Order Topological Quantum Phase Transition in a Strongly Correlated Ladder

Strongly Correlated Electrons 2019-03-06 v1 Quantum Gases Quantum Physics

Abstract

We report on the discovery of a quantum tri-critical point (QTP) separating a line of first-order topological quantum phase transitions from a continuous transition regime in a strongly correlated one-dimensional lattice system. Specifically, we study a fermionic four-leg ladder supporting a symmetry-protected topological phase in the presence of on-site interaction, which is driven towards a trivial gapped phase by a nearest-neighbor interaction. Based on DMRG simulations, we show that, as a function of the interaction strength, the phase transition between the topological and the trivial phase switches from being continuous to exhibiting a first-order character. Remarkably, the QTP as well as the first-order character of the topological transition in the strongly correlated regime are found to clearly manifest in simple local observables.

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Cite

@article{arxiv.1812.01045,
  title  = {First-Order Topological Quantum Phase Transition in a Strongly Correlated Ladder},
  author = {S. Barbarino and G. Sangiovanni and J. C. Budich},
  journal= {arXiv preprint arXiv:1812.01045},
  year   = {2019}
}