English

Devil's staircase of topological Peierls insulators and Peierls supersolids

Quantum Gases 2022-07-01 v6 Mesoscale and Nanoscale Physics Strongly Correlated Electrons Quantum Physics

Abstract

We consider a mixture of ultracold bosonic atoms on a one-dimensional lattice described by the XXZ-Bose-Hubbard model, where the tunneling of one species depends on the spin state of a second deeply trapped species. We show how the inclusion of antiferromagnetic interactions among the spin degrees of freedom generates a Devil's staircase of symmetry-protected topological phases for a wide parameter regime via a bosonic analog of the Peierls mechanism in electron-phonon systems. These topological Peierls insulators are examples of symmetry-breaking topological phases, where long-range order due to spontaneous symmetry breaking coexists with topological properties such as fractionalized edge states. Moreover, we identify a region of supersolid phases that do not require long-range interactions. They appear instead due to a Peierls incommensurability mechanism, where competing orders modify the underlying crystalline structure of Peierls insulators, becoming superfluid. Our work show the possibilities that ultracold atomic systems offer to investigate strongly-correlated topological phenomena beyond those found in natural materials.

Keywords

Cite

@article{arxiv.2011.09228,
  title  = {Devil's staircase of topological Peierls insulators and Peierls supersolids},
  author = {Titas Chanda and Daniel González-Cuadra and Maciej Lewenstein and Luca Tagliacozzo and Jakub Zakrzewski},
  journal= {arXiv preprint arXiv:2011.09228},
  year   = {2022}
}

Comments

24 pages, 9 figures. Close to published version