English

Higher-order topological Peierls insulator in a two-dimensional atom-cavity system

Quantum Gases 2023-05-08 v1 Quantum Physics

Abstract

In this work, we investigate a two-dimensional system of ultracold bosonic atoms inside an optical cavity, and show how photon-mediated interactions give rise to a plaquette-ordered bond pattern in the atomic ground state. The latter corresponds to a 2D Peierls transition, generalizing the spontaneous bond dimmerization driven by phonon-electron interactions in the 1D Su-Schrieffer-Heeger (SSH) model. Here the bosonic nature of the atoms plays a crucial role to generate the phase, as similar generalizations with fermionic matter do not lead to a plaquette structure. Similar to the SSH model, we show how this pattern opens a non-trivial topological gap in 2D, resulting in a higher-order topological phase hosting corner states, that we characterize by means of a many-body topological invariant and through its entanglement structure. Finally, we demonstrate how this higher-order topological Peierls insulator can be readily prepared in atomic experiments through adiabatic protocols. Our work thus shows how atomic quantum simulators can be harnessed to investigate novel strongly-correlated topological phenomena beyond those observed in natural materials.

Keywords

Cite

@article{arxiv.2305.03409,
  title  = {Higher-order topological Peierls insulator in a two-dimensional atom-cavity system},
  author = {Joana Fraxanet and Alexandre Dauphin and Maciej Lewenstein and Luca Barbiero and Daniel González-Cuadra},
  journal= {arXiv preprint arXiv:2305.03409},
  year   = {2023}
}

Comments

5+2 pages, 4+1 figures

R2 v1 2026-06-28T10:26:41.242Z