English

Sublattice structure and topology in spontaneously crystallized electronic states

Strongly Correlated Electrons 2024-07-04 v1 Mesoscale and Nanoscale Physics

Abstract

The prediction and realization of the quantum anomalous Hall effect are often intimately connected to honeycomb lattices in which the sublattice degree of freedom plays a central role in the nontrivial topology. Two-dimensional Wigner crystals, on the other hand, form triangular lattices without sublattice degrees of freedom, resulting in a topologically trivial state. In this Letter, we discuss the possibility of spontaneously formed honeycomb-lattice crystals that exhibit the quantum anomalous Hall effect. Starting from a single-band system with nontrivial quantum geometry, we derive the mean-field energy functional of a class of crystal states and express it as a model of sublattice pseudospins in momentum space. We find that nontrivial quantum geometry leads to extra terms in the pseudospin model that break an effective `time-reversal symmetry' and favor a topologically nontrivial pseudospin texture. When the effects of these extra terms dominate over the ferromagnetic exchange coupling between pseudospins, the anomalous Hall crystal state becomes energetically favorable over the trivial Wigner crystal state.

Keywords

Cite

@article{arxiv.2402.17867,
  title  = {Sublattice structure and topology in spontaneously crystallized electronic states},
  author = {Yongxin Zeng and Daniele Guerci and Valentin Crépel and Andrew J. Millis and Jennifer Cano},
  journal= {arXiv preprint arXiv:2402.17867},
  year   = {2024}
}