English

Fermionic Symmetry-Protected Topological Phase in a Two-Dimensional Hubbard Model

Strongly Correlated Electrons 2016-08-26 v2

Abstract

We study the two-dimensional (2D) Hubbard model using exact diagonalization for spin-1/2 fermions on the triangular and honeycomb lattices decorated with a single hexagon per site. In certain parameter ranges, the Hubbard model maps to a quantum compass model on those lattices. On the triangular lattice, the compass model exhibits collinear stripe antiferromagnetism, implying dd-density wave charge order in the original Hubbard model. On the honeycomb lattice, the compass model has a unique, quantum disordered ground state that transforms nontrivially under lattice reflection. The ground state of the Hubbard model on the decorated honeycomb lattice is thus a 2D fermionic symmetry-protected topological phase. This state -- protected by time-reversal and reflection symmetries -- cannot be connected adiabatically to a free-fermion topological phase.

Keywords

Cite

@article{arxiv.1603.03439,
  title  = {Fermionic Symmetry-Protected Topological Phase in a Two-Dimensional Hubbard Model},
  author = {Cheng-Chien Chen and Lukas Muechler and Roberto Car and Titus Neupert and Joseph Maciejko},
  journal= {arXiv preprint arXiv:1603.03439},
  year   = {2016}
}

Comments

Original: 5+3 pages, 4+2 figures, including the supplemental material. Revised: updated title, content, and references in version 2

R2 v1 2026-06-22T13:08:27.202Z