English

Interaction-Driven Topological Switch in a $P$-Band Honeycomb Lattice

Strongly Correlated Electrons 2019-07-10 v1

Abstract

The non-interacting band structure of spinless fermions in a two-dimensional (d=2d=2) pp-band honeycomb lattice exhibits two quadratic band touching points (QBTPs), which lie at the Fermi levels of filling ν=1/4\nu=1/4 and its particle-hole conjugated filling ν=3/4\nu=3/4. A weak Hubbard interaction UU spontaneously breaks the time-reversal symmetry and removes the QBTP, rendering the system into a quantum anomalous Hall insulator (QAHI). The first-order topological nature of QAHI is characterized by a nontrivial Chern number and supports (d1d-1)-dimensional chiral edge modes. With increasing the interaction UU, the system is driven into a Dirac semimetal by breaking the crystal symmetry through a discontinuous quantum phase transition. The emergent Dirac points each with Berry flux π\pi are generated in pairs, originating from the 2π2\pi Berry flux of QBTP. A sufficiently large UU ultimately drives the system into a dimerized insulator (DI) by simultaneously annihilating the Dirac points at the Brillouin zone boundary. The second-order topological nature of DI is characterized by the quantized polarizations and supports (d2d-2)-dimensional corner states. Our study provides a unique setting for exploring the topological switch between the first-order and second-order topological insulators.

Keywords

Cite

@article{arxiv.1812.06385,
  title  = {Interaction-Driven Topological Switch in a $P$-Band Honeycomb Lattice},
  author = {Hua Chen and X. C. Xie},
  journal= {arXiv preprint arXiv:1812.06385},
  year   = {2019}
}

Comments

7 pages, 4 figures

R2 v1 2026-06-23T06:43:39.822Z