English

Superradiant strongly correlated quantum states in cavity Hubbard model

Strongly Correlated Electrons 2026-03-17 v1

Abstract

In cavity quantum materials, entangling strongly correlated electrons with quantum light provides a unique opportunity to explore novel quantum phases and phase transitions absent in conventional solid-state materials. In this study, we develop a sign-problem-free fermion-photon hybrid Quantum Monte Carlo (QMC) algorithm, and use it to systematically investigate the ground-state phase diagram of a two-dimensional cavity Hubbard model. It is shown that the interplay between the electron correlation and photon condensation gives rise to intriguing quantum phases ({\it e.g.} superradiant antiferromagnetic and chiral/π\pi-flux states), and different quantum phase transitions, such as a first-order superradiant phase transition and a continuous phase transition with Gross-Neveu universality class. The methodology can be readily generalized to more complicated cavity strongly correlated models.

Keywords

Cite

@article{arxiv.2603.13657,
  title  = {Superradiant strongly correlated quantum states in cavity Hubbard model},
  author = {Kang Wang and Wei-Xuan Chang and Cheng-Yu Bi and Zi Cai and Zi-Xiang Li},
  journal= {arXiv preprint arXiv:2603.13657},
  year   = {2026}
}

Comments

5+8 pages, 4+4 figures