English

Enhanced thermal Hall effect in the square-lattice N\'eel state

Strongly Correlated Electrons 2019-12-04 v4 Superconductivity High Energy Physics - Theory

Abstract

Recent experiments on several cuprate compounds have identified an enhanced thermal Hall response in the pseudogap phase. Most strikingly, this enhancement persists even in the undoped system, which challenges our understanding of the insulating parent compounds. To explain these surprising observations, we study the quantum phase transition of a square-lattice antiferromagnet from a confining N\'eel state to a state with coexisting N\'eel and semion topological order. The transition is driven by an applied magnetic field and involves no change in the symmetry of the state. The critical point is described by a strongly-coupled conformal field theory with an emergent global SO(3)SO(3) symmetry. The field theory has four different formulations in terms of SU(2)SU(2) or U(1)U(1) gauge theories, which are all related by dualities; we relate all four theories to the lattice degrees of freedom. We show how proximity of the confining N\'eel state to the critical point can explain the enhanced thermal Hall effect seen in experiment.

Keywords

Cite

@article{arxiv.1903.01992,
  title  = {Enhanced thermal Hall effect in the square-lattice N\'eel state},
  author = {Rhine Samajdar and Mathias S. Scheurer and Shubhayu Chatterjee and Haoyu Guo and Cenke Xu and Subir Sachdev},
  journal= {arXiv preprint arXiv:1903.01992},
  year   = {2019}
}

Comments

8+5 pages, 4+1 figures

R2 v1 2026-06-23T07:59:00.777Z