English

Quantum spin-liquid emerging in two-dimensional correlated Dirac fermions

Strongly Correlated Electrons 2010-04-15 v1

Abstract

At sufficiently low temperatures, condensed-matter systems tend to develop order. An exception are quantum spin-liquids, where fluctuations prevent a transition to an ordered state down to the lowest temperatures. While such states are possibly realized in two-dimensional organic compounds, they have remained elusive in experimentally relevant microscopic two-dimensional models. Here, we show by means of large-scale quantum Monte Carlo simulations of correlated fermions on the honeycomb lattice, a structure realized in graphene, that a quantum spin-liquid emerges between the state described by massless Dirac fermions and an antiferromagnetically ordered Mott insulator. This unexpected quantum-disordered state is found to be a short-range resonating valence bond liquid, akin to the one proposed for high temperature superconductors. Therefore, the possibility of unconventional superconductivity through doping arises. We foresee its realization with ultra-cold atoms or with honeycomb lattices made with group IV elements.

Keywords

Cite

@article{arxiv.1003.5809,
  title  = {Quantum spin-liquid emerging in two-dimensional correlated Dirac fermions},
  author = {Z. Y. Meng and T. C. Lang and S. Wessel and F. F. Assaad and A. Muramatsu},
  journal= {arXiv preprint arXiv:1003.5809},
  year   = {2010}
}

Comments

42 pages, 4 figures in the main text, 11 figures in the Supplementary Information

R2 v1 2026-06-21T15:04:29.843Z