English

From an Antiferromagnet to a Valence Bond Solid: Evidence for a First Order Phase Transition

Strongly Correlated Electrons 2009-11-13 v1

Abstract

Using a loop-cluster algorithm we investigate the spin 1/2 Heisenberg antiferromagnet on a square lattice with exchange coupling JJ and an additional four-spin interaction of strength QQ. We confirm the existence of a phase transition separating antiferromagnetism at J/Q>Jc/QJ/Q > J_c/Q from a valence bond solid (VBS) state at J/Q<Jc/QJ/Q < J_c/Q. Although our Monte Carlo data are consistent with those of previous studies, we do not confirm the existence of a deconfined quantum critical point. Instead, using a flowgram method on lattices as large as 80280^2, we find evidence for a weak first order phase transition. We also present a detailed study of the antiferromagnetic phase. For J/Q>Jc/QJ/Q > J_c/Q the staggered magnetization, the spin stiffness, and the spinwave velocity of the antiferromagnet are determined by fitting Monte Carlo data to analytic results from the systematic low-energy effective field theory for magnons. Finally, we also investigate the physics of the VBS state at J/Q<Jc/QJ/Q < J_c/Q, and we show that long but finite antiferromagnetic correlations are still present.

Keywords

Cite

@article{arxiv.0710.3926,
  title  = {From an Antiferromagnet to a Valence Bond Solid: Evidence for a First Order Phase Transition},
  author = {F. -J. Jiang and M. Nyfeler and S. Chandrasekharan and U. -J. Wiese},
  journal= {arXiv preprint arXiv:0710.3926},
  year   = {2009}
}

Comments

21 pages, 10 figures