Spin-1/2 $J_{1}$-$J_{2}$ Heisenberg model on a cross-striped square lattice
Abstract
Using the coupled cluster method (CCM) we study the full (zero-temperature) ground-state (GS) phase diagram of a spin-half () - Heisenberg model on a cross-striped square lattice. Each site of the square lattice has 4 nearest-neighbour exchange bonds of strength and 2 next-nearest-neighbour (diagonal) bonds of strength . The bonds are arranged so that the basic square plaquettes in alternating columns have either both or no bonds included. The classical () version of the model has 4 collinear phases when and can take either sign. Three phases are antiferromagnetic (AFM), showing so-called N\'{e}el, double N\'{e}el and double columnar striped order respectively, while the fourth is ferromagnetic. For the quantum model we use the 3 classical AFM phases as CCM reference states, on top of which the multispin-flip configurations arising from quantum fluctuations are incorporated in a systematic truncation hierarchy. Calculations of the corresponding GS energy, magnetic order parameter and the susceptibilities of the states to various forms of valence-bond crystalline (VBC) order are thus carried out numerically to high orders of approximation and then extrapolated to the (exact) physical limit. We find that the model has 5 phases, which correspond to the four classical phases plus a new quantum phase with plaquette VBC order. The positions of the 5 quantum critical points are determined with high accuracy. While all 4 phase transitions in the classical model are first order, we find strong evidence that 3 of the 5 quantum phase transitions in the model are of continuous deconfined type.
Keywords
Cite
@article{arxiv.1308.4573,
title = {Spin-1/2 $J_{1}$-$J_{2}$ Heisenberg model on a cross-striped square lattice},
author = {R. F. Bishop and P. H. Y. Li and C. E. Campbell},
journal= {arXiv preprint arXiv:1308.4573},
year = {2014}
}