Spin Liquid Ground State of the Spin-1/2 Square $J_1$-$J_2$ Heisenberg Model
Abstract
We perform highly accurate density matrix renormalization group (DMRG) simulations to investigate the ground state properties of the spin-1/2 antiferromagnetic square lattice Heisenberg - model. Based on studies of numerous long cylinders with circumferences of up to 14 lattice spacings, we obtain strong evidence for a topological quantum spin liquid state in the region , separating conventional N\'eel and striped antiferromagnetic states for smaller and larger , respectively. The quantum spin liquid is characterized numerically by the absence of magnetic or valence bond solid order, and non-zero singlet and triplet energy gaps. Furthermore, we positively identify its topological nature by measuring a non-zero topological entanglement entropy , extremely close to (expected for a quantum spin liquid) and a non-trivial finite size dimerization effect depending upon the parity of the circumference of the cylinder. We also point out that a valence bond solid, and indeed any discrete symmetry breaking state, would be expected to show a constant correction to the entanglement entropy of {\sl opposite} sign to the topological entanglement entropy.
Keywords
Cite
@article{arxiv.1112.2241,
title = {Spin Liquid Ground State of the Spin-1/2 Square $J_1$-$J_2$ Heisenberg Model},
author = {Hong-Chen Jiang and Hong Yao and Leon Balents},
journal= {arXiv preprint arXiv:1112.2241},
year = {2012}
}
Comments
14 pages, 6 figures in the main text. Accuracy improved and missing references added