Criticality at the Haldane-insulator charge-density-wave quantum phase transition
Abstract
Exploiting the entanglement concept within a matrix-product-state based infinite density-matrix renormalization group approach, we show that the spin-density-wave and bond-order-wave ground states of the one-dimensional half-filled extended Hubbard model give way to a symmetry-protected topological Haldane state in case an additional alternating ferromagnetic spin interaction is added. In the Haldane insulator the lowest entanglement level features a characteristic twofold degeneracy. Increasing the ratio between nearest-neighbor and local Coulomb interaction , the enhancement of the entanglement entropy, the variation of the charge, spin and neutral gaps, and the dynamical spin/density response signal a quantum phase transition to a charge-ordered state. Below a critical point, which belongs to the universality class of the tricritical Ising model with central charge 7/10, the model is critical with along the transition line. Above this point, the transition between the Haldane insulator and charge-density-wave phases becomes first order.
Keywords
Cite
@article{arxiv.1506.04003,
title = {Criticality at the Haldane-insulator charge-density-wave quantum phase transition},
author = {Florian Lange and Satoshi Ejima and Holger Fehske},
journal= {arXiv preprint arXiv:1506.04003},
year = {2015}
}
Comments
5 pages, 5 figures, revised and extended version