Universal Order Parameters and Quantum Phase Transitions: A Finite-Size Approach
Abstract
We propose a method to construct universal order parameters for quantum phase transitions in many-body lattice systems. The method exploits the -orthogonality of a few near-degenerate lowest states of the Hamiltonian describing a given finite-size system, which makes it possible to perform finite-size scaling and take full advantage of currently available numerical algorithms. An explicit connection is established between the fidelity per site between two -orthogonal states and the energy gap between the ground state and low-lying excited states in the finite-size system. The physical information encoded in this gap arising from finite-size fluctuations clarifies the origin of the universal order parameter.We demonstrate the procedure for the one-dimensional quantum formulation of the -state Potts model, for and 5, as prototypical examples, using finite-size data obtained from the density matrix renormalization group (DMRG) algorithm.
Cite
@article{arxiv.1406.3588,
title = {Universal Order Parameters and Quantum Phase Transitions: A Finite-Size Approach},
author = {Qian-Qian Shi and Huan-Qiang Zhou and Murray T. Batchelor},
journal= {arXiv preprint arXiv:1406.3588},
year = {2015}
}
Comments
4 pages, 4 figures