Projected Entangled Pair States at Finite Temperature: Iterative Self-Consistent Bond Renormalization for Exact Imaginary Time Evolution
Abstract
A projected entangled pair state (PEPS) with ancillas can be evolved in imaginary time to obtain thermal states of a strongly correlated quantum system on a 2D lattice. Every application of a Suzuki-Trotter gate multiplies the PEPS bond dimension by a factor . It has to be renormalized back to the original . In order to preserve the accuracy of the Suzuki-Trotter (S-T) decomposition, the renormalization has in principle to take into account full environment made of the new tensors with the bond dimension . Here we propose a self-consistent renormalization procedure operating with the original bond dimension , but without compromising the accuracy of the S-T decomposition. The iterative procedure renormalizes the bond using full environment made of renormalized tensors with the bond dimension . After every renormalization, the new renormalized tensors are used to update the environment, and then the renormalization is repeated again and again until convergence. As a benchmark application, we obtain thermal states of the transverse field quantum Ising model on a square lattice - both infinite and finite - evolving the system across a second-order phase transition at finite temperature.
Keywords
Cite
@article{arxiv.1411.6778,
title = {Projected Entangled Pair States at Finite Temperature: Iterative Self-Consistent Bond Renormalization for Exact Imaginary Time Evolution},
author = {Piotr Czarnik and Jacek Dziarmaga},
journal= {arXiv preprint arXiv:1411.6778},
year = {2015}
}
Comments
9 pages, 14 figures, improved presentation. arXiv admin note: text overlap with arXiv:1311.7272