English

Projected Entangled Pair States at Finite Temperature: Iterative Self-Consistent Bond Renormalization for Exact Imaginary Time Evolution

Quantum Physics 2015-07-10 v2 Strongly Correlated Electrons

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 DD by a factor kk. It has to be renormalized back to the original DD. 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 k×Dk\times D. Here we propose a self-consistent renormalization procedure operating with the original bond dimension DD, 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 DD. 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

R2 v1 2026-06-22T07:11:12.770Z