English

Disentangling Sources of Quantum Entanglement in Quench Dynamics

Strongly Correlated Electrons 2019-08-28 v3 Statistical Mechanics Quantum Physics

Abstract

Quantum entanglement may have various origins ranging from solely interaction-driven quantum correlations to single-particle effects. Here, we explore the dependence of entanglement on time-dependent single-particle basis transformations in fermionic quantum many-body systems, thus aiming at isolating single-particle sources of entanglement growth in quench dynamics. Using exact diagonalization methods, for paradigmatic non-integrable models we compare to the standard real space cut various physically motivated bipartitions. Moreover, we search for a minimal entanglement basis using local optimization algorithms, which at short to intermediate post-quench times yields a significant reduction of entanglement beyond a dynamical Hartree-Fock solution. In the long-time limit, we identify an asymptotic universality of entanglement for weakly interacting systems, as well as a cross-over from dominant real-space to momentum-space entanglement in Hubbard-models undergoing an interaction quench. Finally, we discuss the relevance of our findings for the development of tensor network based algorithms for quantum dynamics.

Keywords

Cite

@article{arxiv.1905.05782,
  title  = {Disentangling Sources of Quantum Entanglement in Quench Dynamics},
  author = {Lorenzo Pastori and Markus Heyl and Jan Carl Budich},
  journal= {arXiv preprint arXiv:1905.05782},
  year   = {2019}
}

Comments

Updated version with minor modifications