English

Quasilocal entanglement across the Mott-Hubbard transition

Strongly Correlated Electrons 2024-03-11 v2 Quantum Gases Quantum Physics

Abstract

The possibility to directly measure, in a cold-atom quantum simulator, the von Neumann entropy and mutual information between a site and its environment opens new perspectives on the characterization of the Mott-Hubbard metal-insulator transition, in the framework of quantum information theory. In this work we provide an alternative view of the Mott transition in the two-dimensional Hubbard model in terms of rigorous quasilocal measures of entanglement and correlation between two spatially separated electronic orbitals, with no contribution from their environment. A space-resolved analysis of cluster dynamical mean-field theory results elucidates the prominent role of the nearest-neighbor entanglement in probing Mott localization: both its lower and upper bounds sharply increase at the metal-insulator transition. The two-site entanglement beyond nearest neighbors is shown to be quickly damped as the inter-site distance is increased. These results ultimately resolve a conundrum of previous analyses based on the single-site von Neumann entropy, which has been found to monotonically decrease when the interaction is increased. The quasilocal two-site entanglement recovers instead the distinctive character of Mott insulators as strongly correlated quantum states, demonstrating its central role in the 2d2d Hubbard model.

Keywords

Cite

@article{arxiv.2308.13706,
  title  = {Quasilocal entanglement across the Mott-Hubbard transition},
  author = {Gabriele Bellomia and Carlos Mejuto-Zaera and Massimo Capone and Adriano Amaricci},
  journal= {arXiv preprint arXiv:2308.13706},
  year   = {2024}
}

Comments

Revised version | 15 pages, 5 figures, 2 tables | Peer-Reviewed on Phys. Rev. X, Published in Phys. Rev. B