English

Inaccessible entanglement in symmetry protected topological phases

Quantum Physics 2020-08-18 v1 Strongly Correlated Electrons

Abstract

We study the entanglement structure of symmetry-protected topological (SPT) phases from an operational point of view by considering entanglement distillation in the presence of symmetries. We demonstrate that non-trivial SPT phases in one-dimension necessarily contain some entanglement which is inaccessible if the symmetry is enforced. More precisely, we consider the setting of local operations and classical communication (LOCC) where the local operations commute with a global onsite symmetry group GG, which we call GG-LOCC, and we define the inaccessible entanglement EinaccE_{inacc} as the entanglement that cannot be used for distillation under GG-LOCC. We derive a tight bound on EinaccE_{inacc} which demonstrates a direct relation between inaccessible entanglement and the SPT phase, namely log(Dω2)Einacclog(G)\log(D_\omega^2) \leq E_{inacc} \leq \log(|G|), where DωD_\omega is the topologically protected edge mode degeneracy of the SPT phase ω\omega with symmetry GG. For particular phases such as the Haldane phase, Dω=GD_\omega = \sqrt{|G|} so the bound becomes an equality. We numerically investigate the distribution of states throughout the bound, and show that typically the region near the upper bound is highly populated, and also determine the nature of those states lying on the upper and lower bounds. We then discuss the relation of EinaccE_{inacc} to string order parameters, and also the extent to which it can be used to distinguish different SPT phases of matter.

Keywords

Cite

@article{arxiv.2003.06830,
  title  = {Inaccessible entanglement in symmetry protected topological phases},
  author = {Caroline de Groot and David T. Stephen and Andras Molnar and Norbert Schuch},
  journal= {arXiv preprint arXiv:2003.06830},
  year   = {2020}
}

Comments

16 pages, 7 figures

R2 v1 2026-06-23T14:15:14.149Z