Entanglement of midspectrum eigenstates of chaotic many-body systems: Reasons for deviation from random ensembles

Research output: Contribution to journalResearch articleContributedpeer-review

Contributors

  • Masudul Haque - , Chair of Theoretical Solid State Physics, National University of Ireland Maynooth, Max-Planck-Institute for the Physics of Complex Systems, TUD Dresden University of Technology (Author)
  • Paul A. McClarty - , Max-Planck-Institute for the Physics of Complex Systems (Author)
  • Ivan M. Khaymovich - , Max-Planck-Institute for the Physics of Complex Systems, RAS - Institute of Applied Physics (Author)

Abstract

Eigenstates of local many-body interacting systems that are far from spectral edges are thought to be ergodic and close to being random states. This is consistent with the eigenstate thermalization hypothesis and volume-law scaling of entanglement. We point out that systematic departures from complete randomness are generically present in midspectrum eigenstates, and focus on the departure of the entanglement entropy from the random-state prediction. We show that the departure is (partly) due to spatial correlations and due to orthogonality to the eigenstates at the spectral edge, which imposes structure on the midspectrum eigenstates.

Details

Original languageEnglish
Article number014109
JournalPhysical Review E
Volume105
Issue number1
Publication statusPublished - Jan 2022
Peer-reviewedYes

External IDs

PubMed 35193274