Entanglement and localization transitions in eigenstates of interacting chaotic systems

Research output: Contribution to journalResearch articleContributedpeer-review

Contributors

  • Arul Lakshminarayan - , Max-Planck-Institute for the Physics of Complex Systems, Indian Institute of Technology Madras (IITM) (Author)
  • Shashi C.L. Srivastava - , Max-Planck-Institute for the Physics of Complex Systems, Variable Energy Cyclotron Centre (Author)
  • Roland Ketzmerick - , Chair of Computational Physics, Max-Planck-Institute for the Physics of Complex Systems (Author)
  • Arnd Bäcker - , Chair of Computational Physics, Max-Planck-Institute for the Physics of Complex Systems (Author)
  • Steven Tomsovic - , Max-Planck-Institute for the Physics of Complex Systems, TUD Dresden University of Technology, Washington State University Pullman (Author)

Abstract

The entanglement and localization in eigenstates of strongly chaotic subsystems are studied as a function of their interaction strength. Excellent measures for this purpose are the von Neumann entropy, Havrda-Charvát-Tsallis entropies, and the averaged inverse participation ratio. All the entropies are shown to follow a remarkably simple exponential form, which describes a universal and rapid transition to nearly maximal entanglement for increasing interaction strength. An unexpectedly exact relationship between the subsystem averaged inverse participation ratio and purity is derived that prescribes the transition in the localization as well.

Details

Original languageEnglish
Article number010205
Number of pages5
JournalPhysical Review E
Volume94
Publication statusPublished - 22 Jul 2016
Peer-reviewedYes

External IDs

Scopus 84980021838

Keywords

Keywords

  • eigenstates, interacting chaotic systems