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Topological entanglement entropy of fracton stabilizer codes

  • Han Ma
  • , A. T. Schmitz
  • , S. A. Parameswaran
  • , Michael Hermele
  • , Rahul M. Nandkishore
  • University of Colorado Boulder
  • University of Oxford
  • University of California at Irvine

Research output: Contribution to journalArticlepeer-review

91 Scopus citations

Abstract

Entanglement entropy provides a powerful characterization of two-dimensional gapped topological phases of quantum matter, intimately tied to their description by topological quantum field theories (TQFTs). Fracton topological orders are three-dimensional gapped topologically ordered states of matter that lack a TQFT description. We show that three-dimensional fracton phases are nevertheless characterized, at least partially, by universal structure in the entanglement entropy of their ground-state wave functions. We explicitly compute the entanglement entropy for two archetypal fracton models, the "X-cube model" and "Haah's code," and demonstrate the existence of a nonlocal contribution that scales linearly in subsystem size. We show via Schrieffer-Wolff transformations that this piece of the entanglement entropy of fracton models is robust against arbitrary local perturbations of the Hamiltonian. Finally, we argue that these results may be extended to characterize localization-protected fracton topological order in excited states of disordered fracton models.

Original languageEnglish
Article number125101
JournalPhysical Review B
Volume97
Issue number12
DOIs
StatePublished - Mar 1 2018

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