Entanglement Spectra of Stabilizer Codes: A Window into Fracton Order and Sub-System Symmetry Protected Topological States
ORAL
Abstract
We discuss the entanglement spectrum (ES) for stabilizer Hamiltonians with arbitrary weak local perturbations to contrast the entanglement features of gapped topological phases. In particular, we compare fracton order to both conventional topological order and sub-system symmetry-protected topological (SSPT) order. Our results show that non-local surface stabilizers (NLSS)—a set of symmetries of the Hamiltonian formed along the boundary of the entanglement cut—protect the universal non-local features of the ES. In conventional topological and fracton orders, some NLSS retain a form of topological invariance, whereas subsystem symmetric systems—fracton and SSPT phases—show a non-trivial geometric dependence corresponding to the sub-system symmetries. This demonstrates the interplay of geometry and topology in fracton phases as encoded in the ground states of the phase. We further show a version of the edge-entanglement correspondence in three dimensions.
*The authors acknowledge support from the Air Force Office of Scientific Research under award number FA9550-17-1-0183, the U.S. Department of Energy, Office of Science, Basic Energy Sciences (BES) under Award number DE-SC0014415 and the Princeton Center for Theoretical Science at Princeton University.
–
Presenters
-
Albert Schmitz
- University of Colorado, Boulder