Gapless Symmetry Protected Topological Order

ORAL

Abstract

We introduce exactly solvable gapless quantum systems in d dimensions that support symmetry protected topological (SPT) edge modes. Our construction leads to bosonic, long-range entangled, critical points or phases that can be interpreted as critical condensates of domain walls "decorated" with dimension (dāˆ’1) SPT systems. Using a combination of field theory and exact lattice results, we argue that such gapless SPT systems have symmetry-protected topological edge modes that can be either gapless or symmetry-broken, leading to unusual surface critical properties. Despite the absence of a bulk gap, these edge modes are robust against arbitrary symmetry-preserving local perturbations near the edges. In two dimensions, we construct wavefunctions that can also be interpreted as unusual quantum critical points with diffusive scaling in the bulk but ballistic edge dynamics.

*We acknowledge support from the Emergent Phenomena in Quantum Systems initiative of the Gordon and Betty Moore Foundation (T.S.), NSF DMR-1507141 (D.P.), and the Department of Energy through the Quantum Materials program of LBNL (R.V.).

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Presenters

  • Daniel Parker

    • Physics, University of California, Berkeley

Authors

  • Thomas Scaffidi

    • Physics, Univ of California - Berkeley
    • Physics, University of California, Berkeley
    • Univ of California - Berkeley
    • University of Oxford
  • Daniel Parker

    • Physics, University of California, Berkeley
  • Romain Vasseur

    • Physics, UMass Amherst
    • UMass Amherst
    • Univ of Massachusetts, Amherst
    • Physics, University of Massachusetts
    • University of Massachusetts