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arxiv: 1001.0344 · v1 · submitted 2010-01-03 · 🪐 quant-ph · cond-mat.stat-mech· math-ph· math.MP

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Topological quantum order: stability under local perturbations

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classification 🪐 quant-ph cond-mat.stat-mechmath-phmath.MP
keywords hamiltoniantopologicalbandsconstantepsilonlatticelocalorder
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We study zero-temperature stability of topological phases of matter under weak time-independent perturbations. Our results apply to quantum spin Hamiltonians that can be written as a sum of geometrically local commuting projectors on a D-dimensional lattice with certain topological order conditions. Given such a Hamiltonian H_0 we prove that there exists a constant threshold \epsilon>0 such that for any perturbation V representable as a sum of short-range bounded-norm interactions the perturbed Hamiltonian H=H_0+\epsilon V has well-defined spectral bands originating from O(1) smallest eigenvalues of H_0. These bands are separated from the rest of the spectrum and from each other by a constant gap. The band originating from the smallest eigenvalue of H_0 has exponentially small width (as a function of the lattice size). Our proof exploits a discrete version of Hamiltonian flow equations, the theory of relatively bounded operators, and the Lieb-Robinson bound.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Constructing Bulk Topological Orders via Layered Gauging

    cond-mat.str-el 2026-04 unverdicted novelty 8.0

    A layered gauging method constructs (k+1)-dimensional topological orders, including fracton models like the X-cube, from k-dimensional symmetries such as subsystem, anomalous, or noninvertible ones.