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Non-Abelian Fermionization and the Landscape of Quantum Hall Phases

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arxiv 2009.00011 v2 pith:S4YWLXM3 submitted 2020-08-31 cond-mat.str-el cond-mat.mes-hallhep-th

Non-Abelian Fermionization and the Landscape of Quantum Hall Phases

classification cond-mat.str-el cond-mat.mes-hallhep-th
keywords non-abelianabeliancompositestatestheoriesdualitiesdualityfermions
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The recent proposal of non-Abelian boson-fermion dualities in 2+1 dimensions, which morally relate $U(k)_N$ to $SU(N)_{-k}$ Chern-Simons-matter theories, presents a new platform for exploring the landscape of non-Abelian quantum Hall states accessible from theories of Abelian composite particles. Here we focus on dualities relating theories of Abelian quantum Hall states of bosons or fermions to theories of non-Abelian "composite fermions" partially filling Landau levels. We show that these dualities predict special filling fractions where both Abelian and non-Abelian composite fermion theories appear capable of hosting distinct topologically ordered ground states, one Abelian and the other a non-Abelian, $U(k)_2$ Blok-Wen state. Rather than being in conflict with the duality, we argue that these results indicate unexpected dynamics in which the infrared and lowest Landau level limits fail to commute across the duality. In such a scenario, the non-Abelian topological order can be destabilized in favor of the Abelian ground state, suggesting the presence of a phase transition between the Abelian and non-Abelian states that is likely to be first order. We also generalize these constructions to other non-Abelian fermion-fermion dualities, in the process obtaining new derivations of a variety of paired composite fermion phases using duality, including the anti-Pfaffian state. Finally, we describe how, in multilayer constructions, excitonic pairing of the composite fermions across $N$ layers can also generate the family of Blok-Wen states with $U(k)_2$ topological order.

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Cited by 2 Pith papers

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  1. Proliferation transitions from a topological phase in $2+1$ dimensions

    cond-mat.str-el 2026-02 conditional novelty 7.0

    A general 2+1d transition theory out of a topological phase, driven by one Abelian anyon, is constructed and shown to depend on a single integer parameter, with p=0 giving gauging.

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    cond-mat.str-el 2026-07 conditional novelty 6.0

    Doping the ν=2/3 FQAH state produces a unifying 'quark metal' of charge-e/3 fermions whose superconducting and ferromagnetic instabilities reproduce and extend the known zoo of anyon-driven superconductors.