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Deconfined Criticality and Bosonization Duality in Easy-Plane Chern-Simons Two-Dimensional Antiferromagnets

Vira Shyta, Jeroen van den Brink, and Flavio S. Nogueira
Phys. Rev. Lett. 127, 045701 – Published 20 July 2021

Abstract

Two-dimensional quantum systems with competing orders can feature a deconfined quantum critical point, yielding a continuous phase transition that is incompatible with the Landau-Ginzburg-Wilson scenario, predicting instead a first-order phase transition. This is caused by the LGW order parameter breaking up into new elementary excitations at the critical point. Canonical candidates for deconfined quantum criticality are quantum antiferromagnets with competing magnetic orders, captured by the easy-plane CP1 model. A delicate issue however is that numerics indicates the easy-plane CP1 antiferromagnet to exhibit a first-order transition. Here we show that an additional topological Chern-Simons term in the action changes this picture completely in several ways. We find that the topological easy-plane antiferromagnet undergoes a second-order transition with quantized critical exponents. Further, a particle-vortex duality naturally maps the partition function of the Chern-Simons easy-plane antiferromagnet into one of massless Dirac fermions.

  • Received 24 August 2020
  • Revised 2 March 2021
  • Accepted 28 June 2021

DOI:https://doi.org/10.1103/PhysRevLett.127.045701

© 2021 American Physical Society

Physics Subject Headings (PhySH)

Condensed Matter, Materials & Applied PhysicsParticles & FieldsStatistical Physics

Authors & Affiliations

Vira Shyta1,2, Jeroen van den Brink1,3, and Flavio S. Nogueira1

  • 1Institute for Theoretical Solid State Physics, IFW Dresden, Helmholtzstr. 20, 01069 Dresden, Germany
  • 2KAU Department of Theoretical and Mathematical Physics, Kyiv Academic University, 36 Vernadsky blvd., Kyiv 03142, Ukraine
  • 3Institute for Theoretical Physics and Würzburg-Dresden Cluster of Excellence ct.qmat, TU Dresden, D-01069 Dresden, Germany

Article Text

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Issue

Vol. 127, Iss. 4 — 23 July 2021

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