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Published April 15, 2021 | Published + Submitted
Journal Article Open

One-dimensional model for deconfined criticality with Z₃ x Z₃ symmetry

Abstract

We continue recent efforts to discover examples of deconfined quantum criticality in one-dimensional models. In this work we investigate the transition between a Z₃ ferromagnet and a phase with valence bond solid (VBS) order in a spin chain with Z₃ × Z₃ global symmetry. We study a model with alternating projective representations on the sites of the two sublattices, allowing the Hamiltonian to connect to an exactly solvable point having VBS order with the character of SU(3)-invariant singlets. Such a model does not admit a Lieb-Schultz-Mattis theorem typical of systems realizing deconfined critical points. Nevertheless, we find evidence for a direct transition from the VBS phase to a Z₃ ferromagnet. Finite-entanglement scaling data are consistent with a second-order or weakly first-order transition. We find in our parameter space an integrable lattice model apparently describing the phase transition, with a very long, finite, correlation length of 190878 lattice spacings. Based on exact results for this model, we propose that the transition is extremely weakly first order and is part of a family of deconfined quantum critical points described by walking of renormalization group flows.

Additional Information

© 2021 American Physical Society. Received 3 February 2021; revised 29 March 2021; accepted 5 April 2021; published 21 April 2021. We acknowledge helpful conversations with Ashley Milsted, David Simmons-Duffin, Jason Alicea, Yoni BenTov, Cheng-Ju Lin, David Mross, Alex Thomson, Senthil Todari, Christopher White, and Cenke Xu. This work was supported by the National Science Foundation through Grants No. DMR-1619696 and No. DMR-2001186 (B.R. and O.I.M.). We acknowledge funding provided by the Institute for Quantum Information and Matter, an NSF Physics Frontiers Center (NSF Grant PHY-1733907).

Attached Files

Published - PhysRevB.103.155143.pdf

Submitted - 2010.07917.pdf

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Created:
August 20, 2023
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October 20, 2023