Symmetry fractionalization in quantum spin ice

ORAL

Abstract

Symmetry fractionalization is a ubiquitous feature of topologically ordered states that can be used to classify different symmetry-enriched topological phases and reveal some of their unique experimental signatures. Despite its vast popularity, there is currently no available framework to study symmetry fractionalization of quantum spin ice (QSI) — a U(1) quantum spin liquid (QSL) on the pyrochlore lattice supporting emergent photons — within the most widely used theoretical framework to describe it, gauge mean-field theory (GMFT). In this work, we provide an extension of GMFT that allows for the classification of space-time symmetry fractionalization. The construction classifies all GMFT Ansätze that yield physical wavefunctions invariant under given symmetries and a specific low-energy gauge structure. As an application of the framework, we first show that the only two Ansätze with emergent U(1) gauge fields that respect all space-group symmetries are the well-known 0- and π-flux states. We then showcase how the framework may describe QSLs beyond the currently known ones by classifying chiral U(1) QSI. We find two new states described by π/2- and 3π/2-fluxes of the emergent gauge field threading the hexagonal plaquettes of the pyrochlore lattice. We then examine how the different ways translation symmetries fractionalize for all these states lead to unique experimentally relevant signatures and compute their respective inelastic neutron scattering cross-section to illustrate the argument. We end by discussing how our framework can be extended to study Z2 QSLs born out of spinon pairs condensation, QSI on the breathing pyrochlore lattice where inversion symmetry is broken, and the dipolar-octupolar case relevant for Ce2Zr2O7.

*We acknowledge support from the Natural Sciences and Engineering Research Council of Canada (NSERC) and the Centre of Quantum Materials at the University of Toronto. Computations were performed on the Niagara cluster, which SciNet host in partnership with Compute Canada. Yong Baek Kim is also supported by the Guggenheim Fellowship from the John Simon Guggenheim Memorial Foundation and the Simons Fellowship from the Simons Foundation. Some part of this work was performed at the Aspen Center for Physics, which is supported by the National Science Foundation grant PHY-1607611.

Publication: Desrochers, F., Chern, L. E., & Kim, Y. B. (2022). Symmetry fractionalization in the gauge mean-field theory of quantum spin ice. arXiv preprint arXiv:2209.11243.

Presenters

  • Félix Desrochers

    • University of Toronto

Authors

  • Félix Desrochers

    • University of Toronto
  • Li Ern Chern

    • Univ of Toronto
    • Univ of Cambridge
  • Yong Baek Kim

    • Univ of Toronto
    • University of Toronto