Magnetism in a Disordered Co-honeycomb

ORAL

Abstract

The search for magnetic materials displaying physics associated with Kitaev’s exactly solvable S=1/2 honeycomb lattice model is a focal point of contemporary research due to the model’s unique quantum spin liquid ground state and application towards fault tolerant quantum computing. Initial candidate materials focused on 4d/5d Mott insulators, but a more recent extension to 3d materials has led to a large body of work focused mostly on high-spin Co2+ systems realizing a Kramer’s doublet jeff = 1/2 ground state. One promising candidate material is Na2Co2TeO6. While the nature of the magnetism in Na2Co2TeO6 remains an open topic, the onset of zig-zag magnetic order below TN = 27 K clearly indicates non-Kitaev terms present in the low-energy Hamiltonian. In the Kitaev candidate material α-RuCl3, substituting nonmagnetic Ir3+ for Ru3+ suppressed conventional long-range magnetic order while keeping the signatures of fractionalized excitations, suggesting magnetic dilution as a promising route. Here we explore substitution of nonmagnetic ions for Co2+. We present magnetometry and specific heat measurements on synthesized powders of disordered Na2Co2-xRxTeO6 (R = Mg, Zn) and discuss the effect of magnetic dilution on the complex magnetism found in the parent compound.

*This research was supported by the U.S. Department of Energy, Office of Science, National Quantum Information Science Research Centers, Quantum Science Center.

Presenters

  • Colin Sarkis

    • Oak Ridge National Lab

Authors

  • Colin Sarkis

    • Oak Ridge National Lab
  • Lucas A Pressley

    • Johns Hopkins University
    • Oak Ridge National Lab
  • Haidong Zhou

    • University of Tennessee
  • Craig Bridges

    • Oak Ridge National Lab
  • Alan A Tennant

    • University of Tennessee
    • Oak Ridge National Lab
    • Oak Ridge National Laboratory
  • Stephen E Nagler

    • Oak Ridge National Lab