Near Ideal Realization of the Jeff = ½ State in Ir Antifluorite Compounds.

ORAL

Abstract

Strong spin orbit coupling in 5d materials can lead to a particular type of Mott physics. For a 5d atom with octahedral coordination, the triply degenerate t2g state will split into the occupied Jeff = 3/2 and the partially occupied Jeff = ½ states. It is this Jeff = ½ state that can host a large range of exotic phases such as quantum spin liquids and superconductivity. However it is debated how close many of the currently studied Jeff = ½ Ir compounds are to this limit. In many cases, non-cubic crystal fields are of the same energy scale as the spin orbit coupling and cause the Jeff = ½ and the Jeff = 3/2 states to mix. We present data on a several Iridium halide materials, M2IrX6 M = K, Na and NH3 and X = Cl, Br, which have the antifluorite structure and the Ir atom inside separated halide octahedra. We present resonant inelastic X-ray scattering and X-ray absorption data that show record low splitting of the t2g orbitals, suggesting that these materials are a better realization of the Jeff = ½ state than any previously studied material. We combine these results with neutron scattering and muon spin spectroscopy to additionally explore their magnetic states.

*This work was supported by the National Science Foundation, grant number DMR-1455264-CAR.

Presenters

  • Dalmau Reig-i-Plessis

    • Univ of Illinois - Urbana
    • Physics, University of Illinois at Urbana-Champaign

Authors

  • Dalmau Reig-i-Plessis

    • Univ of Illinois - Urbana
    • Physics, University of Illinois at Urbana-Champaign
  • Adam Aczel

    • Oak Ridge National Laboratory
    • Oak Ridge National Lab
  • Patrick Clancy

    • Trent University
    • Department of Physics, University of Toronto
    • University of Toronto
  • Jacob Ruff

    • CHESS
    • NIST Center for Neutron Research, National Institute of Standards and Technology
    • Cornell High Energy Synchrotron Source
    • Cornell University
  • Mary Upton

    • Argonne National Lab
    • Advanced Photon Source, Argonne National Laboratory
    • Argonne National Laboratory
  • Greg MacDougall

    • Univ of Illinois - Urbana
    • Department of Physics, University of Illinois at Urbana-Champaign
    • Department of Physics, University of Illinois
    • Physics, University of Illinois at Urbana-Champaign
    • University of Illinois at Urbana-Champaign