Cubic symmetry and magnetic frustration on the spin lattice in KIrCl
arXiv:1903.01660 · doi:10.1103/PhysRevB.99.144425
Abstract
Cubic crystal structure and regular octahedral environment of Ir render antifluorite-type KIrCl a model fcc antiferromagnet with a combination of Heisenberg and Kitaev exchange interactions. High-resolution synchrotron powder diffraction confirms cubic symmetry down to at least 20 K, with a low-energy rotary mode gradually suppressed upon cooling. Using thermodynamic and transport measurements, we estimate the activation energy of eV for charge transport, the antiferromagnetic Curie-Weiss temperature of K, and the extrapolated saturation field of T. All these parameters are well reproduced \textit{ab initio} using eV as the effective Coulomb repulsion parameter. The antiferromagnetic Kitaev exchange term of K is about one half of the Heisenberg term K. While this combination removes a large part of the classical ground-state degeneracy, the selection of the unique magnetic ground state additionally requires a weak second-neighbor exchange coupling K. Our results suggest that KIrCl may offer the best possible cubic conditions for Ir and demonstrates the interplay of geometrical and exchange frustration in a high-symmetry setting.
9 pages
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