English

Theory of a quantum spin liquid in hydrogen-intercalated honeycomb iridate, H3LiIr2O6

Strongly Correlated Electrons 2018-03-29 v2

Abstract

We propose a theoretical model for a gapless spin liquid phase that may have been observed in a recent experiment on H3LiIr2O6\mathrm{H_3Li Ir_2 O_6}. Despite the insulating and non-magnetic nature of the material, the specific heat coefficient C/T1/TC/T \sim 1/\sqrt{T} in zero magnetic field and C/TT/B3/2C/T \sim T/ B^{3/2} with finite magnetic field BB have been observed. In addition, the NMR relaxation rate shows 1/(T1T)(C/T)21/(T_1T) \sim (C/T)^2. Motivated by the fact that the interlayer/in-plane lattice parameters are reduced/elongated by the hydrogen-intercalation of the parent compound Li2IrO3\mathrm{Li_2 Ir O_3}, we consider four layers of the Kitaev honeycomb lattice model with additional interlayer exchange interactions. It is shown that the resulting spin liquid excitations reside mostly in the top and bottom layers of such a layered structure and possess a quartic dispersion. In an applied magnetic field, each quartic mode is split into four Majorana cones with the velocity vB3/4v \sim B^{3/4}. We suggest that the spin liquid phase in these "defect" layers, placed between different stacking patterns of the honeycomb layers, can explain the major phenomenology of the experiment, which can be taken as evidence that the Kitaev interaction plays the primary role in the formation of a quantum spin liquid in this material.

Keywords

Cite

@article{arxiv.1710.01307,
  title  = {Theory of a quantum spin liquid in hydrogen-intercalated honeycomb iridate, H3LiIr2O6},
  author = {Kevin Slagle and Wonjune Choi and Li Ern Chern and Yong Baek Kim},
  journal= {arXiv preprint arXiv:1710.01307},
  year   = {2018}
}

Comments

5+2 pages, 4+1 figures; published version