The bond-disordered Kitaev model attracts much attention due to the experimental relevance in α-RuCl3 and A3LiIr2O6 (A= H, D, Ag, etc.). Applying a magnetic field to break the time-reversal symmetry leads to a strong modulation in mass terms for Dirac cones. Because of the smallness of the flux gap of the Kitaev model, a small bond disorder can have large influence on itinerant Majorana fermions, and Majorana fermions will be in the Anderson localization state immediately. We call this immobile liquid state Anderson-Kitaev liquid state with two localized Majorana fermions, one frozen by gauge fluctuations and the other localized by disordered mass terms. The quantization of the thermal Hall conductivity κ/T disappears by a quantum Hall transition induced by a small disorder, and κ/T shows a rapid crossover into the Anderson-Kitaev liquid with a negligible Hall current. Especially, the critical disorder strength δJc1∼0.05 in the unit of the Kitaev interaction would have many implications for the stability of Kitaev spin liquids.
@article{arxiv.2004.06257,
title = {Anderson-Kitaev spin liquid},
author = {Masahiko G. Yamada},
journal= {arXiv preprint arXiv:2004.06257},
year = {2020}
}
Comments
6+4 pages, 3+2 figures. This is a preprint of an article published in npj Quantum Mater. The final authenticated version is available online at: https://doi.org/10.1038/s41535-020-00285-3