Spin-orbital entangled state and realization of Kitaev physics in 3d cobalt compounds: a progress report
Abstract
The realization of Kitaev's honeycomb magnetic model in real materials has become one of the most pursued topics in condensed matter physics and materials science. If found, it is expected to host exotic quantum phases of matter and offers potential realizations of faulttolerant quantum computations. Over the past years, much effort was made on 4d or 5d heavy transition metal compounds because of their intrinsic strong spinorbit coupling. But more recently, there have been growing shreds of evidence that the Kitaev model could also be realized in 3dtransition metal systems with much weaker spinorbit coupling. This review intends to serve as a guide to this fastdeveloping field focusing on systems with d transition metal occupation. It overviews the current theoretical and experimental progress on realizing the Kitaev model in those systems. We examine the recent experimental observations of candidate materials with Co ions: e.g., CoPS, NaCoSbO, and NaCoTeO, followed by a brief review of theoretical backgrounds. We conclude this article by comparing experimental observations with density functional theory (DFT) calculations. We stress the importance of inter hopping channels and Hund's coupling in the realization of Kitaev interactions in Cobased compounds, which has been overlooked in previous studies. This review suggests future directions in the search for Kitaev physics in 3d cobalt compounds and beyond.
Keywords
Cite
@article{arxiv.2108.05044,
title = {Spin-orbital entangled state and realization of Kitaev physics in 3d cobalt compounds: a progress report},
author = {Chaebin Kim and Heung-Sik Kim and Je-Geun Park},
journal= {arXiv preprint arXiv:2108.05044},
year = {2021}
}
Comments
45 pages, 13 figures, accepted as Topical Review in Journal of Physics: Condensed Matter