We have investigated the electronic structure of iridates in the double perovskite crystal structure containing either Ir4+ or Ir5+ using hard x-ray photoelectron spectroscopy. The experimental valence band spectra can be well reproduced using tight binding calculations including only the Ir 5d, O 2p and O 2s orbitals with parameters based on the downfolding of the density-functional band structure results. We found that regardless of the A and B cations, the A2BIrO6 iridates have essentially zero O 2p to Ir 5d charge transfer energies. Hence, double perovskite iridates turn out to be extremely covalent systems with the consequence being that the magnetic exchange interactions become very long-ranged, thereby hampering the materialization of the long-sought Kitaev physics. Nevertheless, it still would be possible to realize a spin-liquid system using the iridates with a proper tuning of the various competing exchange interactions.
@article{arxiv.2005.11961,
title = {Charge transfer energy in iridates: a hard x-ray photoelectron spectroscopy study},
author = {D. Takegami and D. Kasinathan and K. K. Wolff and S. G. Altendorf and C. F. Chang and K. Hoefer and A. Melendez-Sans and Y. Utsumi and F. Meneghin and T. D. Ha and C. H. Yen and K. Chen and C. Y. Kuo and Y. F. Liao and K. D. Tsuei and R. Morrow and S. Wurmehl and B. Büchner and B. E. Prasad and M. Jansen and A. C. Komarek and P. Hansmann and L. H. Tjeng},
journal= {arXiv preprint arXiv:2005.11961},
year = {2020}
}
Comments
9 pages, 7 figures, submitted to Physical Review B