English

Covalency and vibronic couplings make a nonmagnetic j=3/2 ion magnetic

Strongly Correlated Electrons 2016-12-16 v1

Abstract

For 4d1d^1 and 5d1d^1 spin-orbit-coupled electron configurations, the notion of nonmagnetic j=3/2 quartet ground state discussed in classical textbooks is at odds with the observed variety of magnetic properties. Here we throw fresh light on the electronic structure of 4d1d^1 and 5d1d^1 ions in molybdenum- and osmium-based double-perovskite systems and reveal different kinds of on-site many-body physics in the two families of compounds: while the sizable magnetic moments and gg factors measured experimentally are due to both metal dd-ligand pp hybridization and dynamic Jahn-Teller interactions for 4dd electrons, it is essentially dd-pp covalency for the 5d1d^1 configuration. These results highlight the subtle interplay of spin-orbit interactions, covalency and electron-lattice couplings as the major factor in deciding the nature of the magnetic ground states of 4dd and 5dd quantum materials. Cation charge imbalance in the double-perovskite structure is further shown to allow a fine tuning of the gap between the t2gt_{2g} and ege_g levels, an effect of much potential in the context of orbital engineering in oxide electronics.

Keywords

Cite

@article{arxiv.1612.05158,
  title  = {Covalency and vibronic couplings make a nonmagnetic j=3/2 ion magnetic},
  author = {Lei Xu and Nikolay A. Bogdanov and Andrew Princep and Peter Fulde and Jeroen van den Brink and Liviu Hozoi},
  journal= {arXiv preprint arXiv:1612.05158},
  year   = {2016}
}

Comments

6 pages, 2 figures