Chemical Design of Electronic and Magnetic Energy Scales in Tetravalent Praseodymium
arXiv:2212.10401 · doi:10.1038/s41467-023-38431-7
Abstract
Lanthanides in the trivalent oxidation state are typically described using an ionic picture that leads to localized magnetic moments. The hierarchical energy scales associated with trivalent lanthanides produce desirable properties for e.g., molecular magnetism, quantum materials, and quantum transduction. Here, we show that this traditional ionic paradigm breaks down for praseodymium in the 4+ oxidation state. Synthetic, spectroscopic, and theoretical tools deployed on several solid-state Pr4+ oxides uncover the unusual participation of 4f orbitals in bonding and the anomalous hybridization of the 4f1 configuration with ligand valence electrons, analogous to transition metals. The resulting competition between crystal-field and spin-orbit-coupling interactions fundamentally transforms the spin-orbital magnetism of Pr4+, which departs from the Jeff =1/2 limit and resembles that of high-valent actinides. Our results show that Pr4+ ions are in a class on their own, where the hierarchy of single-ion energy scales can be tailored to explore new correlated phenomena in quantum materials.
9 pages, 4 figures, and SI (47 pages)
References in corpus (9)
- What is the valence of a correlated solid? The double life of delta-plutonium
- Multiconfigurational nature of 5f orbitals in uranium and plutonium intermetallics
- Collective excitations in the tetravalent lanthanide honeycomb antiferromagnet, Na2PrO3
- Magnetic properties and signatures of moment ordering in triangular lattice antiferromagnet KCeO
- Exchange interactions in Kitaev materials: From NaIrO to -RuCl
- Room-Temperature Valence Transition in a Strain-Tuned Perovskite Oxide
- First demonstration of tuning between the Kitaev and Ising limits in a honeycomb lattice
- Energy scales in 4f1 delafossite magnets: crystal-field splittings larger than the strength of spin-orbit coupling in KCeO2
- First order valence transition: Neutron diffraction, inelastic neutron scattering and x-ray absorption investigations on the double perovskite Ba2PrRu0.9Ir0.1O6