Pressure induced redistribution of oxygen hole states in La$_{4}$Ni$_{3}$O$_{10}$
Guiwen Jiang, Liang Si, George A. Sawatzky, Mi Jiang

TL;DR
This study uses advanced computational methods to analyze how pressure affects the distribution of oxygen hole states and electronic structure in trilayer La$_4$Ni$_3$O$_{10}$, revealing pressure-driven redistributions of holes and magnetic states.
Contribution
It provides a detailed theoretical analysis of pressure-induced electronic and magnetic state changes in La$_4$Ni$_3$O$_{10}$ using cluster exact diagonalization and density functional calculations, highlighting new charge and spin configurations.
Findings
At ambient pressure, holes localize in the central Ni layer forming a Zhang-Rice singlet.
High pressure causes holes to concentrate on outer layers, altering magnetic states.
Similarities are drawn between bilayer and trilayer nickelates regarding charge and spin order.
Abstract
Using density functional calculations and multi-orbital, multi-atom cluster exact diagonalization that includes local exchange and Coulomb interactions, we explored the local low-energy electronic states of trilayer LaNiO via a minimal NiO cluster. We find that, at ambient pressure, starting with all three Ni being nominally 2+ valence, one of the two extra holes is localized in the central NiO layer forming a Zhang-Rice singlet (ZRS) with orbital. The other hole mainly occupies the antibonding combination of the two interplane O orbitals and thereby hybridizes with an out-of-plane three-spin-polaron (3SP) formed by the orbitals of three NiO layers. In this way, the in-plane spin orientation alternation is carried by the orbitals of two outer layers with interlayer antiferromagnetic correlation.…
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Taxonomy
TopicsChemical and Physical Properties of Materials · Magnetic and transport properties of perovskites and related materials · Physics of Superconductivity and Magnetism
