Spin orientations of the spin-half Ir4+ ions in Sr3NiIrO6, Sr2IrO4 and Na2IrO3: Density functional, perturbation theory and Madelung potential analyses
Elijah E. Gordon, Hongjun Xiang, J\"urgen K\"ohler, and Myung-Hwan, Whangbo

TL;DR
This study investigates the magnetic anisotropies and spin orientations of Ir4+ ions in three oxides using DFT, perturbation theory, and Madelung potential analyses, revealing the importance of crystal structure accuracy and electron localization.
Contribution
It provides a comprehensive analysis combining DFT, perturbation theory, and Madelung potentials to explain spin orientations and anisotropies in Ir4+ ions, highlighting the role of orbital interactions and electron localization.
Findings
DFT accurately predicts spin orientations in Sr3NiIrO6 and Sr2IrO4.
Na2IrO3's spin orientation involves nonzero components along multiple axes.
Na2IrO3's Ir4+ electrons are less localized than in other compounds.
Abstract
The spins of the low-spin Ir4+ (S = 1/2, d5) ions at the octahedral sites of the oxides Sr3NiIrO6, Sr2IrO4 and Na2IrO3 exhibit preferred orientations with respect to their IrO6 octahedra. We evaluated the magnetic anisotropies of these S = 1/2 ions on the basis of DFT calculations including spin-orbit coupling (SOC), and probed their origin by performing perturbation theory analyses with SOC as perturbation within the LS coupling scheme. The observed spin orientations of Sr3NiIrO6 and Sr2IrO4 are correctly predicted by DFT calculations, and are accounted for by the perturbation theory analysis. As for the spin orientation of Na2IrO3, both experimental studies and DFT calculations have not been unequivocal. Our analysis reveals that the Ir4+ spin orientation of Na2IrO3 should have nonzero components along the c- and a-axes directions. The spin orientations determined by DFT calculations…
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