Electronic and magnetic properties of iridium ilmenites $A$IrO$_3$ ($A=$ Mg, Zn, and Mn)
Seong-Hoon Jang, Yukitoshi Motome

TL;DR
This study theoretically explores the electronic and magnetic properties of ilmenite compounds $A$IrO$_3$ ($A=$ Mg, Zn, Mn), revealing potential for Kitaev-like quantum spin liquid behavior in Mg and Zn variants due to spin-orbit coupling and electron correlations.
Contribution
It provides the first detailed theoretical analysis of $A$IrO$_3$ ilmenites, highlighting their similarities to known Kitaev spin liquid candidates and contrasting their properties with MnIrO$_3$.
Findings
MgIrO$_3$ and ZnIrO$_3$ have a gap in Ir $5d$ bands influenced by spin-orbit coupling and electron correlation.
Effective exchange interactions in Mg and Zn variants are dominated by Kitaev-type bond-dependent interactions.
MnIrO$_3$ exhibits complex electronic structure due to lattice deformation, differing from Mg and Zn variants.
Abstract
We theoretically investigate the electronic band structures and magnetic properties of ilmenites with edge-sharing IrO honeycomb layers, IrO with Mg, Zn, and Mn, in comparison with a collinear antiferromagnet MnTiO. The compounds with Mg and Zn were recently reported in Y.~Haraguchi {\it et al.}, Phys. Rev. Materials {\bf 2}, 054411 (2018), while MnIrO has not been synthesized yet but the honeycomb stacking structure was elaborated in a superlattice with MnTiO in K.~Miura {\it et al.}, Commun. Mater. {\bf 1}, 55 (2020). We find that, in contrast to MnTiO, where an energy gap opens in the Ti bands by antiferromagnetic ordering of the high-spin moments, MgIrO and ZnIrO have a gap in the Ir bands under the influence of both spin-orbit coupling and electron correlation. Their electronic structures are similar to those in the…
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Taxonomy
TopicsAdvanced Condensed Matter Physics · Physics of Superconductivity and Magnetism · Magnetic and transport properties of perovskites and related materials
