Multiconfigurational Analysis of Local Electronic Structure of Using Relativistic Embedded Clusters
Abstract: We present a multiconfigurational, relativistic embedded-cluster study of the local electronic structure of ruthenium dioxide (), a candidate altermagnetic material. Starting from free ions, we progressively build up the local environment through a electrostatic model, a bare ligand model, and finally a high-accuracy @CTEP embedded cluster that reproduces the crystalline surroundings. All systems are treated at the SA-CASSCF and NEVPT2+SOC levels of theory to capture strong electron correlation and spin-orbit coupling on an equal footing. While the formal local site symmetry of the sites in is orthorhombic (), we find that the calculated $4d$-orbital energy spectrum and its splitting pattern behave much closer to the higher tetragonal () symmetry, preserving a strong quasi-degeneracy among the relevant $4d$ orbitals. Since the local quadrupolar order responsible for altermagnetic spin splitting in independent-particle models relies on this symmetry reduction, its suppression by orbital quasi-degeneracy offers a natural explanation for why altermagnetism is not observed in bulk experiments, in contrast to the robust altermagnetic signatures reported in strained thin films.
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