Open-Shell Molecules as Sensitive Probes of Spin-Orbit-Controlled Surface Electronic Structure
Solange Mariel Di Napoli, Alexei Nefedov, María Andrea Barral, Gustavo E. Murgida, Ana María Llois, Christof Wöll, M. Verónica Ganduglia-Pirovano, Verónica Laura Vildosola
Abstract
Open-shell molecules are highly sensitive probes of correlated oxide surfaces because their partially occupied frontier orbitals strongly amplify subtle changes in adsorbate-substrate hybridization. Combining infrared reflection-absorption spectroscopy with hybrid density functional theory including non-collinear magnetism and spin-orbit coupling, we show that inclusion of spin-orbit coupling is essential to reproduce the vibrational spectrum of NO adsorbed on UO2(111) by suppressing an otherwise artificial overhybridization between the NO frontier orbitals and uranium 5f states. While spin-orbit coupling determines the position of the N-O stretching and, dispersion-driven intermolecular interactions account for its asymmetric broadening at monolayer coverage. These results establish open-shell molecules as sensitive probes of spin-orbit-controlled surface electronic structure and identify NO/UO2(111) as a stringent benchmark for electronic-structure methods describing open-shell molecule-surface interactions.
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