Spin-orbit coupled ground state of mixed valence iridate Ba<sub>5</sub>AlIr<sub>2</sub>O<sub>9</sub>
ORAL
Abstract
Interplay of electronic correlations and spin-orbit interactions in Ir4+ and Ir5+ oxides results in insulating Jeff = 1/2 and Jeff = 0 ground states, respectively. By now, this has been well understood theoretically and established experimentally. However, in compounds where the dimerisation of Ir4+ and Ir5+ ions is structurally more favourable, the microscopic understanding of the local electronic structure is lacking. For example, a direct overlap of the Ir d-orbitals within the dimers may lead to significant bonding-antibonding splittings, which diminishes the role of spin-orbit mixing, considerably modifying the local electronic picture. With Ba5AlIr2O11 as an example, we show that the direct d-d hybridisation effects are relatively weak, while electronic correlations (configuration mixing) and spin-orbit coupling play a dominant role. Using a combination of ab initio many-body wave function quantum chemistry calculations and resonant inelastic X-ray scattering experiments, we elucidate the electronic structure of Ba5AlIr2O11. Our investigation shows that the two Ir ions (Ir4+ and Ir5+) in Ir2O9 dimer units preserve their local Jeff ground states close to 1/2 and 0, respectively.
*We acknowledge funding from Swiss National Science Foundation Sinergia project 171003.
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Presenters
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Vamshi Mohan Katukuri
- C3MP, IPHYS, École Polytechnique Fédérale de Lausanne, Switzerland