4.8 Article

Effect of 3d/4p Mixing on 1s2p Resonant Inelastic X-ray Scattering: Electronic Structure of Oxo-Bridged Iron Dimers

Journal

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
Volume 143, Issue 12, Pages 4569-4584

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/jacs.0c11193

Keywords

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Funding

  1. National Institutes of Health [GM-40392]
  2. US Department of Energy (DOE), Office of Science, Office of Basic Energy Sciences [DE-AC02-76SF00515]
  3. DOE Office of Biological and Environmental Research
  4. National Institutes of Health, National Institute of General Medical Sciences [P41GM103393]
  5. German Research Foundation (DFG) [KR3611/2-1]
  6. Human Frontier Science Program
  7. Royal Society of Chemistry [RM1802-4019]
  8. Marcus and Amalia Wallenberg Foundation
  9. NIH [GM-122194]

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1s2p resonant inelastic X-ray scattering (1s2p RIXS) has been successful in determining the differential orbital covalency (DOC) in highly covalent iron environments, but the presence of non-centrosymmetric environments with metal-oxo bonds introduces 4p character into 3d orbitals, impacting electronic structure analysis. This study examines the effects of 4p mixing on 1s2p RIXS spectra using binuclear oxo bridged Fe(III) complexes and elucidates the selective nature of the mixing for enhancing L-edge XAS analysis in terms of DOC. Additionally, the study provides structural insights from biferric model studies for peroxo bridged biferric enzyme intermediates.
1s2p resonant inelastic X-ray scattering (1s2p RIXS) has proven successful in the determination of the differential orbital covalency (DOC, the amount of metal vs ligand character in each d molecular orbital) of highly covalent centrosymmetric iron environments including heme models and enzymes. However, many reactive intermediates have non-centrosymmetric environments, e.g., the presence of strong metal-oxo bonds, which results in the mixing of metal 4p character into the 3d orbitals. This leads to significant intensity enhancement in the metal K-pre-edge and as shown here, the associated 1s2p RIXS features, which impact their insight into electronic structure. Binuclear oxo bridged high spin Fe(III) complexes are used to determine the effects of 4p mixing on 1s2p RIXS spectra. In addition to developing the analysis of 4p mixing on K-edge XAS and 1s2p RIXS data, this study explains the selective nature of the 4p mixing that also enhances the analysis of L-edge XAS intensity in terms of DOC. These 1s2p RIXS biferric model studies enable new structural insight from related data on peroxo bridged biferric enzyme intermediates. The dimeric nature of the oxo bridged Fe(III) complexes further results in ligand-to-ligand interactions between the Fe(III) sites and angle dependent features just above the pre-edge that reflect the superexchange pathway of the oxo bridge. Finally, we present a methodology that enables DOC to be obtained when L-edge XAS is inaccessible and only 1s2p RIXS experiments can be performed as in many metalloenzyme intermediates in solution.

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