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Equatorial Electronic Structure in the Uranyl Ion: Cs2UO2Cl4and Cs2UO2Br4

  • Dumitru Claudiu Sergentu
  • , Frédéric Gendron
  • , Eric D. Walter
  • , Sejun Park
  • , Cigdem Capan
  • , R. Gian Surbella
  • , Chuck Z. Soderquist
  • , Gabriel B. Hall
  • , Sergey I. Sinkov
  • , Jochen Autschbach
  • , Herman Cho
  • SUNY Buffalo
  • Environmental Molecular Sciences Laboratory
  • Pacific Northwest National Laboratory
  • Washington State University Tri-Cities

Research output: Contribution to journalArticlepeer-review

12 Scopus citations

Abstract

Electric field gradient (EFG) tensors in the equatorial plane of the linear UO22+ion have been measured by nuclear magnetic resonance (NMR) and nuclear quadrupole resonance (NQR) experiments and computed by relativistic Kohn-Sham methods with and without environment embedding for Cs2UO2Cl4and Cs2UO2Br4. This approach expands the possibilities for probing the electronic structure in uranyl complexes beyond the strongly covalent U-O bonds. The combined analyses find that one of the two largest principal EFG tensor components at the halogen sites points along the U-X bond (X = Cl, Br), and the second is parallel to the UO22+ion; in Cs2UO2Cl4, the components are nearly equal in magnitude, whereas in Cs2UO2Br4, due to short-range bromide-cesium interactions, the equatorial component is dominant for one pair of Br sites and the axial component is larger for the second pair. The directions and relative magnitudes of the field gradient principal axes are found to be sensitive to the σ and πelectron donation by the ligands and the model of the environment. Chlorine-35 NQR spectra of 235U-depleted and 235U-enriched Cs2UO2Cl4exhibited no uranium-isotope-dependent shift, but the resonance of the depleted sample displayed a 58% broader line width.

Original languageEnglish
Pages (from-to)3821-3831
Number of pages11
JournalInorganic Chemistry
Volume61
Issue number9
DOIs
StatePublished - Mar 7 2022

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