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Divergent Stabilities of Tetravalent Cerium,Uranium, and Neptunium Imidophosphorane Complexes**
Authors:Kaitlyn S. Otte  Dr. Julie E. Niklas  Chad M. Studvick  Andrew C. Boggiano  Dr. John Bacsa  Prof. Ivan A. Popov  Prof. Henry S. La Pierre
Affiliation:1. School of Chemistry and Biochemistry, Georgia Institute of Technology, Atlanta, GA, 30332-0400 USA;2. Department of Chemistry, The University of Akron, Akron, OH, 44325-3601 USA
Abstract:The study of the redox chemistry of mid-actinides (U−Pu) has historically relied on cerium as a model, due to the accessibility of trivalent and tetravalent oxidation states for these ions. Recently, dramatic shifts of lanthanide 4+/3+ non-aqueous redox couples have been established within a homoleptic imidophosphorane ligand framework. Herein we extend the chemistry of the imidophosphorane ligand (NPC=[N=PtBu(pyrr)2]; pyrr=pyrrolidinyl) to tetrahomoleptic NPC complexes of neptunium and cerium ( 1-M , 2-M , M=Np, Ce) and present comparative structural, electrochemical, and theoretical studies of these complexes. Large cathodic shifts in the M4+/3+ (M=Ce, U, Np) couples underpin the stabilization of higher metal oxidation states owing to the strongly donating nature of the NPC ligands, providing access to the U5+/4+, U6+/5+, and to an unprecedented, well-behaved Np5+/4+ redox couple. The differences in the chemical redox properties of the U vs. Ce and Np complexes are rationalized based on their redox potentials, degree of structural rearrangement upon reduction/oxidation, relative molecular orbital energies, and orbital composition analyses employing density functional theory.
Keywords:Coordination Chemistry  Density Functional Theory  Electrochemistry  Ligand Design  Neptunium
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