Literature DB >> 18202653

Reduction and selective oxo group silylation of the uranyl dication.

Polly L Arnold1, Dipti Patel, Claire Wilson, Jason B Love.   

Abstract

Uranium occurs in the environment predominantly as the uranyl dication [UO2]2+. Its solubility renders this species a problematic contaminant which is, moreover, chemically extraordinarily robust owing to strongly covalent U-O bonds. This feature manifests itself in the uranyl dication showing little propensity to partake in the many oxo group functionalizations and redox reactions typically seen with [CrO2]2+, [MoO2]2+ and other transition metal analogues. As a result, only a few examples of [UO2]2+ with functionalized oxo groups are known. Similarly, it is only very recently that the isolation and characterization of the singly reduced, pentavalent uranyl cation [UO2]+ has been reported. Here we show that placing the uranyl dication within a rigid and well-defined molecular framework while keeping the environment anaerobic allows simultaneous single-electron reduction and selective covalent bond formation at one of the two uranyl oxo groups. The product of this reaction is a pentavalent and monofunctionalized [O = U...OR]+ cation that can be isolated in the presence of transition metal cations. This finding demonstrates that under appropriate reaction conditions, the uranyl oxo group will readily undergo radical reactions commonly associated only with transition metal oxo groups. We expect that this work might also prove useful in probing the chemistry of the related but highly radioactive plutonyl and neptunyl analogues found in nuclear waste.

Entities:  

Year:  2008        PMID: 18202653     DOI: 10.1038/nature06467

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  17 in total

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6.  Strongly coupled binuclear uranium-oxo complexes from uranyl oxo rearrangement and reductive silylation.

Authors:  Polly L Arnold; Guy M Jones; Samuel O Odoh; Georg Schreckenbach; Nicola Magnani; Jason B Love
Journal:  Nat Chem       Date:  2012-02-21       Impact factor: 24.427

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10.  Inner-sphere vs. outer-sphere reduction of uranyl supported by a redox-active, donor-expanded dipyrrin.

Authors:  James R Pankhurst; Nicola L Bell; Markus Zegke; Lucy N Platts; Carlos Alvarez Lamfsus; Laurent Maron; Louise S Natrajan; Stephen Sproules; Polly L Arnold; Jason B Love
Journal:  Chem Sci       Date:  2016-10-28       Impact factor: 9.825

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