Mechanistic Investigation of the Iron-Catalyzed Azidation of Alkyl C(<i>sp</i><sup>3</sup>)–H Bonds with Zhdankin’s λ<sup>3</sup>-Azidoiodane — Craig S. Day (2021) | RDL Network
Mechanistic Investigation of the Iron-Catalyzed Azidation of Alkyl C(<i>sp</i><sup>3</sup>)–H Bonds with Zhdankin’s λ<sup>3</sup>-Azidoiodane
Article 2021 en
Authors
CD
Craig S. Day
AF
Alexander Fawcett
RC
Ruchira Chatterjee
Abstract
1 min read
An in-depth study of the mechanism of the azidation of C(<i>sp</i><sup>3</sup>)-H bonds with Zhdankin's λ<sup>3</sup>-azidoiodane reagent catalyzed by iron(II)(pybox) complexes is reported. Previously, it was shown that tertiary and benzylic C(<i>sp</i><sup>3</sup>)-H bonds of a range of complex molecules underwent highly site-selective azidation by reaction with a λ<sup>3</sup>-azidoiodane reagent and an iron(II)(pybox) catalyst under mild conditions. However, the mechanism of this reaction was unclear. Here, a series of mechanistic experiments are presented that reveal critical features responsible for the high selectivity and broad scope of this reaction. These experiments demonstrate the ability of the λ<sup>3</sup>-azidoiodane reagent to undergo I-N bond homolysis under mild conditions to form λ<sup>2</sup>-iodanyl and azidyl radicals that undergo highly site-selective and rate-limiting abstraction of a hydrogen atom from the substrate. The resultant alkyl radical then combines rapidly with a resting state iron(III)-azide complex, which is generated by the reaction of the λ<sup>3</sup>-azidoiodane with the iron(II)(pybox) complex, to form the C(<i>sp</i><sup>3</sup>)-N<sub>3</sub> bond. This mechanism is supported by the independent synthesis of well-defined iron complexes characterized by cyclic voltammetry, X-ray diffraction, and EPR spectroscopy, and by the reaction of the iron complexes with alkanes and the λ<sup>3</sup>-azidoiodane. Reaction monitoring and kinetic studies further reveal an unusual effect of the catalyst on the rate of formation of product and consumption of reactants and suggest a blueprint for the development of new processes leading to late-stage functionalization of C(<i>sp</i><sup>3</sup>)-H bonds.
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