Publication | Open Access
Tuning the reactivity of alkoxyl radicals from 1,5-hydrogen atom transfer to 1,2-silyl transfer
45
Citations
46
References
2021
Year
Radical EmissionEngineeringProton-coupled Electron TransferOrganic ChemistryChemistryChemical Engineering1,5-Hydrogen Atom TransferOrganometallic CatalysisReaction IntermediateAlkoxyl RadicalsSilyl AlcoholsBiochemistrySilyl GroupRadical (Chemistry)Diversity-oriented SynthesisReactivity (Chemistry)CatalysisBiomolecular EngineeringNatural SciencesReactive IntermediatesProton TransferChemical KineticsSynthetic Chemistry
Controlling the reactivity of reactive intermediates is essential to achieve selective transformations. Due to the facile 1,5-hydrogen atom transfer (HAT), alkoxyl radicals have been proven to be important synthetic intermediates for the δ-functionalization of alcohols. Herein, we disclose a strategy to inhibit 1,5-HAT by introducing a silyl group into the α-position of alkoxyl radicals. The efficient radical 1,2-silyl transfer (SiT) allows us to make various α-functionalized products from alcohol substrates. Compared with the direct generation of α-carbon radicals from oxidation of α-C-H bond of alcohols, the 1,2-SiT strategy distinguishes itself by the generation of alkoxyl radicals, the tolerance of many functional groups, such as intramolecular hydroxyl groups and C-H bonds next to oxygen atoms, and the use of silyl alcohols as limiting reagents.
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