Palladium-Catalyzed r-Arylation of Carbonyl Compounds and Nitriles

dc.contributor.authorDARCY A. CULKIN
dc.contributor.authorJOHN F. HARTWIG
dc.date.accessioned2012-11-05T11:45:53Z
dc.date.accessioned2025-02-17T14:01:40Z
dc.date.available2012-11-05T11:45:53Z
dc.date.issued2012-11-05
dc.descriptionThe palladium-catalyzed R-arylation of ketones has become a useful and general synthetic method. In this process, an enolate is generated from a ketone and base in the presence of an aryl halide, and a palladium catalyst couples this enolate with the aryl halide. With the advent of new catalysts composed of sterically hindered, electron-rich alkylphosphine and N-heterocyclic carbene ligands, this process now encompasses a broad range of enolates and related anions, including those derived from amides, esters, aldehydes, nitriles, malonates, cyanoesters, nitroalkanes, sulfones, and lactones. In the proposed mechanism for this reaction, the carboncarbon bond of the product is formed by reductive elimination from an arylpalladium enolate intermediate. The structures and reactions of arylpalladium complexes of enolate, cyanoalkyl, and malonate ions have been studied to determine how the binding mode and electronic and steric parameters influence the rate and mechanism of reductive elimination.en_US
dc.description.abstractThe palladium-catalyzed R-arylation of ketones has become a useful and general synthetic method. In this process, an enolate is generated from a ketone and base in the presence of an aryl halide, and a palladium catalyst couples this enolate with the aryl halide. With the advent of new catalysts composed of sterically hindered, electron-rich alkylphosphine and N-heterocyclic carbene ligands, this process now encompasses a broad range of enolates and related anions, including those derived from amides, esters, aldehydes, nitriles, malonates, cyanoesters, nitroalkanes, sulfones, and lactones. In the proposed mechanism for this reaction, the carboncarbon bond of the product is formed by reductive elimination from an arylpalladium enolate intermediate. The structures and reactions of arylpalladium complexes of enolate, cyanoalkyl, and malonate ions have been studied to determine how the binding mode and electronic and steric parameters influence the rate and mechanism of reductive elimination.en_US
dc.identifier.urihttps://dl.ftveti.edu.et/handle/123456789/4157
dc.language.isoenen_US
dc.subjectPalladium-Catalyzed r-Arylation of Carbonyl Compounds and Nitrilesen_US
dc.titlePalladium-Catalyzed r-Arylation of Carbonyl Compounds and Nitrilesen_US
dc.typeArticleen_US

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