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Published on: June 21, 2017
Difunctionalization of Aldehydes via Electrophilic Acylation: Access to α-Acyloxyphosphonium Salts and Subsequent
Yuting Zhang1, Lu Sun1,2, Wenjuan Mao1
1State Key Laboratory of Chemical Resource Engineering, College of Chemistry, Beijing University of Chemical Technology, Beijing 100029, China.
Abstract:
The synthesis of sterically hindered α-functionalized phosphonium salts is of significant interest yet remains challenging. This work presents a difunctionalization of aldehydes with electrophilic acylphosphonium salts to access α-acyloxyphosphonium salts. The reaction was scoped across 43 examples with varied aldehyde and acylphosphonium salt structures, affording α-acyloxyphosphonium salts in yields ranging from 17% to 95%. These products can engage with aldehydes in Wittig reactions to generate diverse substituted enol esters. Mechanism studies indicate that the additive acts as a nucleophile, facilitating the dissociation of trivalent phosphine from an intermediate acyl group. This study enhances our understanding of acylphosphonium salts as a novel class of electrophilic reagents and provides valuable insights for their future application in organic synthesis.
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