| Literature DB >> 30943023 |
Shengyang Ni1, Natalia M Padial1, Cian Kingston1, Julien C Vantourout1, Daniel C Schmitt2, Jacob T Edwards1, Monika M Kruszyk1, Rohan R Merchant1, Pavel K Mykhailiuk1,3,4, Brittany B Sanchez5, Shouliang Yang6, Matthew A Perry2, Gary M Gallego6, James J Mousseau2, Michael R Collins6, Robert J Cherney7, Pavlo S Lebed3,8, Jason S Chen5, Tian Qin1, Phil S Baran1.
Abstract
Historically accessed through two-electron, anionic chemistry, ketones, alcohols, and amines are of foundational importance to the practice of organic synthesis. After placing this work in proper historical context, this Article reports the development, full scope, and a mechanistic picture for a strikingly different way of forging such functional groups. Thus, carboxylic acids, once converted to redox-active esters (RAEs), can be utilized as formally nucleophilic coupling partners with other carboxylic derivatives (to produce ketones), imines (to produce benzylic amines), or aldehydes (to produce alcohols). The reactions are uniformly mild, operationally simple, and, in the case of ketone synthesis, broad in scope (including several applications to the simplification of synthetic problems and to parallel synthesis). Finally, an extensive mechanistic study of the ketone synthesis is performed to trace the elementary steps of the catalytic cycle and provide the end-user with a clear and understandable rationale for the selectivity, role of additives, and underlying driving forces involved.Entities:
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Year: 2019 PMID: 30943023 PMCID: PMC7004484 DOI: 10.1021/jacs.9b02238
Source DB: PubMed Journal: J Am Chem Soc ISSN: 0002-7863 Impact factor: 15.419