Supporting-Electrolyte-Free Anodic Oxidation of Oxamic Acids into Isocyanates: An Expedient Way to Access Ureas, Carbamates, and Thiocarbamates

We report a new electrochemical supporting-electrolyte-free method for synthesizing ureas, carbamates, and thiocarbamates via the oxidation of oxamic acids. This simple, practical, and phosgene-free route includes the generation of an isocyanate intermediate in situ via anodic decarboxylation of an...

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Veröffentlicht in:Organic process research & development 2021-12, Vol.25 (12), p.2614-2621
Hauptverfasser: Petti, Alessia, Fagnan, Corentin, van Melis, Carlo G. W, Tanbouza, Nour, Garcia, Anthony D, Mastrodonato, Andrea, Leech, Matthew C, Goodall, Iain C. A, Dobbs, Adrian P, Ollevier, Thierry, Lam, Kevin
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Sprache:eng
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Zusammenfassung:We report a new electrochemical supporting-electrolyte-free method for synthesizing ureas, carbamates, and thiocarbamates via the oxidation of oxamic acids. This simple, practical, and phosgene-free route includes the generation of an isocyanate intermediate in situ via anodic decarboxylation of an oxamic acid in the presence of an organic base, followed by the one-pot addition of suitable nucleophiles to afford the corresponding ureas, carbamates, and thiocarbamates. This procedure is applicable to different amines, alcohols, and thiols. Furthermore, when single-pass continuous electrochemical flow conditions were used and this reaction was run in a carbon graphite Cgr/Cgr flow cell, urea compounds could be obtained in high yields within a residence time of 6 min, unlocking access to substrates that were inaccessible under batch conditions while being easily scalable.
ISSN:1083-6160
1520-586X
DOI:10.1021/acs.oprd.1c00112