Deutsch
 
Hilfe Datenschutzhinweis Impressum
  DetailsucheBrowse

Datensatz

DATENSATZ AKTIONENEXPORT

Freigegeben

Zeitschriftenartikel

Copper-mediated etherification via aryl radicals generated from triplet states

MPG-Autoren
/persons/resource/persons262262

Zhang,  Li
Research Department Ritter, Max-Planck-Institut für Kohlenforschung, Max Planck Society;

/persons/resource/persons289456

Israel,  Eva M.
Research Department Ritter, Max-Planck-Institut für Kohlenforschung, Max Planck Society;

/persons/resource/persons265756

Yan,  Jiyao
Research Department Ritter, Max-Planck-Institut für Kohlenforschung, Max Planck Society;
Institute of Organic Chemistry, RWTH Aachen University;

/persons/resource/persons198096

Ritter,  Tobias
Research Department Ritter, Max-Planck-Institut für Kohlenforschung, Max Planck Society;
Institute of Organic Chemistry, RWTH Aachen University;

Externe Ressourcen
Es sind keine externen Ressourcen hinterlegt
Volltexte (beschränkter Zugriff)
Für Ihren IP-Bereich sind aktuell keine Volltexte freigegeben.
Volltexte (frei zugänglich)
Es sind keine frei zugänglichen Volltexte in PuRe verfügbar
Ergänzendes Material (frei zugänglich)
Es sind keine frei zugänglichen Ergänzenden Materialien verfügbar
Zitation

Zhang, L., Israel, E. M., Yan, J., & Ritter, T. (2022). Copper-mediated etherification via aryl radicals generated from triplet states. Nature Synthesis, 1(5), 376-381. doi:10.1038/s44160-022-00061-0.


Zitierlink: https://hdl.handle.net/21.11116/0000-000D-165B-5
Zusammenfassung
Carbon–heteroatom (C–X) cross-coupling is a common method for bond-forming reactions in chemistry but the more electronegative the heteroatom X is, the more challenging the bond formation becomes. Although reductive elimination from Cu(III) intermediates to form C–X bonds is generally a facile reaction, oxidative addition of Cu(I) into the carbon–(pseudo)halide bond of aryl (pseudo)halides is energetically challenging. Therefore, cross-coupling reactions of aryl halides with a variety of nucleophiles is currently out of reach for methods based on copper. Here we present a strategy to bypass the high-barrier oxidative addition step to aryl halides by the generation of aryl radicals from triplet states. Photoinduced energy transfer to, or direct excitation of, aryl halides even enables the use of aryl chlorides as electrophilic coupling partners. This strategy allows for the use of alcohols, amines and fluoride as nucleophiles and expands the scope of copper-mediated cross-coupling chemistry.