Aminocatalysis is a well-established tool that enables the production of enantioenriched compounds under mild conditions. Its versatility is underscored by its seamless integration with various synthetic approaches. While the combination of aminocatalysis with metal catalysis, photochemistry, and stoichiometric oxidants has been extensively explored, its synergy with electrochemical activation remains largely unexplored. Herein, we present the successful merger of electrochemistry and aminocatalysis to perform SOMO-type transformations, expanding the toolkit for asymmetric electrochemical synthesis. The methodology harnesses electricity to drive the oxidation of catalytically generated enamines, which ultimately partake in enantioselective radical processes, leading to α-alkylated aldehydes. Crucially, mechanistic studies highlight how this electrochemical strategy is enabled by the use of a redox shuttle, 4,4′-dimethoxybiphenyl, to prevent catalyst degradation and furnishing the coveted compounds in good yield and high enantioselectivity.

Mazzarella, D., Qi, C., Vanzella, M., Sartorel, A., Pelosi, G., Dell'Amico, L. (2024). Electrochemical Asymmetric Radical Functionalization of Aldehydes Enabled by a Redox Shuttle. ANGEWANDTE CHEMIE. INTERNATIONAL EDITION, 63(25) [10.1002/anie.202401361].

Electrochemical Asymmetric Radical Functionalization of Aldehydes Enabled by a Redox Shuttle

Mazzarella D.
;
2024-01-01

Abstract

Aminocatalysis is a well-established tool that enables the production of enantioenriched compounds under mild conditions. Its versatility is underscored by its seamless integration with various synthetic approaches. While the combination of aminocatalysis with metal catalysis, photochemistry, and stoichiometric oxidants has been extensively explored, its synergy with electrochemical activation remains largely unexplored. Herein, we present the successful merger of electrochemistry and aminocatalysis to perform SOMO-type transformations, expanding the toolkit for asymmetric electrochemical synthesis. The methodology harnesses electricity to drive the oxidation of catalytically generated enamines, which ultimately partake in enantioselective radical processes, leading to α-alkylated aldehydes. Crucially, mechanistic studies highlight how this electrochemical strategy is enabled by the use of a redox shuttle, 4,4′-dimethoxybiphenyl, to prevent catalyst degradation and furnishing the coveted compounds in good yield and high enantioselectivity.
2024
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore CHEM-05/A - Chimica organica
English
Con Impact Factor ISI
Aminocatalysis
Electrosynthesis
Organocatalysis
Redox Shuttle
SOMO Activation
Mazzarella, D., Qi, C., Vanzella, M., Sartorel, A., Pelosi, G., Dell'Amico, L. (2024). Electrochemical Asymmetric Radical Functionalization of Aldehydes Enabled by a Redox Shuttle. ANGEWANDTE CHEMIE. INTERNATIONAL EDITION, 63(25) [10.1002/anie.202401361].
Mazzarella, D; Qi, C; Vanzella, M; Sartorel, A; Pelosi, G; Dell'Amico, L
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/395644
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