Organic electrosynthesis is an emerging field that provides original selectivity while adding features of atom economy, sustainability, and selectivity. Electrosynthesis is often enhanced by redox mediators or electroauxiliaries. The mechanistic understanding of organic electrosynthesis is however often limited by the low lifetime of intermediates and its difficult detection. In this work, we report a computational analysis of the mechanism of an appealing reaction previously reported by Mei and co-workers which is catalyzed by copper and employs iodide as redox mediator. Our scheme combines DFT calculations with microkinetic modeling and covers both the reaction in solution and the electrodic steps. A detailed mechanistic scheme is obtained which reproduces well experimental data and opens perspectives for the general treatment of these processes.
Article
Accepted version
English
9 p.
Chemistry Europe
CERCA Programme/Generalitat de Catalunya
PRE2021-097618), funded by MCIN/AEI/10.13039/ 501100011033 and by the FSE+
MCIN/AEI (PID2020- 112825RB-I00 and CEX2019-000925-S), and FEDER funds
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