Oxy-reductive C-N bond formation via pulsed electrolysis
Abstract
Abstract Co-electrolysis of CO 2 with simple N-species is an appealing route to sustainable fabrication of C-N bond containing products. A prominent challenge in this direction is to promote the C-N coupling step in place of the established CO 2 reduction pathways. This can be particularly difficult when relying on solution-based species (e.g., NH 3 ) to intercept intermediates that are continually being reduced on heterogeneous catalyst surfaces. In light of this, we introduce oxy-reductive pulsed electrocatalysis as a tool for C-N bond formation. The reaction routes opened through this method involve both partial reduction and partial oxidation of separate reactants on the same catalyst surface in parallel to co-adsorb their activated intermediates proximal to one another. Using CO 2 and NH 3 as model reactants, the end result is an enhancement of selectivity and formation rates for C-N bond containing products (urea, formamide, acetamide, methylamine) by factors of 3-20 as compared to static electrolysis in otherwise identical conditions. An array of operando measurements is carried out to pinpoint the key factors behind this performance enhancement. Finally, the oxy-reductive coupling strategy is extended to additional carbon and nitrogen reactants and is further applied to C-S coupling.
Article Details
Authors (8)
Yuxuan Zhang
College of Chemistry
Hasan Al-Mahayni
Pedro M. Aguiar
Daniel Chartrand
Morgan McKee
Institute of Inorganic Chemistry, University of Bonn, Gerhard-Domagk-Str. 1, 53121 Bonn, Germany
Mehdi Shamekhi
Ali Seifitokaldani
Department of Chemical Engineering, McGill University, 3610 University Street, Montréal H3A 0C5, Québec, Canada
Nikolay Kornienko
Institute of Inorganic Chemistry, University of Bonn, Gerhard-Domagk-Str. 1, 53121 Bonn, Germany