Mass transfer effects in CO 2 reduction on Cu nanowire electrocatalysts

Significant interest has risen in the development of catalytic nanomaterials for the electroreduction of CO 2 . While extensive studies have been reported on tuning of surface structures to improve the chemical kinetics, less attention has been paid to the mass transfer effects in the CO 2 reduction...

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Veröffentlicht in:Catalysis science & technology 2018, Vol.8 (9), p.2364-2369
Hauptverfasser: Raciti, David, Mao, Mark, Park, Jun Ha, Wang, Chao
Format: Artikel
Sprache:eng
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Zusammenfassung:Significant interest has risen in the development of catalytic nanomaterials for the electroreduction of CO 2 . While extensive studies have been reported on tuning of surface structures to improve the chemical kinetics, less attention has been paid to the mass transfer effects in the CO 2 reduction reaction on nanoscale electrocatalysts. We report here a systematic investigation of CO 2 electroreduction on highly dense Cu nanowires, with the focus placed on practically relevant high-flux conditions. Mass transfer effects are found to play an important role in this case, giving rise to diffusion-limited CO 2 reduction activity and selectivity. By correlating the observed transport phenomena to the CO 2 conversion rate calculated from the experimental data and the surface concentration of CO 2 on the nanowires derived from transport modeling, an upper limit is revealed for the CO 2 conversion rate on the nanostructured electrodes, which also causes the drop in Faradaic efficiency of CO 2 reduction at large current densities. Our work emphasizes the necessity of considering mass transfer effects in the design of advanced electrocatalysts for CO 2 reduction as well as for understanding their structure–performance relationships.
ISSN:2044-4753
2044-4761
DOI:10.1039/C8CY00372F