Publication | Closed Access
Size‐Dependent Activity and Selectivity of Atomic‐Level Copper Nanoclusters during CO/CO<sub>2</sub> Electroreduction
250
Citations
53
References
2020
Year
As a favorite descriptor, the size effect of Cu-based catalysts has been regularly utilized for activity and selectivity regulation toward CO<sub>2</sub> /CO electroreduction reactions (CO<sub>2</sub> /CORR). However, little progress has been made in regulating the size of Cu nanoclusters at the atomic level. Herein, the size-gradient Cu catalysts from single atoms (SAs) to subnanometric clusters (SCs, 0.5-1 nm) to nanoclusters (NCs, 1-1.5 nm) on graphdiyne matrix are readily prepared via an acetylenic-bond-directed site-trapping approach. Electrocatalytic measurements show a significant size effect in both the activity and selectivity toward CO<sub>2</sub> /CORR. Increasing the size of Cu nanoclusters will improve catalytic activity and selectivity toward C<sub>2+</sub> productions in CORR. A high C<sub>2+</sub> conversion rate of 312 mA cm<sup>-2</sup> with the Faradaic efficiency of 91.2 % are achieved at -1.0 V versus reversible hydrogen electrode (RHE) over Cu NCs. The activity/selectivity-size relations provide a clear understanding of mechanisms in the CO<sub>2</sub> /CORR at the atomic level.
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