AI Article Synopsis

  • - Recent advancements in electrosynthesis using CO as a feedstock have improved the production of multicarbon chemicals but face challenges, particularly in forming carbon-carbon (C-C) bonds efficiently in neutral media.
  • - The study introduces oxide-derived copper crystals with specific facets that achieve a high Faradaic efficiency of 74.9% when converting CO to multicarbon products at a current density of 300 mA cm in a mildly alkaline solution.
  • - Experimental and computational analyses reveal that the Cu(100)/Cu(111) interfaces significantly enhance CO adsorption and reduce the energy barriers for C-C coupling, maintaining stability over 50 hours of continuous operation without degradation.

Article Abstract

The electrosynthesis of valuable multicarbon chemicals using carbon dioxide (CO) as a feedstock has substantially progressed recently but still faces considerable challenges. A major difficulty lines in the sluggish kinetics of forming carbon-carbon (C-C) bonds, especially in neutral media. We report here that oxide-derived copper crystals enclosed by six {100} and eight {111} facets can reduce CO to multicarbon products with a high Faradaic efficiency of 74.9 ± 1.7% at a commercially relevant current density of 300 mA cm in 1 M KHCO (pH ∼ 8.4). By combining the experimental and computational studies, we uncovered that Cu(100)/Cu(111) interfaces offer a favorable local electronic structure that enhances *CO adsorption and lowers C-C coupling activation energy barriers, performing superior to Cu(100) and Cu(111) surfaces, respectively. On this catalyst, no obvious degradation was observed at 300 mA cm over 50 h of continuous operation.

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Source
http://dx.doi.org/10.1021/jacs.1c09508DOI Listing

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