AI Article Synopsis

  • Copper-based catalysts are highly sought after for their ability to selectively produce carbon (C) products when reducing carbon monoxide (CO), with grain boundaries enhancing their effectiveness.
  • Traditional smooth-surfaced CuO nanocrystals struggle to form the necessary grain boundaries and coordination sites, limiting their catalytic capabilities.
  • This study introduces a novel hierarchical structure of CuO, created through flow chemistry, that improves surface reconstruction and increases Faradaic efficiency for ethylene production during electrocatalysis, showcasing a significant advancement in catalyst design.

Article Abstract

Copper-based catalysts have attracted enormous attention due to their high selectivity for C products during the electrochemical reduction of CO (CO RR). In particular, grain boundaries on the catalysts contribute to the generation of various Cu coordination environments, which have been found essential for C-C coupling. However, smooth-surfaced Cu O nanocrystals generally lack the ability for the surface reorganization to form multiple grain boundaries and desired Cu undercoordination sites. Flow chemistry armed with the unparalleled ability to mix reaction mixture can achieve a very high concentration of unstable reaction intermediates, which in turn are used up rapidly to lead to kinetics-driven nanocrystal growth. Herein, the synthesis of a unique hierarchical structure of Cu O with numerous steps (h-Cu O ONS) via flow chemistry-assisted modulation of nanocrystal growth kinetics is reported. The surface of h-Cu O ONS underwent rapid surface reconstruction under CO RR conditions to exhibit multiple heterointerfaces between Cu O and Cu phases, setting the preferable condition to facilitate C-C bond formation. Notably, the h-Cu O ONS obtained the increased C H Faradaic efficiency from 31.9% to 43.5% during electrocatalysis concurrent with the morphological reorganization, showing the role of the stepped surface. Also, the h-Cu O ONS demonstrated a 3.8-fold higher ethylene production rate as compared to the Cu O nanocube.

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Source
http://dx.doi.org/10.1002/smtd.202200074DOI Listing

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