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Multifunctional surface engineering of copper for enhanced C2+ production in CO2 electroreduction

  • Pengfei Zhang
  • , Xueying Li
  • , Liang Xu
  • , Xinyi Tan*
  • , Feng Yu*
  • , Alex W. Robertson
  • , Zhenyu Sun*
  • *Corresponding author for this work
  • Beijing University of Chemical Technology
  • Sinochem
  • Beijing Institute of Technology
  • Shihezi University
  • University of Warwick

Research output: Contribution to journalArticlepeer-review

Abstract

Electrocatalytic CO2 reduction to high-value multi-carbon (C2+) products is pivotal for sustainable carbon utilization. Copper (Cu)-based catalysts are promising for promoting electrocatalytic CO2 reduction to yield C2+ products. However, their performance is hindered by the competitive hydrogen evolution reaction (HER) and non-optimal *CO adsorption, which severely limit both selectivity and efficiency. Here, we report a surface modification strategy employing 3-aminopropyltriethoxysilane (APTES) to functionalize Cu nanosheets. The resulting APTES/Cu-5% catalyst achieves a superior faradaic efficiency of 79.4% and high partial current density of −714.6 mA cm−2 toward C2+ products, significantly outperforming unmodified Cu and the majority of state-of-the-art Cu catalysts. Mechanistic studies reveal that this enhanced performance arises from the dual functinality of APTES. Its –NH2 groups facilitate CO2 activation, while its hydrophobic siloxane backbone suppresses HER by impeding H2O transport. The synergistic effect enriches *CO intermediates on the Cu surface, facilitating C−C coupling and enabling high-rate C2+ production.

Original languageEnglish
Article number035007
JournalJPhys Energy
Volume8
Issue number3
DOIs
Publication statusPublished - Sept 2026
Externally publishedYes

Keywords

  • Cproducts
  • COreduction
  • COutilization
  • Cu-based electrocatalysts
  • electrocatalysis
  • surface modification

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