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February 16, 2026Small4 citationsOpen Access

Hexafluorophosphate‐Modulated CuO for Selectivity Enhancement of C 2 Species in Electroreduction of CO 2

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LJLu JiangYLYaning LiuQLQ.Q. Liu

Key Points

  • The aim is to improve selectivity towards C2 products in the electroreduction of carbon dioxide using a modified copper oxide catalyst.
  • Synthesis of copper oxide (CuO) nanosheets using microwave-assisted methods.
  • Modification of CuO with ammonium hexafluorophosphate (NH4PF6).
  • Evaluation of Faradaic efficiency for C2 products in H-type and flow electrochemical cells.
  • Achieved Faradaic efficiency of 75.8% ± 0.5% for C2 products in an H-type electrochemical cell.
  • Increased Faradaic efficiency to 82.4% in a flow cell.
  • Demonstrated high catalytic stability over 10 hours.

Abstract

ABSTRACT Copper (Cu)‐based catalysts are widely employed in electroreduction of carbon dioxide (CO 2 ER) because of their cost‐effectiveness and versatility in producing multi‐carbon products. However, improving the product selectivity, especially toward C 2 species (hydrocarbon containing two carbon atoms), remains a significant challenge. Herein, the microwave‐assisted synthesis of copper oxide (CuO) is modulated with ammonium hexafluorophosphate (NH 4 PF 6 ), obtaining thin CuO (ca. 12 nm in thickness) nanosheets with the surface adsorbed with hexafluorophosphate, referred as CuO‐PF 6 . This CuO‐PF 6 catalyst could help stabilize the key reaction intermediates during CO 2 ER. Therefore, the Faradaic efficiency (FE) of C 2 products (ethylene and ethanol) during CO 2 ER could be improved to 75.8% ± 0.5% in an H‐type electrochemical cell. This C 2 FE increases to 82.4% in a flow cell. The improved FE toward C 2 species could be attributed to the PF 6 ‐modulated electronic structure of Cu surface and stabilization of key reaction intermediates, especially those involving C 2 production. In addition, CuO‐PF 6 also demonstrates a high catalytic stability over 10 h. This work provides a deeper understanding of surface modification strategy for CO 2 ER enhancement, promising for designing hybrid electrocatalysts with high efficiency and stability for CO 2 ‐to‐fuel conversion.

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Cite This Study

Jiang et al. (2026) studied this question.

synapsesocial.com/papers/6992b3939b75e639e9b0854chttps://doi.org/10.1002/smll.202513677
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