Electrochemical CO Reduction to n-Propanol on Cu via Dual Weakening of CO Adsorption and C≡O Bond Strength

Abstract Renewable-electricity-driven carbon monoxide reduction (CORR) for synthesizing multi-carbon (C2+) products offers immense appeal as a route for energy storage and carbon recycling. Yet, producing extended-carbon products such as n-propanol with high market value remains challenging due to the relative rarity of the *C2 intermediate. This paper describes a strategy for dual weakening of CO adsorption and C≡O bond strength to enhance the CORR performance for n-propanol by introducing anion-functional group-modified graphene quantum dots on Cu (Cu/GQD-X, where X represents OH, NH2, SO3, and PO4). We achieve a Faradaic efficiency (FE) of 45.3% and a full-cell EE of 23% for n-propanol on GQD-SO3-modified Cu while maintaining stable performance without obvious degradation for at least 144 h in a membrane electrode assembly. Mechanism studies reveal that Cu/GQD-SO3 provides a suitable CO coverage and a weakened C≡O bond, facilitating the hydrogenation of *CO to *COH, asymmetrical *CO–COH coupling to *COCOH, and *COH–COCOH coupling for the generation of n-propanol. This work demonstrates the crucial role of dual weakening of CO adsorption and the C≡O bond in CORR for the efficient production of n-propanol and contributes significantly to understanding the mechanism of n-propanol formation.

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Publication Details

Journal
ACS Catalysis
Published
2026-09-21
DOI
https://doi.org/10.1021/acscatal.6c03118
Primary Topic
CO2 Reduction Techniques and Catalysts
Type
article
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Electrochemical CO Reduction to n-Propanol on Cu via Dual Weakening of CO Adsorption and C≡O Bond Strength

Yuhui Zhang, Jianjun Ma, Yao Zheng, Qiang Zhao et al.
ACS Catalysis
CO2 Reduction Techniques and Catalysts
article

Electrochemical CO Reduction to n-Propanol on Cu via Dual Weakening of CO Adsorption and C≡O Bond Strength

Yuhui Zhang, Jianjun Ma, Yao Zheng, Qiang Zhao, Dazhong Zhong, Wu Xu, Tan Li, Jinping Li, Runxin Du, Qiang Fang
article en

Abstract

Abstract Renewable-electricity-driven carbon monoxide reduction (CORR) for synthesizing multi-carbon (C2+) products offers immense appeal as a route for energy storage and carbon recycling. Yet, producing extended-carbon products such as n-propanol with high market value remains challenging due to the relative rarity of the *C2 intermediate. This paper describes a strategy for dual weakening of CO adsorption and C≡O bond strength to enhance the CORR performance for n-propanol by introducing anion-functional group-modified graphene quantum dots on Cu (Cu/GQD-X, where X represents OH, NH2, SO3, and PO4). We achieve a Faradaic efficiency (FE) of 45.3% and a full-cell EE of 23% for n-propanol on GQD-SO3-modified Cu while maintaining stable performance without obvious degradation for at least 144 h in a membrane electrode assembly. Mechanism studies reveal that Cu/GQD-SO3 provides a suitable CO coverage and a weakened C≡O bond, facilitating the hydrogenation of *CO to *COH, asymmetrical *CO–COH coupling to *COCOH, and *COH–COCOH coupling for the generation of n-propanol. This work demonstrates the crucial role of dual weakening of CO adsorption and the C≡O bond in CORR for the efficient production of n-propanol and contributes significantly to understanding the mechanism of n-propanol formation.

ACS Catalysis
Kunming University of Science and Technology (CN), Taiyuan University of Science and Technology (CN), The University of Adelaide (AU), Taiyuan University of Technology (CN)
Affordable and clean energy
Openalex Percentile: Top 29%
CO2 Reduction Techniques and Catalysts
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