Hydrogen bond interactions on a dual-core copper catalyst promote the activation of low-concentration CO2 and the generation of ethylene

Abstract

The electroreduction of low-concentration carbon dioxide to ethylene is highly attractive, as it enables the utilization of dilute CO2 in flue gas while producing high-value-added chemicals. However, the inherent difficulty of activating CO2 at low concentrations has limited both the catalytic activity and ethylene selectivity of existing copper-based electrocatalysts. In principle, precise regulation of the coordination microenvironment in copper-based complex catalysts could substantially lower the energy barriers associated with CO2 activation and C–C coupling, thereby enhancing CO2-to-C2H4 conversion; nevertheless, this strategy remains largely unexplored. Here, we perform theoretical calculations on CO2-to-C2H4 conversion over binuclear copper coordination complexes, [Cu2(OH)2L2]-X (L = 1,10-phenanthroline or 2,2′-bipyridine; X = external anion), featuring OH bridging ligands. We demonstrate that the oxygen atoms of the OH ligands surrounding the binuclear copper centers form hydrogen bonds with the hydrogen atom of the *COOH intermediate, significantly lowering the energy barrier for CO2 activation. Moreover, the adjacent Cu⋯Cu sites effectively promote C–C coupling, facilitating ethylene formation. Electrochemical CO2 reduction tests reveal that the [Cu2(OH)2L2]-X complexes exhibit outstanding catalytic activity and C2H4 selectivity, achieving faradaic efficiencies of up to 62.5% and 58.8%, respectively. This work offers a new design paradigm for highly efficient copper-based complex catalysts for the electroreduction of CO2 to multicarbon products.

Graphical abstract: Hydrogen bond interactions on a dual-core copper catalyst promote the activation of low-concentration CO2 and the generation of ethylene

Supplementary files

Article information

Article type
Paper
Submitted
17 Dec 2025
Accepted
27 Jan 2026
First published
28 Jan 2026

Green Chem., 2026, Advance Article

Hydrogen bond interactions on a dual-core copper catalyst promote the activation of low-concentration CO2 and the generation of ethylene

G. Sun, Y. Ma, Y. Cao, K. Zhao, K. Ao, X. Wang, M. Hao, M. Sun and W. Zhang, Green Chem., 2026, Advance Article , DOI: 10.1039/D5GC06841J

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