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◆ Nature Communications2026-02-04· Oxygenate

Ampere-level CO2 electroreduction to multi-carbon oxygenates in acidic electrolyte through surface microenvironment reconstruction

Yaoyu Yin, Zhongnan Ling, Shiqiang Liu, Shipeng Zhang, HengAn Wang, Wenling Zhao, Huisheng Qin, Rongjuan Feng, Xueqing Xing, Lihong Jing, Yi Xu, Qinggong Zhu, Xiaofu Sun, Qingli Qian, Jianling Zhang, Xinchen Kang, Buxing Han

原始摘要(英文原文)· Original abstract
Efficient CO2 electroreduction to multi-carbon (C2+) oxygenates in acidic electrolytes remains a great challenge, especially under high current density conditions. In this study, we prepare an ionic liquid (IL)-modified Cu electrode (IL@Cu), which achieve a Faradaic efficiency (FE) of 82.7% toward C2+ products at a current density of 2.0 A cm−2 in 0.5 M K2SO4 (pH = 1, adjusted with H2SO4), with a single-pass carbon efficiency reaching 78.5%. Under the same conditions, the partial current density for C2+ oxygenates and ethanol exceed 1.2 A cm−2 and 1.0 A cm−2, respectively, over IL@Cu. Mechanism study has shown that K+ cations are repelled by the IL cations during the reaction, allowing water molecules to access the electrode surface. The displacement of K+ enhances C–C coupling, while the proximity of water to the electrode surface facilitates the incorporation of oxygen-containing intermediates into the hydrogen bond network, thereby promoting the formation of C2+ oxygenates. The electroreduction of CO2 to C2+ oxygenates at industrial current density in acidic media is highly significant yet remains a challenge. Here, the authors report an ionic liquid-modified Cu electrode that enables efficient and stable production of C2+ oxygenates at ampere-level current densities.
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