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◆ ACS Nano2026-05-18· Materials science

Synergistic Coupling between Nanoconfinement and Grain Boundary Improves Electrocatalytic CO <sub>2</sub> Reduction to <i>n</i> -Propanol

Lei Wang, Pengxiang Wang, Yujing Liu, Dongran Wang, Fangming Han, Xing Chen, Xiangfu Meng, Xiaoyang Zheng, Qiquan Luo, Haibin Tang, Guowen Meng

原始摘要(英文原文)· Original abstract
Cu-based nanomaterials are recognized as the most promising catalysts for electrocatalytic CO 2 reduction to produce valuable multicarbon products (C 2+ ). However, the low localized concentration of *C 1 and *C 2 intermediates and poor availability of active sites limit the CO 2 conversion efficiency and selectivity for C 2+ . Herein, a three-dimensional interconnected self-supporting Cu nanowire array with rich grain boundaries (GB-ICCu) is designed to obtain high production of C 2+, especially n -propanol (n-PrOH), due to the synergistic coupling between the nanoconfinement effect and the grain boundary. The finite element simulations and experimental results reveal that the three-dimensional interconnected structure between Cu nanowires, like a nanoscaffolding, induces a pronounced nanoconfinement of *C 1 and *C 2 intermediates and consequently enhances the selectivity toward n-PrOH. Meanwhile, the rich grain boundaries of the (111) and (200) on the surface of each Cu nanowire also strengthen CO 2 activation and intermediate adsorption, thereby reducing the energy barrier for C–C coupling. As a result, a high Faradaic efficiency of 17.47% and a partial current density of 10.44 mA cm –2 for n-PrOH are achieved in the H-type cell, while 12.05% and 77.7 mA cm –2 are achieved in the flow cell, respectively, which present an advance in partial current density of n-PrOH, i.e., the yield rate of n-PrOH. This work provides a strategy and a Cu-based electrocatalyst for C 3 synthesis via CO 2 reduction.
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Synergistic Coupling between Nanoconfinement and Grain Boundary Improves Electrocatalytic CO <sub>2</sub> Reduction to <i>n</i> -Propanol — 科研速览 Science Skim