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Coordination Environment Engineering of Metal Centers in Coordination Polymers for Selective Carbon Dioxide Electroreduction toward Multicarbon Products

作者:Juan Wang, Mingzi Sun, Hongming Xu, Fengkun Hao, Qingbo Wa, Jianjun Su, Jingwen Zhou, Yunhao Wang, Jinli Yu, Penghui Zhang, Ruquan Ye, Shengqi Chu, Bolong Huang, Minhua Shao, Zhanxi Fan · 发表于:ACS Nano · 年份:2024 · DOI:10.1021/acsnano.3c12389 · 被引用次数:107 · 研究领域:CO2 Reduction Techniques and Catalysts、Carbon dioxide utilization in catalysis、Ionic liquids properties and applications

Electrocatalytic carbon dioxide reduction reaction (CO 2 RR) toward value-added chemicals/fuels has offered a sustainable strategy to achieve a carbon-neutral energy cycle. However, it remains a great challenge to controllably and precisely regulate the coordination environment of active sites in catalysts for efficient generation of targeted products, especially the multicarbon (C 2+ ) products. Herein we report the coordination environment engineering of metal centers in coordination polymers for efficient electroreduction of CO 2 to C 2+ products under neutral conditions. Significantly, the Cu coordination polymer with Cu–N 2 S 2 coordination configuration (Cu–N–S) demonstrates superior Faradaic efficiencies of 61.2% and 82.2% for ethylene and C 2+ products, respectively, compared to the selective formic acid generation on an analogous polymer with the Cu–I 2 S 2 coordination mode (Cu–I–S). In situ studies reveal the balanced formation of atop and bridge *CO intermediates on Cu–N–S, promoting C–C coupling for C 2+ production. Theoretical calculations suggest that coordination environment engineering can induce electronic modulations in Cu active sites, where the d-band center of Cu is upshifted in Cu–N–S with stronger selectivity to the C 2+ products. Consequently, Cu–N–S displays a stronger reaction trend toward the generation of C 2+ products, while Cu–I–S favors the formation of formic acid due to the suppression of C–C couplings for C 2+ pathways with large energy barr...