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Stabilizing *COOH on Ni Single-Atom Sites by Dual-Phase Ni3ZnC0.7 and Ni for Enhanced Electrocatalytic CO2 Reduction
Longlong Qi1, Shao-Chen Wang1, Xiang Ji1
1College of Chemistry and Chemical Engineering, Inner Mongolia University, 49 Xilinguole South Road, 010020 Hohhot, P. R. China.
Abstract:
Metal-based nanoparticle-modulated single-atom catalysts have garnered significant attention in the field of electrocatalytic CO2 reduction reaction. However, the scaling relationships between the intermediates and their binding energies lead to unsatisfactory selectivity for specific products. Herein, Ni3ZnC0.7-Ni nanoparticles (NPs)-modulated Ni single-atoms (SAs) supported on N-doped carbon (NiSAs/Ni3ZnC0.7-NiNPs@NC) were constructed using a metal-organic framework as a template. Experiments and theoretical calculations reveal that the charge transfer from Ni3ZnC0.7 and Ni NPs to Ni SAs results in the formation of electron-enriched Ni SAs sites, which is conducive to stabilize the key *COOH intermediate. The catalyst shows a partial current density for CO of -345 mA cm-2 and a Faradaic efficiency for CO (FECO) of 99.3% at -0.8 V versus a reversible hydrogen electrode in a flow cell. Furthermore, the catalyst maintains FECO of above 94% after continuous electrolysis for 18 h, showcasing its remarkable long-term stability.
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