介孔材料
材料科学
纳米技术
化学工程
化学
催化作用
工程类
有机化学
作者
Lei Xiong,Xianbiao Fu,Wenpu Fan,Jun Zhang,Zixuan Zheng,Lü Shaojie,Dong Wang,Mingze Hao,Qin Yue
出处
期刊:ACS central science
[American Chemical Society]
日期:2025-08-22
卷期号:11 (10): 1902-1910
被引量:5
标识
DOI:10.1021/acscentsci.5c01035
摘要
Nanoconfinement provides a promising strategy to promote the electrochemical CO2 reduction reaction (CO2RR) owing to enhanced reactant enrichment and collision. However, the nanoconfinement influence on the CH4 selectivity from the CO2RR with related regulation mechanism is unclear. Herein, a series of mesoporous CeO2 loaded Cu catalysts with controllable pore size (1.3-5.5 nm) are designed to modulate the CO2RR selectivity to CH4. It is found that decreasing the pore size can apparently enhance the CO2RR performance while inhibiting the HER activity. Moreover, a volcano-type relationship between the CH4 selectivity and the pore diameter is observed among these catalysts, while Cu-mCeO2-3.0 (pore diameter of 3.0 nm) shows the highest CH4 Faradaic efficiency (66.1 ± 2.9%). The in situ experiments and DFT calculations illustrate that a smaller pore size with stronger confinement over Cu-mCeO2-x can promote the adsorption and transformation of reactants (*CO, *CHO, etc.) for CH4 production, but too narrow confined space (1.3 nm) will contribute to much higher intermediate coverage and promote their collision for C-C coupling to C2+ products instead, thus reducing the CH4 selectivity. This work provides designing insights into metal/oxide catalysts with controllable pore size to study the nanoconfinement effect on the CO2RR-to-CH4 activity, which can be extended to other oxide-based catalytic reactions.
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