催化作用
化学
产量(工程)
级联
组合化学
乙醇
吸附
氧化物
工作(物理)
级联反应
一氧化碳
联轴节(管道)
转移加氢
多相催化
纳米技术
反应性(心理学)
化学工程
反应中间体
选择性
合成气
协同催化
反应条件
碳纤维
活动站点
分子
材料科学
反应机理
纳米颗粒
分子动力学
原位
作者
Yuling Ma,Xin Pu,Yangqin Liu,Peng Zhou,Xin Han,Lei Ye,Xinglong Qin,Haitao Xu,Lingtao Kong,Jiangbing Li,Jian Zhang,Jichang Liu
出处
期刊:ACS Catalysis
[American Chemical Society]
日期:2025-10-27
卷期号:15 (21): 18580-18590
被引量:6
标识
DOI:10.1021/acscatal.5c03510
摘要
The hydrogenation of CO2 to ethanol is considered a promising route for recycling carbon resources while mitigating global warming. Nevertheless, the key scientific challenge lies in the efficient coordination of CO2 adsorption/activation, intermediate CO stabilization/dissociation, and selective C–C coupling within multistep cascade catalytic processes. Herein, we present a PdFe/NaZnOx catalyst with spatially coupled active centers to enhance cascade catalysis. Systematic characterization and DFT calculations reveal that the catalyst features a dynamic triple-interface structure driven by synergistic interactions among Pd, Fe3O4, and ZnO. This unique configuration achieves efficient CO2 hydrogenation to ethanol with a space-time yield of 87.5 mg·gcat–1·h–1. Mechanistic insights demonstrate that Na-modified ZnO contributes the primary CO2 adsorption sites (0.125 mmol/g), while Pd synergizes with Fe3O4 to stabilize H2 and intermediate CO, exhibiting a 4.1-fold enhancement in nondissociative CO activation compared to Fe/NaZnOx. Crucially, Pd facilitates in situ carburization of Fe3O4 to Fe5C2 (from 46.7 to 74.3%), forming Pd–Fe5C2 interfaces that drive *CO-*CHx coupling. The triple-interface structure enables the efficient transfer of *H/*CO intermediates, achieving 20.2% ethanol selectivity, which is 3.8 times higher than that of conventional Fe/NaZnOx. This work highlights the critical role of interfacial and metal–metal oxide synergy in optimizing C1 intermediate stabilization and cascade catalysis, providing a design strategy for multifunctional composite catalytic systems targeting hydrogenation of CO2 to ethanol.
科研通智能强力驱动
Strongly Powered by AbleSci AI