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A Comprehensive Theoretical Study of the Mechanism for Dry Reforming of Methane on a Ni4/ZrO2(101) Catalyst Under External Electric Fields: The Role of Interface and Oxygen Vacancy

催化作用 甲烷 二氧化碳重整 接口(物质) 机制(生物学) 材料科学 化学工程 电场 甲烷转化炉 化学 纳米技术 蒸汽重整 物理化学 合成气 水溶液 物理 制氢 有机化学 工程类 吉布斯等温线 量子力学
作者
Hui Jiao,Gui‐Chang Wang
出处
期刊:ACS Catalysis [American Chemical Society]
卷期号:15 (5): 3846-3859 被引量:42
标识
DOI:10.1021/acscatal.4c05758
摘要

Although dry reforming of methane (DRM) reactions is advantageous in environmental and economic aspects, they still face the challenge of catalyst deactivation caused by carbon deposition. Metal-supported catalysts exhibit high activity and stability in DRM reactions due to the ability of strong metal–support interaction (SMSI) to highly disperse Ni nanoparticles and unique interface active sites. Moreover, the external electric field has a significant effect on DRM. Herein, the mechanisms of the DRM reaction on the Ni 4 /ZrO 2 (101) catalyst under different electric fields were comprehensively investigated using density functional theory (DFT) and microkinetic modeling to better understand the importance of metal-support interfaces and oxygen vacancies in catalysis. The results indicated that the electric fields weaken the interaction between Ni 4 clusters and ZrO 2 (101). Species are more easily adsorbed and activated at the interface than at only Ni sites. The negative electric fields enhanced CO 2 activation, while the positive electric fields promoted methane activation and CH x oxidation, at either the interface or Ni sites. Oxygen vacancies were generated on the Ni 4 /ZrO 2 catalysts by H spillover to form water and were facilitated by negative electric fields. The interface and oxygen vacancies significantly enhance DRM reaction activity and reduce carbon deposition. The surface adsorption dipole moment reflects the tendency of the adsorption strength and reaction enthalpy to change with the electric fields. The microkinetic results showed that carbon deposition is easily formed on the Ni 4 cluster, with CH–CH being the predominant type of carbon deposition. Fortunately, the DRM reaction exhibits high reactant conversion under the synergistic effect of Ni clusters and the Zr interface. In addition, oxygen vacancies promote CO 2 activation, thereby reducing carbon deposition and enhancing DRM reaction activity, especially with the application of a negative electric field. The positive electric field has the highest DRM reaction activity on Ni 4 /ZrO 2, accompanied by more carbon deposition. Importantly, the negative electric field combines high activity and anticarbon deposition properties. Our results are highly consistent with the experiment. This work emphasizes the importance of interfaces and oxygen vacancies, providing theoretical foundations for a deeper understanding of DRM reaction mechanisms and research in the area of electric- field catalysis.
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