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A comparative DFT+U study of CO oxidation on Pd-and Zr-doped ceria    

文献类型:期刊文献

中文题名:A comparative DFT+U study of CO oxidation on Pd-and Zr-doped ceria

作者:Lu Chen[1];Xinping Wu[1];Xueqing Gong[1]

机构:[1]Key Laboratory for Advanced Materials and Joint International Research Laboratory for Precision Chemistry and Molecular Engineering,Feringa Nobel Prize Scientist Joint Research Center,Frontiers Science Center for Materiobiology and Dynamic Chemistry,Centre for Computational Chemistry and Research Institute of Industrial Catalysis,School of Chemistry and Molecular Engineering,East China University of Science and Technology,Shanghai 200237,China

年份:2023

卷号:41

期号:7

起止页码:1042

中文期刊名:Journal of Rare Earths

外文期刊名:稀土学报(英文版)

收录:CSTPCD;;Scopus;CSCD:【CSCD2023_2024】;

基金:Project supported by National Key R&D Program of China(2018YFA0208602);National Natural Science Foundation of China (21825301,22003016,92045303);the Fundamental Research Funds for the Central Universities(222201717003);Shanghai Municipal Science and Technology Major Project(2018SHZDZX03);the Programme of Introducing Talents of Discipline to Universities (B16017)。

语种:英文

中文关键词:CeO_(2);Metal doping;CO oxidation;Carbonate;DFT+U;Rare earths

摘要:Metal-doped ceria catalysts have been applied in many important catalytic processes.In this work,we performed density functional theory calculations corrected by on-site Coulomb interactions to study the Pd-and Zr-doped CeO_(2)(111) surfaces with the dopant at different locations.The formation of oxygen vacancies and CO oxidation were systematically calculated on the various doped surfaces.We find that both Pd and Zr doping can activate the surface lattice O and reduce the energy barriers of CO oxidation.However,the promotion effect of the Zr dopant is limited to its existence in the first surface layer,while for the Pd dopant,the surface activity can be greatly enhanced even it occurs far below the surface.Besides,CO_(2) can be generated directly on the Pd-doped surfaces through reaction between CO and surface O,while the surface intermediate CO_(2)^(δ-) may readily form and restrict the releasing of CO_(2) by further oxidation to carbonates on the Zr-doped surfaces.Electronic analyses show that the doped Pd exists as Pd^(4+) and it has stronger electron affinity than other surface species during CO oxidation,contributing to the easy Pd^(4+) to Pd^(2+) transformation accompanied by direct CO_(2) formation at Pd-doped ceria.

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