催化作用
金属
催化循环
密度泛函理论
Atom(片上系统)
光化学
材料科学
氧化还原
钯
氧气
物理化学
反应机理
过渡金属
催化氧化
吸附
反应中间体
化学
无机化学
反应性(心理学)
多相催化
化学物理
结晶学
动能
动力学
光谱学
氧化态
化学动力学
铂金
贵金属
氧原子
作者
Kayla Eudy,Shyam Deo,Zayne M. Weber,Michael J. Janik,Robert M. Rioux
出处
期刊:ACS Catalysis
[American Chemical Society]
日期:2025-09-17
卷期号:15 (19): 16674-16689
被引量:1
标识
DOI:10.1021/acscatal.5c02817
摘要
Palladium single atoms supported on ceria nanocubes demonstrate unique catalytic behavior during CO oxidation, allowing the metal atom to access two redox cycles and oscillate between four oxidation states. Ni and Pt single atoms supported on ceria nanocubes are active for CO oxidation but do not exhibit the same unique behavior as Pd/CeO2 single-atom catalysts (SACs). Experimentally measured CO reaction orders for Ni/CeO2 and Pt/CeO2 SACs are less than one, indicating the catalytic cycle accesses only three oxidation states. IR spectroscopy reveals a narrow range of Ni (Ni2+ and Ni4+) and Pt (Pt2+) oxidation states under lean and rich CO conditions. Density functional theory calculations demonstrate oxygen vacancies cannot form adjacent to adsorbed Ni atoms, and the formation of PtO2 is kinetically infeasible, limiting these SACs to a simpler redox cycle relative to Pd single atoms. Microkinetic modeling, utilizing Bayesian inference to allow the elementary energetics to vary, successfully matches experimental reaction orders and apparent barriers for Ni/CeO2 and Pt/CeO2 SACs with a mechanism using a single redox cycle. The kinetic behavior of single metal atoms supported on ceria nanocubes highlights how different metals have mechanistic differences during CO oxidation. The delineation of the oxidation states accessible to each metal atom may also guide their use in other catalytic chemistries.
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