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首页> 外文期刊>Chemistry of Materials: A Publication of the American Chemistry Society >Thermal Oxidation of Size-Selected Pd Nanoparticles Supported on CuO Nanowires: The Role of the CuO-Pd Interface
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Thermal Oxidation of Size-Selected Pd Nanoparticles Supported on CuO Nanowires: The Role of the CuO-Pd Interface

机译:CuO纳米线的尺寸选择的Pd纳米粒子的热氧化:CuO-Pd界面的作用

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摘要

The structure of heterogeneous nanocatalysts supported on metal oxide materials and their morphological changes during oxidation/reduction processes play a crucial role in determining the resulting catalytic activity. Herein, we study the thermal oxidation mechanism of Pd nanoparticles supported on CuO nanowires by combining in situ environmental transmission electron microscopy (TEM), ex situ experiments, and ab initio density functional theory (DFT) calculations. High-resolution TEM imaging assisted by geometric phase analysis enabled the analysis of partially oxidized, fully oxidized, and distinct onion-like Pd nanoparticles with subsurface dislocations. Furthermore, preferential crystalline orientations between PdO nano particles and the CuO nanowire support have been found. Hence, the CuO-Pd interface is crucial for the thermal oxidation of Pd nanoparticles, as corroborated by electron energy loss spectroscopy and DFT calculations. The latter revealed a considerably lower energy barrier for penetration of oxygen into the Pd lattice at the CuO-Pd interface, promoting nanoparticle oxidation. The obtained results are compared with those of literature reports on different material systems, and potential implications for catalysis and chemoresistive sensing applications are discussed.
机译:在金属氧化物材料上负载的异质纳米催化剂的结构及其在氧化/还原过程中的形态变化起到确定所得催化活性的至关重要作用。在此,我们通过组合原位环境透射电子显微镜(TEM),EX原位实验和AB初始密度泛函理论(DFT)计算来研究CuO纳米线上支持的PD纳米粒子的热氧化机理。通过几何相分析辅助的高分辨率TEM成像使得分析具有地下脱位的部分氧化,完全氧化和不同的洋葱状PD纳米粒子。此外,已经发现了PDO纳米颗粒和CuO纳米线载体之间的优先晶体取向。因此,CuO-Pd界面对于PD纳米颗粒的热氧化是至关重要的,如电子能量损失光谱和DFT计算的腐蚀。后者揭示了在CuO-Pd界面处的氧气渗透到Pd晶格中的相当低的能量屏障,促进纳米颗粒氧化。将得到的结果与不同材料系统的文献报告进行比较,讨论了对催化和化学感测应用的潜在影响。

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