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首页> 外文期刊>ACS catalysis >Ni Nanoparticles on CeO2(111): Energetics, Electron Transfer, and Structure by Ni Adsorption Calorimetry, Spectroscopies, and Density Functional Theory
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Ni Nanoparticles on CeO2(111): Energetics, Electron Transfer, and Structure by Ni Adsorption Calorimetry, Spectroscopies, and Density Functional Theory

机译:CEO2(111)的Ni纳米粒子:Ni吸附量热法,光谱和密度泛函理论的能量学,电子转移和结构

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The morphology, interfacial bonding energetics, and charge transfer of Ni clusters and nanoparticles on slightly reduced CeO2-x(111) surfaces at 100-300 K have been studied using single-crystal adsorption calorimetry (SCAC), low-energy ion scattering spectroscopy (LEIS), X-ray photoelectron spectroscopy (XPS), low-energy electron diffraction (LEED), and density functional theory (DFT). The initial heat of adsorption of Ni vapor decreased with the extent of pre-reduction (x) of CeO2-x(111), showing that stoichiometric ceria adsorbs Ni more strongly than oxygen vacancies. On CeO1.95 (111) at 300 K, the heat dropped quickly with coverage in the first 0.1 ML, attributed to nucleation of Ni clusters on stoichiometric steps, followed by the Ni particles spreading onto less favorable terrace sites. At 100 K, the clusters nucleate on terraces due to slower diffusion. Adsorbed Ni monomers are in the +2 oxidation state, and they bind more strongly by similar to 45 kJ/mol to step sites than terraces. The measured heat of adsorption versus average particle size on terraces is favorably compared to DFT calculations. The Ce 3d XPS line shape showed an increase in Ce3+/Ce(4+ )ratio with Ni coverage, providing the number of electrons donated to ceria per Ni atom. The charge transferred per Ni is initially large but strongly decreases with increasing cluster size for both experiments and DFT, and it shows large differences between clusters at steps versus terraces. This charge is localized on the interfacial Ni and Ce atoms in their atomic layers closest to the interface. This knowledge is crucial to understanding the nature of the active sites on the surface of Ni/CeO2 catalysts, for which metal-oxide interactions play a very important role in the activation of O-H and C-H bonds. The changes in these interactions with Ni particle size (metal loading) and the extent of reduction of ceria help to explain how previously reported catalytic activity and selectivity change with these same structural details.
机译:使用单晶吸附量热法(SCAC),低能离子散射光谱(曙光),X射线光电子能谱(XPS),低能量电子衍射(LEED)和密度泛函理论(DFT)。 Ni蒸汽吸附的初始热量随CeO2-X(111)的预缩减量(x)的程度而降低,表明化学计量分子脂肪分析液比氧空位更强烈。在CEO1.95(111)时,在300 k时,热量越快地逐渐下降0.1毫升,归因于在化学计量步骤上的Ni簇成核,其次是散布到更有利的露台场所的Ni颗粒。在100 k处,由于扩散速度较慢,簇核对露台。吸附的Ni单体是+ 2氧化态,它们通过比露台与梯度相似的45kJ / mol更强烈地结合。与DFT计算相比,梯田上的测量吸附热与平均粒度相比是有利的。 CE 3D XPS线形状显示CE3 + / CE(4+)比率与NI覆盖率增加,提供给每Ni原子的电气染色的电子数量。每Ni的电荷最初是大的,但随着实验和DFT的簇大小的增加而强烈降低,并且在步骤与梯田之间存在巨大差异。在最接近界面的原子层中,该电荷在界面Ni和Ce原子上定位。这种知识对于了解Ni / CeO 2催化剂表面上活性位点的性质至关重要,金属氧化物相互作用在O-H和C-H键的激活中起非常重要的作用。这些与Ni粒径(金属负载)相互作用的变化以及Ceria的减少程度有助于解释先前报告的催化活性和选择性如何变化,与这些相同的结构细节。

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