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首页> 外文期刊>RSC Advances >Exposure of mass-selected bimetallic Pt–Ti nanoalloys to oxygen explored using scanning transmission electron microscopy and density functional theory
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Exposure of mass-selected bimetallic Pt–Ti nanoalloys to oxygen explored using scanning transmission electron microscopy and density functional theory

机译:使用扫描透射电子显微镜和密度泛函理论探索了质量选择的双金属Pt-Ti纳米合金对氧气的暴露

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The response of nanoparticles to exposure to ambient conditions and especially oxidation is fundamental to the application of nanotechnology. Bimetallic platinum–titanium nanoparticles of selected mass, 30 kDa and 90 kDa, were produced using a magnetron sputtering gas condensation cluster source and deposited onto amorphous carbon TEM grids. The nanoparticles were analysed with a C _(s) -corrected Scanning Transmission Electron Microscope (STEM) in High Angle Annular Dark Field (HAADF) mode. It was observed that prior to full Ti oxidation, Pt atoms were dispersed within a Ti shell. However, after full oxidation by prolonged exposure to ambient conditions prior to STEM, the smaller size 30 kDa particles form a single Pt core and the larger size 90 kDa particles exhibit a multi-core structure. Electron beam annealing induced a single core morphology in the larger particles. First principles density functional theory (DFT) calculations were employed to calculate the lowest energy structure of the Pt–Ti nanoparticles with and without the presence of oxygen. It was demonstrated that, as the concentration of oxygen increases, the lowest energy structure changes from dispersed Pt to multiple Pt cores and finally a single Pt core, which is in good agreement with the experimental observations.
机译:纳米颗粒对暴露于环境条件尤其是氧化的响应是纳米技术应用的基础。使用磁控溅射气体冷凝簇源生产选定质量的30 kDa和90 kDa的双金属铂-钛纳米粒子,并将其沉积在无定形碳TEM网格上。用C_(s)校正的扫描透射电子显微镜(STEM)以大角度环形暗场(HAADF)模式分析纳米颗粒。观察到在完全Ti氧化之前,Pt原子分散在Ti壳内。然而,在STEM之前通过长时间暴露于环境条件而完全氧化后,尺寸较小的30 kDa颗粒形成单个Pt核,尺寸较大的90 kDa颗粒表现出多核结构。电子束退火在较大的颗粒中引起单核形态。第一原理密度泛函理论(DFT)计算用于计算有氧和无氧的Pt-Ti纳米粒子的最低能量结构。结果表明,随着氧气浓度的增加,最低能级结构从分散的Pt变为多个Pt核,最后变为单个Pt核,这与实验观察结果非常吻合。

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