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Melting of graphene supported Pd-Pt core-shell nanoparticles: A molecular dynamics study

机译:石墨烯的熔化负载PD-Pt核心壳纳米粒子:分子动力学研究

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In this study, molecular dynamics simulation is utilized to investigate thermal behavior of both free and supported pure Pd, Pt and Pd-Pt core-shell nanoparticles during continuous heating. Heating curves calculated between 298 K and 2000 K are used to determine solid-liquid transitions for free and supported nanoparticles. The melting temperature of Pd-Pt core-shell nanoparticles is found to be between the one for pure Pd and Pt nanoparticles. The results show that melting temperature of supported nanoparticles decreases about 120 K due to the metal-carbon interactions. Structural changes during melting of nanoparticles are also detected through the common neighbor analysis, the mean-square displacement method and the atomic segregation. The common neighbor analysis indicates three different melting modes in both free and supported nanoparticles. The analysis demonstrates that the graphene support has no significant effect on melting modes due to the low distortion in the nano-particle structure. In addition, the mean-square displacement of nanoparticles increases in the presence of the graphene support by forming a cap shaped nano-particle and nucleation of Shockley dislocations at the metal-carbon interface. In order to show the effect of metal-carbon interactions on mean-square displacement of nanoparticles, the contact angle is computed displaying the interactions. The statistic radii and atomic distribution reveal the segregation of Pd atoms to the shell and Pt atoms to the core because of dissimilar surface energies. Furthermore, the atomic distribution of Pd and Pt atoms in supported core-shell nanoparticles are more homogenous than free ones.
机译:在该研究中,分子动力学模拟用于研究连续加热期间自由和支持的纯Pd,Pt和Pd-Pt核心 - 壳纳米颗粒的热行为。计算在298k和2000k之间的加热曲线用于确定用于自由和负载纳米颗粒的固液过渡。发现PD-Pt核 - 壳纳米颗粒的熔化温度在纯Pd和Pt纳米颗粒的熔点之间。结果表明,由于金属 - 碳相互作用,负载纳米颗粒的熔化温度降低约120 k。通过公共邻分析,平均方位位移方法和原子隔离也检测纳米颗粒熔化过程中的结构变化。常见的邻居分析表明自由和负载纳米颗粒中的三种不同的熔融模式。分析表明,由于纳米颗粒结构的低变形,石墨烯载体对熔融模式没有显着影响。另外,纳米颗粒的平均方形位移通过在金属 - 碳界面处形成帽形纳米颗粒和击败击败的核来增加石墨烯载体的存在。为了显示金属 - 碳相互作用对纳米颗粒的平均方形位移的影响,计算了显示相互作用的接触角。由于不同的表面能,统计线状半径和原子分布揭示了Pd原子对壳体和Pt原子的偏析。此外,在负载的核 - 壳纳米粒子中Pd和Pt原子的原子分布比自由壳更均匀。

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