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Effects of particle size, shape and crystal structure on the formation energy of Schottky vacancies in free-standing metal nanoparticles: A model study

机译:粒径,形状和晶体结构对独立式金属纳米颗粒中肖特基空位形成能的影响:模型研究

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摘要

A simplified model based on cohesive energy is proposed to estimate the formation energy of Schottky vacancies (VFE) in free-standing metal nanoparticles with BCC and FCC crystal structures. To study the effect of particle size and shape, the surface energy, elastic contraction and average coordination number of particles at the surface and core was considered. It is shown that the energy of vacancy formation in FCC nanoparticles increases with decreasing the size while the effect of particle shape (sphere, cubic and icosahedral) is marginal. In spite of this behavior, BCC nanoparticles exhibit a critical particle size at around 25 ?, at which a minimum VFE is attained. Additionally, the energy of vacancy formation is notably lower for BCC nanoparticles with cubic shape than spherical ones. The application of the developed model is shown for free-standing Fe and Cu nanoparticles.
机译:提出了一种基于内聚能的简化模型,以估计具有BCC和FCC晶体结构的独立式金属纳米粒子中肖特基空位(VFE)的形成能。为了研究颗粒大小和形状的影响,考虑了表面能,弹性收缩和颗粒在表面和核心的平均配位数。结果表明,FCC纳米颗粒中空位形成的能量随着尺寸的减小而增加,而颗粒形状(球形,立方和二十面体)的影响很小。尽管有这种行为,但BCC纳米颗粒仍显示出约25?的临界粒径,在该粒径下可获得最小VFE。此外,立方形状的BCC纳米粒子的空位形成能量明显低于球形粒子。显示了开发的模型对独立的Fe和Cu纳米粒子的应用。

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