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首页> 外文期刊>Scientific reports. >Diverse Melting Modes and Structural Collapse of Hollow Bimetallic Core-Shell Nanoparticles: A Perspective from Molecular Dynamics Simulations
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Diverse Melting Modes and Structural Collapse of Hollow Bimetallic Core-Shell Nanoparticles: A Perspective from Molecular Dynamics Simulations

机译:空心双金属芯壳纳米粒子的多种熔化模式和结构塌陷:分子动力学模拟的视角

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Introducing hollow structures into metallic nanoparticles has become a promising route to improve their catalytic performances. A fundamental understanding of thermal stability of these novel nanostructures is of significance for their syntheses and applications. In this article, molecular dynamics simulations have been employed to offer insights into the thermodynamic evolution of hollow bimetallic core-shell nanoparticles. Our investigation reveals that for hollow Pt-core/Au-shell nanoparticle, premelting originates at the exterior surface, and a typical two-stage melting behavior is exhibited, similar to the solid ones. However, since the interior surface provides facilitation for the premelting initiating at the core, the two-stage melting is also observed in hollow Au-core/Pt-shell nanoparticle, remarkably different from the solid one. Furthermore, the collapse of hollow structure is accompanied with the overall melting of the hollow Pt-core/Au-shell nanoparticle while it occurs prior to that of the hollow Au-core/Pt-shell nanoparticle and leads to the formation of a liquid-core/solid-shell structure, although both of them finally transform into a mixing alloy with Au-dominated surface. Additionally, the existence of stacking faults in the hollow Pt-core/Au-shell nanoparticle distinctly lowers its melting point. This study could be of great importance to the design and development of novel nanocatalysts with both high activity and excellent stability.
机译:将空心结构引入金属纳米粒子已成为提高其催化性能的有希望的途径。对这些新型纳米结构的热稳定性的基本理解对于它们的合成和应用具有重要意义。在本文中,已经采用分子动力学模拟,为中空双金属芯壳纳米颗粒的热力学演变提供见解。我们的研究表明,对于中空PT芯/ Au-壳纳米粒子,在外表面上的预头起源,并且表现出典型的两级熔化行为,类似于固体表面。然而,由于内表面为核心的预防性提供了促进预防,因此在中空的Au-Core / Pt-壳纳米粒子中也观察到两级熔化,从固体中显着不同。此外,中空结构的塌陷伴随着中空Pt-芯/ au-壳纳米颗粒的整体熔化,而在中空Au-core / pt-壳纳米粒子的形成之前发生并导致形成液体 - 芯/固壳结构,虽然它们两者最终转化为具有Au-Cominated表面的混合合金。另外,中空PT芯/ Au-壳纳米粒子中的堆叠故障的存在明显降低其熔点。本研究可能对新型纳米催化剂的设计和开发具有高活性和优异的稳定性。

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