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Alloy, Janus and core-shell nanoparticles: numerical modeling of their nucleation and growth in physical synthesis

机译:合金,Janus和核心壳纳米粒子:物理合成中成核和生长的数值模拟

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摘要

While alloy, core-shell and Janus binary nanoclusters are found in more and more technological applications, their formation mechanisms are still poorly understood, especially during synthesis methods involving physical approaches. In this work, we employ a very simple model of such complex systems using Lennard-Jones interactions and inert gas quenching. After demonstrating the ability of the model to well reproduce the formation of alloy, core-shell or Janus nanoparticles, we studied their temporal evolution from the gas via droplets to nanocrystalline particles. In particular, we showed that the growth mechanisms exhibit qualitative differences between these three chemical orderings. Then, we determined how the quenching rate can be used to finely tune structural characteristics of the final nanoparticles, including size, shape and crystallinity.
机译:在越来越多的技术应用中发现合金,核心壳和Janus二进制纳米/纳米Clusters,它们的地层机制仍然明白,特别是在涉及物理方法的合成方法中。 在这项工作中,我们采用了使用Lennard-Jones相互作用和惰性气体淬火的这种复杂系统的非常简单的模型。 在证明模型以良好再现合金的形成之后,我们通过液滴从气体到纳米晶体颗粒的时间进化。 特别是,我们表明增长机制在这三种化学排序之间表现出定性差异。 然后,确定如何使用淬火率如何用于精细地调节最终纳米颗粒的结构特征,包括尺寸,形状和结晶度。

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