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Formation Mechanism of Fe Nanocubes by Magnetron Sputtering Inert Gas Condensation

机译:磁控溅射惰性气体冷凝法制备铁纳米晶的机理

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In this work, we study the formation mechanisms of iron nanoparticles (Fe NPs) grown by magnetron sputtering inert gas condensation and emphasize the decisive kinetics effects that give rise specifically to cubic morphologies. Our experimental results, as well as computer simulations carried out by two different methods, indicate that the cubic shape of Fe NPs is explained by basic differences in the kinetic growth modes of {100} and {110} surfaces rather than surface formation energetics. Both our experimental and theoretical investigations show that the final shape is defined by the combination of the condensation temperature and the rate of atomic deposition onto the growing nanocluster. We, thus, construct a comprehensive deposition rate temperature diagram of Fe NP shapes and develop an analytical model that predicts the temporal evolution of these properties. Combining the shape diagram and the analytical model, morphological control of Fe NPs during formation is feasible; as such, our method proposes a roadmap for experimentalists to engineer NPs of desired shapes for targeted applications.
机译:在这项工作中,我们研究了磁控溅射惰性气体冷凝过程中生长的铁纳米颗粒(Fe NPs)的形成机理,并强调了决定性的动力学效应,这些效应特别引起立方形貌。我们的实验结果以及通过两种不同方法进行的计算机模拟表明,Fe NPs的立方形状是由{100}和{110}表面的动力学生长模式的基本差异而不是表面形成能学来解释的。我们的实验和理论研究都表明,最终形状是由缩合温度和原子沉积到正在生长的纳米团簇上的速率共同决定的。因此,我们构建了铁纳米颗粒形状的综合沉积速率温度图,并开发了预测这些性质随时间演变的分析模型。结合形状图和分析模型,形成过程中控制铁纳米颗粒的形态是可行的。因此,我们的方法提出了一个路线图,供实验人员针对目标应用设计所需形状的NP。

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