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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Determination of Complete Melting and Surface Premelting Points of Silver Nanoparticles by Molecular Dynamics Simulation
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Determination of Complete Melting and Surface Premelting Points of Silver Nanoparticles by Molecular Dynamics Simulation

机译:分子动力学模拟测定银纳米粒子的完全熔点和表面预熔点

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摘要

A molecular dynamics simulation based on the embedded-atom method was conducted at different sizes of single-crystal Ag nanoparticles (NPs) with diameters of 4 to 20 nm to find complete melting and surface premelting points. Unlike the previous theoretical models, our model can predict both complete melting and surface premelting points for a wider size range of NPs. Programmed heating at an equal rate was applied to all sizes of NPs. Melting kinetics showed three different trends that are, respectively, associated with NPs in the size ranges of 4 to 7 nm, 8 to 10 nm, and 12 to 20 nm. NPs in the first range melted at a single temperature without passing through a surface premelting stage. Melting of the second range started by forming a quasi-liquid layer that expanded to the core, followed by the formation of a liquid layer of 1.8 nm thickness that also subsequently expanded to the core with increasing temperature and completed the melting process. For particles in the third range, the 1.8 nm liquid layer was formed once, the thickness of the quasi-liquid layer reached 5 nm. The liquid layer expanded to the core and formed thicker stable liquid layers as the temperature increased toward the complete melting point. The ratio of the quasi-liquid layer thickness to the NP radius showed a linear relationship with temperature.
机译:在不同尺寸的直径为4到20 nm的单晶Ag纳米颗粒(NPs)上进行了基于嵌入原子法的分子动力学模拟,以发现完整的熔点和表面预熔点。与以前的理论模型不同,我们的模型可以预测更大范围的NP的完全熔点和表面预熔点。以相等的速率对所有大小的NP进行程序加热。熔融动力学显示出三种不同的趋势,分别与4至7 nm,8至10 nm和12至20 nm尺寸范围内的NP相关。第一范围的NP在单一温度下熔融而不经过表面预熔融阶段。第二范围的熔化开始于形成准液体层,该准液体层扩展至芯,然后形成1.8nm厚的液层,该液层随后也随着温度升高而扩展至芯并完成熔融过程。对于第三范围的颗粒,一次形成1.8nm的液体层,准液体层的厚度达到5nm。随着温度朝着完全熔点升高,液体层膨胀到芯并形成较厚的稳定液体层。准液层厚度与NP半径之比与温度呈线性关系。

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