论文标题

氧化镁钠纳米颗粒沉积的分子动力学模拟

Molecular dynamics simulations of sodium nanoparticle deposition on magnesium oxide

论文作者

Fortouna, Yannick, de Vera, Pablo, Verkhovtsev, Alexey, Solov'yov, Andrey V.

论文摘要

质量选择的原子簇和纳米颗粒与表面的相互作用引起了人们对基本研究和技术应用的浓厚兴趣。了解沉积过程的动力学对于控制沉积纳米颗粒在基板上的结构和功能很重要,但是实验技术通常只能观察到沉积过程的最终结果。在本文中,通过经典的分子动力学模拟研究了在实验相关的氧化镁底物上的4 nm钠纳米颗粒的沉积。得出了一个经验力场,该经验场是高度极化的Na原子与表面的相互作用,从而再现了先前报道的量子力学/分子力学模拟的结果。分子动力学模拟允许在数百个皮秒上探索在长时间尺度上沉积的纳米颗粒的动力学,从而使能量弛豫机理的分析和纳米颗粒结构的演化能够与底物进行热效化。研究了几种纳米颗粒特征,例如内部结构,接触角和纵横比,在从软着陆到多裂片的范围内的广泛沉积能量范围内进行了研究。

The interaction of mass-selected atomic clusters and nanoparticles with surfaces attracts strong interest in view of fundamental research and technological applications. Understanding dynamics of the deposition process is important for controlling structure and functioning of deposited nanoparticles on a substrate, but experimental techniques can usually observe only the final outcome of the deposition process. In this paper, the deposition of 4 nm-sized sodium nanoparticles on an experimentally relevant magnesium oxide substrate is studied by means of classical molecular dynamics simulations. An empirical force field is derived which accounts for the interaction of highly polarizable Na atoms with the surface, reproducing the results of previously reported quantum mechanics/molecular mechanics simulations. Molecular dynamics simulations permit exploring the dynamics of deposited nanoparticles on long timescales on the order of hundreds of picoseconds, thus enabling the analysis of energy relaxation mechanisms and the evolution of nanoparticle structure up to its thermalization with the substrate. Several nanoparticle characteristics, such as internal structure, contact angle, and aspect ratio are studied in a broad deposition energy range from the soft landing to multi-fragmentation regimes.

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