各向异性在理解玻璃态液体动力学密度缩放的分子基础中的作用

A Grzybowski, K Koperwas, M Paluch
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摘要

玻璃化液体的分子动力学 MD 模拟在揭示液体玻璃化过程的分子性质方面发挥了关键作用。其中,阐明分子间势能特性与分子动力学行为之间的相互作用是重点。我们试图通过模拟各向同性势能相互作用的球形粒子来实现这一目标。然而,当使用密度缩放方法对模拟数据和实验数据进行相同分析时,发现两者之间存在严重差异。通过分析计算机模拟获得的弛豫时间和 pVT 数据,可以确定相似的缩放指数值。相反,在对实验数据进行相同分析时,这些值却大相径庭。正如本文所详细讨论的,如果在 MD 模拟中引入分子间相互作用的各向异性,就可以实现这些结果之间的一致性。在实践中,有两种不同的方法可以实现这一点:(1) 使用盖-伯恩(Gay-Berne)类型的各向异性势能;或 (2) 用通过各向同性勒纳尔-琼斯势能相互作用的准真实多原子各向异性分子取代球形粒子。特别是,最后一种策略有望用于探索分子结构与分子动力学行为之间的关系。最后,我们希望本综述中介绍的结果也能鼓励其他人探索 "各向异性 "如何影响与液态玻璃转变相关的其他方面,如异质性、玻璃转变温度、玻璃成型能力等。
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Role of anisotropy in understanding the molecular grounds for density scaling in dynamics of glass-forming liquids.

Molecular Dynamics (MD) simulations of glass-forming liquids play a pivotal role in uncovering the molecular nature of the liquid vitrification process. In particular, much focus was given to elucidating the interplay between the character of intermolecular potential and molecular dynamics behaviour. This has been tried to achieve by simulating the spherical particles interacting via isotropic potential. However, when simulation and experimental data are analysed in the same way by using the density scaling approaches, serious inconsistency is revealed between them. Similar scaling exponent values are determined by analysing the relaxation times and pVT data obtained from computer simulations. In contrast, these values differ significantly when the same analysis is carried out in the case of experimental data. As discussed thoroughly herein, the coherence between results of simulation and experiment can be achieved if anisotropy of intermolecular interactions is introduced to MD simulations. In practice, it has been realized in two different ways: (1) by using the anisotropic potential of the Gay-Berne type or (2) by replacing the spherical particles with quasi-real polyatomic anisotropic molecules interacting through isotropic Lenard-Jones potential. In particular, the last strategy has the potential to be used to explore the relationship between molecular architecture and molecular dynamics behaviour. Finally, we hope that the results presented in this review will also encourage others to explore how 'anisotropy' affects remaining aspects related to liquid-glass transition, like heterogeneity, glass transition temperature, glass forming ability, etc.

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