Structural origin of excitations in a colloidal glass-former.

Divya Ganapathi, A. Sood, R. Ganapathy
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引用次数: 2

Abstract

Despite decades of intense research, whether the transformation of supercooled liquids into glass is a kinetic phenomenon or a thermodynamic phase transition remains unknown. Here, we analyzed optical microscopy experiments on 2D binary colloidal glass-forming liquids and investigated the structural links of a prominent kinetic theory of glass transition. We examined a possible structural origin for localized excitations, which are building blocks of the dynamical facilitation theory-a purely kinetic approach for the glass transition. To accomplish this, we utilize machine learning methods to identify a structural order parameter termed "softness" that has been found to be correlated with reorganization events in supercooled liquids. Both excitations and softness qualitatively capture the dynamical slowdown on approaching the glass transition and motivated us to explore spatial and temporal correlations between them. Our results show that excitations predominantly occur in regions with high softness and the appearance of these high softness regions precedes excitations, thus suggesting a causal connection between them. Thus, unifying dynamical and thermodynamical theories into a single structure-based framework may provide a route to understand the glass transition.
胶体玻璃成形机中激发的结构起源。
尽管经过几十年的深入研究,过冷液体转变为玻璃是一种动力学现象还是一种热力学相变仍然未知。在这里,我们分析了二维二元胶体玻璃形成液体的光学显微镜实验,并研究了一个著名的玻璃化转变动力学理论的结构联系。我们研究了局域激发的可能结构起源,局域激发是动态易化理论的基石,这是玻璃化转变的纯动力学方法。为了实现这一目标,我们利用机器学习方法来识别被称为“柔软度”的结构顺序参数,该参数已被发现与过冷液体中的重组事件相关。兴奋和柔软都定性地捕捉了接近玻璃化转变的动态减速,并促使我们探索它们之间的空间和时间相关性。我们的研究结果表明,激发主要发生在高柔软区域,这些高柔软区域的出现先于激发,从而表明它们之间存在因果关系。因此,将动力学和热力学理论统一到一个基于结构的框架中,可能为理解玻璃化转变提供了一条途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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