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超越模式耦合区域的粘性硬球的玻璃态动力学。

Glassy dynamics of sticky hard spheres beyond the mode-coupling regime.

作者信息

Luo Chengjie, Janssen Liesbeth M C

机构信息

Department of Applied Physics, Eindhoven University of Technology, Eindhoven, The Netherlands.

出版信息

Soft Matter. 2021 Sep 7;17(33):7645-7661. doi: 10.1039/d1sm00712b. Epub 2021 Aug 10.

Abstract

Sticky hard spheres, i.e., hard particles decorated with a short-ranged attractive interaction potential, constitute a relatively simple model with highly non-trivial glassy dynamics. The mode-coupling theory of the glass transition (MCT) offers a qualitative account of the complex reentrant dynamics of sticky hard spheres, but the predicted glass transition point is notoriously underestimated. Here we apply an improved first-principles-based theory, referred to as generalized mode-coupling theory (GMCT), to sticky hard spheres. This theoretical framework seeks to go beyond MCT by hierarchically expanding the dynamics in higher-order density correlation functions. We predict the phase diagrams from the first few levels of the GMCT hierarchy and the dynamics-related critical exponents, all of which are much closer to the empirical observations than MCT. Notably, the prominent reentrant glassy dynamics, the glass-glass transition, and the higher-order bifurcation singularity classes (A and A) of sticky hard spheres are found to be preserved within GMCT at arbitrary order. Moreover, we demonstrate that when the hierarchical order of GMCT increases, the effect of the short-ranged attractive interactions becomes more evident in the dynamics. This implies that GMCT is more sensitive to subtle microstructural differences than MCT, and that the framework provides a promising first-principles approach to systematically go beyond the MCT regime.

摘要

粘性硬球,即带有短程吸引相互作用势的硬颗粒,构成了一个具有高度非平凡玻璃态动力学的相对简单的模型。玻璃化转变的模式耦合理论(MCT)对粘性硬球复杂的折返动力学给出了定性解释,但预测的玻璃化转变点却被严重低估。在此,我们将一种改进的基于第一性原理的理论,即广义模式耦合理论(GMCT),应用于粘性硬球。这个理论框架试图通过在高阶密度关联函数中分层扩展动力学来超越MCT。我们从GMCT层次结构的前几个层次预测了相图以及与动力学相关的临界指数,所有这些都比MCT更接近实验观测结果。值得注意的是,粘性硬球显著的折返玻璃态动力学、玻璃 - 玻璃转变以及高阶分岔奇点类别(A和A)在GMCT的任意阶中都得以保留。此外,我们证明,当GMCT的层次阶数增加时,短程吸引相互作用在动力学中的影响变得更加明显。这意味着GMCT比MCT对细微的微观结构差异更敏感,并且该框架为系统地超越MCT regime提供了一种有前景的第一性原理方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e3ef/8900603/5ef5ba748969/d1sm00712b-f1.jpg

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