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Liquids and Structural Glasses Special Feature: Colloidal glasses and gels: The interplay of bonding and caging

机译:液体和结构玻璃的特殊功能:胶体玻璃和凝胶:粘接和固定的相互作用

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摘要

We report simulations of glassy arrest in hard-core particles with short-range interparticle attraction. Previous experiments, theory, and simulations suggest that in this kind of system, two qualitatively distinct kinds of glasses exist, dominated respectively by repulsion and attraction. It is thought that in the former, particles are trapped “topologically,” by nearest-neighbor cages, whereas in the latter, nonergodicity is due to interparticle “bonds.” Subsequent experiments and simulations have suggested that bond breaking destabilizes attractive glasses, but the long-term fate of these arrested states remains unknown. By running simulations to times a few orders of magnitude longer than those reached by previous experiments or simulations, we show that arrest in an attractive glass is, in the long run, also topological. Nevertheless, it is still possible to distinguish between “nonbonded” and “bonded” repulsive glassy states. We study the melting of bonded repulsive glasses into a hitherto unknown “dense gel” state, which is distinct from dense, ergodic fluids. We propose a “modified state diagram” for concentrated attractive particles, and discuss the relevance of our results in the light of recent rheological measurements in colloid–polymer mixtures.
机译:我们报告了在具有短程粒子间吸引力的硬核粒子中的玻璃态阻滞的模拟。先前的实验,理论和模拟表明,在这种系统中,存在两种在质量上截然不同的眼镜,分别由斥力和吸引力主导。据认为,在前者中,粒子是“拓扑”地被最近邻的笼子捕获的,而在后者中,非遍历性是由于粒子间的“键”所致。随后的实验和模拟表明,键断裂使有吸引力的玻璃不稳定,但是这些被捕状态的长期命运仍然未知。通过将模拟运行的时间比以前的实验或模拟所达到的时间长几个数量级,我们证明,从长远来看,吸引人的玻璃中的阻滞也是拓扑结构。尽管如此,仍然有可能区分“未键合”和“键合”斥力玻璃态。我们研究了将粘合的排斥性玻璃融化为迄今未知的“致密凝胶”状态,这种状态不同于稠密的遍历流体。我们提出了一个浓缩态吸引颗粒的“修正状态图”,并根据胶体-聚合物混合物的最新流变学测量结果讨论了我们的结果的相关性。

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