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Molecular Modeling and Simulation of Polymer Nanocomposites at Multiple Length Scales

机译:多种长度尺度下聚合物纳米复合材料的分子建模和模拟

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The complexity of intermolecular interactions and confinement in polymer—nanoparticle systems leads to spatial variations in structure and dynamics at both the meso and nanoscale. Molecular simulation holds great promise as a means of predicting these effects and understanding their microscopic origin. In order to shed some light onto local structure and segmental dynamics of atactic polystyrene/silica (PS/SiO) and atactic polystyrene/fullerene (PS/C) melt systems, molecular simulations have been conducted using two interconnected levels of representation: 1) A coarse-grained representation. Equilibration of coarse-grained polymer-nanoparticle systems at all length scales is achieved via connectivity-altering Monte Carlo simulations. 2) An atomistic representation. Initial configurations for atomistic molecular dynamics (MD) simulations are obtained by reverse mapping well-equilibrated coarse-grained configurations. The local structure around a silica nanoparticle immersed in the PS matrix, PS segmental, and local dynamics in both composites and mechanical properties and entanglements in PS/SiO are studied.
机译:聚合物-纳米粒子系统中分子间相互作用和限制的复杂性导致了介观和纳米尺度上结构和动力学的空间变化。分子模拟作为预测这些作用和了解其微观起源的一种手段具有广阔的前景。为了阐明无规聚苯乙烯/二氧化硅(PS / SiO)和无规聚苯乙烯/富勒烯(PS / C)熔融体系的局部结构和分段动力学,已使用两种相互关联的表示水平进行了分子模拟:1)A粗粒度表示。通过改变连接性的蒙特卡洛模拟,可以在所有长度范围内实现粗粒聚合物纳米粒子系统的平衡。 2)原子表示。原子分子动力学(MD)模拟的初始配置是通过反向映射平衡良好的粗粒度配置而获得的。研究了浸入PS基质中的二氧化硅纳米颗粒周围的局部结构,PS片段以及复合材料中的局部动力学以及PS / SiO中的力学性能和缠结。

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