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Communication: Role of short chain branching in polymer structure and dynamics

机译:交流:短链支化在聚合物结构和动力学中的作用

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edge of the structure-property-phenomenon relationship in polymer science, has not yet been found, due to a critical lack of knowledge on the role of short-chain branches, the effects of which have mostly been neglected in favor of the standard entropic-based concepts of long polymers. Here, we show a significant effect of short-chain branching on the structural and dynamical properties of polymeric materials, and reveal the molecular origins behind the fundamental role of short branches, via atomistic nonequilibrium molecular dynamics and mesoscopic Brownian dynamics by systematically varying the strength of the mobility of short branches. We demonstrate that the fast random Brownian kinetics inherent to short branches plays a key role in governing the overall structure and dynamics of polymers, leading to a compact molecular structure and, under external fields, to a lesser degree of structural deformation of polymer, to a reduced shear-thinning behavior, and to a smaller elastic stress, compared with their linear analogues. Their fast dynamical nature being unaffected by practical flow fields owing to their very short characteristic time scale, short branches would substantially influence (i.e., facilitate) the overall relaxation behavior of polymeric materials under various flowing conditions. (C) 2016 AIP Publishing LLC.
机译:由于对短链支链的作用认识不足,因此尚未发现高分子科学中结构-特性-现象关系的边缘,而对短链支链的作用大多被忽略,而对标准的熵-长聚合物的基础概念。在这里,我们展示了短链支化对聚合物材料的结构和动力学性质的重大影响,并通过系统地改变了碳纳米管的强度,通过原子非平衡分子动力学和介观布朗动力学,揭示了短支链基本作用背后的分子起源。短枝的流动性。我们证明,短支链固有的快速随机布朗动力学在控制聚合物的整体结构和动力学方面起着关键作用,从而导致了紧凑的分子结构,并且在外场作用下,聚合物的结构变形程度较小,从而导致了与线性类似物相比,减少了剪切稀化行为,并减小了弹性应力。由于它们的非常短的特征时间尺度,它们的快速动力学性质不受实际流场的影响,短支链将实质上影响(即,促进)聚合物材料在各种流动条件下的总体松弛行为。 (C)2016 AIP出版有限责任公司。

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