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Microscopic Dynamics and Topology of Polymer Rings Immersed in a Host Matrix of Longer Linear Polymers: Results from a Detailed Molecular Dynamics Simulation Study and Comparison with Experimental Data

机译:浸入较长线性聚合物主体基质中的聚合物环的微观动力学和拓扑:详细的分子动力学模拟研究结果与实验数据进行比较得出结果

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摘要

We have performed molecular dynamics (MD) simulations of melt systems consisting of a small number of long ring poly(ethylene oxide) (PEO) probes immersed in a host matrix of linear PEO chains and have studied their microscopic dynamics and topology as a function of the molecular length of the host linear chains. Consistent with a recent neutron spin echo spectroscopy study (Goossen et al., Phys. Rev. Lett. 2015, 115, 148302), we have observed that the segmental dynamics of the probe ring molecules is controlled by the length of the host linear chains. In matrices of short, unentangled linear chains, the ring probes exhibit a Rouse-like dynamics, and the spectra of their dynamic structure factor resemble those in their own melt. In striking contrast, in matrices of long, entangled linear chains, their dynamics is drastically altered. The corresponding dynamic structure factor spectra exhibit a steep initial decay up to times on the order of the entanglement time τe of linear PEO at the same temperature but then they become practically time-independent approaching plateau values. The plateau values are different for different wavevectors; they also depend on the length of the host linear chains. Our results are supported by a geometric analysis of topological interactions, which reveals significant threading of all ring molecules by the linear chains. In most cases, each ring is simultaneously threaded by several linear chains. As a result, its dynamics at times longer than a few τe should be completely dictated by the release of the topological restrictions imposed by these threadings (interpenetrations). Our topological analysis did not indicate any effect of the few ring probes on the statistical properties of the network of primitive paths of the host linear chains.
机译:我们已经对熔融系统进行了分子动力学(MD)模拟,该系统由少量的长环聚环氧乙烷(PEO)探针浸入线性PEO链的基质中组成,并研究了它们的微观动力学和拓扑随主体线性链的分子长度。与最近的中子自旋回波谱学研究(Goossen等,Phys。Rev. Lett。2015,115,148302)一致,我们已经观察到探针环分子的分段动力学受主体线性链的长度控制。在短而无纠缠的线性链矩阵中,环形探针表现出类似Rouse的动力学,其动态结构因子的光谱类似于其自身熔体中的光谱。与之形成鲜明对比的是,在长且纠缠的线性链矩阵中,其动力学发生了巨大变化。相应的动态结构因子谱在相同温度下表现出陡峭的初始衰减,直到线性PEO的纠缠时间τe数量级为止,但是它们实际上变成了与时间无关的接近平稳值。对于不同的波矢,平稳值是不同的。它们还取决于主体线性链的长度。我们的结果得到拓扑相互作用的几何分析的支持,该分析揭示了线性环对所有环分子的显着穿线。在大多数情况下,每个环同时由多条线性链穿过。因此,其动态性有时比几个τe长,应该完全由这些线程(互穿)所施加的拓扑限制的释放来决定。我们的拓扑分析没有表明几个环形探针对宿主线性链原始路径网络的统计特性的任何影响。

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