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首页> 外文期刊>RSC Advances >Molecular dynamics simulation of the viscoelasticity of polymer nanocomposites under oscillatory shear: effect of interfacial chemical coupling
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Molecular dynamics simulation of the viscoelasticity of polymer nanocomposites under oscillatory shear: effect of interfacial chemical coupling

机译:振荡剪切下聚合物纳米复合材料黏弹性的分子动力学模拟:界面化学偶联的影响

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摘要

In this work by adopting coarse-grained molecular dynamics simulation, we focus our attention on investigating the effect of the chemical coupling between polymer and nanoparticles (NPs) on the viscoelastic properties of polymer nanocomposites (PNCs). Firstly we examine the effect of the interfacial chemical coupling on the non-linear behavior, such as the change of the storage moduli, the loss moduli and the loss factor as a function of the strain amplitude. Besides the reinforcing effect contributed by the interfacial chemical interaction, a much smaller loss factor is also observed attributed to less molecular friction and dissipation. Meanwhile, the effects of temperature, frequency, and the interfacial physical interaction between NPs and polymers on the viscoelastic properties are also probed. To uncover the structural and dynamic effect of the interfacial chemical coupling, we calculate the radial distribution function of polymer chains around NPs, the content of the polymer beads in the first layer of the interfacial region under quiescent and dynamic conditions, the incoherent intermediate dynamic structure factor of the polymer beads, which are chemically or physically tethered to the NPs, and all the polymer beads of the system, the quantitative comparison of the mean relaxation time for different interfacial chemical coupling, and the mean-square displacement of the polymer chains. Lastly we analyze the change of the interfacial energy such as the physical and chemical energies during oscillatory shear. Through these analyses, we conclude that with the increase of the interfacial chemical coupling, the change extent of the interfacial physical interaction versus the periodic strain decreases, attributed to a much smaller adsorption–desorption reversible process. This can rationalize the much weaker non-linear behavior or the “Payne effect”. Based on these results, we anticipate that a better molecular-level understanding is provided on the effect of the interfacial coupling on the viscoelastic properties of PNCs.
机译:在这项工作中,通过采用粗粒度的分子动力学模拟,我们将注意力集中在研究聚合物与纳米颗粒(NP)之间的化学偶联对聚合物纳米复合材料(PNC)的粘弹性的影响。首先,我们研究了界面化学耦合对非线性行为的影响,例如储能模量,损耗模量和损耗因子随应变幅度的变化。除了界面化学相互作用产生的增强作用外,还观察到损耗因子小得多,这归因于较小的分子摩擦和耗散。同时,还探讨了温度,频率以及NP与聚合物之间的界面物理相互作用对粘弹性的影响。为了揭示界面化学偶联的结构和动力学效应,我们计算了NP周围聚合物链的径向分布函数,静态和动态条件下界面区域第一层中聚合物珠的含量,非相干中间动态结构化学或物理方式连接到NP的聚合物小珠的系数,系统的所有聚合物小珠,不同界面化学偶合的平均弛豫时间的定量比较以及聚合物链的均方位移。最后,我们分析了振荡剪切过程中界面能的变化,例如物理和化学能。通过这些分析,我们得出结论,随着界面化学耦合的增加,界面物理相互作用相对于周期性应变的变化程度减小,这归因于吸附-解吸可逆过程的减小。这可以使弱得多的非线性行为或“佩恩效应”合理化。基于这些结果,我们期望就界面偶联对PNC粘弹性的影响提供更好的分子水平的理解。

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