Gao Yangyang, Liu Jun, Shen Jianxiang, Zhang Liqun, Guo Zhanhu, Cao Dapeng
State Key Laboratory of Organic-Inorganic Composites, Beijing University of Chemical Technology, Beijing 100029, People's Republic of China.
Phys Chem Chem Phys. 2014 Aug 14;16(30):16039-48. doi: 10.1039/c4cp01555j.
A coarse-grained molecular dynamics simulation was used to investigate the stress-strain behavior of nanorod-filled polymer composites. The effects of the interfacial interaction, aspect ratio of fillers, filler functionalization, chemical couplings between the polymer and the filler and the filler loading on the mechanical reinforcement were explored. The results indicate that there exists an optimal nanorod volume fraction for elastomer reinforcement. The strong polymer-nanorod interaction enhances the reinforcement of polymer nanocomposites. Meanwhile, it is found that nanorods with longer length and smaller diameter, and the chemical functionalization of nanorods can help realize the efficient interfacial stress transfer. And excessive chemical couplings between polymers and nanorods are harmful to mechanical properties. An upturn in the modulus at large deformation is observed in the Mooney-Rivlin plot, attributed to the limited chain extensibility. Particularly, the medium polymer-nanorod interfacial strength and low nanorod volume loading will lead to better dispersion of nanorods. It is suggested that the reinforcement mechanism comes from the nanorod alignment and bond orientation, as well as from the limited extensibility of chain bridges at large deformation. In addition, an optimal nanorod volume fraction can also be explained by the strong polymer-nanorod network. Compared to glassy systems, the mechanism for the significantly enhanced reinforcement of rubbery systems is also demonstrated. In short, our simulation study of nanorod-induced mechanical reinforcement will provide a basic understanding of polymer reinforcement.
采用粗粒度分子动力学模拟研究了纳米棒填充聚合物复合材料的应力-应变行为。探讨了界面相互作用、填料长径比、填料功能化、聚合物与填料之间的化学偶联以及填料含量对机械增强作用的影响。结果表明,对于弹性体增强存在一个最佳的纳米棒体积分数。聚合物与纳米棒之间的强相互作用增强了聚合物纳米复合材料的增强效果。同时,发现长度更长、直径更小的纳米棒以及纳米棒的化学功能化有助于实现有效的界面应力传递。聚合物与纳米棒之间过多的化学偶联对力学性能有害。在穆尼-里夫林图中观察到大变形时模量的上升,这归因于链的有限延伸性。特别地,中等的聚合物-纳米棒界面强度和低的纳米棒体积含量将导致纳米棒更好的分散。结果表明,增强机制来自纳米棒的排列和键的取向,以及大变形时链桥的有限延伸性。此外,最佳的纳米棒体积分数也可以用强聚合物-纳米棒网络来解释。与玻璃态体系相比,还论证了橡胶态体系显著增强增强效果的机制。总之,我们对纳米棒诱导的机械增强的模拟研究将为聚合物增强提供基本的理解。