Lacevic Naida, Gee Richard H, Saab Andrew, Maxwell Robert
Lawrence Livermore National Laboratory, Livermore, California 94551, USA.
J Chem Phys. 2008 Sep 28;129(12):124903. doi: 10.1063/1.2980044.
Molecular dynamics simulations have been performed in order to study the effects of nanoscale filler cross-linking topologies and loading levels on the mechanical properties of a model elastomeric nanocomposite. The model system considered here is constructed from octafunctional polyhedral oligomeric silsesquioxane (POSS) dispersed in a poly(dimethylsiloxane) (PDMS) matrix. Shear moduli, G, have been computed for pure and for filled and unfilled PDMS as a function of cross-linking density, POSS fill loading level, and polymer network topology. The results reported here show that G increases as the cross-linking (covalent bonds formed between the POSS and the PDMS network) density increases. Further, G is found to have a strong dependence on cross-linking topology. The increase in shear modulus, G, for POSS filled PDMS is significantly higher than that for unfilled PDMS cross-linked with standard molecular species, suggesting an enhanced reinforcement mechanism for POSS. In contrast, in blended systems (POSS/PDMS mixture with no cross-linking) G was not observed to significantly increase with POSS loading. Finally, we find intriguing differences in the structural arrangement of bond strains between the cross-linked and the blended systems. In the unfilled PDMS the distribution of highly strained bonds appears to be random, while in the POSS filled system, the strained bonds form a netlike distribution that spans the network. Such a distribution may form a structural network "holding" the composite together and resulting in increases in G compared to an unfilled, cross-linked system. These results are of importance for engineering of new POSS-based multifunctional materials with tailor-made mechanical properties.
为了研究纳米级填料交联拓扑结构和负载水平对模型弹性体纳米复合材料力学性能的影响,进行了分子动力学模拟。这里考虑的模型系统由分散在聚二甲基硅氧烷(PDMS)基质中的八官能团多面体低聚倍半硅氧烷(POSS)构建而成。已计算了纯PDMS以及填充和未填充PDMS的剪切模量G,其作为交联密度、POSS填充负载水平和聚合物网络拓扑结构的函数。此处报道的结果表明,随着交联(POSS与PDMS网络之间形成的共价键)密度的增加,G增大。此外,发现G对交联拓扑结构有强烈依赖性。与用标准分子物种交联的未填充PDMS相比,POSS填充的PDMS的剪切模量G的增加显著更高,这表明POSS具有增强的增强机制。相比之下,在共混体系(无交联的POSS/PDMS混合物)中,未观察到G随POSS负载量显著增加。最后,我们发现在交联体系和共混体系之间的键应变结构排列存在有趣的差异。在未填充的PDMS中,高应变键的分布似乎是随机的,而在POSS填充体系中,应变键形成跨越网络的网状分布。与未填充的交联体系相比,这样的分布可能形成将复合材料“固定”在一起的结构网络,并导致G增加。这些结果对于设计具有定制力学性能的新型基于POSS的多功能材料具有重要意义。