Liu Minghui, Li Sai, Fang Yue, Chen Zhudan, Alyas Maha, Liu Jun, Zeng Xiaofei, Zhang Liqun
State Key Laboratory of Organic-Inorganic Composites, Beijing University of Chemical Technology, 100029 Beijing, People's Republic of China.
Beijing Engineering Research Center of Advanced Elastomers, Beijing University of Chemical Technology, 100029 Beijing, People's Republic of China.
Langmuir. 2020 Jul 7;36(26):7427-7438. doi: 10.1021/acs.langmuir.0c00971. Epub 2020 Jun 17.
Through molecular dynamics (MD) simulation, the structure and mechanical properties of matrix-free polymer nanocomposites (PNCs) constructed via polymer-grafted graphene nanosheets are studied. The dispersion of graphene sheets is characterized by the radial distribution function (RDF) between graphene sheets. We observe that a longer polymer chain length leads to a relatively better dispersion state attributed to the formation of a better brick-mud structure, effectively screening the van der Waals interactions between sheets. By tuning the interaction strength ε between end functional groups of grafted chains, we construct physical networks with various robustness characterized by the formation of the fractal clusters at high ε values. The effects of ε and on the mechanical properties are examined, and the enhancement of the stress-strain behavior is observed with the increase of ε and . Structural evolution during deformation is quantified by calculating the orientation of the graphene sheets and their distribution, the stress decomposition, and the size of the clusters formed between end groups and their distribution. Then, we briefly study the effects of time and temperature on the self-healing behavior of these unique PNCs in the rubbery state. Lastly, the self-healing kinetics is quantitatively analyzed. In general, this work can provide some rational guidelines to design and fabricate matrix-free PNCs with both excellent mechanical and self-healing properties.
通过分子动力学(MD)模拟,研究了通过聚合物接枝石墨烯纳米片构建的无基体聚合物纳米复合材料(PNCs)的结构和力学性能。石墨烯片的分散情况通过石墨烯片之间的径向分布函数(RDF)来表征。我们观察到,较长的聚合物链长度会导致相对更好的分散状态,这归因于形成了更好的砖泥结构,有效地屏蔽了片层之间的范德华相互作用。通过调节接枝链末端官能团之间的相互作用强度ε,我们构建了具有不同稳健性的物理网络,其特征是在高ε值下形成分形簇。研究了ε和 对力学性能的影响,并观察到随着ε和 的增加,应力-应变行为得到增强。通过计算石墨烯片的取向及其分布、应力分解以及末端基团之间形成的簇的大小及其分布,对变形过程中的结构演变进行了量化。然后,我们简要研究了时间和温度对这些独特的PNCs在橡胶态下自愈合行为的影响。最后,对自愈合动力学进行了定量分析。总的来说,这项工作可以为设计和制造具有优异力学和自愈合性能的无基体PNCs提供一些合理的指导方针。