Douglas Jack F, Horkay Ferenc
Material Measurement Laboratory, Materials Science and Engineering Division, National Institute of Standards and Technology, Gaithersburg, Maryland 20899, USA.
Section on Quantitative Imaging and Tissue Sciences, Eunice Kennedy Shriver National Institute of Child Health and Human Development, National Institutes of Health, Bethesda, Maryland 20892, USA.
J Chem Phys. 2024 Jun 14;160(22). doi: 10.1063/5.0212901.
The elasticity of polymer networks, formed by cross-linking high molecular mass polymers in the melt state and then swollen by a solvent, involves contributions from both the presence of cross-link network junctions and the interchain interactions associated with the combined effect of excluded volume interactions and topological constraints that become modified when the network is swollen. We test the capacity of the previously developed localization model of rubber elasticity, a mean field "tube model," to describe changes in elasticity observed in classical experimental studies of the mechanical properties of this type of network. In order to obtain a satisfactory comparison to the experiments, it was found to be necessary to account for the independently observed tendency of the network junctions to become localized in the network with appreciable swelling, as well as the interchain interactions emphasized in previous discussions of the localization model.
通过在熔融状态下交联高分子质量聚合物,然后用溶剂溶胀形成的聚合物网络的弹性,涉及交联网络节点的存在以及与排除体积相互作用和拓扑约束的综合效应相关的链间相互作用,当网络溶胀时这些相互作用会发生改变。我们测试了先前开发的橡胶弹性定位模型(一种平均场“管模型”)描述这类网络力学性能经典实验研究中观察到的弹性变化的能力。为了与实验获得令人满意的比较结果,发现有必要考虑独立观察到的网络节点在网络中随着显著溶胀而局部化的趋势,以及先前在定位模型讨论中强调的链间相互作用。