William G. Lowrie Department of Chemical and Biomolecular Engineering, The Ohio State University, 151 W. Woodruff Ave., Columbus, Ohio 43210, USA.
J Chem Phys. 2017 Oct 7;147(13):134901. doi: 10.1063/1.4985904.
Using coarse-grained molecular dynamics simulations, we study ionomers in equilibrium and under uniaxial tensile deformation. The spacing of ions along the chain is varied, allowing us to consider how different ionic aggregate morphologies, from percolated to discrete aggregates, impact the mechanical properties. From the equilibrium simulations, we calculate the stress-stress auto correlation function, showing a distinct deviation from the Rouse relaxation due to ionic associations that depends on ion content. We then quantify the morphology during strain, particularly the degree to which both chains and ionic aggregates tend to align. We also track the location of the ionomer peak in the anisotropic structure factor during strain. The length scale of aggregate order increases in the axial direction and decreases in the transverse direction, in qualitative agreement with prior experimental results.
我们使用粗粒化分子动力学模拟研究了平衡状态和单轴拉伸变形下的离聚物。通过改变链上离子的间距,我们可以研究不同的离子聚集形态(从渗透到离散聚集)如何影响力学性能。从平衡模拟中,我们计算了应力-应力自相关函数,发现由于离子缔合导致的弛豫与 Rouse 弛豫明显偏离,这取决于离子含量。然后,我们在应变过程中定量研究了形态,特别是链和离子聚集物倾向于对齐的程度。我们还跟踪了离聚物在各向异性结构因子中的峰的位置在应变过程中的变化。聚集有序度的长度尺度在轴向方向上增加,在横向方向上减小,与先前的实验结果定性一致。