Chang Rakwoo, Yethiraj Arun
Department of Chemistry, Kwangwoon University, Seoul 139-701, Republic of Korea.
J Chem Phys. 2007 May 7;126(17):174906. doi: 10.1063/1.2728900.
The static and dynamic properties of short polymer chains in disordered materials are studied using discontinuous molecular dynamics simulations. The polymers are modeled as chains of hard spheres and the matrix is a collection of fixed hard spheres. The simulations show that the chain size is a nonmonotonic function of the matrix concentration for all polymer concentrations. The dependence of polymer diffusion D on the degree of polymerization N becomes stronger as the matrix concentration is increased. At high matrix concentrations we observe a decoupling between translational and rotational diffusion, i.e., the rotational relaxation time becomes very large but the translational diffusion is not affected significantly. We attribute this to the trapping of a small number of polymers. Under these conditions the polymer chains diffuse via a hopping mechanism.
使用非连续分子动力学模拟研究了无序材料中短聚合物链的静态和动态特性。聚合物被建模为硬球链,而基质是固定硬球的集合。模拟表明,对于所有聚合物浓度,链尺寸都是基质浓度的非单调函数。随着基质浓度的增加,聚合物扩散系数D对聚合度N的依赖性变得更强。在高基质浓度下,我们观察到平动扩散和转动扩散之间的解耦,即转动弛豫时间变得非常大,但平动扩散没有受到显著影响。我们将此归因于少数聚合物的捕获。在这些条件下,聚合物链通过跳跃机制扩散。