Singh Sunil P, Huang Chien-Cheng, Westphal Elmar, Gompper Gerhard, Winkler Roland G
Institute of Complex Systems and Institute for Advanced Simulation, Forschungszentrum Jülich, D-52425 Jülich, Germany.
Peter Grünberg Institute and Jülich Centre for Neutron Science, Forschungszentrum Jülich, D-52425 Jülich, Germany.
J Chem Phys. 2014 Aug 28;141(8):084901. doi: 10.1063/1.4893766.
The center-of-mass dynamics of star polymers in dilute solution is analyzed by hybrid mesoscale simulations. The fluid is modeled by the multiparticle collision dynamics approach, a particle-based hydrodynamic simulation technique, which is combined with molecular dynamics simulations for the polymers. Star polymers of various functionalities are considered. We determine the center-of-mass velocity correlation functions, the corresponding mean square displacements, and diffusion coefficients. The velocity correlation functions exhibit a functionality-dependent and structure-specific intermediate time regime, with a slow decay. It is followed by the long-time tail t(-3/2), which is solely determined by the fluid. Infinite-system-size diffusion coefficients are determined from the velocity correlation function by a combination of simulation and analytical results, as well as from the center-of-mass mean square displacement for various systems sizes and extrapolation. In terms of the hydrodynamic radius, the star polymer hydrodynamic diffusion coefficient exhibits the same universal system-size dependence as a spherical colloid. The functionality dependence of the ratio of hydrodynamic radii and the radii of gyration agrees well with experimental predictions.
通过混合中尺度模拟分析了稀溶液中星形聚合物的质心动力学。流体采用多粒子碰撞动力学方法建模,这是一种基于粒子的流体动力学模拟技术,与聚合物的分子动力学模拟相结合。考虑了各种功能的星形聚合物。我们确定了质心速度相关函数、相应的均方位移和扩散系数。速度相关函数表现出功能依赖和结构特定的中间时间区域,具有缓慢衰减。随后是长时间尾部t(-3/2),它仅由流体决定。通过模拟和分析结果的组合,以及根据各种系统尺寸的质心均方位移和外推,从速度相关函数确定无限系统尺寸的扩散系数。就流体动力学半径而言,星形聚合物流体动力学扩散系数表现出与球形胶体相同的通用系统尺寸依赖性。流体动力学半径与回转半径之比的功能依赖性与实验预测吻合良好。