Author | T. Desai, P. Keblinski & S.K. Kumar |
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Title | Molecular dynamics simulations of polymer transport in nanocomposites |
Year | 2005 |
Journal | Journal of Chemical Physics |
Volume | 122 |
Pages | 10-18 |
Editor | American Institute of Physics |
Abstract | Molecular dynamics simulations on the Kremer–Grest bead-spring model of polymer melts are used to study the effect of spherical nanoparticles on chain diffusion. We find that chain diffusivity is enhanced relative to its bulk value when polymer-particle interactions are repulsive and is reduced when polymer-particle interactions are strongly attractive. In both cases chain diffusivity assumes its bulk value when the chain center of mass is about one radius of gyration Rg away from the particle surface. This behavior echoes the behavior of polymer melts confined between two flat surfaces, except in the limit of severe confinement where the surface influence on polymer mobility is more pronounced for flat surfaces. A particularly interesting fact is that, even though chain motion is strongly speeded up in the presence of repulsive boundaries, this effect can be reversed by pinning one isolated monomer onto the surface. This result strongly stresses the importance of properly specifying boundary conditions when the near surface dynamics of chains are studied. |
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