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The Role of Polymer-particle Interactions on the Viscoelastic Properties of Polymer Nanocomposites

机译:聚合物颗粒相互作用对聚合物纳米复合材料粘弹性性能的作用

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A molecular model is proposed for the dynamics of polymer chains in dilute polymer solutions containing well-dispersed spherical particles. In the presence of short range energetic affinity between the monomers and filler surface, the equilibrium structure of the adsorbed polymer layer is determined by a scaling theory. The viscoelastic response of the suspension is studied by a Maxwell model. It is shown that the solid-like properties of polymer nanocomposites in low frequency regimes could be attributed to the slowdown of the relaxation process of polymer chains. This process is controlled by the monomer-particle frictional interactions, density of the adsorbed polymer chains on the particles surface (controlled by monomer-particle adsorption energy), and volume fraction of the interfacial layer which can be enhanced by reduction of filler size or increasing the filler concentration.
机译:提出了一种分子模型,用于含有井分散的球形颗粒的稀聚聚合物溶液中的聚合物链的动态。在单体和填充表面之间的短范围优势亲和力的情况下,吸附的聚合物层的平衡结构通过缩放理论确定。悬浮液的粘弹性响应由Maxwell模型研究。结果表明,低频制度中的聚合物纳米复合材料的固体性质可归因于聚合物链的弛豫过程的放缓。该方法由单体颗粒摩擦相互作用,颗粒表面上的吸附聚合物链的密度(通过单体颗粒吸附能量控制),并且可以通过减少填料尺寸或增加来增强界面层的体积分数填料浓度。

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