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首页> 外文期刊>Polymer: The International Journal for the Science and Technology of Polymers >Effect of the polymer-substrate interactions on crystal nucleation of polymers grafted on a flat solid substrate as studied by molecular simulations
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Effect of the polymer-substrate interactions on crystal nucleation of polymers grafted on a flat solid substrate as studied by molecular simulations

机译:聚合物 - 底物相互作用对分子模拟研究植入平固基材上的聚合物晶体成核的影响

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Abstract The crystallization behaviors of three types of polymer systems grafted on a flat solid substrate with different grafting densities were investigated by dynamic Monte Carlo simulations. For both of the systems with low and medium grafting densities, nucleation induction period becomes shorter with the increasing polymer-substrate interactions. However, the nucleation mechanisms are different. For the systems with low grafting density, the increase of the attractive interactions results in the enhancement of heterogeneous nucleation process of grafted polymers. For the systems with medium grafting density, the attractive interactions can compensate for the conformational entropy loss induced by the restriction of the substrate, resulting in the increase of local segment density near substrate surface and the improvement of nucleation ability. Meanwhile, nucleation mode changes from intermolecular fringed-micelle nucleation to intramolecular chain-folding nucleation with the increasing interactions. For the systems with high grafting density, crystallization behaviors are almost not affected by polymer-substrate interactions. These findings are helpful to reveal the microscopic mechanism of crystallization behaviors of polymer nanocomposites and the corresponding reinforcement mechanism. Graphical abstract
机译:<![CDATA [ 抽象 通过动态研究了在平坦固体基材上移植的三种类型聚合物系统的结晶行为进行了动态蒙特卡洛模拟。对于具有较低和中移植密度的系统,核心诱导期随着聚合物 - 底物相互作用的增加而变短。然而,成核机制是不同的。对于嫁接密度低的系统,有吸引力相互作用的增加导致嫁接聚合物的异质成核过程的增强。对于具有中等接枝密度的系统中,有吸引力的相互作用可补偿由所述基板的限制引起的构象熵损失,从而导致基板表面附近的当地段密度的增加和成核能力的提高。同时,成核模式从分子间流动的胶束成核变化到与增加的相互作用的分子间链折叠成核。对于具有高接枝密度的系统,结晶行为几乎不受聚合物 - 基质相互作用的影响。这些发现有助于揭示聚合物纳米复合材料的结晶行为的微观机理和相应的增强机制。 图形抽象

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