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Reinforcement of model filled elastomers: synthesis and characterization of the dispersion state by SANS measurements

机译:填充模型弹性体的增强:通过SANS测量合成和表征分散态

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摘要

This work is the first part of a study devoted to the understanding and the determination of the molecular mechanisms that are at the origin of the specific properties shown by reinforced elastomers. Different model filled elastomers composed of cross-linked polyethylacrylate chains reinforrced with grafted silica nanoparticles were prepared varying the reactivity of the coupling agent with the ethylacrylate monomers. They were synthetized applying and adapting the method developed by Ford et al. [11] which consists to polymerize a colloidal suspension of grafted silica particles in acrylate monomers. In this paper we will present how filled elastomers having different dispersion states can be prepared whilst keeping the same interactions between the particles and the polymer chains. The dispersion states were characterized by Small Angle Neutron Scattering. We found that there are two opposite effects which control the final dispersion state of these filled elastomers during the polymerization. The first one is a depletion mechanism favoring the formation of aggregates. The second one is a repulsive steric interaction due to the growth of polymer chains from the p9article surfaces avoiding contacts between the silica inclusions. Using these results we can prepare sets of samples having the same particle/matrix interface but different dispersions states. By comparing their mechanical properties we should to able to estimate the relative weight of the dispersion state quality and the one of the particle/matrix interface on the mechanical behavior of these filled elastomers.
机译:这项工作是研究的第一部分,致力于理解和确定分子机理,这些分子机理是增强弹性体所表现出的特定性能的起源。通过改变偶联剂与丙烯酸乙酯单体的反应性,制备了由交联的二氧化硅纳米颗粒增强的交联聚丙烯酸乙酯链组成的不同模型填充的弹性体。他们是通过应用和适应福特等人开发的方法进行合成的。文献[11]包括使接枝的二氧化硅颗粒在丙烯酸酯单体中的胶体悬浮液聚合。在本文中,我们将介绍如何制备具有不同分散态的填充弹性体,同时保持颗粒与聚合物链之间的相同相互作用。色散状态通过小角中子散射表征。我们发现有两种相反的作用控制聚合过程中这些填充弹性体的最终分散状态。第一个是有助于聚集体形成的耗尽机制。第二个是排斥空间相互作用,这是由于聚合物颗粒从微粒表面生长而产生的排斥性相互作用,从而避免了二氧​​化硅内含物之间的接触。利用这些结果,我们可以准备具有相同粒子/矩阵界面但分散状态不同的样本集。通过比较它们的机械性能,我们应该能够估计出这些填充弹性体的机械性能的分散状态质量和颗粒/基质界面之一的相对重量。

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