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Reinforcement and degradation mechanisms in polymer/inorganic nanocomposites.

机译:聚合物/无机纳米复合材料的增强和降解机理。

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This project accomplished the following goals: preparation of polymer/alumina nanocomposites using a single-screw extrusion approach, a systematic investigation of interfacial interactions, the mechanisms for reinforcement, and the thermal degradation and flame retardant mechanisms in polymer nanocomposites. In this work it was found that the stereochemistry of polymer macromolecules and the shapes of nanoparticles are extremely important in determining the interfacial interactions between them. Understanding of the nature of these interactions can result in a comprehensive understanding of reinforcement mechanisms in polymer nanocomposites. It was found that aromatic polymers such as polycarbonate and polystyrene have stronger interfacial interactions with needle or whisker-shaped nanoparticles than with spherical-shaped nanoparticles, while linear aliphatic polymers such as polymethylmethacrylate showed strong interactions with spherical nanoparticles. Other factors affecting the strength of interfacial interactions such as size, surface modification and concentration of nanoparticles were also studied. The thermal stability of polymer nanocomposites was studied to unravel the thermal degradation mechanisms. It was found that the chemical nature of nanoparticles plays a significant role in the thermal decomposition of polymer nanocomposites. For instance, SEM studies of polymer nanocomposites chars revealed that alumina nanoparticles moved to the surface of nanocomposites, while silica nanoparticles stayed in the body of the material, which enhances char formation. The mechanisms for the flammability in polymer/alumina nanocomposites were found to depend on the viscosity of the melt flow of nanocomposites.; FT-IR, MS, and surface free energy characterization for modified alumina surfaces were done. The compatibility of polymer molecules and nanoparticles was studied on the basis of surface free energy. It was shown that modification of the alumina surface with silane coupling agents lowers the values of surface free energy for inorganic nanoparticles to the level of polymer surface free energy, and thus leads to a higher degree of the interfacial interactions between them.
机译:该项目实现了以下目标:使用单螺杆挤出方法制备聚合物/氧化铝纳米复合材料,界面相互作用的系统研究,增强机理以及聚合物纳米复合材料的热降解和阻燃机理。在这项工作中,发现聚合物大分子的立体化学和纳米颗粒的形状对于确定它们之间的界面相互作用极为重要。了解这些相互作用的性质可以导致对聚合物纳米复合材料中增强机理的全面理解。已发现,芳香族聚合物(如聚碳酸酯和聚苯乙烯)与针状或晶须形纳米颗粒的界面相互作用强于球形纳米颗粒,而线型脂族聚合物(如聚甲基丙烯酸甲酯)则与球形纳米颗粒具有强相互作用。还研究了影响界面相互作用强度的其他因素,例如大小,表面改性和纳米粒子的浓度。研究了聚合物纳米复合材料的热稳定性,以揭示其热降解机理。发现纳米颗粒的化学性质在聚合物纳米复合材料的热分解中起重要作用。例如,对聚合物纳米复合材料炭的SEM研究表明,氧化铝纳米粒子移动到纳米复合材料的表面,而二氧化硅纳米粒子留在材料的主体中,这增强了炭的形成。发现聚合物/氧化铝纳米复合材料的可燃性机制取决于纳米复合材料熔体流动的粘度。进行了改性氧化铝表面的FT-IR,MS和表面自由能表征。基于表面自由能研究了聚合物分子与纳米颗粒的相容性。结果表明,用硅烷偶联剂对氧化铝表面进行改性将无机纳米颗粒的表面自由能值降低到聚合物表面自由能的水平,从而导致它们之间的界面相互作用程度更高。

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