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基于交联聚乙烯的氧化铝-粘土二元和三元杂化纳米复合材料:纳米级杂化填料的自组装、聚合物链限制及传输特性

XLPE based Al2O3-clay binary and ternary hybrid nanocomposites: self-assembly of nanoscale hybrid fillers, polymer chain confinement and transport characteristics.

作者信息

Jose Josmin P, Thomas Sabu

机构信息

School of Chemical Sciences, Mahatma Gandhi University, Kottayam, Kerala 686 560, India.

出版信息

Phys Chem Chem Phys. 2014 Oct 7;16(37):20190-201. doi: 10.1039/c4cp03403a.

Abstract

Transport properties of hybrid nanoparticle based cross-linked polyethylene (XLPE)-Al2O3-clay binary and ternary nanocomposites have been investigated with special significance to the hybrid effect and synergism of hybrid nanofillers. Compiling the temperature and filler effects demonstrates the self-assembly of hybrid nanofillers in confining the polymer chain dynamics. Studies on transport mechanisms, transport coefficients, and swelling parameters confirm the superior solvent resistant properties of hybrid filler reinforced nanocomposites. Experiments confirmed the extra stability of the ternary hybrid nanocomposites against the process of solvent penetration. Thermodynamic and kinetic investigations reveal that the nanofillers are competent to alter the thermodynamic feasibility and rate constant parameters. Theoretical predictions by the Peppas-Sahlin model suggest that the diffusion process is well thought-out to be a combination of diffusion into the swollen polymer and the polymer chain relaxation process. The morphology and the network density estimation confirm the presence of filler networks and the trapped polymer chains inside them, in ternary systems, which elucidate the microstructure assisted solvent resistant properties of the ternary hybrid nanocomposites. The amount of polymer chains immobilized by the filler surface was computed from dynamic mechanical analysis and a nice correlation was established between transport characteristics and the polymer chain confinement.

摘要

基于杂化纳米粒子的交联聚乙烯(XLPE)-Al2O3-粘土二元和三元纳米复合材料的传输性能已被研究,这对于杂化纳米填料的杂化效应和协同作用具有特殊意义。综合温度和填料效应表明杂化纳米填料在限制聚合物链动力学方面的自组装。对传输机制、传输系数和溶胀参数的研究证实了杂化填料增强纳米复合材料具有优异的耐溶剂性能。实验证实了三元杂化纳米复合材料在溶剂渗透过程中的额外稳定性。热力学和动力学研究表明,纳米填料能够改变热力学可行性和速率常数参数。Peppas-Sahlin模型的理论预测表明,扩散过程被认为是扩散到溶胀聚合物中以及聚合物链松弛过程的组合。形态学和网络密度估计证实了在三元体系中存在填料网络以及其中被困的聚合物链,这阐明了三元杂化纳米复合材料的微观结构辅助耐溶剂性能。通过动态力学分析计算了被填料表面固定的聚合物链的数量,并在传输特性和聚合物链限制之间建立了良好的相关性。

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