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Polymer-Clay Nanocomposite Materials: Solution and Bulk Properties

机译:聚合物黏土纳米复合材料:溶液和体积性质

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摘要

The influence of shear on viscoelastic polymer-clay solutions was investigated by means of small-angle neutron scattering (SANS) under shear. SANS measured the shear-induced orientation of polymer and platelets. With increasing shear rate an anisotropic scattering pattern developed. At higher shear rates, the scattering anisotropy increases due to the increased orientation of the clay platelets in the shear field. Cessation of shear leads to fast recovery demonstrating the system to be highly elastic. As a result of drying, these solutions produce translucent nanocomposite films with a microporous membrane character. Depending on the preparation and degree of polymer-clay film dispersion, it is possible to modify the morphology and elastic properties of nanocomposite materials. Atomic Force Microscopy (AFM) reveals the network character and the development of morphology as a function of polymer concentration. Preliminary SANS experiments on the films will be correlated to morphologies obtained from AFM.
机译:通过剪切作用下的小角度中子散射(SANS)研究了剪切对粘弹性聚合物-黏土溶液的影响。 SANS测量了聚合物和血小板的剪切诱导取向。随着剪切速率的增加,出现了各向异性的散射图。在较高的剪切速率下,由于在剪切场中粘土薄片的取向增加,散射各向异性增加。剪切的停止导致快速恢复,表明该系统具有高弹性。作为干燥的结果,这些溶液产生具有微孔膜特征的半透明纳米复合膜。取决于聚合物-粘土膜分散体的制备和程度,可以改变纳米复合材料的形态和弹性。原子力显微镜(AFM)揭示了网络特性和形态学发展与聚合物浓度的关系。在薄膜上进行的初步SANS实验将与从AFM获得的形态相关。

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