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首页> 外文期刊>Polymer Testing >In-situ synchrotron radiation SAXS study of structural deformation memory effect of the interfacial region in Al2O3/LDPE composite film
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In-situ synchrotron radiation SAXS study of structural deformation memory effect of the interfacial region in Al2O3/LDPE composite film

机译:原位同步辐射SAXS研究Al2O3 / LDPE复合膜界面区域的结构变形记忆效应

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摘要

This paper employs the SAXS technique to study the microstructure evolution of nano Al2O3/low-density polyethylene (LDPE) composite film during temperature increase and decrease (including interfacial layer thickness, mass fractal and surface fractal), and discusses the deformation memory, effect (DME) mechanism. Compared with the case of pure LDPE, there are some new phenomena observed in the Al2O3/LDPE composite film, such as an interfacial layer and surface fractal. The experimental results showed that, when the temperature rose from 25 degrees C to 180 degrees C, the interfacial layer thickness of the composite film increased from 2.8 nm to 3.5 nm, and the surface fractal dimension increased from 1.2 to 2.0, with the lamellar crystal of the PE molecular chains melting. When the temperature dropped from 180 degrees C to 30 degrees C, the interfacial layer thickness decreased from 3.5 nm to 3.0 nm, and the surface fractal dimension changed from 2.0 to 1.2, with the PE molecular chains recrystallizing. We found that the DME of the interface layer is that thickness and area increase when temperature rises and decrease when temperature decreases. The addition of Al2O3 nanoparticles into the polymer results in the adsorption of space charges in the matrix onto the nanoparticles and in the interfacial regions, which efficiently inhibits the space charge accumulation of the composite material in the gradient electrical field. (C) 2016 Elsevier Ltd. All rights reserved.
机译:本文采用SAXS技术研究了纳米Al2O3 /低密度聚乙烯(LDPE)复合膜在温度升高和降低(包括界面层厚度,质量分形和表面分形)过程中的微观结构演变,并讨论了变形记忆,作用( DME)机制。与纯LDPE相比,在Al2O3 / LDPE复合膜中观察到了一些新现象,例如界面层和表面分形。实验结果表明,当温度从25℃升至180℃时,复合膜的界面层厚度从2.8nm增加到3.5nm,表面分形维数从1.2增加到2.0,且为层状晶体PE分子链熔化。当温度从180℃降至30℃时,界面层厚度从3.5 nm降低至3.0 nm,表面分形维数从2.0变为1.2,PE分子链重结晶。我们发现界面层的DME是厚度和面积随温度升高而增加而随温度降低而减小。将Al2O3纳米颗粒添加到聚合物中会导致基质中的空间电荷吸附到纳米颗粒上和界面区域中,从而有效地抑制了复合材料在梯度电场中的空间电荷积累。 (C)2016 Elsevier Ltd.保留所有权利。

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