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Non-Isothermal Crystallization Behavior and Thermal Properties of Polyethylene Tuned by Polypropylene and Reinforced with Reduced Graphene Oxide

机译:聚丙烯调谐的非等温结晶行为和热性质,并用氧化石墨烯增强

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摘要

This research work is the first to report thermal stability, heat deformation resistance, and crystallization behavior of a Polyethylene (PE)-based biphasic polyolefin system reinforced with Reduced Graphene Oxide (RGO), which was obtained through Graphene Oxide (GO) chemical reduction. Polypropylene (PP) represented the polymeric dispersed phase. A strategic PE/PP/RGO manufacturing procedure was employed to thermodynamically localize RGO at the PE/PP interface, as confirmed by Transmission Electron Microscopy (TEM), bringing a uniform micro phase dispersion into the macro phase. In addition, studies of PE non-isothermal crystallization kinetics indicated that the morphology tunable micro phase and the nanolayered RGO promoted a nucleation-controlled PE crystallization, which was supported by Polarized Light Optical Microscopy (PLOM). This, together with fine morphology, justified the remarkable enhancement registered for the ternary system’s thermal stability and heat deformation resistance. Different filler loads were employed, with weight fractions of 2% and 4%. It was observed that the former, being better exfoliated and more homogeneously distributed at the PE/PP interface than the latter, led to a more improved PE crystallization, alongside a greater ternary system’s thermal properties. Moreover, the thermal stability of PE/PP reinforced with 2% of RGO was even higher than that of virgin PP, while their heat deformation resistance values were found to be similar. Therefore, this unique outcome provides industries, such as the energy and automotive sectors, with the opportunity to substitute PP-rich products with those mostly comprised of a cheaper, more abundant, yet performant PE.
机译:该研究工作是第一种报告通过石墨烯(RGO)加固的聚乙烯(PE)的双相聚烯烃系统的热稳定性,热变形性和结晶行为,通过石墨烯氧化物(GO)化学还原。聚丙烯(PP)表示聚合物分散相。使用透射电子显微镜(TEM)的透射电子显微镜(TEM)确认,在PE / PP界面进行rgo定位RGO的战略性PE / PP / RGO制造程序。此外,对PE非等温结晶动力学的研究表明,形态学可调微相和纳米rgo促进了核化控制的PE结晶,其通过偏振光光学显微镜(PLOM)负载。这与精细的形态一起,合理地为三元系统的热稳定性和热变形阻力注册了显着的增强。使用不同的填料载荷,重量级分为2%和4%。观察到前者,在PE / PP界面处更好地剥离和更均匀地分布于后者,LED更加改善的PE结晶,以及更大的三元系统的热性能。此外,用2%的RGO增强的PE / PP的热稳定性甚至高于原始PP的PP,而其热变形电阻值被发现是相似的。因此,这种独特的结果提供了能源和汽车领域的行业,有机会将富含PP的产品替代,这些产品主要由更便宜,更丰富而且表现性能的PE。

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