石墨烯纳米片分散对聚合物纳米复合材料热性能和形貌改善的影响

A. Adeodu, I. Daniyan, K. Bello, Adewumi Funmilayo, Olumayowa Adelowo, P. Ikubanni
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摘要

本研究使用不同的技术研究了环氧-石墨烯纳米片(GNPs)复合材料的性能,目的是评估其热性能和形貌。该研究从x射线衍射强度、微观结构分析、热稳定性/降解和玻璃化转变温度等方面考察了GNPs分散对复合材料的影响。该研究还考察了后固化技术对增强复合材料的热性能和形貌的影响。形貌的评价采用x射线衍射和扫描电镜按照ASTM D3417进行,热性能的测量采用差示扫描量热法(DSC)和热重分析仪(TGA)分别按照ASTM D3418和ASTM 1131 ISO 11358进行。结果表明,不同负载的石墨烯纳米片对复合材料的热稳定性和形貌有显著改善。TGA结果表明,随着石墨烯负载的增加,重量保持值增加。DSC分析表明,石墨烯负载从20%增加到30%,玻璃化转变(Tg)从50增加到530 c。溶液复合和高剪切混合作为分散技术的使用对复合材料的性能产生了积极影响,使其适用于汽车、电子和航空航天工业等工业应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effects of Dispersion of Graphene Nanoplatelets on the Improvement of Thermal Properties and Morphology of Polymer Nano-Composites
This study investigates the properties of epoxy-graphene nanoplatelets (GNPs) composites using different techniques, with the aim of evaluating their thermal properties and morphology. The study looks at the effect of the dispersion of GNPs on the composites in terms of their X-ray diffraction intensity, micro-structural analysis, thermal stability/degradation, and glass transition temperature. The study also examines the effect of post-curing techniques on the enhancement of the thermal properties and morphology of the composites. The evaluation of the morphology is carried out using X-ray diffraction and scanning electron microscopy in accordance with ASTM D3417, while the thermal properties are measured using Differential Scanning Calorimetry (DSC) and Thermo Gravimetric Analyzer (TGA) in accordance with ASTM D3418 and ASTM 1131 ISO 11358 respectively. The results show significant improvements in the thermal stability and morphology of the composites with varying loading of graphene nanoplatelets. The TGA results indicate an increase in weight retention value as graphene loading increases. DSC analysis shows that an increase in graphene loading from 20 to 30 wt % increased, the glass transition (Tg) from 50 to 53o C. The use of solution compounding and high shear mixing as a dispersion technique positively influences the properties of the composites, making them suitable for industrial applications such as the automobile, electronics, and aerospace industries.
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