提高低石墨烯含量环氧纳米复合材料的机械性能:混合纳米填料和化学改性纳米填料的研究

Daniel Belton, Marcin Orawiec, Richard Telford, Alexander Surtees
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摘要

石墨烯是一种前景广阔的纳米填料,可用于生产具有更强机械、电气、热、机电和阻燃性能的聚合物纳米复合材料,从而应用于航空航天、汽车、弹道学、医学、电子和智能材料等领域。溶剂辅助的自上而下方法(包括石墨的机械剥离)在扩大和大规模生产用于制造纳米复合材料的石墨烯分散体方面显示出巨大的潜力。然而,这些方法的效率较低,限制了原位法生产的石墨烯/聚合物分散体的浓度。因此,必须找到新的方法来更有效地利用这些低浓度的石墨烯纳米填料。可能的方法包括对石墨烯进行化学改性,或与其他纳米填料协同形成混合纳米复合材料。在这项工作中,我们展示了利用每种方法的成果。具体来说,我们展示了一种低成本、简单的方法来生产碳纳米管分散体,并制造出机械性能大幅提高的混合纳米复合材料。我们还扩展了之前报道过的半原位剥离法的应用范围,展示了该方法在结合化学修饰石墨烯的纳米复合材料生产中的应用。纳米复合材料表现出的优异机械性能归功于聚合物与纳米填料之间相互作用强度的提高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improving the mechanical performance of low graphene content epoxy nanocomposites: investigation of hybrid and chemically modified nanofillers
Graphene is a promising nanofiller for producing polymer nanocomposites with enhanced mechanical, electrical, thermal, electromechanical, and flame retardancy properties, leading to applications in aerospace, automotive, ballistics, medicine, electronics, and smart materials. Solvent-assisted top-down methods, including mechanical exfoliation of graphite, show great potential for scale-up and mass production of graphene dispersions for use in the fabrication of nanocomposites. However, these approaches can suffer from poor efficiency, which limits the concentrations of graphene/polymer dispersions that can be produced using in situ methods. As such, it is important to find new ways of making more effective use of these low concentrations of graphene nanofillers. Possible approaches include chemical modification of the graphene or finding synergies with other nanofillers to form hybrid nanocomposites. In this work, we demonstrate results that make use of each approach. Specifically, we demonstrate a low-cost and simple method for producing carbon nanotube dispersions and creating hybrid nanocomposites with substantial enhancements to mechanical properties. We also extend the scope of our previously reported semi-in situ exfoliation method by demonstrating its application in the production of a nanocomposite that incorporates chemically modified graphene. The superior mechanical properties exhibited by the nanocomposite are attributed to increased interaction strength between the polymer and nanofiller.
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