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Evaluation of Exfoliated Graphite to Graphene in Polyamide 66 Using Novel High Shear Elongational Flow

机译:新型高剪切伸长流评估石墨66中片状石墨至石墨烯的性能

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摘要

Graphene has been publicized as the game changing material of this millennium. To this day, scalable production leading to exceptional material properties has been difficult to attain. Most methods require harsh chemicals, which result in destroying the graphene surface. A method was developed, exploiting high speed elongational flow in a novel designed batch mixer; creating a distribution of pristine few to many layer graphene flakes. The method focuses on exfoliating in a molten polyamide 66 (PA66) matrix, creating a graphene reinforced polymer matrix composite (G-PMC). The process revealed that high speed elongational flow was able to create few layer graphene. Graphite exfoliation was found driven in part by diffusion, leading to intercalation of PA66 in graphite. The intercalated structure lead to increases in the hydrogen bonding domain, creating anisotropic crystal domains. The thermal stability of the G-PMC was found to be dependent to the degree of exfoliation, PA66 crystal structure and composite morphology. The aim of this research is to characterize uniquely produced graphene containing polymer matrix composites using a newly created elongational flow field. Using elongational flow, graphite will be directly exfoliated into graphene within a molten polymer.
机译:石墨烯已被公认为是本世纪改变游戏规则的材料。时至今日,难以实现可扩展的生产以实现出色的材料性能。大多数方法都需要刺激性的化学物质,这会破坏石墨烯表面。开发了一种在新颖设计的间歇混合机中利用高速伸长流动的方法。产生了少量的原始石墨分布到多层石墨烯薄片。该方法的重点是在熔融的聚酰胺66(PA66)基质中剥离,从而形成石墨烯增强的聚合物基质复合材料(G-PMC)。该过程表明,高速伸长流动能够产生很少的石墨烯层。发现石墨剥落部分受扩散驱动,从而导致PA66嵌入石墨中。插入的结构导致氢键域增加,从而形成各向异性的晶体域。发现G-PMC的热稳定性取决于剥离程度,PA66晶体结构和复合物形态。这项研究的目的是使用新创建的伸长流场来表征独特生产的含石墨烯的聚合物基复合材料。使用伸长流,石墨将在熔融聚合物中直接剥落成石墨烯。

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