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Synthesis and Functionalization of 3D Nano-graphene Materials: Graphene Aerogels and Graphene Macro Assemblies

机译:3D纳米石墨烯材料的合成和功能化:石墨烯气凝胶和石墨烯宏组件

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摘要

Efforts to assemble graphene into three-dimensional monolithic structures have been hampered by the high cost and poor processability of graphene. Additionally, most reported graphene assemblies are held together through physical interactions (e.g., van der Waals forces) rather than chemical bonds, which limit their mechanical strength and conductivity. This video method details recently developed strategies to fabricate mass-producible, graphene-based bulk materials derived from either polymer foams or single layer graphene oxide. These materials consist primarily of individual graphene sheets connected through covalently bound carbon linkers. They maintain the favorable properties of graphene such as high surface area and high electrical and thermal conductivity, combined with tunable pore morphology and exceptional mechanical strength and elasticity. This flexible synthetic method can be extended to the fabrication of polymer/carbon nanotube (CNT) and polymer/graphene oxide (GO) composite materials. Furthermore, additional post-synthetic functionalization with anthraquinone is described, which enables a dramatic increase in charge storage performance in supercapacitor applications.
机译:石墨烯的高成本和差的可加工性阻碍了将石墨烯组装成三维整体结构的努力。另外,大多数报道的石墨烯组件通过物理相互作用(例如范德华力)而不是化学键结合在一起,这限制了它们的机械强度和导电性。该视频方法详细介绍了最近开发的策略,这些策略用于制造可大量生产的,基于石墨烯的散装材料,该材料可从聚合物泡沫或单层氧化石墨烯得到。这些材料主要由通过共价键合的碳连接基连接的单个石墨烯片组成。它们保持了石墨烯的良好性能,例如高表面积,高电导率和导热率,并具有可调节的孔隙形态以及出色的机械强度和弹性。这种灵活的合成方法可以扩展到聚合物/碳纳米管(CNT)和聚合物/氧化石墨烯(GO)复合材料的制造。此外,还描述了用蒽醌进行的其他合成后官能化,这可以大大提高超级电容器应用中的电荷存储性能。

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