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Highly compressible 3D periodic graphene aerogel microlattices

机译:高度可压缩的3D周期石墨烯气凝胶微晶格

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摘要

Graphene is a two-dimensional material that offers a unique combination of low density, exceptional mechanical properties, large surface area and excellent electrical conductivity. Recent progress has produced bulk 3D assemblies of graphene, such as graphene aerogels, but they possess purely stochastic porous networks, which limit their performance compared with the potential of an engineered architecture. Here we report the fabrication of periodic graphene aerogel microlattices, possessing an engineered architecture via a 3D printing technique known as direct ink writing. The 3D printed graphene aerogels are lightweight, highly conductive and exhibit supercompressibility (up to 90% compressive strain). Moreover, the Young's moduli of the 3D printed graphene aerogels show an order of magnitude improvement over bulk graphene materials with comparable geometric density and possess large surface areas. Adapting the 3D printing technique to graphene aerogels realizes the possibility of fabricating a myriad of complex aerogel architectures for a broad range of applications.
机译:石墨烯是一种二维材料,具有低密度,出色的机械性能,大表面积和出色的导电性的独特组合。最近的进展已经产生了石墨烯的本体3D组件,例如石墨烯气凝胶,但它们具有纯随机的多孔网络,与工程架构的潜力相比,它们的性能受到限制。在这里,我们报告了周期性石墨烯气凝胶微晶格的制造,该晶格通过称为直接墨水书写的3D打印技术拥有经过工程设计的体系结构。 3D打印的石墨烯气凝胶重量轻,导电性高,并具有超压缩性(高达90%的压缩应变)。此外,3D打印石墨烯气凝胶的杨氏模量比具有可比几何密度且具有大表面积的本体石墨烯材料显示出数量级的改善。使3D打印技术适应石墨烯气凝胶可实现制造无数种复杂气凝胶结构的广泛应用可能性。

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