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Graphene aerogels that withstand extreme compressive stress and strain

机译:石墨烯气凝胶,承受极端压应力和应变

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Graphene aerogels combining elastic, lightweight, and robust mechanical properties have been explored for a wide variety of applications. However, graphene aerogels are generally subject to brittle mechanical properties and the irreversible damage of network structures during extreme compressions. Thus, the challenge of finding ways to enhance the strength and resilience of graphene aerogels remains. Herein, superelastic and ultralight aerogels are fabricated through a thermal-treatment of 3D ordered graphene aerogels. The treatments at 400-1000 degrees C eliminate most of the oxygen-containing functional groups and enhance the - stacking interactions between graphene sheets, forming a well-ordered structure of graphene sheets in cell walls. The aerogels can withstand a loading of 100000 N (10(9) times their own weight) for 60 min and retain their substantial elastic resilience. This loading corresponds to an ultimate compressive stress of approximately 1000 MPa and a strain of 99.8%, and this ultimate stress is 1-2 orders of magnitude higher than the values for other (carbon-based, polymer-based, inorganic-based, and metal-based) porous materials. The superelastic properties can be attributed to the graphite-like ordered structure of cell walls. The successful fabrication of such superelastic materials opens a new avenue to explore their potential applications in pressure sensors, mechanical shock absorbers, soft robots, and deformable electronic devices.
机译:石墨烯气凝胶结合弹性,轻量级的,和健壮的机械性能探索了各种各样的应用程序。然而,石墨烯气凝胶一般的话题脆性力学性能和网络结构的不可逆的损害极端的按压。想办法提高强度和石墨烯气凝胶的弹性。超弹性和超轻气凝胶通过热处理3 d制作的有序的石墨烯气凝胶。400 - 1000摄氏度消除大部分的含氧官能团和增强石墨烯-堆积相互作用表,形成一个秩序井然的结构石墨烯在细胞壁。承受100000 N的加载(10 (9)自己的体重)60分钟和留住他们大量的弹性恢复力。对应的极限抗压应力大约1000 MPa和应变的99.8%,这个极限应力是1 - 2个数量级高于其他的值(以碳为基础的,聚合物基、inorganic-based和金属)多孔材料。是由于graphite-like命令道细胞壁的结构。制造这样的超弹性材料打开一条新途径,探索他们的潜力应用压力传感器、机械减震器,柔软的机器人,和变形电子设备。

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