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Extraordinary tensile strength and ductility of scalable nanoporous graphene

机译:可扩展纳米多孔石墨烯的非凡拉伸强度和延展性

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摘要

While the compressive strength-density scaling relationship of ultralight cellular graphene materials has been extensively investigated, high tensile strength and ductility have not been realized in the theoretically strongest carbon materials because of high flaw sensitivity under tension and weak van der Waals interplanar bonding between graphene sheets. In this study, we report that large-scale ultralight nanoporous graphene with three-dimensional bicontinuous nanoarchitecture shows orders of magnitude higher strength and elastic modulus than all reported ultralight carbon materials under both compression and tension. The high-strength nanoporous graphene also exhibits excellent tensile ductility and work hardening, which are comparable to well-designed metamaterials but until now had not been realized in ultralight cellular materials. The excellent mechanical properties of the nanoporous graphene benefit from seamless graphene sheets in the bicontinuous nanoporosity that effectively preserves the intrinsic strength of atomically thick graphene in the three-dimensional cellular nanoarchitecture.
机译:尽管已经对超轻多孔石墨烯材料的抗压强度-密度比例关系进行了广泛研究,但由于在拉伸作用下的缺陷敏感性较高,并且石墨烯片之间的平面范德键弱,因此在理论上最坚硬的碳材料上仍未实现高拉伸强度和延展性。在这项研究中,我们报道了具有三维双连续纳米结构的大型超轻纳米多孔石墨烯在压缩和拉伸下均比所有报道的超轻碳材料显示出更高的强度和弹性模量。高强度纳米多孔石墨烯还具有出色的拉伸延展性和加工硬化性,可与精心设计的超材料相媲美,但迄今为止,超轻型蜂窝材料尚未实现。纳米多孔石墨烯的优异机械性能得益于双连续纳米多孔性中的无缝石墨烯片,可有效保留三维多孔纳米结构中原子厚石墨烯的固有强度。

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