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三维交联石墨烯材料直至深低温的超弹性

Super-elasticity of three-dimensionally cross-linked graphene materials all the way to deep cryogenic temperatures.

作者信息

Zhao Kai, Zhang Tengfei, Chang Huicong, Yang Yang, Xiao Peishuang, Zhang Hongtao, Li Chenxi, Tiwary Chandra Sekhar, Ajayan Pulickel M, Chen Yongsheng

机构信息

Center for Nanoscale Science and Technology and Key Laboratory of Functional Polymer Materials, State Key Laboratory and Institute of Elemento-Organic Chemistry, College of Chemistry, Nankai University, Tianjin 300071, China.

National Institute for Advanced Materials, Nankai University, Tianjin 300350, China.

出版信息

Sci Adv. 2019 Apr 12;5(4):eaav2589. doi: 10.1126/sciadv.aav2589. eCollection 2019 Apr.

Abstract

Until now, materials with high elasticity at deep cryogenic temperatures have not been observed. Previous reports indicated that graphene and carbon nanotube-based porous materials can exhibit reversible mechano-elastic behavior from liquid nitrogen temperature up to nearly a thousand degrees Celsius. Here, we report wide temperature-invariant large-strain super-elastic behavior in three-dimensionally cross-linked graphene materials that persists even to a liquid helium temperature of 4 K, a property not previously observed for any other material. To understand the mechanical properties of these graphene materials, we show by in situ experiments and modeling results that these remarkable properties are the synergetic results of the unique architecture and intrinsic elastic/flexibility properties of individual graphene sheets and the covalent junctions between the sheets that persist even at harsh temperatures. These results suggest possible applications for such materials at extremely low temperature environments such as those in outer space.

摘要

到目前为止,尚未观察到在深低温下具有高弹性的材料。先前的报道表明,基于石墨烯和碳纳米管的多孔材料在从液氮温度到近千摄氏度的范围内可表现出可逆的机械弹性行为。在此,我们报道了三维交联石墨烯材料中具有宽温度不变性的大应变超弹性行为,这种行为甚至在4K的液氦温度下仍能持续,这是此前任何其他材料都未观察到的特性。为了理解这些石墨烯材料的力学性能,我们通过原位实验和模拟结果表明,这些卓越的性能是独特结构以及单个石墨烯片的固有弹性/柔韧性特性与即使在苛刻温度下仍能保持的片层间共价连接协同作用的结果。这些结果表明此类材料在诸如外层空间等极低温环境中可能具有应用价值。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cbf0/6461457/936bbd128eaf/aav2589-F1.jpg

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