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制备高强度石墨烯材料的化学策略。

Chemical Strategies for Making Strong Graphene Materials.

作者信息

Zhou Tianzhu, Cheng Qunfeng

机构信息

School of Chemistry, Key Laboratory of Bio-inspired Smart Interfacial Science and Technology of Ministry of Education, Beijing Advanced Innovation Center for Biomedical Engineering, Beihang University, Beijing, 100191, China.

School of Materials Science and Engineering, Zhengzhou University, Zhengzhou, 450001, China.

出版信息

Angew Chem Int Ed Engl. 2021 Aug 16;60(34):18397-18410. doi: 10.1002/anie.202102761. Epub 2021 Apr 20.

Abstract

Graphene materials have been widely applied in various fields because of their remarkable mechanical and electrical properties. However, two obstacles arise during the assembly of graphene platelets into macroscale graphene materials and composites that impair the performance of the resultant graphene materials: 1) the voids between the graphene platelets, and 2) the wrinkling of the graphene platelets. In the past decade, several strategies have been developed to eliminate these obstacles. These strategies result in strong macroscale graphene materials, such as graphene fibers with tensile strengths of over 3.4 GPa and sheets with tensile strengths of over 1.5 GPa, which have many practical applications. This Minireview summarizes the effective strategies for assembling graphene materials and compares their advantages and drawbacks. The preparation processes as well as the resulting fundamental mechanical properties and wide spectrum of electrical and magnetic properties are also discussed. Finally, our outlook for the future of this field is presented.

摘要

由于其卓越的机械和电学性能,石墨烯材料已在各个领域得到广泛应用。然而,在将石墨烯片组装成宏观尺度的石墨烯材料及复合材料的过程中出现了两个阻碍,这会损害所得石墨烯材料的性能:1)石墨烯片之间的空隙;2)石墨烯片的褶皱。在过去十年中,已开发出多种策略来消除这些阻碍。这些策略造就了强度高的宏观尺度石墨烯材料,例如拉伸强度超过3.4 GPa的石墨烯纤维以及拉伸强度超过1.5 GPa的薄片,它们具有许多实际应用。本综述总结了组装石墨烯材料的有效策略,并比较了它们的优缺点。还讨论了制备过程以及由此产生的基本力学性能和广泛的电学与磁学性能。最后,我们展示了对该领域未来的展望。

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