Ding Ling, Xu Tianqi, Zhang Jiawen, Ji Jinpeng, Song Zhaotao, Zhang Yanan, Xu Yijun, Liu Tong, Liu Yang, Zhang Zihan, Gong Wenbin, Wang Yunong, Shi Zhenzhong, Ma Renzhi, Geng Jianxin, Ngo Huynh Thien, Geng Fengxia, Liu Zhongfan
College of Energy; School of Physical Science and Technology & Institute for Advanced Study, Soochow University, Suzhou, 215006, China.
Beijing University of Chemical Technology, 100029, Beijing, China.
Nat Commun. 2024 Jun 7;15(1):4880. doi: 10.1038/s41467-024-49270-5.
Assembling graphene sheets into macroscopic fibers with graphitic layers uniaxially aligned along the fiber axis is of both fundamental and technological importance. However, the optimal performance of graphene-based fibers has been far lower than what is expected based on the properties of individual graphene. Here we show that both mechanical properties and electrical conductivity of graphene-based fibers can be significantly improved if bridges are created between graphene edges through covalent conjugating aromatic amide bonds. The improved electrical conductivity is likely due to extended electron conjugation over the aromatic amide bridged graphene sheets. The larger sheets also result in improved π-π stacking, which, along with the robust aromatic amide linkage, provides high mechanical strength. In our experiments, graphene edges were bridged using the established wet-spinning technique in the presence of an aromatic amine linker, which selectively reacts to carboxyl groups at the graphene edge sites. This technique is already industrial and can be easily upscaled. Our methodology thus paves the way to the fabrication of high-performance macroscopic graphene fibers under optimal techno-economic and ecological conditions.
将石墨烯片组装成宏观纤维,使石墨层沿纤维轴单轴排列,这在基础研究和技术应用方面都具有重要意义。然而,基于石墨烯的纤维的最佳性能远低于基于单个石墨烯特性所预期的性能。在此我们表明,如果通过共价共轭芳族酰胺键在石墨烯边缘之间形成桥接,基于石墨烯的纤维的机械性能和电导率都可以得到显著提高。电导率的提高可能是由于芳族酰胺桥接的石墨烯片上电子共轭的扩展。更大的片层也导致π-π堆积得到改善,这与坚固的芳族酰胺键合一起,提供了高机械强度。在我们的实验中,在芳族胺连接体存在的情况下,使用已有的湿纺技术在石墨烯边缘形成桥接,该连接体与石墨烯边缘位点的羧基选择性反应。这种技术已经产业化,并且可以很容易地扩大规模。因此,我们的方法为在最佳技术经济和生态条件下制造高性能宏观石墨烯纤维铺平了道路。