Shenzhen Engineering Lab for Supercapacitor Materials, Shenzhen Key Laboratory for Advanced Materials, Department of Material Science and Engineering, Shenzhen Graduate School, Harbin Institute of Technology, University Town, Shenzhen, 518055, China.
Department of Physics and Materials Science, City University of Hong Kong, Tat Chee Avenue, Kowloon, Hong Kong, China.
Adv Mater. 2018 Mar;30(12):e1705380. doi: 10.1002/adma.201705380. Epub 2018 Feb 9.
3D assembly of graphene sheets (GSs) is important for preserving the merits of the single-atomic-layered structure. Simultaneously, vertical growth of GSs has long been a challenge for thermal chemical vapor deposition (CVD). Here, vertical growth of the GSs is achieved in a thermal CVD reactor and a novel 3D graphene structure, 3D graphene fibers (3DGFs), is developed. The 3DGFs are prepared by carbonizing electrospun polyacrylonitrile fibers in NH and subsequently in situ growing the radially oriented GSs using thermal CVD. The GSs on the 3DGFs are densely arranged and interconnected with the edges fully exposed on the surface, resulting in high performances in multiple aspects such as electrical conductivity (3.4 × 10 -1.2 × 10 S m ), electromagnetic shielding (60 932 dB cm g ), and superhydrophobicity and superoleophilicity, which are far superior to the existing 3D graphene materials. With the extraordinary properties along with the easy scalability of the simple thermal CVD, the novel 3DGFs are highly promising for many applications such as high-strength and conducting composites, flexible conductors, electromagnetic shielding, energy storage, catalysis, and separation and purification. Furthermore, this strategy can be widely used to grow the vertical GSs on many other substrates by thermal CVD.
石墨烯片(GSs)的 3D 组装对于保持单层结构的优点很重要。同时,GSs 的垂直生长长期以来一直是热化学气相沉积(CVD)的挑战。在这里,通过热 CVD 反应器实现了 GSs 的垂直生长,并开发了一种新型的 3D 石墨烯结构,即 3D 石墨烯纤维(3DGFs)。3DGFs 通过在 NH 中碳化电纺聚丙烯腈纤维,然后使用热 CVD 原位生长径向取向的 GSs 来制备。3DGFs 上的 GSs 排列紧密,边缘完全暴露在表面上相互连接,从而在电导率(3.4×10 -1.2×10 S m )、电磁屏蔽(60~932 dB cm g )、超疏水性和超亲油性等多个方面表现出优异的性能,远远超过现有的 3D 石墨烯材料。由于具有非凡的性能和简单的热 CVD 的可扩展性,新型 3DGFs 在高强度和导电复合材料、柔性导体、电磁屏蔽、储能、催化以及分离和纯化等许多应用中具有广阔的应用前景。此外,通过热 CVD 可以在许多其他基底上广泛生长垂直 GSs 的这种策略。