State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Textiles, Donghua University, 201620, Shanghai, China.
Innovation Center for Textile Science and Technology, Donghua University, 200051, Shanghai, China.
Nat Commun. 2020 Oct 12;11(1):5134. doi: 10.1038/s41467-020-18977-6.
Two-dimensional network-structured carbon nanoscale building blocks, going beyond graphene, are of fundamental importance, and creating such structures and developing their applications have broad implications in environment, electronics and energy. Here, we report a facile route, based on electro-spraying/netting, to self-assemble two-dimensional carbon nanostructured networks on a large scale. Manipulation of the dynamic ejection, deformation and assembly of charged droplets by control of Taylor cone instability and micro-electric field, enables the creation of networks with characteristics combining nanoscale diameters of one-dimensional carbon nanotube and lateral infinity of two-dimensional graphene. The macro-sized (meter-level) carbon nanostructured networks show extraordinary nanostructural properties, remarkable flexibility (soft polymeric mechanics having hard inorganic matrix), nanoscale-level conductivity, and outstanding performances in distinctly different areas like filters, separators, absorbents, and wearable electrodes, supercapacitors and cells. This work should make possible the innovative design of high-performance, multi-functional carbon nanomaterials for various applications.
二维网络结构的碳纳米尺度构建块,超越了石墨烯,具有重要的基础意义,而创造这种结构并开发其应用具有广泛的环境、电子和能源意义。在这里,我们报告了一种基于静电纺丝/网的简便方法,可以大规模自组装二维碳纳米结构网络。通过控制泰勒锥不稳定性和微电场来操纵带电液滴的动态喷射、变形和组装,使具有一维碳纳米管的纳米级直径和二维石墨烯的横向无限的网络特性得以实现。宏观尺寸(米级)的碳纳米结构网络显示出非凡的纳米结构特性、显著的柔韧性(具有硬无机基体的软聚合物力学)、纳米级的导电性以及在过滤器、分离器、吸收剂和可穿戴电极、超级电容器和电池等不同领域的出色性能。这项工作应该能够为各种应用设计出高性能、多功能的碳纳米材料。