Functional Nanomaterials, Institute for Materials Science, Kiel University, Kaiserstr. 2, 24143, Kiel, Germany.
Laboratory of Bio-Inspired and Graphene Nanomechanics, Department of Civil, Environmental and Mechanical Engineering, University of Trento, via Mesiano 77, I-38123, Trento, Italy.
Nat Commun. 2017 Oct 31;8(1):1215. doi: 10.1038/s41467-017-01324-7.
Three-dimensional (3D) assemblies based on carbon nanomaterials still lag behind their individual one-dimensional building blocks in terms of mechanical and electrical properties. Here we demonstrate a simple strategy for the fabrication of an open porous 3D self-organized double-hierarchical carbon nanotube tube structure with properties advantageous to those existing so far. Even though no additional crosslinking exists between the individual nanotubes, a high reinforcement effect in compression and tensile characteristics is achieved by the formation of self-entangled carbon nanotube (CNT) networks in all three dimensions, employing the CNTs in their high tensile properties. Additionally, the tubular structure causes a self-enhancing effect in conductivity when employed in a 3D stretchable conductor, together with a high conductivity at low CNT concentrations. This strategy allows for an easy combination of different kinds of low-dimensional nanomaterials in a tube-shaped 3D structure, enabling the fabrication of multifunctional inorganic-carbon-polymer hybrid 3D materials.
基于碳纳米材料的三维(3D)组装体在机械和电气性能方面仍落后于其各自的一维构建块。在这里,我们展示了一种简单的策略,用于制造具有迄今为止有利性能的开放式多孔 3D 自组织双层碳纳米管管结构。尽管单个纳米管之间没有额外的交联,但通过在所有三个维度上形成自缠结的碳纳米管(CNT)网络,利用 CNT 的高拉伸性能,在压缩和拉伸特性中实现了高增强效果。此外,管状结构在用作 3D 可拉伸导体时会导致导电性的自增强效应,同时在低 CNT 浓度下具有高导电性。该策略允许在管状 3D 结构中轻松组合不同种类的低维纳米材料,从而能够制造多功能无机-碳-聚合物杂化 3D 材料。