Kuang Jun, Dai Zhaohe, Liu Luqi, Yang Zhou, Jin Ming, Zhang Zhong
CAS Key Laboratory of Nanosystem and Hierarchical Fabrication, National Center for Nanoscience and Technology, Beijing 100190, China.
Nanoscale. 2015;7(20):9252-60. doi: 10.1039/c5nr00841g.
Nanostructured carbon material based three-dimensional porous architectures have been increasingly developed for various applications, e.g. sensors, elastomer conductors, and energy storage devices. Maintaining architectures with good mechanical performance, including elasticity, load-bearing capacity, fatigue resistance and mechanical stability, is prerequisite for realizing these functions. Though graphene and CNT offer opportunities as nanoscale building blocks, it still remains a great challenge to achieve good mechanical performance in their microarchitectures because of the need to precisely control the structure at different scales. Herein, we fabricate a hierarchical honeycomb-like structured hybrid foam based on both graphene and CNT. The resulting materials possess excellent properties of combined high specific strength, elasticity and mechanical stability, which cannot be achieved in neat CNT and graphene foams. The improved mechanical properties are attributed to the synergistic-effect-induced highly organized, multi-scaled hierarchical architectures. Moreover, with their excellent electrical conductivity, we demonstrated that the hybrid foams could be used as pressure sensors in the fields related to artificial skin.
基于纳米结构碳材料的三维多孔结构已越来越多地被开发用于各种应用,例如传感器、弹性体导体和能量存储设备。保持具有良好机械性能的结构,包括弹性、承载能力、抗疲劳性和机械稳定性,是实现这些功能的先决条件。尽管石墨烯和碳纳米管作为纳米级构建块提供了机会,但由于需要在不同尺度上精确控制结构,在其微结构中实现良好的机械性能仍然是一个巨大的挑战。在此,我们基于石墨烯和碳纳米管制备了一种分层蜂窝状结构的混合泡沫。所得材料具有优异的综合性能,兼具高比强度、弹性和机械稳定性,这是纯碳纳米管和石墨烯泡沫无法实现的。机械性能的提高归因于协同效应诱导的高度有序、多尺度的分层结构。此外,由于其优异的导电性,我们证明了这种混合泡沫可在与人工皮肤相关的领域用作压力传感器。