Zhang Liwen, Ma Xiaolong, Zhang Yongyi, Bradford Philip D, Zhu Yuntian T
Department of Materials Science and Engineering, North Carolina State University, Raleigh, NC 27695, United States of America.
Suzhou Institute of Nano-Tech and Nano-Bionics, Chinese Academy of Sciences, Suzhou, Jiangsu 215123, People's Republic of China.
Nanotechnology. 2021 Apr 6;32(26). doi: 10.1088/1361-6528/abef92.
We investigated the microstructures of carbon nanotube (CNT) films and the effect of CNT length on their mechanical performance. 230 μm-, 300 μm-, and 360 μm- long CNTs were grown and used to fabricate CNT films by a winding process. Opposite from the length effect on CNT fibers, it has been found that the mechanical properties of the CNT films decrease with increasing CNT length. Without fiber twisting, short CNTs tend to bundle together tightly by themselves in the film structure, resulting in an enhanced packing density; meanwhile, they also provide a high degree of CNT alignment, which prominently contributes to high mechanical properties of the CNT films. When CNTs are long, they tend to be bent and entangled, which significantly reduce their packing density, impairing the film mechanical behaviors severely. It has also been unveiled that the determinant effect of the CNT alignment on the film mechanical properties is more significant than that of the film packing density. These findings provide guidance on the optimal CNT length when attempting to fabricate high-performance macroscopic CNT assemblies.
我们研究了碳纳米管(CNT)薄膜的微观结构以及CNT长度对其力学性能的影响。生长了长度为230μm、300μm和360μm的CNT,并通过缠绕工艺将其用于制备CNT薄膜。与CNT纤维的长度效应相反,已发现CNT薄膜的力学性能随CNT长度的增加而降低。在没有纤维捻度的情况下,短CNT在薄膜结构中倾向于自行紧密地聚集在一起,导致堆积密度增加;同时,它们还提供了高度的CNT排列,这对CNT薄膜的高力学性能有显著贡献。当CNT较长时,它们倾向于弯曲和缠结,这显著降低了它们的堆积密度,严重损害了薄膜的力学性能。还发现CNT排列对薄膜力学性能的决定性作用比薄膜堆积密度的作用更显著。这些发现为试图制造高性能宏观CNT组件时的最佳CNT长度提供了指导。