Kim Seo Gyun, Heo So Jeong, Kim Jeong-Gil, Kim Sang One, Lee Dongju, Kim Minkook, Kim Nam Dong, Kim Dae-Yoon, Hwang Jun Yeon, Chae Han Gi, Ku Bon-Cheol
Institute of Advanced Composite Materials, Korea Institute of Science and Technology (KIST), Wanju, 55324, Republic of Korea.
Department of Materials Science and Engineering, Ulsan National Institute of Science and Technology (UNIST), Ulsan, 44919, Republic of Korea.
Adv Sci (Weinh). 2022 Oct;9(29):e2203008. doi: 10.1002/advs.202203008. Epub 2022 Aug 21.
Individual carbon nanotubes (CNT) and graphene have unique mechanical and electrical properties; however, the properties of their macroscopic assemblies have not met expectations because of limited physical dimensions, the limited degree of dispersion of the components, and various structural defects. Here, a state-of-the-art assembly for a novel type of hybrid fiber possessing the properties required for a wide variety of multifunctional applications is presented. A simple and effective multidimensional nanostructure of CNT and graphene oxide (GO) assembled by solution processing improves the interfacial utilization of the components. Flexible GOs are effectively intercalated between nanotubes along the shape of CNTs, which reduces voids, enhances orientation, and maximizes the contact between elements. The microstructure is finely controlled by the elements content ratio and dimensions, and an optimal balance improves the mechanical properties. The hybrid fibers simultaneously exhibit exceptional strength (6.05 GPa), modulus (422 GPa), toughness (76.8 J g ), electrical conductivity (8.43 MS m ), and knot strength efficiency (92%). Furthermore, surface and electrochemical properties are significantly improved by tuning the GO content, further expanding the scope of applications. These hybrid fibers are expected to offer a strategy for overcoming the limitations of existing fibers in meeting the requirements for applications in the fiber industry.
单个碳纳米管(CNT)和石墨烯具有独特的机械和电学性能;然而,由于物理尺寸有限、组件分散程度有限以及各种结构缺陷,它们的宏观组装体的性能并未达到预期。在此,展示了一种用于新型混合纤维的先进组装体,该混合纤维具有多种多功能应用所需的性能。通过溶液处理组装的一种简单有效的碳纳米管和氧化石墨烯(GO)的多维纳米结构提高了组件的界面利用率。柔性氧化石墨烯沿着碳纳米管的形状有效地插入到纳米管之间,这减少了空隙,增强了取向,并使元素之间的接触最大化。微观结构通过元素含量比和尺寸得到精细控制,并且最佳平衡改善了机械性能。这种混合纤维同时展现出优异的强度(6.05吉帕)、模量(422吉帕)、韧性(76.8焦/克)、电导率(8.43兆西门子/米)和打结强度效率(92%)。此外,通过调整氧化石墨烯的含量,表面和电化学性能得到显著改善,进一步扩大了应用范围。这些混合纤维有望提供一种策略,以克服现有纤维在满足纤维工业应用要求方面的局限性。