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碳纳米管定向7吉帕杂环芳纶纤维及其在人工肌肉中的应用

Carbon Nanotube-Directed 7 GPa Heterocyclic Aramid Fiber and Its Application in Artificial Muscles.

作者信息

Yan Dan, Luo Jiajun, Wang Shijun, Han Xiaocang, Lei Xudong, Jiao Kun, Wu Xianqian, Qian Liu, Zhang Xinshi, Zhao Xiaoxu, Di Jiangtao, Zhang Zhong, Gao Zhenfei, Zhang Jin

机构信息

School of Materials Science and Engineering, Peking University, Beijing, 100871, China.

Beijing Graphene Institute (BGI), Beijing, 100095, China.

出版信息

Adv Mater. 2024 May;36(22):e2306129. doi: 10.1002/adma.202306129. Epub 2023 Dec 10.

DOI:10.1002/adma.202306129
PMID:37533318
Abstract

Poly(p-phenylene-benzimidazole-terephthalamide) (PBIA) fibers with excellent mechanical properties are widely used in fields that require impact-resistant materials such as ballistic protection and aerospace. The introduction of heterocycles in polymer chains increases their flexibility and makes it easier to optimize the fiber structure. However, the inadequate orientation of polymer chains is one of the main reasons for the large difference between the measured and theoretical mechanical properties of PBIA fibers. Herein, carbon nanotubes (CNTs) are selected as an orientation seed. Their structural features allow CNTs to orient during the spinning process, which can induce an orderly arrangement of polymers and improve the orientation of the fiber microstructure. To ensure the complete 1D topology of long CNTs (≈10 µm), PBIA is used as an efficient dispersant to overcome dispersion challenges. The p-CNT/PBIA fibers (10 µm single-walled carbon nanotube 0.025 wt%) exhibit an increase of 22% in tensile strength and 23% in elongation, with a maximum tensile strength of 7.01 ± 0.31 GPa and a reinforcement efficiency of 893.6. The artificial muscle fabricated using CNT/PBIA fibers exhibits a 34.8% contraction and a 25% lifting of a 2 kg dumbbell, providing a promising paradigm for high-performance organic fibers as high-load smart actuators.

摘要

具有优异机械性能的聚对苯撑苯并咪唑对苯二甲酰胺(PBIA)纤维广泛应用于需要抗冲击材料的领域,如防弹防护和航空航天。在聚合物链中引入杂环会增加其柔韧性,并使纤维结构的优化更加容易。然而,聚合物链取向不足是PBIA纤维测量的机械性能与理论机械性能存在较大差异的主要原因之一。在此,选择碳纳米管(CNT)作为取向晶种。它们的结构特征使碳纳米管在纺丝过程中能够取向,这可以诱导聚合物有序排列并改善纤维微观结构的取向。为确保长碳纳米管(≈10 µm)的完整一维拓扑结构,使用PBIA作为高效分散剂来克服分散挑战。p-CNT/PBIA纤维(10 µm单壁碳纳米管0.025 wt%)的拉伸强度提高了22%,伸长率提高了23%,最大拉伸强度为7.01±0.31 GPa,增强效率为893.6。使用CNT/PBIA纤维制造的人造肌肉收缩率为34.8%,能够提起2 kg哑铃,提升高度为25%,为高性能有机纤维作为高负载智能致动器提供了一个有前景的范例。

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