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用于制备具有优异机械性能和热导率的高性能聚酰胺6复合材料的共价键合氧化石墨烯-碳纳米管混合纳米填料。

Covalently bonded graphene oxide-carbon nanotube hybrid nanofillers for achieving high-performance polyamide 6 composites with superior mechanical properties and thermal conductivity.

作者信息

Liu Guanjun, Liu Yan, Zhang Meng, Zhao Danyang, Liu Ping, Wang Lu, Li Lizhi, Yan Meiling

机构信息

College of Chemical Engineering and Materials, Shandong University of Aeronautics, Binzhou, 256600, P. R. China.

Department of Geology and Surveying and Mapping, Shanxi Institute of Energy, Jinzhong, 030600, P. R. China.

出版信息

Nanoscale. 2025 Aug 7;17(31):18127-18142. doi: 10.1039/d5nr02405f.

DOI:10.1039/d5nr02405f
PMID:40698435
Abstract

The rise of hydrogen energy places stringent demands on the mechanical strength and thermal conductivity of polyamide 6 (PA6) liners used in hydrogen storage tanks. However, the presence of weak interfaces in PA6 composites significantly hinders the efficient transfer of the intrinsic mechanical and thermal conductivity properties of the reinforcing phases. In this work, hydroxyl-functionalized carbon nanotubes (CNT-OH) were covalently grafted onto graphene oxide (GO) to construct a hybrid nanofiller, which was subsequently surface-functionalized with hexamethylene diisocyanate (HDI), yielding a reactive nanofiller (fGO + CNT-OH + HDI) rich in isocyanate groups. This functionalized nanofiller served as an activator during the anionic ring-opening polymerization of ε-caprolactam, enabling the fabrication of PA6 composites with strengthened nanofiller/nanofiller and nanofiller/matrix interfacial interactions. Owing to the synergistic reinforcement from the hybrid nanofiller and its uniform dispersion driven by polymerization, the resulting composite containing only 0.2 wt% fGO + CNT-OH + HDI exhibited outstanding mechanical performance, with a 36.3% increase in tensile strength and an exceptional elongation at break of 130.86%. In addition, the thermal conductivity was improved by 46.3%. This interfacial engineering strategy provides a promising pathway toward the development of high-performance liner materials for reliable and safe hydrogen energy applications.

摘要

氢能的兴起对储氢罐中使用的聚酰胺6(PA6)内衬的机械强度和热导率提出了严格要求。然而,PA6复合材料中弱界面的存在显著阻碍了增强相固有机械性能和热导率的有效传递。在这项工作中,将羟基官能化的碳纳米管(CNT-OH)共价接枝到氧化石墨烯(GO)上,构建一种混合纳米填料,随后用六亚甲基二异氰酸酯(HDI)对其进行表面官能化,得到富含异氰酸酯基团的反应性纳米填料(fGO + CNT-OH + HDI)。这种功能化纳米填料在ε-己内酰胺的阴离子开环聚合过程中充当活化剂,能够制备出纳米填料/纳米填料和纳米填料/基体界面相互作用增强的PA6复合材料。由于混合纳米填料的协同增强作用及其在聚合作用下的均匀分散,所得仅含有0.2 wt% fGO + CNT-OH + HDI的复合材料表现出优异的机械性能,拉伸强度提高了36.3%,断裂伸长率高达130.86%。此外,热导率提高了46.3%。这种界面工程策略为开发用于可靠且安全的氢能应用的高性能内衬材料提供了一条有前景的途径。

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