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采用氧化石墨烯和聚多巴胺对玄武岩纤维填充复合材料进行界面改性以增强其力学性能和摩擦学性能。

Interfacial modification of basalt fiber filling composites with graphene oxide and polydopamine for enhanced mechanical and tribological properties.

作者信息

Wang Junjie, Zhou Shaofeng, Huang Jin, Zhao Guizhe, Liu Yaqing

机构信息

Shanxi Province Key Laboratory of Functional Nanocomposites, North University of China Taiyuan 030051 China

School of Chemistry and Chemical Engineering, Southwest University Chongqing 400715 China

出版信息

RSC Adv. 2018 Mar 29;8(22):12222-12231. doi: 10.1039/c8ra00106e. eCollection 2018 Mar 26.

Abstract

Due to the chemical inertness of the basalt fiber (BF) surface, the weaker interfacial bonding between BF and polymer matrices will seriously affect the further application of basalt fiber enhanced composites. In this study, a continuous and compact graphene oxide (GO) layer was grafted onto the surface of basalt fiber (BF) using biomimetic polydopamine (PDA) as a bridge to improve the mechanical and tribological properties of polyamide 6. The impact and flexural strength of the PA6 composites filled by the GO grafting BF (GO-PDA-BF/PA6) indicated that the introduction of GO has made a larger improvement in interface bonding performance between BF and PA6 matrix. The friction and wear tests showed the wear rate of the GO-PDA-BF/PA6 composite decreased by 51% compared with BF/PA6 composites and it also showed the best wear resistance and load-carrying capacity under various applied loads and sliding speeds, explained by the improved interface bonding between GO-PDA-BF and PA6 matrix and the anti-wear protective transfer film formed by GO in the worn surface. This study provided a considerable flexibility strategy of tailoring the interfacial compatibility between reinforcement and matrix for effectively improving the comprehensive performance of composites.

摘要

由于玄武岩纤维(BF)表面的化学惰性,BF与聚合物基体之间较弱的界面结合会严重影响玄武岩纤维增强复合材料的进一步应用。在本研究中,以仿生聚多巴胺(PDA)为桥梁,在玄武岩纤维(BF)表面接枝连续且致密的氧化石墨烯(GO)层,以改善聚酰胺6的力学和摩擦学性能。由接枝GO的BF(GO-PDA-BF/PA6)填充的PA6复合材料的冲击强度和弯曲强度表明,GO的引入对BF与PA6基体之间的界面结合性能有较大改善。摩擦磨损试验表明,与BF/PA6复合材料相比,GO-PDA-BF/PA6复合材料的磨损率降低了51%,并且在各种施加载荷和滑动速度下均表现出最佳的耐磨性和承载能力,这可归因于GO-PDA-BF与PA6基体之间改善的界面结合以及GO在磨损表面形成的抗磨保护转移膜。本研究提供了一种相当灵活的策略,用于调整增强体与基体之间的界面相容性,以有效提高复合材料的综合性能。

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