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芳纶纤维表面多巴胺/聚乙烯亚胺/氨基化碳纳米管多层膜的构建及其对芳纶纤维/环氧树脂复合材料力学性能影响的研究

Study on the Construction of Dopamine/Poly(ethyleneimine)/Aminoated Carbon Nanotube Multilayer Films on Aramid Fiber Surfaces to Improve the Mechanical Properties of Aramid Fibers/Epoxy Composites.

作者信息

Xu Ting, Tian Jin, An Lizhou, Jiao Yumin, Yin Qin, Tan Yefa

机构信息

College of Field Engineering, Army Engineering University of PLA, Nanjing210007, Jiangsu, China.

Unit 94789 of PLA, Nanjing210018, Jiangsu, China.

出版信息

ACS Omega. 2022 Sep 29;7(40):35610-35625. doi: 10.1021/acsomega.2c03390. eCollection 2022 Oct 11.

Abstract

To improve the mechanical properties of aramid fiber (AF) reinforced epoxy resin (EP) composites without damaging the strength of the AF body, in this paper, poly(ethyleneimine) (PEI) and aminoated carbon nanotubes (NH-CNTs) were successfully deposited on the AF surface layer by layer using poly(dopamine) (PDA) as the initial layer. The modified aramid fibers PDA-AF, PEI-PDA-AF, and NH-CNTs-PEI-PDA-AF were prepared. The microstructure and chemical composition of the AF surface at different modification stages were systematically characterized. The interfacial properties, mechanical properties, and strengthening mechanism of AF surface-modified composites were studied. The results showed that with the successful deposition of PDA, PEI, and NH-CNTs layer by layer, the interfacial properties and mechanical properties of the composites gradually improved. Among them, NH-CNTs-PEI-PDA-AF showed the best strengthening effect. Compared with the unmodified aramid fiber (R-AF), the monofilament tensile strength of NH-CNTs-PEI-PDA-AF increased by 8.1%, the contact angle with EP decreased by 21.9%, and the interface energy and adhesion energy increased by 115 and 21.4%, respectively. Compared with R-AF/EP, the interlaminar shear strength (ILSS), bending strength, and tensile strength of NH-CNTs-PEI-PDA-AF/EP were increased by 75, 44.5, and 14.9%, respectively. The significant improvement of the interface properties and mechanical properties between NH-CNTs-PEI-PDA-AF and EP can be attributed to the introduction of a large number of amino active groups in the NH-CNTs-PEI-PDA coating layer on the AF surface, which strengthens the chemical-bond cooperation between the AF and EP matrix. At the same time, a large number of NH-CNTs deposited on the surface effectively increased the surface roughness of AF, improved the mechanical meshing between the AF and EP matrix, and then improved the contact angle, surface energy, and interface bonding strength between the AF and EP matrix. Moreover, a large number of NH-CNTs on the surface of AF also modified and enhanced the EP in the interface region, which could make the load more effectively transfer from the resin to the fiber, so that AF could carry the load more uniformly, significantly improving the mechanical properties of NH-CNTs-PEI-PDA-AF/EP.

摘要

为了在不损害芳纶纤维(AF)本体强度的情况下提高芳纶纤维增强环氧树脂(EP)复合材料的力学性能,本文以聚多巴胺(PDA)为初始层,通过层层组装的方法将聚乙烯亚胺(PEI)和氨基化碳纳米管(NH-CNTs)成功沉积在AF表面层。制备了改性芳纶纤维PDA-AF、PEI-PDA-AF和NH-CNTs-PEI-PDA-AF。系统地表征了不同改性阶段AF表面的微观结构和化学成分。研究了AF表面改性复合材料的界面性能、力学性能及增强机理。结果表明,随着PDA、PEI和NH-CNTs的逐层成功沉积,复合材料的界面性能和力学性能逐渐提高。其中,NH-CNTs-PEI-PDA-AF的增强效果最佳。与未改性芳纶纤维(R-AF)相比,NH-CNTs-PEI-PDA-AF的单丝拉伸强度提高了8.1%,与EP的接触角减小了21.9%,界面能和粘附能分别提高了115%和21.4%。与R-AF/EP相比,NH-CNTs-PEI-PDA-AF/EP的层间剪切强度(ILSS)、弯曲强度和拉伸强度分别提高了75%、44.5%和14.9%。NH-CNTs-PEI-PDA-AF与EP之间界面性能和力学性能的显著提高可归因于AF表面NH-CNTs-PEI-PDA涂层中引入了大量氨基活性基团,增强了AF与EP基体之间的化学键合作用。同时,大量沉积在表面的NH-CNTs有效地增加了AF的表面粗糙度,改善了AF与EP基体之间的机械啮合,进而提高了AF与EP基体之间的接触角、表面能和界面结合强度。此外,AF表面大量的NH-CNTs还对界面区域的EP进行了改性和增强,使载荷能更有效地从树脂传递到纤维上,从而使AF能更均匀地承载载荷,显著提高了NH-CNTs-PEI-PDA-AF/EP的力学性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7974/9558715/ff01f4e20ab4/ao2c03390_0002.jpg

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