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Covalent functionalization of aramid fibers with zinc oxide nano-interphase for improved UV resistance and interfacial strength in composites

机译:芳族聚酰胺纤维与氧化锌纳米界面共价官能化,可改善复合材料的抗紫外线性和界面强度

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Improving the resistances of organic high-performance fibers to harsh environments and enhancing the interfacial interactions of fiber-reinforced composites have become crucial in various applications. In this report, ZnO nanoparticles (NPs) and ZnO nanowires (NWs) were successfully "grown" on the surfaces of aramid fibers (AFs) by grafting with gamma-aminopropyl triethoxysilane (KH550) followed by the growth of nano-ZnO. The surface functionalized AFs exhibited improved UV-resistances. After 168 h of ultraviolet exposure, the tensile retention rates of the ZnO-NP- and ZnO-NW-grafted AFs reached 95.6% and 97.7%, respectively, which were significantly higher than the value of 79.1% of the bare fiber. Meanwhile, the introduction of the KH500 and ZnO formed a nano-interphase, enhancing the interfacial strength of the fiber-reinforced epoxy resin composites. The interfacial shear strengths (IFSSs) of the composites with AF-g-ZnO NPs and AF-g-ZnO NWs were 42.9 and 47.8 MPa, respectively, whereas that of bare AF-reinforced epoxy resin was only 31.2 MPa. Nano-ZnO was physically deposited on the AF surfaces without KH550. The IFSS was 36.4 MPa for the AF-ZnO NP and 38.8 MPa for the AF-ZnO NW, which were lower than those of the grafted composites. Therefore, the chemical grafting nano-ZnO on high-performance fibers provides a new strategy for improving the UV-resistances of advanced fibers and to enhance the mechanical properties of fiber-reinforced composites.
机译:在各种应用中,提高有机高性能纤维对恶劣环境的抵抗力并增强纤维增强复合材料的界面相互作用已变得至关重要。在此报告中,通过将γ-氨基丙基三乙氧基硅烷(KH550)接枝,然后生长纳米ZnO,成功地在芳族聚酰胺纤维(AF)的表面上“生长”了ZnO纳米颗粒(NPs)和ZnO纳米线(NWs)。经表面官能化的AF表现出更高的抗紫外线性能。紫外线暴露168 h后,ZnO-NP-和ZnO-NW接枝的AF的拉伸保留率分别达到95.6%和97.7%,显着高于裸纤维的79.1%。同时,KH500和ZnO的引入形成了纳米界面,增强了纤维增强环氧树脂复合材料的界面强度。 AF-g-ZnO NPs和AF-g-ZnO NWs的复合材料的界面剪切强度(IFSSs)分别为42.9 MPa和47.8 MPa,而裸露的AF增强环氧树脂的复合材料的界面剪切强度仅为31.2 MPa。在没有KH550的情况下,纳米ZnO物理沉积在AF表面上。 AF-ZnO NP的IFSS为36.4 MPa,AF-ZnO NW的IFSS为38.8 MPa,低于接枝复合材料的IFSS。因此,在高性能纤维上化学接枝纳米ZnO为改善高级纤维的抗紫外线性和增强纤维增强复合材料的机械性能提供了新的策略。

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  • 来源
    《Composites Science and Technology》 |2020年第1期|107996.1-107996.8|共8页
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    Donghua Univ Coll Mat Sci & Engn State Key Lab Modificat Chem Fibers & Polymer Mat Shanghai 201620 Peoples R China;

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