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Hybrid ZnO Nanorod Grafted Carbon Fiber Reinforced Polymer Composites; Randomly versus Radially Aligned Long ZnO Nanorods Growth

机译:杂交ZnO纳米棒接枝碳纤维增强聚合物复合材料; 随机与径向对齐的长ZnO纳米棒生长

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Integrating nano-sized reinforcing materials into carbon fiber polymer composites (CFRPs) could enhance several aspects of their mechanical performance; e.g., interfacial strength, delamination resistance and vibrations attenuation. In this study, ZnO nanorods were grown on the surface of carbon fibers to create hybrid reinforcements. The hydrothermal synthesis of ZnO nanorods was tuned such that relatively long ( 2.0 mu m) nanorods can be grown. This synthesis technique requires pre-deposition of a thin seeding layer of ZnO particulates on the carbon fibers to initiate the ZnO nanorods growth. Depending on the method by which the seeding layer is deposited, the grown ZnO nanorods could display different morphologies. In this study, two different techniques were utilized to pre-deposit the ZnO seeding layer on the carbon fibers; ZnO nanoparticles/solution mixture airbrush spraying, and magnetron sputtering. The carbon fibers pre-coated with the airbrush spraying method yielded forests of randomly oriented ZnO nanorods, while the fibers pre-coated via the sputtering technique exhibited radially aligned ZnO nanorods forests. Hybrid CFRPs were fabricated based on the aforementioned carbon fiber fabrics and tested via 3-point bending dynamic mechanical analysis (DMA) and quasi-static tension tests. The loss tangent of the CFRPs, which delineates the damping capability, increased by 28% and 19% via radially and randomly grown ZnO nanorods, respectively. The in-plane tensile strength of the hybrid CFRPs were improved by 18% for the composites based on randomly oriented ZnO nanorods over the carbon fibers. The fractographs of the tension samples were also captured to reveal the role of the long ZnO nanorods in the in-plane performance of the hybrid CFRPs.
机译:将纳米大小的钢筋物质整合到碳纤维聚合物复合材料中(CFRP)可以提高其机械性能的几个方面;例如,界面强度,分层抗性和振动衰减。在该研究中,ZnO纳米棒在碳纤维表面上生长以产生杂化增强剂。调节ZnO纳米棒的水热合成,使得可以生长相对长(&2.0μm)纳米棒。该合成技术需要在碳纤维上预沉积ZnO颗粒的薄播种层以引发ZnO纳米杆的生长。取决于沉积播种层的方法,生长的ZnO纳米棒可以显示不同的形态。在这项研究中,利用两种不同的技术在碳纤维上预沉积ZnO播种层; ZnO纳米粒子/溶液混合物喷枪喷涂,并磁控溅射。预涂有喷枪喷涂方法的碳纤维产生了随机取向的ZnO纳米棒的森林,而通过溅射技术预涂覆的纤维表现出径向对齐的ZnO纳米杆森林。基于上述碳纤维织物制造杂化CFRP,并通过3点弯曲动态机械分析(DMA)和准静态张力试验测试。 CFRPS的损耗正态分别通过径向和随机生长的ZnO纳米棒分别划分阻尼能力,增加了28%和19%。基于碳纤维上随机取向的ZnO纳米棒的复合材料,杂合CFRP的面内拉伸强度提高了18%。还捕获张力样品的特征以揭示长ZnO纳米棒在杂交CFRP的面内性能中的作用。

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