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Enhanced Surface Energetics of CNT-Grafted Carbon Fibers for Superior Electrical and Mechanical Properties in CFRPs

机译:碳纳米管接枝的碳纤维增强的表面能在CFRP中具有出色的电气和机械性能

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摘要

Surface enhancement of components is vital for achieving superior properties in a composite system. In this study, carbon nanotubes (CNTs) were grown on carbon fiber (CF) substrates to improve the surface area and, in turn, increase the adhesion between epoxy-resin and CFs. Nickel (Ni) was used as the catalyst in CNT growth, and was coated on CF sheets via the electroplating method. Surface energetics of CNT-grown CFs and their work of adhesion with epoxy resin were measured. SEM and TEM were used to analyze the morphology of the samples. After the optimization of surface energetics by catalyst weight ratio (15 wt.% Ni), CF-reinforced plastic (CFRP) samples were prepared using the hand lay-up method. To validate the effect of chemical vapor deposition (CVD)-grown CNTs on CFRP properties, samples were also prepared where CNT powder was added to epoxy prior to reinforcement with Ni-coated CFs. CFRP specimens were tested to determine their electrical resistivity, flexural strength, and ductility index. The electrical resistivity of CNT-grown CFRP was found to be about 9 and 2.3 times lower than those of as-received CFRP and CNT-added Ni-CFRP, respectively. Flexural strength of CNT-grown Ni-CFRP was enhanced by 52.9% of that of as-received CFRP. Interestingly, the ductility index in CNT-grown Ni-CFRP was 40% lower than that of CNT-added Ni-CFRP. This was attributed to the tip-growth formation of CNTs and the breakage of Ni coating.
机译:组件的表面增强对于在复合系统中实现卓越的性能至关重要。在这项研究中,碳纳米管(CNTs)生长在碳纤维(CF)基底上,以改善表面积,进而增加环氧树脂和CFs之间的附着力。镍(Ni)被用作CNT生长的催化剂,并通过电镀方法涂覆在CF板上。测量了CNT生长的CF的表面能,以及它们与环氧树脂的粘合作用。 SEM和TEM用于分析样品的形态。在通过催化剂重量比(Ni的15 wt。%)优化了表面能学之后,使用手工铺层法制备了CF增强塑料(CFRP)样品。为了验证化学气相沉积(CVD)生长的CNT对CFRP性能的影响,还准备了样品,其中先将CNT粉添加到环氧树脂中,然后再用镀镍的CF增强。测试CFRP样品以确定其电阻率,抗弯强度和延展性指数。发现CNT生长的CFRP的电阻率分别比接收的CFRP和添加CNT的Ni-CFRP的电阻率分别低约9倍和2.3倍。碳纳米管生长的Ni-CFRP的抗弯强度比原先的CFRP增强了52.9%。有趣的是,CNT生长的Ni-CFRP的延展性指数比添加CNT的Ni-CFRP的延展性指数低40%。这归因于CNT的尖端生长形成和Ni涂层的破裂。

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