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Viscoelastic response of high volume fraction carbon nanotube-polymer nanocomposites with tailored wettability and controlled morphology

机译:具有定制的润湿性和可控形态的高体积分数碳纳米管-聚合物纳米复合材料的粘弹性响应

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As-grown VACNTs are subjected to mechanical densification by knock-down process to achieve higher volume fractions. In here, the preferential alignment of CNTs is preserved horizontally and an easy delamination of VACNTs are achieved to fabricate high volume fraction nanocomposites. Both physical and chemical properties of VACNTs such as alignment, quality, and purity etc. have been characterized by Raman spectroscopy, TGA, and SEM. The knocked-down VACNTs arrays are then used as 'reinforcing ply' with epoxy for PNCs fabrication. Since load transfer in between CNTs and epoxy is important to avoid interfacial slippage and reduction in loss factor, to increase interaction between CNTs and epoxy, ozone treatment was applied to CNTs. To observe the effect of ozone treatment on the viscoelastic response of polymer nanocomposites with non-ozone treated and ozone treated VACNT were tested by DMA under different frequencies. The ozone treatment time and CNT quality, investigated through Raman Spectroscopy, were correlated for viscoelastic properties. The results demonstrated that ozone treatment improved wettability and increased viscoelastic properties of PNCs under mull-frequency for short-term ( 60 s) but resulted in a decrease in storage modulus when applied for in longer durations.
机译:成长中的VACNT通过组合式工艺进行机械致密化,以达到更高的体积分数。在此,水平保留了CNT的优先排列,并且实现了VACNT的轻松分层,从而制造了高体积分数的纳米复合材料。 VACNTs的物理和化学性质(如排列,质量和纯度等)已通过拉曼光谱,TGA和SEM进行了表征。然后将拆下的VACNTs阵列用作环氧树脂的“补强层”,用于PNC的制造。由于CNT与环氧树脂之间的负载转移对于避免界面滑移和损耗因子的降低,增加CNT与环氧树脂之间的相互作用非常重要,因此对CNT进行了臭氧处理。为了观察臭氧处理对具有未臭氧处理和臭氧处理的VACNT的聚合物纳米复合材料的粘弹性响应的影响,在不同频率下通过DMA测试了DMA。通过拉曼光谱法研究的臭氧处理时间和CNT质量与粘弹性相关。结果表明,臭氧处理改善了短时间(<60 s)下短波频率下PNC的润湿性并增加了其粘弹性,但长期使用后导致储能模量降低。

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