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Effects of Carbon Nanotube Dispersion Methods on the Radar Absorbing Properties of MWCNT/Epoxy Nanocomposites

机译:碳纳米管分散方法对MWCNT /环氧纳米复合材料雷达吸收性能的影响

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摘要

Radar absorbing materials (RAMs) for practical applications are expected not only to have strong microwave absorption and a wide absorption bandwidth, but also to be lightweight, to have a fine thickness and acceptable structural performance, as well as being cost-effective. Although the dispersion of carbon-nanofillers in polymer matrices is a key factor determining the microwave absorbing properties of the composites, there have few studies on these effects. To our knowledge, to date, the realization of pristine multi-walled carbon nanotube (MWCNT)/polymer composites as RAMs in industrial production has been restricted, due to high CNT contents or large composite thicknesses. Thus, in this work, two MWCNT dispersion processing methods, a solution process with surfactant-aid and a ball-milling dispersion, were investigated to fabricate pristine MWCNT/epoxy nanocomposites. The effects of the different dispersion processes, CNT loading, and composite thickness on CNT dispersion in the matrix, were observed by TEM, and the electrical conductivity and X-band absorbing performance of the composites were assessed. The use of an ionic surfactant to aid the dispersion of CNTs in solution resulted in the best RAMs, with a good compromise among effective X-band absorption, small composite thickness, and very low CNT content. The ball-milling method also resulted in materials with a low CNT content and microwave absorbing performance acceptable for industrial applications. Moreover, it offers a very simple and efficient route suitable for low-cost, mass production of RAMs. The results showed that by facile approaches of dispersing pristine commercial MWCNTs in an epoxy resin matrix, composites of only 2-3 mm thickness and as little as 0.25-0.5 wt% CNT loading could be obtained, with a relatively wide X-band operating bandwidth and maximum absorptions exceeding 18-25 dB.
机译:期望用于实际应用的雷达吸收材料(RAM)不仅具有强的微波吸收能力和宽的吸收带宽,而且期望其重量轻,具有薄的厚度和可接受的结构性能,并且具有成本效益。尽管碳纳米粉在聚合物基体中的分散是决定复合材料微波吸收特性的关键因素,但对这些影响的研究很少。据我们所知,迄今为止,由于高CNT含量或较大的复合材料厚度,在工业生产中将原始的多壁碳纳米管(MWCNT)/聚合物复合材料作为RAM的实现受到了限制。因此,在这项工作中,研究了两种MWCNT分散处理方法,即使用表面活性剂辅助的溶液处理和球磨分散液,以制备原始的MWCNT /环氧纳米复合材料。通过透射电镜观察了不同分散工艺,CNT的负载量和复合材料的厚度对CNT在基体中分散的影响,并评估了复合材料的电导率和X波段吸收性能。离子表面活性剂的使用有助于溶液中CNT的分散,从而获得了最佳的RAM,在有效X波段吸收,小的复合材料厚度和非常低的CNT含量之间取得了很好的折衷。球磨法还产生了具有低CNT含量和工业应用可接受的微波吸收性能的材料。此外,它提供了一种非常简单有效的途径,适用于低成本,大量生产的RAM。结果表明,通过将原始的商用多壁碳纳米管分散在环氧树脂基体中的简便方法,可以得到厚度仅为2-3 mm且碳纳米管负载量仅为0.25-0.5 wt%的复合材料,并且具有相对较宽的X波段工作带宽最大吸收超过18-25 dB。

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