首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >Grafting carbon nanotubes directly onto carbon fibers for superior mechanical stability: Towards next generation aerospace composites and energy storage applications
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Grafting carbon nanotubes directly onto carbon fibers for superior mechanical stability: Towards next generation aerospace composites and energy storage applications

机译:将碳纳米管直接接枝到碳纤维上以实现卓越的机械稳定性:面向下一代航空航天复合材料和储能应用

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A novel chemical method was developed to graft carbon nanotubes (CNTs) onto carbon fiber (CF) by direct covalent bonding to form a CNT-CF hierarchical reinforcing structure. The grafting via ester linkage (formed at a low temperature of 70 degrees C without using any contaminating catalyst or coupling agent) was evidenced by SEM, FTIR, RAMAN, XPS and XRD spectroscopy. The CNT failure stress obtained from in situ SEM pulling out experiments varied from 25 to 31 GPa, depending on the grafting reaction conditions. CNT fracture was the only breaking mechanism observed from the pulling out experiments indicating an existence of a strong carbon carbon covalent bonding at the CNT CF interface and the real grafting strength was actually higher than the measured failure stress. This high grafting strength can significantly increase the interfacial and impact properties desirable in next generation advanced aerospace composite structures. Further, the CNT attachments on CF led to increased electrochemical capacitance properties by rapid ion diffusion through active CNT sites and defects created during grafting. The fibrous film of CNT CF exhibits a specific capacitance that is 3.5 times greater than that of CF, indicating substantial promise as a material for fabricating textile supercapacitors with superior strength, flexibility and performance. (C) 2015 Elsevier Ltd. All rights reserved.
机译:开发了一种新的化学方法,通过直接共价键合将碳纳米管(CNT)接枝到碳纤维(CF)上以形成CNT-CF分层增强结构。通过酯键(在不使用任何污染性催化剂或偶联剂的情况下在70℃的低温下形成)的接枝通过SEM,FTIR,RAMAN,XPS和XRD光谱证明。根据接枝反应条件,通过原位SEM拔出实验获得的CNT破坏应力为25至31 GPa。 CNT断裂是从拉拔实验中观察到的唯一断裂机制,表明CNT CF界面处存在强碳碳共价键,实际接枝强度实际上高于测得的破坏​​应力。这种高的接枝强度可以显着提高下一代先进航空复合材料结构所需的界面和冲击性能。此外,通过快速的离子扩散穿过活性CNT位点和接枝过程中产生的缺陷,CF上的CNT附着物导致电化学电容性能增强。 CNT CF的纤维膜显示出的比电容是CF的3.5倍,这表明它有望作为具有卓越强度,柔韧性和性能的纺织超级电容器的制造材料。 (C)2015 Elsevier Ltd.保留所有权利。

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