Damage-tolerant, laminated structural supercapacitor composites enabled by integration of carbon nanotube fibres

Q1 Materials Science
Moumita Rana, Y. Ou, Chenchen Meng, F. Sket, C. González, J. Vilatela
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引用次数: 12

Abstract

A natural embodiment for multifunctional materials combining energy-storing capabilities and structural mechanical properties are layered structures, similar to both laminate structural composites and electrochemical energy-storage devices. A structural composite with integrated electric double layer capacitive storage is produced by resin infusion of a lay up including woven glass fabric used as mechanical reinforcement, carbon nanotube non-woven fabrics as electrodes/current collectors and a polymer electrolyte. The energy-storing layer is patterned with holes, which after integration form resin plugs for mechanical interconnection between layers, similar to rivets. Finite element modelling is used to optimise rivet shape and areal density on interlaminar shear properties. Galvanostatic charge-discharge tests during three-point bending show no degradation of properties after large deflections or repeated load/unload cycling at 3.5 V. This mechanical tolerance is a consequence of the elimination of metallic current collectors and the effective integration of multifunctional materials, as observed by electron microscopy and x-ray computed tomography. In contrast, control samples with metallic current collectors, analogous to embedded devices, rapidly degrade upon repeated bending.
通过集成碳纳米管纤维实现的耐损伤层压结构超级电容器复合材料
结合储能能力和结构机械性能的多功能材料的一个自然实施方案是层状结构,类似于层压结构复合材料和电化学储能装置。一种具有集成双电层电容存储的结构复合材料是通过对叠层的树脂注入而制备的,叠层包括用作机械增强的玻璃织物、用作电极/集电器的碳纳米管无纺布和聚合物电解质。储能层被图案化为具有孔,孔在集成后形成用于层之间机械互连的树脂塞,类似于铆钉。有限元建模用于优化铆钉形状和面密度对层间剪切性能的影响。三点弯曲过程中的恒电流充放电测试显示,在3.5V下进行大挠度或重复加载/卸载循环后,性能没有退化。如电子显微镜和x射线计算机断层扫描所观察到的,这种机械公差是消除金属集电器和有效集成多功能材料的结果。相反,具有金属集电器的对照样品,类似于嵌入式器件,在重复弯曲时会迅速降解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Multifunctional Materials
Multifunctional Materials Materials Science-Materials Science (miscellaneous)
CiteScore
12.80
自引率
0.00%
发文量
9
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