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多功能结构储能复合超级电容器

Multifunctional structural energy storage composite supercapacitors.

作者信息

Shirshova Natasha, Qian Hui, Houllé Matthieu, Steinke Joachim H G, Kucernak Anthony R J, Fontana Quentin P V, Greenhalgh Emile S, Bismarck Alexander, Shaffer Milo S P

机构信息

The Composites Centre, Imperial College London, South Kensington Campus, London, SW7 2AZ, UK.

出版信息

Faraday Discuss. 2014;172:81-103. doi: 10.1039/c4fd00055b.

Abstract

This paper addresses the challenge of producing multifunctional composites that can simultaneously carry mechanical loads whilst storing (and delivering) electrical energy. The embodiment is a structural supercapacitor built around laminated structural carbon fibre (CF) fabrics. Each cell consists of two modified structural CF fabric electrodes, separated by a structural glass fibre fabric or polymer membrane, infused with a multifunctional polymeric electrolyte. Rather than using conventional activated carbon fibres, structural carbon fibres were treated to produce a mechanically robust, high surface area material, using a variety of methods, including direct etching, carbon nanotube sizing, and carbon nanotube in situ growth. One of the most promising approaches is to integrate a porous bicontinuous monolithic carbon aerogel (CAG) throughout the matrix. This nanostructured matrix both provides a dramatic increase in active surface area of the electrodes, and has the potential to address mechanical issues associated with matrix-dominated failures. The effect of the initial reaction mixture composition is assessed for both the CAG modified carbon fibre electrodes and resulting devices. A low temperature CAG modification of carbon fibres was evaluated using poly(3,4-ethylenedioxythiophene) (PEDOT) to enhance the electrochemical performance. For the multifunctional structural electrolyte, simple crosslinked gels have been replaced with bicontinuous structural epoxy-ionic liquid hybrids that offer a much better balance between the conflicting demands of rigidity and molecular motion. The formation of both aerogel precursors and the multifunctional electrolyte are described, including the influence of key components, and the defining characteristics of the products. Working structural supercapacitor composite prototypes have been produced and characterised electrochemically. The effect of introducing the necessary multifunctional resin on the mechanical properties has also been assessed. Larger scale demonstrators have been produced including a full size car boot/trunk lid.

摘要

本文探讨了生产多功能复合材料的挑战,这种复合材料能够在储存(和输送)电能的同时承受机械载荷。具体实例是一种围绕层压结构碳纤维(CF)织物构建的结构超级电容器。每个电池单元由两个改性结构CF织物电极组成,电极之间由结构玻璃纤维织物或聚合物膜隔开,并注入多功能聚合物电解质。与使用传统活性炭纤维不同,结构碳纤维经过处理,采用多种方法,包括直接蚀刻、碳纳米管上浆和碳纳米管原位生长,以生产出机械性能稳健、高表面积的材料。最有前景的方法之一是在整个基体中集成多孔双连续整体碳气凝胶(CAG)。这种纳米结构基体既能显著增加电极的活性表面积,又有潜力解决与基体主导失效相关的机械问题。对CAG改性碳纤维电极和所得器件评估了初始反应混合物组成的影响。使用聚(3,4 - 乙撑二氧噻吩)(PEDOT)对碳纤维进行低温CAG改性,以提高电化学性能。对于多功能结构电解质,简单的交联凝胶已被双连续结构环氧 - 离子液体混合物取代,后者在刚性和分子运动这两个相互冲突的要求之间提供了更好的平衡。描述了气凝胶前驱体和多功能电解质的形成,包括关键成分的影响以及产物的定义特征。已经制备出工作的结构超级电容器复合原型,并进行了电化学表征。还评估了引入必要的多功能树脂对机械性能的影响。已经制造出更大规模的演示模型,包括一个全尺寸的汽车后备箱盖。

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