Suppr超能文献

防水、超高面电容、可穿戴超级电容器织物。

Waterproof, Ultrahigh Areal-Capacitance, Wearable Supercapacitor Fabrics.

机构信息

Laboratory for Advanced Interfacial Materials and Devices, Institute of Textiles and Clothing, The Hong Kong Polytechnic University, Hong Kong, S. A. R., China.

出版信息

Adv Mater. 2017 May;29(19). doi: 10.1002/adma.201606679. Epub 2017 Feb 24.

Abstract

High-performance supercapacitors (SCs) are promising energy storage devices to meet the pressing demand for future wearable applications. Because the surface area of a human body is limited to 2 m , the key challenge in this field is how to realize a high areal capacitance for SCs, while achieving rapid charging, good capacitive retention, flexibility, and waterproofing. To address this challenge, low-cost materials are used including multiwall carbon nanotube (MWCNT), reduced graphene oxide (RGO), and metallic textiles to fabricate composite fabric electrodes, in which MWCNT and RGO are alternatively vacuum-filtrated directly onto Ni-coated cotton fabrics. The composite fabric electrodes display typical electrical double layer capacitor behavior, and reach an ultrahigh areal capacitance up to 6.2 F cm at a high areal current density of 20 mA cm . All-solid-state fabric-type SC devices made with the composite fabric electrodes and water-repellent treatment can reach record-breaking performance of 2.7 F cm at 20 mA cm at the first charge-discharge cycle, 3.2 F cm after 10 000 charge-discharge cycles, zero capacitive decay after 10 000 bending tests, and 10 h continuous underwater operation. The SC devices are easy to assemble into tandem structures and integrate into garments by simple sewing.

摘要

高性能超级电容器 (SCs) 是有前途的储能设备,可满足未来可穿戴应用的迫切需求。由于人体表面积有限,仅为 2 平方米,因此该领域的关键挑战是如何实现 SCs 的高面电容,同时实现快速充电、良好的电容保持率、柔韧性和防水性。为了解决这一挑战,使用了低成本材料,包括多壁碳纳米管 (MWCNT)、还原氧化石墨烯 (RGO) 和金属纺织品来制造复合织物电极,其中 MWCNT 和 RGO 被交替地直接真空过滤到 Ni 涂层棉织物上。复合织物电极表现出典型的双电层电容器行为,在 20 mA cm 的高面电流密度下,可达到高达 6.2 F cm 的超高面电容。使用复合织物电极和防水处理制成的全固态织物型 SC 器件在第一次充放电循环时可达到 2.7 F cm 的创纪录性能,在 10 000 次充放电循环后达到 3.2 F cm,在 10 000 次弯曲测试后电容衰减为零,连续水下运行 10 小时。SC 器件易于组装成串联结构,并通过简单的缝纫集成到服装中。

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