材料科学
超级电容器
储能
功率密度
电容
乙烯醇
纳米技术
电容器
可靠性(半导体)
纤维
复合材料
能量密度
灵活性(工程)
功率(物理)
电气工程
电极
聚合物
工程物理
工程类
电压
物理化学
化学
物理
统计
量子力学
数学
作者
Tong Ni,Siliang Wang,Junjie Shi,Xiaoyu Du,Qinghua Cheng,Ziyan Dong,Limin Ruan,Wei Zeng,Xiaohui Guo,Xingang Ren,Zhixiang Huang
标识
DOI:10.1002/admt.202000268
摘要
Abstract As the flexible wearable devices are developing rapidly, the requirement for energy storage devices with high energy and power density, excellent flexibility, and high reliability is increasing. Fiber‐shaped supercapacitors offering high power density and excellent flexibility have attracted widespread attention. However, the low energy density and poor reliability limit the practical application of these fiber‐shaped supercapacitors. To overcome these problems, a new zinc‐ion hybrid fiber supercapacitor (ZHFSC) is designed and realized. As both capacitor‐type and battery‐type energy storage mechanisms can be used, the energy density of ZHFSC is expected to be improved. Furthermore, the excellent self‐healability of poly(vinyl alcohol) (PVA)/Zn(CF 3 SO 3 ) 2 aqueous gel electrolyte contributes to the high reliability of the ZHFSC. As a proof of concept, the maximum power density and energy density of the ZHFSC are, respectively, as high as 1433.2 mW cm −3 and 13.1 mWh cm −3 , and the capacitance retention, respectively, has the high values of 87.8% and 70.5% under the bending degree of 150° and after the fifth self‐healing. This study offers an efficient method to realize the high‐performance supercapacitors for flexible wearable devices in the future.
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