Molecularly Stacking Manganese Dioxide/Titanium Carbide Sheets to Produce Highly Flexible and Conductive Film Electrodes with Improved Pseudocapacitive Performances

材料科学 超级电容器 堆积 电极 石墨烯 假电容器 纳米复合材料 电化学 纳米技术 核磁共振 物理 物理化学 化学
作者
Weihong Liu,Zhiqiang Wang,Yanli Su,Qingwen Li,Zhigang Zhao,Fengxia Geng
出处
期刊:Advanced Energy Materials [Wiley]
卷期号:7 (22) 被引量:156
标识
DOI:10.1002/aenm.201602834
摘要

Abstract 2D nanostructures with high surface area and flexibility are regarded as a promising building platform for flexible supercapacitors that are attracting tremendous attention due to their potential applications in various wearable technologies. Notably, although pseudocapacitive metal oxides are widely accepted as a very important class of electrochemically active materials, the utilization of 2D metal oxide sheets in the preparation of flexible supercapacitors is very rare. The scarcity of a suitable filler with the integrated properties of both high conductivity and excellent hydrophilicity is probably to blame. In this work, by introducing a recently discovered intriguing material, Ti 3 C 2 sheets, a novel MnO 2 /Ti 3 C 2 hybrid with a molecularly stacked structure is developed using a simple and scalable mixing and filtration method. Their individual advantages are combined in the hybrid, thus delivering excellent electrochemical performances. A highly flexible and symmetric supercapacitor based on the novel hybrid electrode manifests top‐class electrochemical performance with maximum energy and power densities of 8.3 W h kg −1 (at 221.33 W kg −1 ) and 2376 W kg −1 (at 3.3 W h kg −1 ), respectively, regardless of the various bending states, suggesting enormous possibilities for applications in future flexible and portable micropower systems.
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