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对称聚吡咯-二氧化锰电极与聚合物凝胶电解质的增强赝电容性能

Enhanced Pseudocapacitive Performance of Symmetric Polypyrrole-MnO Electrode and Polymer Gel Electrolyte.

作者信息

Zhuo Wen-Jun, Wang Yen-Hua, Huang Chia-Tse, Deng Ming-Jay

机构信息

Department of Applied Chemistry, Providence University, Taichung City 43301, Taiwan.

出版信息

Polymers (Basel). 2021 Oct 16;13(20):3577. doi: 10.3390/polym13203577.

Abstract

Herein, the nanostructured polypyrrole-coated MnO nanofibers growth on carbon cloth (PPy-MnO-CC) to serve as the electrodes used in conjunction with a quasi-ionic liquid-based polymer gel electrolyte (urea-LiClO-PVA) for solid-state symmetric supercapacitors (SSCs). The resultant PPy-MnO-CC solid-state SSCs exhibited a high specific capacitance of 270 F/g at 1.0 A/g in a stable and wide potential window of 2.1 V with a high energy/power density (165.3 Wh/kg at 1.0 kW/kg and 21.0 kW/kg at 86.4 Wh/kg) along with great cycling stability (capacitance retention of 92.1% retention after 3000 cycles) and rate capability (141 F/g at 20 A/g), exceeding most of the previously reported SSCs. The outstanding performance of the studied 2.1 V PPy-MnO-CC flexible SSCs could be attributed to the nanostructured PPy-coated MnO composite electrode and the urea-LiClO-PVA polymer gel electrolyte design. In addition, the PPy-MnO-CC solid-state SSCs could effectively retain their electrochemical performance at various bending angles, demonstrating their huge potential as power sources for flexible and lightweight electronic devices. This work offers an easy way to design and achieve light weight and high-performance SSCs with enhanced energy/power density.

摘要

在此,在碳布(PPy-MnO-CC)上生长的纳米结构聚吡咯包覆的MnO纳米纤维用作与基于准离子液体的聚合物凝胶电解质(尿素-LiClO-PVA)结合使用的电极,用于固态对称超级电容器(SSC)。所得的PPy-MnO-CC固态SSC在1.0 A/g电流密度下,于2.1 V的稳定且宽电位窗口中展现出270 F/g的高比电容,具有高能量/功率密度(在1.0 kW/kg时为165.3 Wh/kg,在86.4 Wh/kg时为21.0 kW/kg),同时具有出色的循环稳定性(3000次循环后电容保持率为92.1%)和倍率性能(在20 A/g时为141 F/g),超过了大多数先前报道的SSC。所研究的2.1 V PPy-MnO-CC柔性SSC的优异性能可归因于纳米结构的聚吡咯包覆MnO复合电极和尿素-LiClO-PVA聚合物凝胶电解质设计。此外,PPy-MnO-CC固态SSC在各种弯曲角度下都能有效保持其电化学性能,展示了其作为柔性和轻质电子设备电源的巨大潜力。这项工作提供了一种简便的方法来设计和实现具有增强能量/功率密度的轻质高性能SSC。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/aecc/8539299/72c0dfc2a6b5/polymers-13-03577-g001.jpg

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