| Literature DB >> 25961131 |
Ping Xu1,2, Bingqing Wei2, Zeyuan Cao2, Jie Zheng3, Ke Gong3, Faxue Li1, Jianyong Yu1, Qingwen Li4, Weibang Lu4, Joon-Hyung Byun5, Byung-Sun Kim5, Yushan Yan3, Tsu-Wei Chou2.
Abstract
While the emerging wire-shaped supercapacitors (WSS) have been demonstrated as promising energy storage devices to be implemented in smart textiles, challenges in achieving the combination of both high mechanical stretchability and excellent electrochemical performance still exist. Here, an asymmetric configuration is applied to the WSS, extending the potential window from 0.8 to 1.5 V, achieving tripled energy density and doubled power density compared to its asymmetric counterpart while accomplishing stretchability of up to 100% through the prestrainning-then-buckling approach. The stretchable asymmetric WSS constituted of MnO2/CNT hybrid fiber positive electrode, aerogel CNT fiber negative electrode and KOH-PVA electrolyte possesses a high specific capacitance of around 157.53 μF cm(-1) at 50 mV s(-1) and a high energy density varying from 17.26 to 46.59 nWh cm(-1) with the corresponding power density changing from 7.63 to 61.55 μW cm(-1). Remarkably, a cyclic tensile strain of up to 100% exerts negligible effects on the electrochemical performance of the stretchable asymmetric WSS. Moreover, after 10,000 galvanostatic charge-discharge cycles, the specific capacitance retains over 99%, demonstrating a long cyclic stability.Entities:
Keywords: asymmetric configuration; carbon nanotube fibers; manganese oxides; stretchability; wire-shaped supercapacitors
Year: 2015 PMID: 25961131 DOI: 10.1021/acsnano.5b01244
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 15.881