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增强对基于MnO₂的可拉伸超级电容器拉伸诱导性能退化的耐受性。

Enhanced tolerance to stretch-induced performance degradation of stretchable MnO2-based supercapacitors.

作者信息

Huang Yan, Huang Yang, Meng Wenjun, Zhu Minshen, Xue Hongtao, Lee Chun-Sing, Zhi Chunyi

机构信息

Department of Physics and Materials Science, and ‡Center of Super-Diamond and Advanced Films (COSDAF), City University of Hong Kong , 83 Tat Chee Avenue, Kowloon Tong, Hong Kong, China.

出版信息

ACS Appl Mater Interfaces. 2015 Feb 4;7(4):2569-74. doi: 10.1021/am507588p. Epub 2015 Jan 20.

Abstract

The performance of many stretchable electronics, such as energy storage devices and strain sensors, is highly limited by the structural breakdown arising from the stretch imposed. In this article, we focus on a detailed study on materials matching between functional materials and their conductive substrate, as well as enhancement of the tolerance to stretch-induced performance degradation of stretchable supercapacitors, which are essential for the design of a stretchable device. It is revealed that, being widely utilized as the electrode material of the stretchable supercapacitor, metal oxides such as MnO2 nanosheets have serious strain-induced performance degradation due to their rigid structure. In comparison, with conducting polymers like a polypyrrole (PPy) film as the electrochemically active material, the performance of stretchable supercapacitors can be well preserved under strain. Therefore, a smart design is to combine PPy with MnO2 nanosheets to achieve enhanced tolerance to strain-induced performance degradation of MnO2-based supercapacitors, which is realized by fabricating an electrode of PPy-penetrated MnO2 nanosheets. The composite electrodes exhibit a remarkable enhanced tolerance to strain-induced performance degradation with well-preserved performance over 93% under strain. The detailed morphology and electrochemical impedance variations are investigated for the mechanism analyses. Our work presents a systematic investigation on the selection and matching of electrode materials for stretchable supercapacitors to achieve high performance and great tolerance to strain, which may guide the selection of functional materials and their substrate materials for the next-generation of stretchable electronics.

摘要

许多可拉伸电子产品,如储能设备和应变传感器,其性能受到拉伸引起的结构破坏的严重限制。在本文中,我们重点详细研究功能材料与其导电基底之间的材料匹配,以及提高可拉伸超级电容器对拉伸诱导性能退化的耐受性,这对于可拉伸设备的设计至关重要。研究表明,作为可拉伸超级电容器的电极材料被广泛使用的MnO₂纳米片等金属氧化物,由于其刚性结构,存在严重的应变诱导性能退化。相比之下,以聚吡咯(PPy)薄膜等导电聚合物作为电化学活性材料时,可拉伸超级电容器的性能在应变下能够得到很好的保持。因此,一个巧妙的设计是将PPy与MnO₂纳米片结合,以提高基于MnO₂的超级电容器对应变诱导性能退化的耐受性,这是通过制备PPy渗透的MnO₂纳米片电极来实现的。复合电极对应变诱导的性能退化表现出显著增强的耐受性,在应变下性能保持率超过93%。对详细的形态和电化学阻抗变化进行了研究以进行机理分析。我们的工作对可拉伸超级电容器电极材料的选择和匹配进行了系统研究,以实现高性能和对应变的高耐受性,这可能会指导下一代可拉伸电子产品功能材料及其基底材料的选择。

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