4.8 Article

Enhanced Tolerance to Stretch-Induced Performance Degradation of Stretchable MnO2-Based Supercapacitors

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 7, Issue 4, Pages 2569-2574

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/am507588p

Keywords

stretchable supercapacitors; MnO2 nanosheets; polypyrrole film; stretch-induced performance degradation; tolerance enhancement

Funding

  1. Early Career Scheme of the Research Grants Council of Hong Kong SAR, China [CityU 9041977]
  2. Science Technology and Innovation Committee of Shenzhen Municipality [JCYJ20130401145617276]
  3. City University of Hong Kong

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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.

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