4.8 Article

Self-healing flexible/stretchable energy storage devices

Journal

MATERIALS TODAY
Volume 44, Issue -, Pages 78-104

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.mattod.2020.10.026

Keywords

Energy storage device; Self-healing device; Flexibility; Stretchability

Funding

  1. startup research grant for distinguished professors in Soochow University
  2. National Natural Science Foundation of China [52003188]
  3. Natural Science Foundation of Jiangsu Province [BK2020043448]
  4. open research fund for Jiangsu Provincial Key Laboratory for Advanced Carbon Materials and Wearable Energy Technologies
  5. King Abdullah University of Science and Technology (KAUST) Office of Sponsored Research (OSR) [OSR-2018-CARF/CCF-3079]
  6. KAUST Catalysis Center (KCC)

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This article introduces the design and features of flexible/stretchable energy storage devices, analyzes three self-healing mechanisms, and reviews the key components of supercapacitors and batteries, as well as methodological evaluations.
During the past decade, flexible/stretchable energy storage devices have garnered increasing attention, with the successful development of wearable electronics. However, due to the repeated deformation accompanied with the electrochemical depletion process, these devices suffer from unavoidable damage, including cracks, crazing, puncture and delamination, which can lead to serious performance degradation or even safety issues. Simultaneously, inspired by biological organs, self-healing capability is found to be a promising approach to address these issues by restoring the mechanical and electrochemical performance. This review first summarizes the structural design and features of various flexible/stretchable energy storage devices, from 1D to 3D configurations. Then, basic concepts and three self-healing mechanisms, including capsule-based systems, vascular-based systems, and intrinsic healing systems are analyzed along with a brief look at existing applications. Then we review all the important parts of state-of-art flexible/stretchable self-healing supercapacitors and batteries including electrodes, electrolytes, substrates and encapsulation. Moreover, a detailed evaluation of methodolo-gies for flexibility, stretchability and self-healing capabilities are described in detail. Finally, the critical challenges and prospects of future promising solutions for self-healing flexible/stretchable energy storage devices or even electronics are provided.

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