Chandrasekar Jayashree, Venkatesan Manikandan, Sun Ting-Wang, Hsu Yung-Chi, Huang Yu-Hang, Chen Wei-Wen, Chen Mei-Hsin, Tsai Meng-Lin, Chen Jung-Yao, Lin Ja-Hon, Zhou Ye, Kuo Chi-Ching
Department of Molecular Science and Engineering, Institute of Organic and Polymeric Materials, National Taipei University of Technology, Taipei 10608, Taiwan.
Advanced Research Center for Green Materials Science and Technology, National Taiwan University, Taipei 10617, Taiwan.
Mater Horiz. 2024 Mar 18;11(6):1395-1413. doi: 10.1039/d3mh01519j.
Electronic devices with multiple features bring in comfort to the way we live. However, repeated use causes physical as well as chemical degradation reducing their lifetime. The self-healing ability is the most crucial property of natural systems for survival in unexpected situations and variable environments. However, this self-repair property is not possessed by the conventional electronic devices designed today. To expand their lifetime and make them reliable by restoring their mechanical, functional, and electrical properties, self-healing materials are a great go-to option to create robust devices. In this review the intriguing self-healing polymers and fascinating mechanism of self-healable energy harvesting devices such as triboelectric nanogenerators (TENG) and storage devices like supercapacitors and batteries from the aspect of electrodes and electrolytes in the past five years are reviewed. The current challenges, strategies, and perspectives for a smart and sustainable future are also discussed.
具备多种功能的电子设备给我们的生活方式带来了便利。然而,反复使用会导致物理和化学降解,缩短其使用寿命。自我修复能力是自然系统在意外情况和多变环境中生存的最关键特性。然而,当今设计的传统电子设备并不具备这种自我修复特性。为了延长其使用寿命,并通过恢复其机械、功能和电学性能使其可靠,自修复材料是制造坚固设备的绝佳选择。在这篇综述中,回顾了过去五年中从电极和电解质方面来看有趣的自修复聚合物以及自修复能量收集设备(如摩擦纳米发电机(TENG))和存储设备(如超级电容器和电池)的迷人机制。还讨论了智能和可持续未来面临的当前挑战、策略及前景。