Dai Jing, Qin Haili, Dong Wen-Xuan, Cong Huai-Ping, Yu Shu-Hong
Anhui Province Key Laboratory of Advanced Catalytic Materials and Reaction Engineering, School of Chemistry and Chemical Engineering, Hefei University of Technology, Hefei 230009, China.
Division of Nanomaterials and Chemistry, Hefei National Laboratory for Physical Sciences at the Microscale, Institute of Energy, Hefei Comprehensive National Science Center, CAS Center for Excellence in Nanoscience, Department of Chemistry, University of Science and Technology of China, Hefei 230026, China.
Nano Lett. 2022 Aug 10;22(15):6444-6453. doi: 10.1021/acs.nanolett.2c01635. Epub 2022 Jun 24.
Realizing autonomous self-healing and high stretchability of flexible supercapacitors over a wide temperature range remains a big challenge because of simultaneous incorporation of self-healing, stretchable and temperature-tolerant elements into a device as well as unfavorable electrochemical kinetics in harsh conditions. Here, we demonstrate for the first time an autonomous self-healing and intrinsically stretchable supercapacitor that can work at all-climate environments assembled by universally self-healing and highly stretchable organohydrogel electrodes with record-high temperature-invariant conductivity of ∼965 S/cm. Benefiting from multiple hydrogen bonding and dynamic metal coordination combined with electrochemistry-favorable components and integrated device configuration, the supercapacitor exhibits outstanding long-term stability, high stretchability, instantaneous and complete capacitive self-healability, and real-time mechanical healing at harsh temperatures from -35 to 80 °C. The superiorities in stretchability, self-healability, and all-climate tolerance enable the supercapacitor presented here as the best performer among the flexible supercapacitors reported to date.
由于要在一个器件中同时集成自修复、可拉伸和耐温元件,以及在恶劣条件下存在不利的电化学动力学,实现柔性超级电容器在宽温度范围内的自主自修复和高拉伸性仍然是一个巨大的挑战。在此,我们首次展示了一种能在全气候环境下工作的自主自修复且本质可拉伸的超级电容器,它由具有创纪录的约965 S/cm的高温不变电导率的通用自修复且高度可拉伸的有机水凝胶电极组装而成。得益于多重氢键和动态金属配位,再结合有利于电化学的组分和集成器件配置,该超级电容器在从-35到80°C的恶劣温度下表现出出色的长期稳定性、高拉伸性、瞬时且完全的电容自修复能力以及实时机械修复能力。在拉伸性、自修复性和全气候耐受性方面的优势,使本文所展示的超级电容器成为迄今为止报道的柔性超级电容器中性能最佳的器件。