Shanghai Key Lab of Chemical Assessment and Sustainability, School of Chemical Science and Engineering, and Institute of Advanced Study, Tongji University, 200092, Shanghai, China.
Nat Commun. 2019 Feb 1;10(1):536. doi: 10.1038/s41467-019-08320-z.
Due to inherently poor healable and stretchable features, the most explored polyvinyl alcohol-based gel electrolytes cannot well meet the requirements of stretchable, healable and multifunctional supercapacitors. Here, we report a hydrogel of a copolymer cross-linked by double linkers of Laponite (synthetic hectorite-type clay) and graphene oxide. The resultant hydrogel shows high mechanical stretchability, excellent ionic conductivity, and superior healable performance. Along with designing wrinkled-structure electrodes, supercapacitors fabricated by using this hydrogel as a gel electrolyte not only exhibit ultrahigh mechanical stretchability of 1000%, but also achieve repeated healable performance under treatments of both infrared light irradiation and heating. More significantly, a broken/healed supercapacitor also possesses an ultrahigh stretchability up to 900% with slight performance decay. This hydrogel electrolyte could be easily functionalized by introducing other functional components, and extended for use in other portable and wearable energy related devices with multifunction.
由于本身可修复性和可拉伸性差,最受关注的聚乙烯醇基凝胶电解质不能很好地满足可拉伸、可修复和多功能超级电容器的要求。在这里,我们报告了一种由两种交联剂(蒙脱土(合成海泡石型粘土)和氧化石墨烯)交联的共聚物水凝胶。所得水凝胶具有高机械拉伸性、优异的离子导电性和出色的可修复性能。通过设计褶皱结构电极,使用该水凝胶作为凝胶电解质制备的超级电容器不仅具有超高的 1000%机械拉伸性,而且在红外光照射和加热处理下还能实现可重复的修复性能。更重要的是,一个断裂/修复的超级电容器在拉伸至 900%时仍具有超高的拉伸性,且性能衰减很小。这种水凝胶电解质可以通过引入其他功能成分来轻松实现功能化,并扩展用于其他具有多功能的便携式和可穿戴能源相关设备。