Cheng Tao, Liu Zhong-Ting, Qu Jie, Meng Chao-Fu, He Ling-Jun, Li Lang, Yang Xuan-Li, Cao Yu-Jie, Han Kai, Zhang Yi-Zhou, Lai Wen-Yong
State Key Laboratory of Organic Electronics and Information Displays (SKLOEID), Institute of Advanced Materials (IAM), School of Chemistry and Life Sciences, Nanjing University of Posts & Telecommunications, 9 Wenyuan Road, Nanjing, 210023, China.
Institute of Advanced Materials and Flexible Electronics (IAMFE), School of Chemistry and Materials Science, Nanjing University of Information Science & Technology, Nanjing, 210044, China.
Adv Sci (Weinh). 2024 Sep;11(34):e2403358. doi: 10.1002/advs.202403358. Epub 2024 Jul 8.
Conductive polymer hydrogels exhibit unique electrical, electrochemical, and mechanical properties, making them highly competitive electrode materials for stretchable high-capacity energy storage devices for cutting-edge wearable electronics. However, it remains extremely challenging to simultaneously achieve large mechanical stretchability, high electrical conductivity, and excellent electrochemical properties in conductive polymer hydrogels because introducing soft insulating networks for improving stretchability inevitably deteriorates the connectivity of rigid conductive domain and decreases the conductivity and electrochemical activity. This work proposes a distinct confinement self-assembly and multiple crosslinking strategy to develop a new type of organic-inorganic hybrid conductive hydrogels with biphase interpenetrating cross-linked networks. The hydrogels simultaneously exhibit high conductivity (2000 S m), large stretchability (200%), and high electrochemical activity, outperforming existing conductive hydrogels. The inherent mechanisms for the unparalleled comprehensive performances are thoroughly investigated. Elastic all-hydrogel supercapacitors are prepared based on the hydrogels, showing high specific capacitance (212.5 mF cm), excellent energy density (18.89 µWh cm), and large deformability. Moreover, flexible self-powered luminescent integrated systems are constructed based on the supercapacitors, which can spontaneously shine anytime and anywhere without extra power. This work provides new insights and feasible avenues for developing high-performance stretchable electrode materials and energy storage devices for wearable electronics.
导电聚合物水凝胶具有独特的电学、电化学和力学性能,使其成为用于前沿可穿戴电子产品的可拉伸高容量储能器件的极具竞争力的电极材料。然而,在导电聚合物水凝胶中同时实现大的机械拉伸性、高电导率和优异的电化学性能仍然极具挑战性,因为引入用于改善拉伸性的软绝缘网络不可避免地会破坏刚性导电域的连通性,并降低电导率和电化学活性。这项工作提出了一种独特的限域自组装和多重交联策略,以开发一种具有双相互穿交联网络的新型有机-无机杂化导电水凝胶。该水凝胶同时表现出高电导率(2000 S m)、大拉伸性(200%)和高电化学活性,优于现有的导电水凝胶。对这种无与伦比的综合性能的内在机制进行了深入研究。基于该水凝胶制备了弹性全水凝胶超级电容器,表现出高比电容(212.5 mF cm)、优异的能量密度(18.89 µWh cm)和大变形性。此外,基于超级电容器构建了柔性自供电发光集成系统,该系统无需额外电源即可随时随地自发发光。这项工作为开发用于可穿戴电子产品的高性能可拉伸电极材料和储能器件提供了新的见解和可行途径。