Xu Muchun, Zhu Jiajun, Xie Jiyang, Mao Yongyun, Hu Wanbiao
Yunnan Key Laboratory of Electromagnetic Materials and Devices, National Center for International Research on Photoelectric and Energy Materials, School of Materials and Energy, Yunnan University, Kunming, 650091, P. R. China.
Electron Microscopy Center, Yunnan University, Kunming, 650091, P. R. China.
Small. 2024 Mar;20(10):e2305448. doi: 10.1002/smll.202305448. Epub 2023 Oct 25.
Wearable electronics with flexible, integrated, and self-powered multi-functions are becoming increasingly attractive, but their basic energy storage units are challenged in simultaneously high energy density, self-healing, and real-time sensing capability. To achieve this, a fully flexible and omni-healable all-hydrogel, that is dynamically crosslinked PVA@PANI hydrogel, is rationally designed and constructed via aniline/DMSO-emulsion-templated in situ freezing-polymerization strategy. The PVA@PANI sheet, not only possesses a honeycombed porous conductive mesh configuration with superior flexibility that provides numerous channels for unimpeded ions/electron transport and maximizes the utilization efficiency of pseudocapacitive PANI, but also can conform to complicated body surface, enabling effective detection and discrimination of body movements. As a consequence, the fabricated flexible PVA@PANI sheet electrode demonstrates an unprecedented specific capacitance (936.8 F g ) and the assembled symmetric flexible all-solid-state supercapacitor delivers an extraordinary energy density of 40.98 Wh kg , outperforming the previously highest-reported values of stretchable PVA@PANI hydrogel-based supercapacitors. What is more, such a flexible supercapacitor electrode enables precisely monitoring the full-range human activities in real-time, and fulfilling a quick response and excellent self-recovery. These outstanding flexible sensing and energy storage performances render this emerging PVA@PANI hydrogel highly promising for the next-generation wearable self-powered sensing electronics.
具有柔性、集成和自供电多功能的可穿戴电子产品正变得越来越有吸引力,但其基本储能单元在同时具备高能量密度、自修复和实时传感能力方面面临挑战。为实现这一目标,通过苯胺/二甲基亚砜乳液模板原位冷冻聚合策略,合理设计并构建了一种完全柔性且全可愈合的全水凝胶,即动态交联的聚乙烯醇@聚苯胺水凝胶。聚乙烯醇@聚苯胺片材不仅具有蜂窝状多孔导电网状结构,具有卓越的柔韧性,为离子/电子的畅通传输提供了众多通道,并使赝电容性聚苯胺的利用效率最大化,而且能够贴合复杂的身体表面,实现对身体运动的有效检测和辨别。因此,制备的柔性聚乙烯醇@聚苯胺片材电极展现出前所未有的比电容(936.8 F g),组装的对称柔性全固态超级电容器具有40.98 Wh kg的非凡能量密度,超过了此前报道的基于可拉伸聚乙烯醇@聚苯胺水凝胶的超级电容器的最高值。此外,这种柔性超级电容器电极能够实时精确监测全范围的人体活动,并实现快速响应和出色的自我恢复。这些出色的柔性传感和储能性能使这种新兴的聚乙烯醇@聚苯胺水凝胶在下一代可穿戴自供电传感电子领域极具前景。