Fu Yuntao, Dang Xugang
Institute of Biomass and Function Materials & National Demonstration Centre for Experimental Light Chemistry Engineering Education, College of Bioresources Chemistry and Materials Engineering, Shaanxi University of Science and Technology, Xi'an, 710021, P. R. China.
Small. 2025 Feb;21(7):e2408640. doi: 10.1002/smll.202408640. Epub 2025 Jan 23.
As skin bioelectronics advances, hydrogel wearable devices have broadened perspectives in environment sensing and health monitoring. However, their application is severely hampered by poor mechanical and self-healing properties, environmental sensitivity, and limited sensory functions. Herein, inspired by the hierarchical structure and unique cross-linking mechanism of hagfish slime, a self-powered supramolecular hydrogel is hereby reported, featuring high stretchability (>2800% strain), ultrafast autonomous self-healing capabilities (electrical healing time: 0.3 s), high self-adhesiveness (adhesion strength: 6.92 kPa), injectability, ease of shaping, antimicrobial properties, and biocompatibility. It is observed that by embedding with the highly hygroscopic salt LiCl in supramolecular hydrogel, the hydrogel not only showed excellent electrical conductivity but also presented favorable anti-freezing and water retention properties in extremely cold environments and natural settings. Given these attributes, the hydrogel served as a multifunctional durable self-powered wearable device with high sensitivity (gauge factor: 3.68), fast response time (160 ms), low detection limit, and frequency sensitivity. Moreover, the multifunctional applicability of this supramolecular hydrogel is further demonstrated in long-term cold environments sensing, remote medical communication, and underwater communication. Overall, these findings pave the way for the sustainable development of hydrogel-based wearable devices that are self-powered, durable, and offer high performance, environmental adaptability, and multi-sensory capabilities.
随着皮肤生物电子学的发展,水凝胶可穿戴设备在环境传感和健康监测方面拓宽了视野。然而,其应用受到机械性能和自愈性能差、环境敏感性以及传感功能有限的严重阻碍。在此,受盲鳗黏液的层级结构和独特交联机制的启发,本文报道了一种自供电超分子水凝胶,其具有高拉伸性(应变>2800%)、超快自主自愈能力(电愈合时间:0.3秒)、高自粘性(粘附强度:6.92 kPa)、可注射性、易于成型、抗菌性能和生物相容性。据观察,通过在超分子水凝胶中嵌入高吸湿性盐LiCl,该水凝胶不仅表现出优异的导电性,而且在极寒环境和自然环境中还具有良好的抗冻和保水性能。鉴于这些特性,该水凝胶可作为一种多功能耐用的自供电可穿戴设备,具有高灵敏度(应变片系数:3.68)、快速响应时间(160毫秒)、低检测限和频率敏感性。此外,这种超分子水凝胶的多功能适用性在长期寒冷环境传感、远程医疗通信和水下通信中得到了进一步证明。总体而言,这些发现为基于水凝胶的可穿戴设备的可持续发展铺平了道路,这些设备具有自供电、耐用、高性能、环境适应性和多传感能力。