电极
材料科学
碳纳米管
自愈水凝胶
纳米技术
生物医学工程
复合材料
液体气泡
生物相容性材料
碳纤维
剥离(纤维)
光电子学
明胶
化学工程
生物传感器
作者
Yuli Wang,Zonglei Wang,Yujie Zhang,Jiawei Yang,Zongman Zhang,Pengcheng Zhou,Yumiao Xu,Qing‐Yuan Sun,Mei-Mei Zheng,Wenqing Yan,Xuezhong He,Jiongyu Chen,Juan Li,Youhua Jiang,Sunghoon Lee,Hossam Haick,Tomoyuki Yokota,Takao Someya,Yan Wang,Yan Wang
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2025-09-17
卷期号:11 (38): eadt2286-eadt2286
被引量:17
标识
DOI:10.1126/sciadv.adt2286
摘要
Adaptable hydrogel bioelectronics that sustain long-term, uninterrupted operation are critical for early disease diagnosis and personalized health care. However, conventional hydrogel electrodes suffer from mechanical fragility, rapid dehydration, freezing, and poor comfort because of thickness-induced interfacial gaps. We report a 2.7-micrometer-thick robust, permeable, and antifreezing hydrogel electrode for high-quality 8-day electrophysiological monitoring under everyday scenarios. The ultrathin electrode is fabricated using gelatin hydrogels with temperature-controlled phase change properties reinforced by nanomesh while incorporating lithium chloride, and a binary solvent achieves antifreezing and antidehydration characteristics. The design minimizes flexural rigidity, resulting in high interfacial adhesion energy with human skin, and enhances gas (air, oxygen, and carbon dioxide) permeance and water vapor transmission rate. Consequently, the ultrathin hydrogel electrode exhibits high biocompatibility, superior wear comfort, and minimized motion and sweat artifacts, enabling reliable, uninterrupted, wireless health monitoring over eight consecutive days across various real-life activities and adaptation to cold environments.
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