生物电子学
泄漏(经济)
材料科学
胶粘剂
共形映射
联轴节(管道)
光电子学
金属
纳米技术
复合材料
生物传感器
冶金
图层(电子)
数学分析
数学
经济
宏观经济学
作者
S. Y. Lee,Hyeonseok Song,Jinseo Kim,Geonjun Choi,J.S. Kim,Seongjin Park,Hyejin Jang,Jangho Kim,Hoon Eui Jeong
出处
期刊:PubMed
日期:2025-09-12
卷期号:: e13259-e13259
标识
DOI:10.1002/advs.202513259
摘要
Skin-interfacing electrodes are essential for wearable bioelectronics, yet conventional gel- and dry-type electrodes often suffer from dehydration, poor skin conformity, irritation, and delamination during motion, limiting their long-term performance. Here, a self-attachable liquid metal channel (S-LMC) patch is presented that integrates open-bottom Galinstan microchannels and micropillar arrays, both featuring re-entrant geometries for enhances skin adhesion and leakage suppression. A via-hole interconnect enables direct vertical signal transmission, eliminating the need for bulky wiring and facilitating compact integration. The patch achieves strong, reusable skin adhesion (>60 kPa), low contact impedance (7.35 kΩ·cm2 at 10 Hz), and minimal skin irritation. Compared to commercial Ag/AgCl gel electrodes, the S-LMC patch exhibits >5× lower impedance, >2× higher ECG signal fidelity (20.23 dB vs. 9.03 dB under motion), and >2.4× higher long-term adhesion after 7 days. Its re-entrant microarchitecture also improves Galinstan confinement, achieving >2× higher critical pressure for leakage. These features enable motion-resilient biosignal monitoring and scalable system integration, establishing the S-LMC patch as a promising platform for next-generation skin-conformal bioelectronic interfaces.
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