生物电子学
材料科学
安培法
纳米技术
导电体
循环伏安法
电化学
拉伤
电极
导电聚合物
复合材料
生物传感器
聚合物
化学
物理化学
内科学
医学
作者
Yichao Zhao,Bo Wang,Jiawei Tan,Hexing Yin,Ruyi Huang,Jialun Zhu,Shuyu Lin,Yan Zhou,David Jelínek,Zhengyang Sun,Kareem Youssef,Laurent Voisin,Abraham Horrillo,Kaiji Zhang,Benjamin M. Wu,Hilary A. Coller,Daniel C. Lu,Qibing Pei,Sam Emaminejad
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2022-12-15
卷期号:378 (6625): 1222-1227
被引量:58
标识
DOI:10.1126/science.abn5142
摘要
Advancing electronics to interact with tissue necessitates meeting material constraints in electrochemical, electrical, and mechanical domains simultaneously. Clinical bioelectrodes with established electrochemical functionalities are rigid and mechanically mismatched with tissue. Whereas conductive materials with tissue-like softness and stretchability are demonstrated, when applied to electrochemically probe tissue, their performance is distorted by strain and corrosion. We devise a layered architectural composite design that couples strain-induced cracked films with a strain-isolated out-of-plane conductive pathway and in-plane nanowire networks to eliminate strain effects on device electrochemical performance. Accordingly, we developed a library of stretchable, highly conductive, and strain-insensitive bioelectrodes featuring clinically established brittle interfacial materials (iridium-oxide, gold, platinum, and carbon). We paired these bioelectrodes with different electrochemical probing methods (amperometry, voltammetry, and potentiometry) and demonstrated strain-insensitive sensing of multiple biomarkers and in vivo neuromodulation.
科研通智能强力驱动
Strongly Powered by AbleSci AI