材料科学
生物医学工程
复合数
电极
微电极
胶粘剂
生物相容性
导电体
壳聚糖
纳米技术
复合材料
化学工程
图层(电子)
医学
化学
物理化学
冶金
工程类
作者
Jaehyon Kim,Yewon Kim,Jaebeom Lee,Mikyung Shin,Donghee Son
出处
期刊:Polymers
[Multidisciplinary Digital Publishing Institute]
日期:2023-09-07
卷期号:15 (18): 3692-3692
被引量:3
标识
DOI:10.3390/polym15183692
摘要
In wearable bioelectronics, various studies have focused on enhancing prosthetic control accuracy by improving the quality of physiological signals. The fabrication of conductive composites through the addition of metal fillers is one way to achieve stretchability, conductivity, and biocompatibility. However, it is difficult to measure stable biological signals using these soft electronics during physical activities because of the slipping issues of the devices, which results in the inaccurate placement of the device at the target part of the body. To address these limitations, it is necessary to reduce the stiffness of the conductive materials and enhance the adhesion between the device and the skin. In this study, we measured the electromyography (EMG) signals by applying a three-layered hydrogel structure composed of chitosan-alginate-chitosan (CAC) to a stretchable electrode fabricated using a composite of styrene-ethylene-butylene-styrene and eutectic gallium-indium. We observed stable adhesion of the CAC hydrogel to the skin, which aided in keeping the electrode attached to the skin during the subject movement. Finally, we fabricated a multichannel array of CAC-coated composite electrodes (CACCE) to demonstrate the accurate classification of the EMG signals based on hand movements and channel placement, which was followed by the movement of the robot arm.
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