Ganguang Yang, Zhaogang Lan, Hangyu Gong, Jiacheng Wen, Bo Pang, Yuqi Qiu, Yue Zhang, Wei Guo, Tianzhao Bu, Bin Xie, Hao Wu
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引用次数: 0
摘要
收集运动过程中的电生理(EP)信号(如心电图(ECG)、肌电图(EMG))对于反馈心脏健康状况和肌肉损伤至关重要。然而,由于皮肤界面存在多种干扰(如形变、汗液和运动伪影),商用刚性电极/系统难以记录高保真 EP 信号。在此,我们开发了一种受 Nepenthes 启发的无线水凝胶(NIH)混合系统,通过在运动过程中建立无缝集成和快速定向的排汗设备/皮肤界面,实现高质量 EP 信号检测。聚(乙烯醇)/聚(丙烯酸)(PVA/PAAC)双网络水凝胶的粘合强度显著提高了六倍以上。在水凝胶上进一步制造出受 Nepenthes 启发的微结构,可将液滴的定向传输速度提高 4.5 倍。值得注意的是,NIH 电极可在连续人工汗液注入过程中与皮肤保持紧密耦合,同时在复杂条件(即振动和出汗)下显示出最低阻抗和最高信噪比(19 dB)的肌电信号。最后,NIH 混合系统通过装饰硅胶接头和中空结构来避免应力集中。该系统可记录高质量的心电图波形和心率曲线,运动和休息时的相对偏差为 2.6%。这种 NIH 混合系统是运动情况下精确监测 EP 信号的理想平台。
A Nepenthes-Inspired Hydrogel Hybrid System for Sweat-Wicking Electrophysiological Signal Recording during Exercises
Collecting electrophysiological (EP) signals (e.g., electrocardiogram (ECG), electromyogram (EMG)) during exercises is crucial for feedback of cardiac health and muscle injuries. However, since several interferences exist in the skin interface (e.g., deformation, perspiration, and motion artifacts), commercial rigid electrodes/systems have difficulty in recording high-fidelity EP signals. Here, a wireless Nepenthes-inspired hydrogel (NIH) hybrid system is developed for high-quality EP signal detection by establishing seamless-integrated and rapidly directional sweat-wicking device/skin interfaces during exercises. The adhesive strength of poly(vinyl alcohol)/poly(acrylic acid) (PVA/PAAC)-based double-network hydrogels is significantly increased by more than sixfolds. Nepenthes-inspired microstructures are further fabricated on hydrogels to enhance the directional transport speed of droplets by 4.5 times. Notably, the NIH electrodes can maintain an intimate coupling with the skin during continuous artificial sweat injection while showing the lowest impedance and highest signal-to-noise ratio (>19 dB) of EMG signals under complex conditions (i.e., vibration and perspiration). Finally, the NIH hybrid system is fabricated by decorating silicone joints and hollow structures to avoid stress concentration. This system can record high-quality ECG waveforms and heart rate curves with relative deviations of <2.6% during exercises and rest. This NIH hybrid system represents a promising platform for precise EP signal monitoring in exercising scenarios.
期刊介绍:
Firmly established as a top-tier materials science journal, Advanced Functional Materials reports breakthrough research in all aspects of materials science, including nanotechnology, chemistry, physics, and biology every week.
Advanced Functional Materials is known for its rapid and fair peer review, quality content, and high impact, making it the first choice of the international materials science community.