Kim Hyeonseok, Kim Eugene, Choi Chanyeong, Yeo Woon-Hong
Georgia Institute of Technology, George W. Woodruff School of Mechanical Engineering, Atlanta, GA 30332, USA.
IEN Center for Human-Centric Interfaces and Engineering, Institute for Electronics and Nanotechnology, Georgia Institute of Technology, Atlanta, GA 30332, USA.
Micromachines (Basel). 2022 Apr 16;13(4):629. doi: 10.3390/mi13040629.
Electrophysiology signals are crucial health status indicators as they are related to all human activities. Current demands for mobile healthcare have driven considerable interest in developing skin-mounted electrodes for health monitoring. Silver-Silver chloride-based (Ag-/AgCl) wet electrodes, commonly used in conventional clinical practice, provide excellent signal quality, but cannot monitor long-term signals due to gel evaporation and skin irritation. Therefore, the focus has shifted to developing dry electrodes that can operate without gels and extra adhesives. Compared to conventional wet electrodes, dry ones offer various advantages in terms of ease of use, long-term stability, and biocompatibility. This review outlines a systematic summary of the latest research on high-performance soft and dry electrodes. In addition, we summarize recent developments in soft materials, biocompatible materials, manufacturing methods, strategies to promote physical adhesion, methods for higher breathability, and their applications in wearable biomedical devices. Finally, we discuss the developmental challenges and advantages of various dry electrodes, while suggesting research directions for future studies.
电生理信号是至关重要的健康状况指标,因为它们与所有人类活动相关。当前对移动医疗保健的需求引发了人们对开发用于健康监测的皮肤贴附式电极的浓厚兴趣。传统临床实践中常用的基于银 - 氯化银(Ag-/AgCl)的湿电极能提供出色的信号质量,但由于凝胶蒸发和皮肤刺激而无法进行长期信号监测。因此,重点已转向开发无需凝胶和额外粘合剂即可工作的干电极。与传统湿电极相比,干电极在易用性、长期稳定性和生物相容性方面具有多种优势。本综述概述了关于高性能柔软干电极的最新研究的系统总结。此外,我们总结了软材料、生物相容性材料、制造方法、促进物理粘附的策略、提高透气性的方法及其在可穿戴生物医学设备中的应用。最后,我们讨论了各种干电极的发展挑战和优势,同时提出了未来研究的方向。