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关于电生理记录中电极与皮肤表面之间接触阻抗的洞察。

Insight into the Contact Impedance between the Electrode and the Skin Surface for Electrophysical Recordings.

作者信息

Yang Liangtao, Gan Lu, Zhang Zhenggang, Zhang Zhilin, Yang Hui, Zhang Yi, Wu Jinglong

机构信息

Research Center for Medical Artificial Intelligence, Shenzhen Institute of Advanced Technology, Chinese Academy of Sciences, 518055 Shenzhen, China.

Institute of Chemistry, Humboldt-University Berlin, Brook-Taylor-Str. 2, 12489 Berlin, Germany.

出版信息

ACS Omega. 2022 Apr 14;7(16):13906-13912. doi: 10.1021/acsomega.2c00282. eCollection 2022 Apr 26.

Abstract

To obtain a performance improved dry electrode for bioelectrical activity detection is still a challenge, which is mainly due to the poor fundamental understanding on the impedance of the electrode-skin interface. Herein, the impedance between the electrode and the skin interface of three types of electrodes, which are the wet electrode, semidry electrode, and dry electrode, is investigated with electrochemical impedance spectroscopy combined with the spectra fitting technique. The parameters of performance duration, potential, and frequency associated with the impedance are explored for these three types of electrodes. The overall impedance is roughly constant within the performance duration and the potential applied in this study. Along with the frequency decreases, the impedance of the dry electrode reduces faster and is more complicated compared with the other two types of electrodes. Moreover, the results computed with the equivalent circuits show that the charge transfer resistance is additionally present compared to the wet and semidry electrodes. This large and additional charge transfer resistance may explain its relatively poorer electrophysiological properties.

摘要

获得用于生物电活动检测的性能改进型干电极仍然是一项挑战,这主要是由于对电极 - 皮肤界面阻抗的基本认识不足。在此,采用电化学阻抗谱结合光谱拟合技术研究了三种类型电极(即湿电极、半干电极和干电极)与皮肤界面之间的阻抗。针对这三种类型的电极,探讨了与阻抗相关的性能持续时间、电位和频率参数。在本研究中施加的性能持续时间和电位范围内,总体阻抗大致保持恒定。随着频率降低,与其他两种类型电极相比,干电极的阻抗下降更快且更为复杂。此外,用等效电路计算的结果表明,与湿电极和半干电极相比,干电极还存在额外的电荷转移电阻。这种较大的额外电荷转移电阻可能解释了其相对较差的电生理特性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/acb4/9088920/c9be034058e7/ao2c00282_0001.jpg

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