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用于神经传导研究的具有增强电学和力学性能的霍夫迈斯特效应优化水凝胶电极。

Hoffmeister Effect Optimized Hydrogel Electrodes with Enhanced Electrical and Mechanical Properties for Nerve Conduction Studies.

作者信息

Zhang Yue, Hu Yijia, Xie Bin, Yang Ganguang, Yin Zhouping, Wu Hao

机构信息

Flexible Electronics Research Center, State Key Laboratory of Digital Manufacturing Equipment and Technology, School of Mechanical Science and Engineering, Huazhong University of Science and Technology, Wuhan 430074, China.

出版信息

Research (Wash D C). 2024 Aug 14;7:0453. doi: 10.34133/research.0453. eCollection 2024.

Abstract

Flexible epidermal electrodes hold substantial promise in realizing human electrophysiological information collections. Conventional electrodes exhibit certain limitations, including the requirement of skin pretreatment, reliance on external object-assisted fixation, and a propensity of dehydration, which severely hinder their applications in medical diagnosis. To tackle those issues, we developed a hydrogel electrode with both transcutaneous stimulation and neural signal acquisition functions. The electrode consists of a composite conductive layer (CCL) and adhesive conductive hydrogel (ACH). The CCL is designed as a laminated structure with high conductivity and charge storage capacity (CSC). Based on the optimization of Hoffmeister effect, the ACH demonstrates excellent electrical (resistivity of 3.56 Ω·m), mechanical (tensile limit of 1,650%), and adhesion properties (peeling energy of 0.28 J). The utilization of ACH as electrode/skin interface can reduce skin contact impedance and noise interference and enhance the CSC and charge injection capacity of electrodes. As a proof of concept, peripheral nerve conduction studies were performed on human volunteers to evaluate the as-fabricated hydrogel electrodes. Compared with the commercial electrodes, our hydrogel electrodes achieved better signal continuity and lower distortion, higher signal-to-noise ratio (~35 dB), and lower stimulation voltages (up to 27% lower), which can improve the safety and comfort of nerve conduction studies.

摘要

柔性表皮电极在实现人体电生理信息采集方面具有巨大潜力。传统电极存在一定局限性,包括需要皮肤预处理、依赖外部物体辅助固定以及有脱水倾向,这严重阻碍了它们在医学诊断中的应用。为解决这些问题,我们开发了一种具有经皮刺激和神经信号采集功能的水凝胶电极。该电极由复合导电层(CCL)和粘性导电水凝胶(ACH)组成。CCL被设计为具有高导电性和电荷存储容量(CSC)的层压结构。基于霍夫迈斯特效应的优化,ACH表现出优异的电学性能(电阻率为3.56 Ω·m)、力学性能(拉伸极限为1650%)和粘附性能(剥离能为0.28 J)。将ACH用作电极/皮肤界面可降低皮肤接触阻抗和噪声干扰,并提高电极的CSC和电荷注入容量。作为概念验证,对人类志愿者进行了周围神经传导研究,以评估所制备的水凝胶电极。与商业电极相比,我们的水凝胶电极实现了更好的信号连续性和更低的失真、更高的信噪比(约35 dB)以及更低的刺激电压(降低多达27%),这可以提高神经传导研究的安全性和舒适度。

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