高密度神经电极阵列中的寄生电容:来源与评估方法

IF 4.4 2区 医学 Q2 ENGINEERING, BIOMEDICAL IEEE Transactions on Biomedical Engineering Pub Date : 2024-10-07 DOI:10.1109/TBME.2024.3472708
A Ghazavi, P R Troyk, S F Cogan
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引用次数: 0

摘要

研究目的本研究旨在确定高密度神经电极阵列中寄生电容的来源,并提供一种评估其相关电容值的方法。我们还研究了寄生电容对电极电化学特性的影响:方法:采用电化学阻抗谱(EIS)和电压瞬态(VT)测量来评估 16 通道超微尺寸电极阵列(UMEA)(8×25 μm2 电极位点)的寄生电容。通过比较两种不同的阵列设计:窄痕量阵列和宽痕量阵列,评估了寄生电容对 20 微米直径电极的循环伏安法 (CV)、EIS 和 VT 测量的影响:CV 测量期间的电容泄漏电流和电荷量并不显著,但在电流脉冲期间,34% 的最大电荷注入容量被低估,这与电容泄漏有关。EIS 期间的电容泄漏导致在频率大于 1.5 kHz 时电极阻抗被低估:结论:电极设计和绝缘厚度在决定电流脉冲和较高频率 EIS 期间的电容泄漏量方面起着重要作用:意义:确定高密度神经电极阵列中电容泄漏电流的来源和水平,使我们能够修正泄漏电流的测量值,从而更准确地估计电极阻抗和刺激阈值。这项研究强调了电极设计对于开发电容泄漏最小的高密度阵列的重要性。
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Parasitic Capacitance in High-Density Neural Electrode Arrays: Sources and Evaluation Methods.

Objective: This study aims to identify sources of parasitic capacitance in high-density neural electrode arrays and to provide an approach for evaluating their associated capacitance values. We also represent the effect of parasitic capacitance on the electrochemical properties of electrodes.

Methods: Electrochemical impedance spectroscopy (EIS) and voltage transient (VT) measurements were employed to assess the parasitic capacitance of a 16-channel ultramicro-sized electrode array (UMEA) (8×25 μm2 electrode sites). The effect of parasitic capacitance on cyclic voltammetry (CV), EIS, and VT measurements of 20-μm diameter electrodes was assessed by comparing two different array designs: narrow and wide trace arrays.

Results: The capacitive leakage currents and charge during CV measurements were not significant, however, during current pulsing 34% underestimation of the maximum charge injection capacity corresponded to capacitive leakage. Capacitive leakage during EIS resulted in an underestimation of the electrode impedance at frequencies >1.5 kHz.

Conclusion: The electrode design and insulation thickness can play a significant role in determining the amount of capacitive leakage during current pulsing and EIS at higher frequencies.

Significance: Determining the sources and levels of capacitive leakage current in high-density neural electrode arrays, enables us to correct the measured value for the leakage current and thus estimate the electrode impedance and stimulation thresholds more accurately. This study highlights the importance of electrode design in developing high-density arrays with minimum capacitive leakage.

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来源期刊
IEEE Transactions on Biomedical Engineering
IEEE Transactions on Biomedical Engineering 工程技术-工程:生物医学
CiteScore
9.40
自引率
4.30%
发文量
880
审稿时长
2.5 months
期刊介绍: IEEE Transactions on Biomedical Engineering contains basic and applied papers dealing with biomedical engineering. Papers range from engineering development in methods and techniques with biomedical applications to experimental and clinical investigations with engineering contributions.
期刊最新文献
Table of Contents Front Cover IEEE Transactions on Biomedical Engineering Handling Editors Information IEEE Engineering in Medicine and Biology Society Information IEEE Transactions on Biomedical Engineering Information for Authors
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