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Voltage Biasing Cyclic Voltammetry Electrical Impedance Spectroscopy for Neural Interfaces

机译:神经接口的电压偏置循环伏安法和电阻抗谱

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摘要

Electrical impedance spectroscopy (EIS) and cyclic voltammetry (CV) measure properties of the electrode-tissue interface without additional invasive procedures, and can be used to monitor electrode performance over the long term. EIS measures electrical impedance at multiple frequencies, and increases in impedance indicate increased glial scar formation around the device, while cyclic voltammetry measures the charge carrying capacity of the electrode, and indicates how charge is transferred at different voltage levels. As implanted electrodes age, EIS and CV data change, and electrode sites that previously recorded spiking neurons often exhibit significantly lower efficacy for neural recording. The application of a brief voltage pulse to implanted electrode arrays, known as rejuvenation, can bring back spiking activity on otherwise silent electrode sites for a period of time. Rejuvenation alters EIS and CV, and can be monitored by these complementary methods. Typically, EIS is measured daily as an indication of the tissue response at the electrode site. If spikes are absent in a channel that previously had spikes, then CV is used to determine the charge carrying capacity of the electrode site, and rejuvenation can be applied to improve the interface efficacy. CV and EIS are then repeated to check the changes at the electrode-tissue interface, and neural recordings are collected. The overall goal of rejuvenation is to extend the functional lifetime of implanted arrays.
机译:电阻抗光谱法(EIS)和循环伏安法(CV)无需额外的侵入性程序即可测量电极-组织界面的特性,并且可用于长期监测电极性能。 EIS在多个频率下测量电阻抗,并且阻抗增加表明在设备周围形成胶质疤痕的增加,而循环伏安法则测量电极的电荷承载能力,并指示电荷在不同电压水平下如何转移。随着植入电极的老化,EIS和CV数据会发生变化,以前记录尖峰神经元的电极部位通常对神经记录的功效要低得多。在注入的电极阵列上施加短暂的电压脉冲,即所谓的振兴,可以在一段时间内恢复原本处于静默状态的电极部位的尖峰活动。复兴会改变EIS和CV,并且可以通过这些补充方法进行监测。通常,每天测量EIS,以指示电极部位的组织反应。如果以前没有尖峰的通道中没有尖峰,则可以使用CV来确定电极位点的电荷携带能力,并可以使用嫩化来提高界面功效。然后重复CV和EIS以检查电极-组织界面的变化,并收集神经记录。复兴的总体目标是延长植入阵列的功能寿命。

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