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在体阻抗特性分析表明皮质记录电极的位置和尺寸依赖性。

In Vivo Impedance Characterization of Cortical Recording Electrodes Shows Dependence on Electrode Location and Size.

出版信息

IEEE Trans Biomed Eng. 2019 Mar;66(3):675-681. doi: 10.1109/TBME.2018.2854623. Epub 2018 Jul 10.

Abstract

OBJECTIVE

Neural prostheses are improving the quality of life for those suffering from neurological impairments. Electrocorticography electrodes located in subdural, epidural, and intravascular positions show promise as long-term neural prostheses. However, chronic implantation affects the electrochemical environments of these arrays.

METHODS

In the present work, the effect of electrode location on the electrochemical properties of the interface was compared. The impedances of the electrode arrays were measured using electrochemical impedance spectroscopy in vitro in saline and in vivo four-week postimplantation.

RESULTS

There was not a significant effect of electrode location (subdural, intravascular, or epidural) on the impedance magnitude, and the effect of the electrode size on the impedance magnitude was frequency dependent. There was a frequency-dependent statistically significant effect of electrode location and electrode size on the phase angles of the three arrays. The subdural and epidural arrays showed phase shifts closer to -90° indicating the capacitive nature of the interface in these locations. The impact of placing electrodes within a blood vessel and adjacent to the blood vessel wall was most obvious when looking at the phase responses at frequencies below 10 kHz.

CONCLUSION

Our results show that intravascular electrodes, like those in subdural and epidural positions, show electrical properties that are suitable for recording. These results provide support for the use of intravascular arrays in clinically relevant neural prostheses and diagnostic devices.

SIGNIFICANCE

Comparison of electrochemical impedance of the epidural, intravascular, and subdural electrode array showed that all three locations are possible placement options, since impedances are in comparable ranges.

摘要

目的

神经假体正在提高神经损伤患者的生活质量。位于硬脑膜下、硬脑膜外和血管内位置的脑皮层电图电极作为长期神经假体具有广阔的应用前景。然而,慢性植入物会影响这些阵列的电化学环境。

方法

在本工作中,比较了电极位置对界面电化学性质的影响。使用电化学阻抗谱在体外盐溶液中和植入后四周的体内测量电极阵列的阻抗。

结果

电极位置(硬脑膜下、血管内或硬脑膜外)对阻抗幅度没有显著影响,电极尺寸对阻抗幅度的影响随频率而变化。电极位置和电极尺寸对三个阵列的相位角有频率相关的显著影响。硬脑膜下和硬脑膜外阵列的相移接近-90°,表明这些位置界面具有电容性质。当观察低于 10 kHz 的频率下的相位响应时,将电极放置在血管内和血管壁附近对电极位置的影响最为明显。

结论

我们的结果表明,血管内电极与硬脑膜下和硬脑膜外位置的电极一样,具有适合记录的电学特性。这些结果为在临床相关的神经假体和诊断设备中使用血管内阵列提供了支持。

意义

比较硬膜外、血管内和硬脑膜下电极阵列的电化学阻抗表明,所有三个位置都是可行的放置选择,因为阻抗在可比较的范围内。

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