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氧还原对铂和溅射氧化铱神经刺激电极电荷注入的贡献。

Contribution of oxygen reduction to charge injection on platinum and sputtered iridium oxide neural stimulation electrodes.

机构信息

EIC Laboratories, Inc., Norwood, MA 02062, USA.

出版信息

IEEE Trans Biomed Eng. 2010 Sep;57(9):2313-21. doi: 10.1109/TBME.2010.2050690. Epub 2010 May 27.

Abstract

The extent to which oxygen reduction occurs on sputtered iridium oxide (SIROF) and platinum neural stimulation electrodes was quantified by cyclic voltammetry and voltage-transient measurements in oxygen-saturated physiological saline. Oxygen reduction was the dominant charge-admittance reaction on platinum electrodes during slow-sweep-rate cyclic voltammetry, contributing approximately 12 mC/cm(2) (88% of total charge) to overall cathodal charge capacity. For a 300-nm-thick SIROF electrode, oxygen reduction was a minor reaction contributing 1.3 mC/cm(2), approximately 3% of total charge. During current pulsing with platinum electrodes, oxygen reduction was observed at a level of 7% of the total injected charge. There was no indication of oxygen reduction on pulsed SIROF electrodes. A sweep-rate-dependent contribution of oxygen reduction was observed on penetrating SIROF microelectrodes (nominal surface area 2000 microm(2)) and is interpreted in terms of rate-limited diffusion of oxygen in electrolyte that penetrates the junction between the insulation and electrode shaft. For typical neural stimulation pulses, no oxygen reduction could be observed on penetrating SIROF microelectrodes. Based on the in vivo concentration of dissolved oxygen, it is estimated that oxygen reduction on platinum microelectrodes will contribute less than 0.5% of the total injected charge and considerably less on SIROF electrodes.

摘要

通过在含氧生理盐水的循环伏安法和电压暂态测量中,定量了溅射氧化铱(SIROF)和铂神经刺激电极上氧还原的程度。在缓慢扫描速率的循环伏安法中,氧还原是铂电极上主要的电荷导纳反应,对总阴极电荷容量贡献约 12 mC/cm(2)(占总电荷的 88%)。对于 300nm 厚的 SIROF 电极,氧还原是一个次要反应,贡献 1.3 mC/cm(2),约占总电荷的 3%。在铂电极的电流脉冲期间,观察到氧还原的水平为总注入电荷的 7%。在脉冲 SIROF 电极上没有氧还原的迹象。在穿透性 SIROF 微电极(名义表面积 2000μm(2))上观察到与扫描速率有关的氧还原贡献,这可以用在穿透绝缘和电极轴之间的结的电解质中的氧的限速扩散来解释。对于典型的神经刺激脉冲,在穿透性 SIROF 微电极上观察不到氧还原。根据溶解氧的体内浓度,估计在铂微电极上的氧还原将贡献总注入电荷的不到 0.5%,而在 SIROF 电极上的贡献要少得多。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f4b3/7440212/33fca1a4667c/nihms-1619013-f0001.jpg

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