DocumentCode :
1503672
Title :
Contribution of Oxygen Reduction to Charge Injection on Platinum and Sputtered Iridium Oxide Neural Stimulation Electrodes
Author :
Cogan, Stuart F. ; Ehrlich, Julia ; Plante, Timothy D. ; Gingerich, Marcus D. ; Shire, Douglas B.
Author_Institution :
EIC Labs., Inc., Norwood, MA, USA
Volume :
57
Issue :
9
fYear :
2010
Firstpage :
2313
Lastpage :
2321
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 ~12 mC/cm2 (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/cm2, ~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 μm2) 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.
Keywords :
biomedical electrodes; charge injection; diffusion; electrolytes; iridium compounds; microelectrodes; neurophysiology; oxygen; platinum; reduction (chemical); transients; voltammetry (chemical analysis); IrO; Pt; cathodal charge capacity; charge injection; charge-admittance reaction; cyclic voltammetry; electrode shaft; electrolyte; in vivo concentration; neural stimulation electrodes; oxygen reduction contribution; oxygen-saturated physiological saline; platinum microelectrodes; pulsed SIROF microelectrodes; rate-limited diffusion; size 300 nm; slow-sweep-rate; sputtered iridium oxide electrode; surface area; voltage-transient measurements; Electrodes; iridium oxide; neural stimulation; oxygen reduction; platinum; Argon; Deep Brain Stimulation; Electrochemistry; Electrodes, Implanted; Iridium; Microscopy, Electron, Scanning; Oxidation-Reduction; Oxygen; Platinum; Sodium Chloride;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2010.2050690
Filename :
5473079
Link To Document :
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