Platinum for neural stimulation: voltammetry considerations
Платина для нейростимуляции: вольтамперометрические аспекты
2010-03-08
SCID: 54.1/9f5xnuuw
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electrochemical by-productsneural stimulationphosphate-buffered salineplatinum electrodesvoltammetry
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Abstract (AI)
The underlying cause of electrical stimulation-induced tissue trauma is debated. Our focus has been to study effects of generating electrochemical by-products at the electrode-electrolyte interface, using the pulse-clamp technique coupled with voltammetry to analyze charge transfer. The platinum-H(2)SO(4) system has been a standard for analyzing electrochemistry on platinum-stimulating electrodes, even though the chemical differences between H(2)SO(4) and the living body are obvious. Experiments were designed to determine whether phosphate-buffered saline (PBS) could serve as a more accurate emulation of living tissue. It had been rumored that platinum's performance in PBS deviates from that in H(2)SO(4) at larger potentials. Voltammetry in PBS was performed in two potential ranges. In a conventional potential range (-0.6 V to +0.9 V versus Ag/AgCl), characteristic peaks appear very similar to published voltammograms of platinum in H(2)SO(4). However, in an extended range (-1.0 V to +1.7 V versus Ag/AgCl), platinum exhibited additional electrochemical activity: one oxidation peak and two reduction peaks. Therefore, voltammetry was performed in NaCl and a sodium phosphate mixture (i.e. PBS components) to separate their activity. The altered electrochemical performance of platinum in PBS suggests that certain reactions on platinum at potentials outside the water window will not reflect what happens in vivo.
Key Findings
1
Extending the range to −1.0 to +1.7 V versus Ag/AgCl reveals additional platinum electrochemical activity in PBS, including one oxidation and two reduction peaks.
2
In the conventional range of −0.6 to +0.9 V versus Ag/AgCl, platinum voltammetry in PBS closely resembles published behavior in sulfuric acid.
3
Platinum reactions observed in PBS outside the water window may not accurately represent electrochemical processes occurring in vivo, limiting the physiological relevance of such stimulation conditions.
4
Separate testing in NaCl and sodium phosphate mixtures was used to identify which PBS components contribute to the altered platinum electrochemistry.
5
The study uses pulse-clamp coupled with voltammetry to investigate electrochemical by-products at platinum electrode–electrolyte interfaces relevant to stimulation-induced tissue trauma.
Research Object
platinum stimulating electrodes at the platinum–electrolyte interface in phosphate-buffered saline (PBS)
Research Subject
potential-dependent electrochemical activity and charge-transfer reactions of platinum, including electrochemical by-product formation, across conventional and extended voltage ranges
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2010-03-08
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