• DocumentCode
    1471830
  • Title

    Electrodeposited iridium oxide for neural stimulation and recording electrodes

  • Author

    Meyer, Ross D. ; Cogan, Stuart F. ; Nguyen, Trung H. ; Rauh, R.David

  • Author_Institution
    EIC Lab. Inc., Norwood, MA, USA
  • Volume
    9
  • Issue
    1
  • fYear
    2001
  • fDate
    3/1/2001 12:00:00 AM
  • Firstpage
    2
  • Lastpage
    11
  • Abstract
    Iridium oxide films formed by electrodeposition onto noniridium metal substrates are compared with activated iridium oxide films (AIROFs) as a low impedance, high charge capacity coating for neural stimulation and recording electrodes. The electrodeposited iridium oxide films (EIROFs) were deposited on Au, Pt, PtIr, and 316 LVM stainless steel substrates from a solution of IrCl 4, oxalic acid, and K 2CO 3. A deposition protocol involving 50 potential sweeps at 50 mV/s between limits of 0.0 V and 0.55 V (versus Ag|AgCl) followed by potential pulsing between the same limits produced adherent films with a charge storage capacity of >25 mC/cm 2. Characterization by cyclic voltammetry and impedance spectroscopy revealed no differences in the electrochemical behavior of EIROF on non-Ir substrates and AIROF. The mechanical stability of the oxides was evaluated by ultrasonication in distilled water followed by dehydration and rehydration. Stability under charge injection was evaluated using 200 μs, 5.9 A/cm 2 (1.2 mC/cm 2) cathodal pulses. Loss of iridium oxide charge capacity was comparable for AIROFs and the EIROFs, ranging from 1% to 8% of the capacity immediately after activation or deposition. The EIROFs were deposited and evaluated on silicon microprobe electrodes and on metallized polyimide electrodes being developed for neural recording and stimulation applications.
  • Keywords
    biomedical electrodes; charge injection; electrochemical electrodes; electrodeposition; electrodeposits; iridium compounds; mechanical stability; microelectrodes; neuromuscular stimulation; voltammetry (chemical analysis); IrO; adherent films; charge capacity loss; cyclic voltammetry; dehydration; electrodeposited films; electrodeposition protocol; high charge capacity coating; impedance spectroscopy; low impedance; mechanical stability; metallized polyimide electrodes; microelectrodes; neural stimulation electrodes; potential pulsing; potential sweeps; recording electrodes; rehydration; silicon microprobe electrodes; ultrasonication in distilled water; Coatings; Electrochemical impedance spectroscopy; Electrodes; Gold; Metallization; Polyimides; Protocols; Silicon; Stability; Steel; Electric Capacitance; Electric Impedance; Electric Stimulation; Electrochemistry; Electroplating; Iridium; Microelectrodes; Models, Neurological; Neural Conduction; Signal Transduction;
  • fLanguage
    English
  • Journal_Title
    Neural Systems and Rehabilitation Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1534-4320
  • Type

    jour

  • DOI
    10.1109/7333.918271
  • Filename
    918271