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Fabrication of iridium oxide/platinum composite film on titanium substrate for high-performance neurostimulation electrodes

  • Tsai Wei Chung
  • , Chih Ning Huang
  • , Po Chun Chen
  • , Toshihiko Noda
  • , Takashi Tokuda
  • , Jun Ohta

Research output: Contribution to journalArticlepeer-review

11 Scopus citations

Abstract

Electrode materials for neural stimulation have been widely investigated for implantable devices. Among them, iridium and iridium oxide are attractive materials for bio-interface applications due to their desirable stability, electrochemical performance, and biocompatibility. In this study, iridium oxide/platinum (IrOx/Pt) composite films were successfully fabricated on titanium substrates by chemical bath deposition and these films are expected to be used as biocompatible stimulation electrodes. We modified the film compositions to optimize the performances. In addition, these IrOx/Pt composite films were characterized before and after annealing by SEM and XRD.We also identified the hydrophilicity of these iridium oxide/platinum composite films by measuring contact angles. Finally, the charge storage capacities of these iridium oxide/platinum composite films were evaluated by an electrochemical workstation. As a result, the charge storage capacities of the iridium oxide/platinum composite films are largely increased, and this leads to a very efficient neurostimulation electrode. Additionally, we successfully demonstrated the chemical bath deposition of IrOx film on the surface of the bullet-shaped titanium microelectrode.

Original languageEnglish
Article number420
JournalCoatings
Volume8
Issue number12
DOIs
StatePublished - 1 Dec 2018

Bibliographical note

Publisher Copyright:
© 2018 by the authors.

Keywords

  • Biocompatible thin film
  • Bullet-shaped microelectrode
  • IrO/Pt composite film
  • Stimulation electrodes

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