4.8 Article

NanoPt-A Nanostructured Electrode Coating for Neural Recording and Microstimulation

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 12, 期 13, 页码 14855-14865

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.9b22798

关键词

neural probe; electrode coating; nanostructured platinum; bio-electronics; recording and stimulation

资金

  1. BrainLinks-BrainTools, Cluster of Excellence - German Research Foundation (DFG) [EXC 1086]
  2. Carl-ZeissFoundation (project Computational Neuroscience of Brain Disease)
  3. Brigitte-Schlieben-Lange-Programm (Ministerium fur Wissenschaft, Forschung und Kunst BadenWurttemberg)

向作者/读者索取更多资源

Bioelectronic devices, interfacing neural tissue for therapeutic, diagnostic, or rehabilitation purposes, rely on small electrode contacts in order to achieve highly sophisticated communication at the neural interface. Reliable recording and safe stimulation with small electrodes, however, are limited when conventional electrode metallizations are used, demanding the development of new materials to enable future progress within bioelectronics. In this study, we present a versatile process for the realization of nanostructured platinum (nanoPt) coatings with a high electrochemically active surface area, showing promising biocompatibility and providing low impedance, high charge injection capacity, and outstanding long-term stability both for recording and stimulation. The proposed electrochemical fabrication process offers exceptional control over the nanoPt deposition, allowing the realization of specific coating morphologies such as small grains, pyramids, or nanoflakes, and can moreover be scaled up to wafer level or batch fabrication under economic process conditions. The suitability of nanoPt as a coating for neural interfaces is here demonstrated, in vitro and in vivo, revealing superior stimulation performance under chronic conditions. Thus, nanoPt offers promising qualities as an advanced neural interface coating which moreover extends to the numerous application fields where a large (electro)chemically active surface area contributes to increased efficiency.

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