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Selective Formation of Porous Pt Nanorods for Highly Electrochemically Efficient Neural Electrode Interfaces

Authors :
Sang Heon Lee
Timothy Q. Gentner
Joel R. Martin
Hongseok Oh
Sang Baek Ryu
Shelley I. Fried
Ezequiel M. Arneodo
Michiko Shigyo
Anna Devor
Atsunori Tanaka
Shadi A. Dayeh
Vikash Gilja
Martin Marsala
Youngbin Tchoe
Jimmy C. Yang
Daniel R. Cleary
Ren Liu
Eric Halgren
Angelique C. Paulk
Mehran Ganji
Lorraine Hossain
Nasim W. Vahidi
Martin Thunemann
Sydney S. Cash
Seungwoo Lee
University of Zurich
Dayeh, Shadi A
Source :
Nano Letters. 19:6244-6254
Publication Year :
2019
Publisher :
American Chemical Society (ACS), 2019.

Abstract

The enhanced electrochemical activity of nanostructured materials is readily exploited in energy devices, but their utility in scalable and human-compatible implantable neural interfaces can significantly advance the performance of clinical and research electrodes. We utilize low-temperature selective dealloying to develop scalable and biocompatible one-dimensional platinum nanorod (PtNR) arrays that exhibit superb electrochemical properties at various length scales, stability, and biocompatibility for high performance neurotechnologies. PtNR arrays record brain activity with cellular resolution from the cortical surfaces in birds and nonhuman primates. Significantly, strong modulation of surface recorded single unit activity by auditory stimuli is demonstrated in European Starling birds as well as the modulation of local field potentials in the visual cortex by light stimuli in a nonhuman primate and responses to electrical stimulation in mice. PtNRs record behaviorally and physiologically relevant neuronal dynamics from the surface of the brain with high spatiotemporal resolution, which paves the way for less invasive brain−machine interfaces.

Details

ISSN :
15306992 and 15306984
Volume :
19
Database :
OpenAIRE
Journal :
Nano Letters
Accession number :
edsair.doi.dedup.....bb7e0cc70742a8bc20f9e1da5aff917f
Full Text :
https://doi.org/10.1021/acs.nanolett.9b02296