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Scalable Thousand Channel Penetrating Microneedle Arrays on Flex for Multimodal and Large Area Coverage BrainMachine Interfaces.

Authors :
Lee, Sang Heon
Thunemann, Martin
Lee, Keundong
Cleary, Daniel R.
Tonsfeldt, Karen J.
Oh, Hongseok
Azzazy, Farid
Tchoe, Youngbin
Bourhis, Andrew M.
Hossain, Lorraine
Ro, Yun Goo
Tanaka, Atsunori
Kılıç, Kıvılcım
Devor, Anna
Dayeh, Shadi A.
Source :
Advanced Functional Materials. 6/17/2022, Vol. 32 Issue 25, p1-13. 13p.
Publication Year :
2022

Abstract

The Utah array powers cutting‐edge projects for restoration of neurological function, such as BrainGate, but the underlying electrode technology has itself advanced little in the last three decades. Here, advanced dual‐side lithographic microfabrication processes is exploited to demonstrate a 1024‐channel penetrating silicon microneedle array (SiMNA) that is scalable in its recording capabilities and cortical coverage and is suitable for clinical translation. The SiMNA is the first penetrating microneedle array with a flexible backing that affords compliancy to brain movements. In addition, the SiMNA is optically transparent permitting simultaneous optical and electrophysiological interrogation of neuronal activity. The SiMNA is used to demonstrate reliable recordings of spontaneous and evoked field potentials and of single unit activity in chronically implanted mice for up to 196 days in response to optogenetic and to whisker air‐puff stimuli. Significantly, the 1024‐channel SiMNA establishes detailed spatiotemporal mapping of broadband brain activity in rats. This novel scalable and biocompatible SiMNA with its multimodal capability and sensitivity to broadband brain activity will accelerate the progress in fundamental neurophysiological investigations and establishes a new milestone for penetrating and large area coverage microelectrode arrays for brain–machine interfaces. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
1616301X
Volume :
32
Issue :
25
Database :
Academic Search Index
Journal :
Advanced Functional Materials
Publication Type :
Academic Journal
Accession number :
157517288
Full Text :
https://doi.org/10.1002/adfm.202112045