Back to Search Start Over

A CMOS-based highly scalable flexible neural electrode interface.

Authors :
Zhao ET
Hull JM
Mintz Hemed N
Uluşan H
Bartram J
Zhang A
Wang P
Pham A
Ronchi S
Huguenard JR
Hierlemann A
Melosh NA
Source :
Science advances [Sci Adv] 2023 Jun 09; Vol. 9 (23), pp. eadf9524. Date of Electronic Publication: 2023 Jun 07.
Publication Year :
2023

Abstract

Perception, thoughts, and actions are encoded by the coordinated activity of large neuronal populations spread over large areas. However, existing electrophysiological devices are limited by their scalability in capturing this cortex-wide activity. Here, we developed an electrode connector based on an ultra-conformable thin-film electrode array that self-assembles onto silicon microelectrode arrays enabling multithousand channel counts at a millimeter scale. The interconnects are formed using microfabricated electrode pads suspended by thin support arms, termed Flex2Chip. Capillary-assisted assembly drives the pads to deform toward the chip surface, and van der Waals forces maintain this deformation, establishing Ohmic contact. Flex2Chip arrays successfully measured extracellular action potentials ex vivo and resolved micrometer scale seizure propagation trajectories in epileptic mice. We find that seizure dynamics in absence epilepsy in the Scn8a <superscript>+/-</superscript> model do not have constant propagation trajectories.

Details

Language :
English
ISSN :
2375-2548
Volume :
9
Issue :
23
Database :
MEDLINE
Journal :
Science advances
Publication Type :
Academic Journal
Accession number :
37285436
Full Text :
https://doi.org/10.1126/sciadv.adf9524