| Literature DB >> 30977967 |
Mingde Du1,2,3, Shouliang Guan1,2, Lei Gao1,2, Suye Lv1,2, Siting Yang1,2, Jidong Shi1,2, Jinfen Wang1,2,4, Hongbian Li1,2, Ying Fang1,2,5.
Abstract
Flexible electronics that can form tight interfaces with neural tissues hold great promise for improving the diagnosis and treatment of neurological disorders and advancing brain/machine interfaces. Here, the facile fabrication of a novel flexible micropillar electrode array (µPEA) is described based on a biotemplate method. The flexible and compliant µPEA can readily integrate with the soft surface of a rat cerebral cortex. Moreover, the recording sites of the µPEA consist of protruding micropillars with nanoscale surface roughness that ensure tight interfacing and efficient electrical coupling with the nervous system. As a result, the flexible µPEA allows for in vivo multichannel recordings of epileptiform activity with a high signal-to-noise ratio of 252 ± 35. The ease of preparation, high flexibility, and biocompatibility make the µPEA an attractive tool for in vivo spatiotemporal mapping of neural activity.Entities:
Keywords: electrocorticography; epilepsy; flexible electronics; neural recording; subdural electrodes
Year: 2019 PMID: 30977967 DOI: 10.1002/smll.201900582
Source DB: PubMed Journal: Small ISSN: 1613-6810 Impact factor: 13.281