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The impact of chemical functionalization of carbon nanotubes on the electrochemical performance of carbon fiber/pyrocarbon/carbon nanotube composites as potential materials for electrodes for nerve cell stimulation

creativework.datePublished2024-07-08
dc.contributor.authorZambrzycki, Marcel
dc.contributor.authorWielowski, Ryszard
dc.contributor.authorGubernat, Maciej
dc.contributor.authorJantas, Danuta
dc.contributor.authorPaczosa-Bator, Beata
dc.contributor.authorFrączek-Szczypta, Aneta
dc.contributor.departmentWydział Inżynierii Materiałowej i Ceramiki
dc.date.available2025-03-13T10:11:22Z
dc.date.issued2024
dc.description.abstractIn this work, we propose a new carbon–carbon (C–C) composites as a potential materials for electrodes for neural stimulation in neurodegenerative disorders. The C–C composites were made via chemical vapour deposition (CVD) synthesis of pyrocarbon on carbon fibers, with subsequent thermal spray deposition of carbon nanotubes (CNT). Different CNT types were tested to evaluate their impact on electrochemical and biological performance. Materials were analyzed for microstructure, surface chemistry, and electrochemical properties, then tested using SH-SY5Y neuroblastoma cells for biological assessment. The C–C composites coated with a hydroxy-terminated CNT demonstrated significantly enhanced electrochemical properties, in particular increased cathodal charge capacity up to 12.51 mC cm−2, a wide safe potential window of −1.53 to 1.26 V, and decreased impedance, and cut-off frequency (fcut-off = 0.16 kHz). No acute negative biological responses of the materials were detected after 48 h of exposition. Such properties significantly outperform the properties of platinum, which is the basic element of platinum electrodes, demonstrating the excellent performance of the obtained composites and showing it may constitute the basic element of carbon electrodes for nerve stimulation in the future. Our work presents the method for obtaining biologically inert carbon composite micro-electrodes which can potentially be adapted to neural stimulation.en
dc.description.versionwersja wydawnicza
dc.identifier.doihttps://doi.org/10.1016/j.apsusc.2024.160713
dc.identifier.urihttps://repo.agh.edu.pl/handle/AGH/111621
dc.language.isoeng
dc.relation.isbasedonhttps://doi.org/10.58032/AGH/4GTUYT
dc.rightsAttribution 4.0 International
dc.rights.accessotwarty dostęp
dc.rights.urihttps://creativecommons.org/licenses/by/4.0/legalcode
dc.subjectdeep brain stimulationen
dc.subjectneural electrodesen
dc.subjectneurodegenerative disordersen
dc.subjectCarbon nanotubesen
dc.subjectCarbon-carbon compositesen
dc.subjectCarbon electrodesen
dc.subjectelectrochemical propertiesen
dc.subjectParkinson’s diseaseen
dc.titleThe impact of chemical functionalization of carbon nanotubes on the electrochemical performance of carbon fiber/pyrocarbon/carbon nanotube composites as potential materials for electrodes for nerve cell stimulation
dc.title.relatedApplied Surface Science
dc.typeartykuł
dspace.entity.typePublication
organization.identifier.ror03ha2q922
project.funder.nameNarodowe Centrum Nauki (NCN)
project.identifier2020/39/B/ST5/02126
project.nameHybrid carbon composites for stimulation of cells of the central nervous system
project.program.nameOPUS
publicationissue.issueNumber160713
publicationissue.pagination1-14
publicationvolume.volumeNumber2024, vol. 23
relation.isAuthorOfPublication6997c3b7-76a8-4222-a788-ec0690a5a540
relation.isAuthorOfPublication8839714d-3e5b-4c98-83bc-e0dd7698f0ed
relation.isAuthorOfPublication2d9e16b3-38cd-4e67-b9fc-86d7c6534b84
relation.isAuthorOfPublication6db24686-d76e-414b-8c5f-df4748e67bb6
relation.isAuthorOfPublication.latestForDiscovery6997c3b7-76a8-4222-a788-ec0690a5a540

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