Skip to main navigation Skip to search Skip to main content

Polyhydroxyalkanoate carbon nanotube nanocomposites: flexible electrically conducting elastomers for neural applications

Research output: Contribution to a Journal (Peer & Non Peer)Articlepeer-review

Abstract

Aim: Medium chain length-polyhydroxyalkanoate multi-walled carbon nanotube (MWCNTs) nanocomposites with a range of mechanical and electrochemical properties were fabricated via assisted dispersion and solvent casting, and their suitability as neural interface biomaterials was investigated. Materials methods: Mechanical and electrical properties of medium chain length-polyhydroxyalkanoate MWCNTs nanocomposite films were evaluated by tensile test and electrical impedance spectroscopy, respectively. Primary rat mesencephalic cells were seeded on the composites and quantitative immunostaining of relevant neural biomarkers, and electrical stimulation studies were performed. Results: Incorporation of MWCNTs to the polymeric matrix modulated the mechanical and electrical properties of resulting composites, and promoted differential cell viability, morphology and function as a function of MWCNT concentration. Conclusion: This study demonstrates the feasibility of a green thermoplastic MWCNTs nanocomposite for potential use in neural interfacing applications.Aim: Medium chain length-polyhydroxyalkanoate multi-walled carbon nanotube (MWCNTs) nanocomposites with a range of mechanical and electrochemical properties were fabricated via assisted dispersion and solvent casting, and their suitability as neural interface biomaterials was investigated. Materials methods: Mechanical and electrical properties of medium chain length-polyhydroxyalkanoate MWCNTs nanocomposite films were evaluated by tensile test and electrical impedance spectroscopy, respectively. Primary rat mesencephalic cells were seeded on the composites and quantitative immunostaining of relevant neural biomarkers, and electrical stimulation studies were performed. Results: Incorporation of MWCNTs to the polymeric matrix modulated the mechanical and electrical properties of resulting composites, and promoted differential cell viability, morphology and function as a function of MWCNT concentration. Conclusion: This study demonstrates the feasibility of a green thermoplastic MWCNTs nanocomposite for potential use in neural interfacing applications.
Original languageEnglish (Ireland)
JournalNanomedicinenanomedicine
Volume11
Issue number1919
Publication statusPublished - 1 Oct 2016

Authors (Note for portal: view the doc link for the full list of authors)

  • Authors
  • Vallejo-Giraldo, C.,Pugliese, E.,Larrañaga, A.,Fernandez-Yague, M. A.,Britton, J. J.,Trotier, A.,Tadayyon, G.,Kelly, A.,Rago, I.,Sarasua, J. R.,Dowd, E.,Quinlan, L. R.,Pandit, A.,Biggs, M. J. P.

Fingerprint

Dive into the research topics of 'Polyhydroxyalkanoate carbon nanotube nanocomposites: flexible electrically conducting elastomers for neural applications'. Together they form a unique fingerprint.

Cite this