Skip to Main Content (Press Enter)

Logo UNIME
  • ×
  • Home
  • Degrees
  • Courses
  • Jobs
  • People
  • Outputs
  • Organizations
  • Third Mission
  • Expertise & Skills

Expertise & Skills
Logo UNIME

|

UNIFIND - Expertise & Skills

unime.it
  • ×
  • Home
  • Degrees
  • Courses
  • Jobs
  • People
  • Outputs
  • Organizations
  • Third Mission
  • Expertise & Skills
  1. Outputs

P3HT-Based Electroactive Films for In Vitro Neuronal Cell Interfacing

Academic Article
Publication Date:
2025
abstract:
Numerous efforts have been made to address the mechanical mismatch between bioelectronic devices and tissues in the past few years. Interfaces that better mimic the properties of biological tissues can be produced with the support of organic materials, which have a unique combination of soft mechanical properties, biocompatibility, and ionic-electronic conduction, which match the properties of living systems and allow the signal to be transduced at the biotic-abiotic interface. In this context, Poly(3-hexylthiophene) (P3HT), a p-type semiconducting polymer, having good biocompatibility, electrical conductivity, and mechanical properties, is studied. In this work, a polymer blend of P3HT and multi-walled carbon nanotubes (MWCNT) is prepared and deposited on the surface as an electroactive thin film resulting in a tunable nanostructured surface. Further, the biological properties of this new substrate in vitro is evaluated. The conductive polymer-based substrate and the HT-22 cell line can be better connected because of this nanostructured surface effect on the cells' responses to local changes in curvature and topography of the materials. This model is simple yet effectively shows the investigation of neuronal responses to morphological characteristics and electronic interfaces.
Iris type:
14.a.1 Articolo su rivista
Keywords:
bioelectronics; biointerfaces; carbon nanotubes; cell culture; cell-chip coupling; neuroelectronics; P3HT
List of contributors:
Campione, P.; Latte Bovio, C.; Calabrese, G.; Santoro, F.; Messina, G. M. L.
Authors of the University:
CALABRESE Giovanna
Handle:
https://iris.unime.it/handle/11570/3336432
Published in:
ADVANCED MATERIALS INTERFACES
Journal
  • Overview

Overview

URL

https://advanced.onlinelibrary.wiley.com/doi/epdf/10.1002/admi.202400776
  • Guide
  • Help
  • Accessibility
  • Privacy
  • Use of cookies
  • Legal notes

Powered by VIVO | Designed by Cineca | 26.4.5.0