Synergistic Interface Platforms: Designing Superhydrophilic Conductive Nanoparticle‐Decorated Nanofibrous Membranes

Author:

Keirouz Antonios12ORCID,Jungwirth Ute34ORCID,Graf Arthur56,Leese Hannah S.12ORCID

Affiliation:

1. Materials for Health Lab, Department of Chemical Engineering University of Bath Bath BA2 7AY UK

2. Centre for Bioengineering and Biomedical Technologies (CBio) University of Bath Bath BA2 7AY UK

3. Department of Life Sciences University of Bath Bath BA2 7AY UK

4. Translational and Clinical Research Institute Newcastle Drug Discovery Group Newcastle University Paul O'Gorman Building Newcastle upon Tyne NE2 4HH UK

5. HarwellXPS Research Complex at Harwell Rutherford Appleton Lab Didcot OX11 0FA UK

6. School of Chemistry Cardiff University Main Building, Park Place Cardiff CF10 3AT UK

Abstract

AbstractIn today's technological landscape, advancing methods for producing conductive membranes that simplify and streamline the development of advanced interface materials is crucial. This study introduces a versatile and innovative method for fabricating superhydrophilic, conductive nanofibrous membranes based on the in situ synthesis of polypyrrole nanoparticles on poly(vinylidene fluoride‐co‐hexafluoropropylene) (PVDF‐HFP) electrospun fibers. The composite membranes morphologically exhibit a particle‐decorated nanofibrous configuration, with polypyrrole nanoparticles distributed along the individual fibers' surface. The nanoparticle‐nanofiber configuration shows distinctive properties; electrochemically, the electrospun mats demonstrate excellent inherent electrical conductivity, good cyclic and high electrochemical stability, and low resistance. Furthermore, the amphiphilic and superhydrophilic behavior, achieved through nanotopography, porosity and interactions between the intrinsically conductive polymer and the PVDF‐HFP fibers, enables efficient uptake of polar and nonpolar analytes. The membranes also demonstrate good in vitro cell viability of both murine and human fibroblasts. Given its efficient interaction with liquids and omnidirectional 360‐degree conductivity, this material emerges as an excellent candidate for use as a biocompatible, multifunctional interface layer. The produced nanoparticle‐nanofibrous membrane materials offer a promising platform for interface applications, featuring enhanced spatiotemporal configurations and wide‐ranging applicability.

Funder

Engineering and Physical Sciences Research Council

Publisher

Wiley

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