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May 16, 2026Polymer Engineering and Science2 citations

Facile Fabrication of Piezoelectric PVDF /Chitosan Blend Nanofibrous Membranes for Wound Dressing Applications

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MEMona El-HossainyWKW. A. KhalilNMNoha Mohamed

Key Points

  • This research aims to create PVDF/chitosan blend nanofibers for enhanced wound dressing capabilities.
  • Fabricated PVDF/chitosan nanofibers using a single-step electrospinning technique
  • Varying chitosan concentrations (5, 10, and 15 wt.%) were tested for their effects on nanofiber properties
  • Characterization included FTIR analysis and mechanical testing.
  • Young's modulus improved from 2.3 to 5.3 MPa and tensile strength from 0.35 to 0.7 MPa at 15% chitosan concentration
  • Incorporation of chitosan significantly enhanced cell viability and proliferation
  • Increased hydrophilicity, water uptake, and biodegradation were observed, benefiting wound healing.

Abstract

ABSTRACT The demand for polymer‐based nanofibers has surged due to their outstanding properties, which are a promising alternative for healing wounds, especially when combined with both natural and synthetic polymers to overcome their individual limitations. Throughout this research, we fabricated polyvinylidene fluoride (PVDF) nanofibers blended with chitosan in a single step via the electrospinning technique, without dissolving the chitosan in acid and subsequently removing the acid, which is a common issue in the electrospinning of chitosan. Also, we investigated the effect of varying chitosan concentration (5, 10, and 15 wt.%) on the properties of electrospun nanofibers. Characterization revealed that incorporating chitosan significantly increased viscosity and conductivity, which subsequently promoted the formation of uniform, bead‐free fibers. Fourier‐transform infrared (FTIR) spectra confirmed an advancement of the electroactive β‐phase content, indicating superior piezoelectric properties. The nanofibers also exhibited increased hydrophilicity, water uptake, and biodegradation, which are important features in wound healing applications. Mechanical testing showed marginal improvements at 15% Cs concentration in Young's modulus from 2.3 to 5.3 MPa and tensile strength from 0.35 to 0.7 MPa. Moreover, cytotoxicity assays demonstrated that chitosan incorporation significantly enhanced cell viability and proliferation.

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Cite This Study

El-Hossainy et al. (2026) studied this question.

synapsesocial.com/papers/6a080af2a487c87a6a40d11fhttps://doi.org/10.1002/pen.70588
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