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December 4, 2025Applied Nano8 citationsOpen Access

Development of Chitosan-Based Nanocomposite Films Functionalized with Ag/TiO2 Catalysts for Antimicrobial and Packaging Applications

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LCLuiz Eduardo Nochi CastroWSWilliam Gustavo SganzerlaCMCarina Mendonça Muller

Key Points

  • Reduced Escherichia coli viability by 40.4% and Staphylococcus aureus by 8.2% with 10 wt% Ag/TiO2.
  • Films exhibited structural, mechanical, and optical properties beneficial for active food packaging applications.
  • The solvent-casting approach enabled effective integration of Ag/TiO2 in chitosan matrix for added functionality.
  • Highlights the potential of biopolymer-based nanocomposites for sustainable packaging solutions.

Abstract

The growing demand for environmentally friendly materials has driven extensive research into biopolymer-based nanocomposites with enhanced functional performance. Chitosan, a naturally derived polysaccharide, offers excellent film-forming ability, biodegradability, and antimicrobial potential, making it a promising matrix for sustainable packaging and coating applications. In this study, a distinctive solvent-casting strategy was employed to fabricate chitosan-based nanocomposite films functionalized with dual-action silver/titania (Ag/TiO2) nanoparticles, combining both photocatalytic and metallic antimicrobial mechanisms—an approach that provides broader functionality than conventional single-component fillers. The biodegradable films were systematically characterized for their structural, mechanical, optical, and barrier properties, as well as their antimicrobial performance. The integration of Ag/TiO2 imparted unique synergistic effects, modifying film morphology and color, slightly reducing tensile strength, and enhancing hydrophobicity and structural compactness. The obtained water vapor permeability values (0.013–0.102 g·mm·m−2·h−1·kPa−1) classified the materials as moderate barriers, comparable to or better than many existing chitosan-based systems without nanofiller reinforcement. Notably, films containing 10 wt% Ag/TiO2 achieved a 40.4% reduction in Escherichia coli viability and an 8.2% inhibition of Staphylococcus aureus, demonstrating concentration-dependent antimicrobial activity superior to that of neat chitosan films. Overall, the unique combination of a biodegradable chitosan matrix with multifunctional Ag/TiO2 nanofillers offers clear advantages over traditional biopolymer films, highlighting their potential as advanced materials for active food packaging and antimicrobial surface coatings.

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Cite This Study

Castro et al. (2025) studied this question.

synapsesocial.com/papers/6930e8d7ea1aef094cca3bc5https://doi.org/10.3390/applnano6040028
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