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Published on: June 17, 2014
Multifunctional composite polyvinyl alcohol film reinforced with polymeric ionic liquid-modified cellulose
Wenqi Song1, Zhiqiang Li2, Jiahui Qu2
1Technological Institute of Materials & Energy Science (TIMES), Shaanxi Key Laboratory of Liquid Crystal Polymer Intelligent Display, Key Laboratory of Liquid Crystal Polymers based Flexible Display Technology in National Petroleum and Chemical Industry, Xi'an Key Laboratory of Advanced Photo-Electronics Materials and Energy Conversion Device, School of Electronic Information, Xijing University, Xi'an 710123, PR China.
Abstract:
Multifunctional food packaging remains challenging due to complex processes requiring multiple additives. This study presents a simplified fabrication of polyvinyl alcohol (PVA) composite films using a multifunctional nanofiller. An ionic liquid monomer (ILFeIII) bearing quaternary ammonium salt (QAS) cations for antibacterial activity and tetrachloroferrate(III) anions (FeCl₄-) for photothermal conversion was grafted onto cellulose nanocrystals (CNCs) to producing CNC@PILFeIII nanofiller, which was incorporated into PVA by one-pot blending and casting. Owing to the rationally designed ionic liquid structure, incorporating QAS cations, hydrophobic phenyl/alkyl groups, and FeCl₄- anions, this nanofiller endowed the PVA/CNC@PILFeIII composite films with multimodal antibacterial activity, mechanical reinforcement, and enhanced water resistance. The optimized film exhibited mechanical strength (tensile strength 11.92 ± 0.21 MPa and elongation at break 202.1 ± 2.7 %), stiffness (66.40 ± 0.71 MPa), water resistance (water contact angle 98.8 ± 3.0°), and reduced oxygen and water vapor permeability, along with >99 % antibacterial efficacy against E. coli and S. aureus and > 90 % cytocompatibility. Preservation tests on cherry tomatoes showed significantly inhibited microbial growth, reduced weight loss, and sustained texture and acidity over 14 days, demonstrating effectively extended shelf life. This approach offers a promising strategy for sustainable, high-performance food packaging materials.
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