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March 10, 2026Journal of Applied Polymer Science2 citations

Functionalized Nanocrystalline Cellulose Reinforced PLA / PHBH Blend Films: Assessment of Mechanical, Thermal and Barrier Properties for Sustainable Packaging Applications

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BSBaba Linkanmani SahooSMSmita MohantySNSanjay K. Nayak

Key Points

  • The study aims to enhance the properties of biodegradable polyester blend films using functionalized nanocrystalline cellulose.
  • Prepared PLA/PHBH blend films using reactive melt extrusion technique.
  • Incorporated CNC-g-GMA as a reinforcing agent into blend compositions.
  • Analyzed mechanical, thermal, and barrier properties of the resultant films.
  • Achieved a maximum tensile strength of 52.25 MPa with a 39% improvement over neat PLA.
  • Demonstrated 47.20% reduction in water barrier and 32.64% reduction in oxygen barrier.
  • Increased thermal stability from 388.98°C to 410.98°C with the addition of CNC-g-GMA.

Abstract

ABSTRACT In the current study, biodegradable polyester blend film of polylactic acid (PLA) and poly (3‐hydroxybutyrate‐co‐3‐hydroxyhexanoate) (PHBH) have been prepared with a broad range of compositions employing reactive melt extrusion technique. Glycidyl methacrylate (GMA) functionalized nanocrystalline cellulose (CNC‐g‐GMA) was used as a reinforcing agent to improve the functional properties in the blend film. Mechanical findings revealed that PLA/PHBH film at 75:25 wt% exhibited improved synergism with 1 wt% CNC‐g‐GMA resulting an optimum increase in tensile strength (TS) to 52.25 MPa representing 39% improvement compared with neat PLA. Similarly, optimum tensile modulus (TM) of 3308.25 MPa was observed in the blend film with a consistent increase in elongation at break (EB) throughout the compositions. Heat sealing strength revealing nearly 7.98% improvement over neat PLA. Water and oxygen barrier analysis demonstrated 47.20% and 32.64% reduction indicating superior barrier resistance in presence of CNC‐g‐GMA creating a tortuous path. Interaction of CNC‐g‐GMA within the polymer matrix resulted improved thermal stability from 388.98°C to 410.98°C. The light scattering and the transparency in the film also improved thus making them suitable for packaging applications with superior strength and barrier resistance.

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Cite This Study

Sahoo et al. (2026) studied this question.

synapsesocial.com/papers/69af95ee70916d39fea4e150https://doi.org/10.1002/app.70633
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