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February 26, 2026Industrial & Engineering Chemistry Research0 citations

Peroxide-Driven Morphological Transition of the PHBV Phase in PLA for Transparent, High-Barrier Biodegradable Blends

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XCXinyue ChenYLYi-Meng LiangMYMeng Yang

Key Points

  • The aim is to develop biodegradable PLA films with enhanced gas barrier properties and optical transparency through morphological changes in a PHBV phase.
  • Used a low-cost reactive extrusion strategy
  • Added 0.1 phr peroxide to induce morphological transformation
  • Conducted rheological analysis and positron annihilation lifetime spectroscopy to assess material properties
  • Oxygen permeability decreased by 94.0% and water vapor permeability by 80.6%
  • Optical transmittance increased from 20.3% to 86.6%
  • Rheological analysis showed viscosity contrast leading to phase fibrillation

Abstract

Developing biodegradable polylactide (PLA) films with simultaneously high gas barrier and optical transparency remains challenging due to intrinsic trade-offs among permeability, crystallinity, and light scattering. Herein, we report a simple, low-cost reactive extrusion strategy that overcomes this limitation by tailoring the morphology of a dispersed poly(3-hydroxybutyrate-co-3-hydroxyvalerate) (PHBV) phase in a PLA matrix. Trace peroxide addition (0.1 phr) induces an in situ transformation of PHBV from spherical droplets to high-aspect-ratio, platelet-like nanofibers. As a result, the oxygen and water vapor permeability of PLA/PHBV (90/10) films decrease by 94.0% and 80.6%, respectively, while optical transmittance increases from 20.3% to 86.6%. Rheological analysis reveals peroxide-induced viscosity contrast driving phase fibrillation, and positron annihilation lifetime spectroscopy confirms reduced free volume resulting from enhanced interfacial compatibility. This work provides a scalable route for designing multifunctional biodegradable barrier films for sustainable packaging.

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/699fe3f995ddcd3a253e8220https://doi.org/10.1021/acs.iecr.5c04240
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