Please use this identifier to cite or link to this item: http://hdl.handle.net/1942/49807
Title: Influence of Bulk-Mixed and Surface-Coated Morphologies on Functionality and Migration in Nano Ag/PHBHHx Packaging Films
Authors: HERMANS, Dries 
ANDJELIC, Andrej 
Bonilha, Maria Eduarda Dias
VANHEUSDEN, Chris 
DEFERME, Wim 
ETHIRAJAN, Anitha 
D'HAEN, Jan 
Samyn , Pieter
Steenackers, Hans
MARCHAL, Wouter 
BUNTINX, Mieke 
Issue Date: 2026
Publisher: WILEY
Source: Packaging Technology & Science,
Status: Early view
Abstract: Silver nanoparticles (Ag NPs) in (bio)plastic (packaging) materials are known to introduce antimicrobial activity. However, the morphology of the nanocomposite must enable effective interactions between Ag and microorganisms, while keeping Ag migration within regulatory safety limits. Therefore, this study examines how bulk-mixed versus surface-coated morphologies affect functional packaging properties and Ag migration in Ag/poly(3-hydroxybutyrate-co-3-hydroxyhexanoate) (PHBHHx) nanocomposite films. For the bulk-mixed model, Ag NPs were melt-mixed into PHBHHx (0.2 and 2.0 wt.%) via extrusion and compression moulded into films. For the surface-coated model, stable aqueous dispersions of PHBHHx-encapsulated Ag NPs (10 and 40 wt.%, < 300 nm), prepared via mini-emulsion and solvent evaporation, were ultrasonically spray-coated (50 layers) onto film-extruded PHBHHx substrates. Commercial spherical Ag NPs (50 nm) with and without PVP-coating were investigated. Optical and SEM images show a homogeneous NP distribution in both models, albeit with some agglomeration. Due to the higher absolute Ag content, the bulk-mixed films show a significant difference in colour, opacity and UV-Vis transmittance compared to the surface-coated films. While the coating layer is insufficient to affect the oxygen barrier, the oxygen permeability coefficient of the bulk-mixed films is reduced by 15%-31%. Despite their lower Ag content, surface-coated films effectively inhibit the growth of S. aureus and E. coli, while bulk-mixed films show no clear antibacterial properties. The rationale for the antibacterial activity is further supported by a detailed migration study using single particle inductively coupled plasma mass spectrometry across different food simulants (10 v/v% ethanol and 3 w/v% acetic acid), which elucidated distinct migration mechanisms for the surface-coated (fast desorption and continuous dissolution) and bulk-mixed models (slow diffusion). Overall, these findings highlight the critical influence of nanocomposite morphology on film functionality and safety. Further optimising the two approaches may enhance processing flexibility, leading to safe active packaging applications.
Notes: Buntinx, M (corresponding author), Univ Hasselt, Inst Mat Res IUMAT, Hasselt, Belgium.; Buntinx, M (corresponding author), IUMAT, Imec, Diepenbeek, Belgium.
mieke.buntinx@uhasselt.be
Keywords: active packaging;food safety;nanocomposites;nanoparticle migration;polyhydroxyalkanoates;silver nanoparticles
Document URI: http://hdl.handle.net/1942/49807
ISSN: 0894-3214
e-ISSN: 1099-1522
DOI: 10.1002/pts.70105
ISI #: 001830829000001
Rights: 2026 John Wiley & Sons Ltd. All rights reserved, including rights for text and data mining and training of artificial intelligence technologies or similar technologies.
Category: A1
Type: Journal Contribution
Appears in Collections:Research publications

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