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Thermal Conductivity and Degradation Kinetics of Copper Nanoparticle-Reinforced Polypropylene Composites: Towards Thermally Enhanced Active Food Packaging

Sep 2026 · Bulletin of the Karaganda University. "Physics" Series · 0 citations

Abstract

This study investigates the thermal conductivity and degradation kinetics of copper nanoparticle (Cu NP) reinforced polypropylene (PP) composites as potential materials for thermally enhanced food-packaging applications. Cu NP–PP nanocomposites were prepared by twin-screw extrusion at 0, 1, 2, 5, and 10 wt% Cu NP. Thermal conductivity (λ) was measured using the transient hot-wire method (ASTM D5930; n = 5 specimens per composition), while thermal stability was characterised by thermogravimetric analysis (TGA) and differential scanning calorimetry (DSC; n = 3 per composition). Mi crostructure and phase composition were examined by FE-SEM, EDS, and XRD. Cu NP incorporation raised lambda from 0.18 +/- 0.02 W/m/K (pure PP) to 0.47 +/- 0.05 W/m/K at 10 wt% — a 2.6-fold enhancement consistent with percolation network formation (phi_c ~0.004, t = 1.87). Multi-rate Kissinger kinetic analysis of TGA data (four heating rates: 5, 10, 15, 20 C/min) yielded apparent activation energy (Ea) increasing from 168 +/- 4 kJ/mol to 189 +/- 5 kJ/mol, corroborated by Ozawa-Flynn-Wall (OFW) isoconversional analysis, and accompanied by a 17 C rise in onset degradation temperature. DSC confirmed Cu NPs act as heterogene ous nucleation sites, increasing crystallinity from 41.7 +/- 0.8 % to 50.2 +/- 1.2 % and crystallisation tempera ture by 7 C. The principal novelty of this work is the quantitative percolation threshold determination (phi_c, t) and formal multi-rate Kissinger kinetic analysis for the Cu NP-PP system, providing physical pa rameters absent from prior studies. Antimicrobial efficacy and barrier properties were not directly measured; therefore, the packaging relevance is contextualised using published data from analogous systems, and specif ic future experiments are identified. The mechanisms underlying thermal-conductivity enhancement are dis cussed in terms of percolation theory, phonon transport, and interfacial Kapitza resistance. Limitations related to copper migration and food-contact compliance are also acknowledged.

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