Breheny Colette, Colbert Declan Mary, Bezerra Gilberto, Geever Joseph, Geever Luke M
Polymer, Recycling, Industrial, Sustainability and Manufacturing (PRISM) Research Institute, Technological University of the Shannon, University Road, N37 HD68 Athlone, Ireland.
Polymers (Basel). 2025 Apr 11;17(8):1042. doi: 10.3390/polym17081042.
Integrating thermochromic pigments (TPs) into food packaging offers significant benefits for monitoring temperature variations, improving food safety, and reducing waste. However, the recyclability of such materials remains underexplored, particularly regarding the retention of their optical and mechanical properties after repeated recycling. Addressing this gap, this research aims to evaluate how mechanical recycling affects key properties of polypropylene (PP) blends containing varying TP concentrations. Three formulations, PP100/TP0 (0% TP), PP98/TP2 (2% TP), and PP92/TP8 (8% TP), were subjected to five recycling cycles, with changes in thermal stability, color transition behavior, mechanical integrity, and surface morphology analyzed. The results indicate that PP100/TP0 maintained its mechanical integrity with minimal degradation (6% absolute crystallinity loss; color difference Δ* = 1.45) across recycling cycles. However, blends containing TPs exhibited progressive deterioration. P98/TP2 displayed moderate reductions in mechanical strength (-10.8%) and thermochromic efficiency (color change Δ* = 6.52), while PP92/TP8 showed significant degradation, including increased activation temperatures (+3.8 °C) and color vibrancy loss (42.9% loss in saturation). These effects were attributed to polymer breakdown, pigment aggregation, and altered crystallinity. Despite the limitations of recyclability, this study provides critical insights into the feasibility of TPs in sustainable, intelligent food packaging. Further research is required to enhance TP stability during reprocessing, ensuring long-term functionality in circular packaging systems.
将热致变色颜料(TPs)整合到食品包装中,对于监测温度变化、提高食品安全和减少浪费具有显著益处。然而,此类材料的可回收性仍未得到充分探索,特别是在经过多次回收后其光学和机械性能的保持方面。为填补这一空白,本研究旨在评估机械回收如何影响含有不同TP浓度的聚丙烯(PP)共混物的关键性能。三种配方,即PP100/TP0(0% TP)、PP98/TP2(2% TP)和PP92/TP8(8% TP),经历了五个回收循环,并分析了热稳定性、颜色转变行为、机械完整性和表面形态的变化。结果表明,PP100/TP0在整个回收循环中保持了其机械完整性,降解最小(绝对结晶度损失6%;色差Δ* = 1.45)。然而,含有TPs的共混物表现出逐渐恶化的情况。P98/TP2的机械强度(-10.8%)和热致变色效率(颜色变化Δ* = 6.52)有适度降低,而PP92/TP8则出现了显著降解,包括活化温度升高(+3.8 °C)和颜色鲜艳度损失(饱和度损失42.9%)。这些影响归因于聚合物分解、颜料聚集和结晶度改变。尽管存在可回收性的局限性,但本研究为TPs在可持续、智能食品包装中的可行性提供了关键见解。需要进一步研究以提高TPs在再加工过程中的稳定性,确保其在循环包装系统中的长期功能。