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Molecular Models of Nanoplastics from Semi-Crystalline Polyethylene

Macromolecules 2025 4 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count.
Enzo Venezia, Andrea Correa, Rosario Esposito, Gianmarco Munaò, Antonio De Nicola, Giuseppe Milano

Summary

Scientists built detailed computer models to study how tiny plastic fragments, smaller than microplastics, called nanoplastics, behave when common plastics like polyethylene (used in bags and bottles) break down in water. They found that these nanoplastic pieces tend to clump together on their own, and factors like water acidity and dissolved minerals affect how they stick together. This matters because understanding how nanoplastics behave in water could help researchers predict where they end up in the environment and eventually assess how they might affect our bodies if ingested through food or water.

Polymers

High Resolution Image Download MS PowerPoint Slide Molecular models for nanosized polar crystalline fragments generated during the degradation of semicrystalline polyethylene (PE), suitable for hybrid-particle field molecular dynamics, are proposed. These models provide detailed thermodynamic and structural characterization of the agglomeration of fragments constituting nanoplastics in aqueous media. Effects of aging and environmental conditions in terms of surface chemistry, pH, and counterion valence of the models are studied. In particular, the colloidal stability of fragment pairs in water has been investigated by calculating free energy as a function of interfragment distance using the thermodynamic integration technique. The behaviors obtained are in line with experimental literature. Large-scale MD simulations of multifragment systems in water show spontaneous self-assembly for all considered fragment models. Due to their molecular resolution and computational efficiency, the proposed models are able to include detailed representations of environmentally relevant systems, paving the way to a molecular understanding of the behavior of nanoplastics from semicrystalline polymers in the environment.

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