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Updated: Aug 31, 2026

Extraction of Organochlorine Pesticides from Plastic Pellets and Plastic Type Analysis
Published on: July 1, 2017
Degradation-driven release of microplastics and plasticizers from typical plastics: Implications for environmental
Nina Yang1, Yanyan Zhang1, Cong Men2
1State Key Joint Laboratory of Environmental Simulation and Pollution Control, School of Environment, Tsinghua University, Beijing 100084, China.
Abstract:
The release of microplastics (MPs) and additives during plastic aging poses potential ecological risks, but the mechanistic links between these release processes and polymer degradation remain unclear. In this study, polyethylene (PE), polylactic acid/polybutylene adipate-co-terephthalate (PLA/PBAT), and polyvinyl chloride (PVC) were subjected to ultraviolet (UV) aging to systematically investigate the evolution of molecular structure, surface morphology, and mechanical properties. The release of MPs (10-500 μm) and phthalate esters (PAEs) was subsequently quantified by laser direct infrared (LDIR) spectroscopy and gas chromatography-mass spectrometry (GC-MS), respectively. Results revealed a general degradation pathway of chemical oxidation-structural reconstruction-mechanical failure. Photoaging-induced structural weakening, surface hardening, and material embrittlement not only promoted the generation and detachment of MPs but also facilitated PAE migration and release by increasing diffusion pathways and exposing the internal polymer matrix. The release behaviors of MPs and PAEs exhibited distinct patterns: MP release primarily resulted from matrix fragmentation and followed a power-law model (R2 > 0.99), whereas PAE release was governed by diffusion from a finite internal reservoir and was well described by a first-order kinetic model (R2 > 0.97). The three plastics showed different release preferences. PLA/PBAT and PE exhibited higher risks of MP release, while PVC presented a more prominent risk of PAE release.
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