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通过模拟聚丙烯的环境老化来详细阐述更逼真的模型微塑料。

Elaborating more realistic model microplastics by simulating polypropylene's environmental ageing.

机构信息

Institut des Molécules et Matériaux du Mans, IMMM - UMR 6283 CNRS, Le Mans Université, Avenue Olivier Messiaen, Le Mans Cedex 9 72085, France; CT-IPC Centre Technique Industriel de la Plasturgie et des Composites, Pôle Universitaire de Montfoulon, Damigny 61250, France.

Institut des Molécules et Matériaux du Mans, IMMM - UMR 6283 CNRS, Le Mans Université, Avenue Olivier Messiaen, Le Mans Cedex 9 72085, France.

出版信息

Ecotoxicol Environ Saf. 2024 Sep 15;283:116769. doi: 10.1016/j.ecoenv.2024.116769. Epub 2024 Jul 29.

Abstract

In this work, we propose a new protocol for producing model microplastics from an industrial polymer and compare it to a conventional method, cryomilling. Polypropylene industrial pellets were chosen due to their widespread production and frequent presence in the environment, making them a notable source of microplastics. Both protocols start with aging under Ultra-Violet light of the pellets but differ in the subsequent mechanical stress applied-strong vs. soft-to break down the photodegraded pellets into microplastics. All generated particles were fully characterized in terms of size, shape, oxidation rate, and stability in aqueous media. Microplastics produced via cryomilling exhibited significant size and oxidation heterogeneity and tended to aggregate in water. Although the new protocol involving soft mechanical stress required a longer preparation time, it simulated more accurately the environmental degradation of raw plastic. This method successfully produced oxidized microplastics with a controlled size distribution centered around 50 µm which remained stable in water without stabilizers.

摘要

在这项工作中,我们提出了一种从工业聚合物中生产模型微塑料的新方案,并将其与传统的冷冻粉碎方法进行了比较。选择工业聚丙烯颗粒是因为它们的广泛生产和频繁出现在环境中,使它们成为微塑料的重要来源。这两种方案都从颗粒的紫外光老化开始,但随后施加的机械应力不同 - 强 vs. 软 - 将光降解的颗粒破碎成微塑料。所有生成的颗粒都在尺寸、形状、氧化速率和在水介质中的稳定性方面进行了全面的特征描述。通过冷冻粉碎生产的微塑料表现出明显的尺寸和氧化异质性,并且在水中容易聚集。尽管涉及软机械应力的新方案需要更长的制备时间,但它更准确地模拟了原始塑料的环境降解。该方法成功地生产了具有受控尺寸分布的氧化微塑料,其中心尺寸约为 50 µm,在没有稳定剂的情况下在水中稳定。

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