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微塑料在水生环境中模拟太阳光照射下的长期光转化:活性氧的作用。

Long-term phototransformation of microplastics under simulated sunlight irradiation in aquatic environments: Roles of reactive oxygen species.

机构信息

Key Laboratory of Plant Nutrition and the Agri-environment in Northwest China, Ministry of Agriculture, College of Natural Resources and Environment, Northwest A & F University, Yangling, 712100, China.

Key Laboratory of Plant Nutrition and the Agri-environment in Northwest China, Ministry of Agriculture, College of Natural Resources and Environment, Northwest A & F University, Yangling, 712100, China.

出版信息

Water Res. 2020 Apr 15;173:115564. doi: 10.1016/j.watres.2020.115564. Epub 2020 Jan 29.

Abstract

Microplastics may experience photoaging and breakdown into nanoplastics in aquatic environment as a result of long-term light irradiation. However, the underlying mechanisms responsible for the photodegradation of microplastics are largely overlooked. In this study, the photodegradation of microplastics, utilizing polystyrene microplastic (PS-MP) as a model, was investigated under irradiation with simulated solar light for as long as 150 d. A large amount of reactive oxygen species (ROS), including O, O, HO and •OH, were detected in the PS-MP suspension due to light irradiation, which displayed significant relationships with the generated environmentally persistent free radicals (EPFRs). Distinct photoaging of PS-MP was observed with increased surface roughness and decreased particle size. However, these photoaging effects were significantly inhibited by ROS quenchers, suggesting that the generation ROS played a vital role in the PS-MP phototransformation. In addition, ROS induced formation of more oxidative functional groups on the PS-MP, thus enhancing the negative surface potential and the stability of PS-MP in water. This study elucidated the mechanism of formation of ROS by simulated solar light irradiated MPs and their subsequent roles in the phototransformation of MP, thus expanding current knowledge on the fate of MPs in aquatic environments.

摘要

微塑料在水环境中可能会由于长期的光照而经历光老化,并分解为纳米塑料。然而,负责微塑料光降解的潜在机制在很大程度上被忽视了。在这项研究中,利用聚苯乙烯微塑料(PS-MP)作为模型,在模拟太阳光照射下长达 150 天的时间里,研究了微塑料的光降解。由于光照,PS-MP 悬浮液中检测到大量的活性氧物质(ROS),包括 O、O、HO 和 •OH,这些物质与产生的环境持久性自由基(EPFRs)表现出显著的关系。PS-MP 表现出明显的光老化现象,表面粗糙度增加,粒径减小。然而,这些光老化效应被 ROS 猝灭剂显著抑制,这表明 ROS 的产生在 PS-MP 的光转化中起着至关重要的作用。此外,ROS 诱导 PS-MP 上形成更多的氧化官能团,从而增强 PS-MP 在水中的负表面电位和稳定性。本研究阐明了模拟太阳光照射 MPs 产生 ROS 的机制及其在 MPs 光转化中的后续作用,从而扩展了关于 MPs 在水生环境中命运的现有知识。

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