Centre for Technology in Water and Wastewater, School of Civil and Environmental Engineering, University of Technology Sydney, Sydney, NSW 2007, Australia.
Centre for Technology in Water and Wastewater, School of Civil and Environmental Engineering, University of Technology Sydney, Sydney, NSW 2007, Australia.
Sci Total Environ. 2022 Nov 10;846:157498. doi: 10.1016/j.scitotenv.2022.157498. Epub 2022 Jul 21.
The photoaging mechanisms of various polymers have been explored based on the basic autoxidation scheme (BAS) before 10 years ago, however current research verified some defects in the BAS in both thermodynamic and dynamics. These defects are troublesome because they are associated with the hydrogen abstraction which is central to continuously perform the photooxidation process of microplastics. These found indicated that we might wrongly inferred photo-oxidation process of some microplastics. In addition, the important role of reactive oxygen species (ROS) in the type-dependent photoaging process of various microplastics has been revealed recently. In this case, fully and accurately understanding the photoaging mechanisms of different microplastics in environment is a priority to further manage the ecological risk of microplastics. Herein, this review aims to revise and update the degradation process of microplastics based on the revised BAS and in the perspective of ROS. Specifically, the modification of BAS is firstly discussed. The photoaging mechanisms of representative microplastics (i.e., polyethylene, polystyrene and polyethylene terephthalate) are then updated based on the corrected BAS. Additionally, the role of ROS in their photolysis process and the possibility of microplastics as photosensitizers/mediators to regulate the fate of co-existent pollutants are also analyzed. Finally, several perspectives are then proposed to guide future research on the photoaging behaviors of microplastics. This review would pave the way for the understanding of microplastic photoaging and the management of plastic pollution in environments.
十年前,人们根据基础自动氧化方案(BAS)探索了各种聚合物的光老化机制,但目前的研究证实了 BAS 在热力学和动力学方面的一些缺陷。这些缺陷很麻烦,因为它们与氢提取有关,而氢提取是微塑料光氧化过程持续进行的核心。这些发现表明,我们可能错误地推断了某些微塑料的光氧化过程。此外,最近还揭示了活性氧物质(ROS)在各种微塑料的依赖于类型的光老化过程中的重要作用。在这种情况下,充分和准确地了解不同微塑料在环境中的光老化机制是进一步管理微塑料生态风险的首要任务。在此,本文旨在基于修订后的 BAS 和 ROS 视角,修订和更新微塑料的降解过程。具体而言,首先讨论了 BAS 的修正。然后,基于修正后的 BAS 更新了代表性微塑料(即聚乙烯、聚苯乙烯和聚对苯二甲酸乙二醇酯)的光老化机制。此外,还分析了 ROS 在它们光解过程中的作用,以及微塑料作为光敏剂/介体调节共存污染物命运的可能性。最后,提出了几个观点,以指导未来对微塑料光老化行为的研究。本文将为理解微塑料光老化和管理环境中的塑料污染铺平道路。