School of Energy & Environmental Engineering, University of Science and Technology Beijing, 30 Xueyuan Road, Haidian District, 100083, Beijing, China.
School of Energy & Environmental Engineering, University of Science and Technology Beijing, 30 Xueyuan Road, Haidian District, 100083, Beijing, China.
Chemosphere. 2022 Jul;299:134370. doi: 10.1016/j.chemosphere.2022.134370. Epub 2022 Mar 19.
The rapidly rising output and mass use of plastics have made plastics pollution a major environmental problem. Since plastics are persistent in the environment, understanding the migration transformation characteristics of plastics is critical. Given the ever-increasing concern about the environmental risks posed by microplastics, their prevalence, fate, abundance and impact have been intensively studied. Most of these investigations focused on the marine environment, but research on freshwater microplastics is less extensive. This article aims to briefly summarize the research progress of freshwater microplastics, identify existing gaps and draw novel conclusions, so as to provide useful information for the research of freshwater microplastics. Using the statistics and analysis of freshwater microplastics studies in 2016-2021, this review systematically discusses microplastics in globally freshwater systems. The biological effects of microplastics on freshwater organisms were discussed as well. Some potential ecological effects of microplastic biofilms were shown, such as climate change and material circulation. More importantly, we present some unique conclusions. For example, the detection of freshwater microplastics is mainly concentrated in natural freshwater systems, while few are concentrated in artificial freshwater systems. In addition, polystyrene is the main mode for testing the biological effects of freshwater microplastics, and polyethene and polypropylene which are the most common in freshwater environments, have not been taken seriously. We also pointed out that studies on advanced freshwater plants in the topic of biological effects of microplastics still need strengthen.
塑料的产量和用量迅速增加,使得塑料污染成为一个主要的环境问题。由于塑料在环境中具有持久性,因此了解塑料的迁移转化特性至关重要。鉴于人们对微塑料带来的环境风险的日益关注,微塑料的普遍性、命运、丰度和影响已经得到了深入研究。这些研究大多集中在海洋环境,但对淡水微塑料的研究则相对较少。本文旨在简要总结淡水微塑料的研究进展,确定现有差距并得出新的结论,为淡水微塑料的研究提供有用的信息。本文通过对 2016-2021 年淡水微塑料研究的统计和分析,系统地讨论了全球淡水系统中的微塑料。还讨论了微塑料对淡水生物的生物效应。展示了微塑料生物膜的一些潜在生态效应,如气候变化和物质循环。更重要的是,我们提出了一些独特的结论。例如,淡水微塑料的检测主要集中在自然淡水系统中,而很少集中在人工淡水系统中。此外,聚苯乙烯是测试淡水微塑料生物效应的主要模式,而在淡水环境中最常见的聚乙烯和聚丙烯则没有得到重视。我们还指出,在微塑料生物效应这一主题中,对先进淡水植物的研究仍需加强。