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典型微塑料在长期加速风化模拟中的特性及吸附行为

Characteristics and adsorption behavior of typical microplastics in long-term accelerated weathering simulation.

作者信息

Yu Fei, Qin Qiyu, Zhang Xiaochen, Ma Jie

机构信息

College of Oceanography and Ecological Science, Shanghai Ocean University, No. 999, Huchenghuan Road, Shanghai, 201306, P. R. China.

School of Civil Engineering, Kashi University, Kashi 844000, China.

出版信息

Environ Sci Process Impacts. 2024 May 22;26(5):882-890. doi: 10.1039/d4em00062e.

Abstract

Microplastics can function as carriers in the environment, absorbing various toxins and spreading to diverse ecosystems. Toxins accumulated in microplastics have the potential to be re-released, posing a threat. In this study, two typical plastics, namely polyethylene (PE) and polystyrene (PS), along with the degradable plastic poly(butylene adipate--terephthalate) (PBAT), were subjected to a long-term ultraviolet alternating weathering experiment. The study investigated the variations in the weathering process and pollutant adsorption of microplastics of different particle sizes. Furthermore, the adsorption capacity of microplastics for various pollutants was assessed. The findings indicate that particle size significantly influences weathering, leading to variations in adsorption capacity. The weathered PE displays a higher adsorption capacity for azo dyes. Additionally, the adsorption capacity of PBAT for neutral red is double that of antibiotics. Importantly, the maximum adsorption capacity of PBAT for pollutants after aging is approximately 10 times greater than that of PE. Consequently, degradable plastics undergoing weathering in the natural environment may pose a higher ecological risk than traditional plastics.

摘要

微塑料可在环境中充当载体,吸附各种毒素并传播至不同的生态系统。微塑料中积累的毒素有可能再次释放,从而构成威胁。在本研究中,两种典型塑料,即聚乙烯(PE)和聚苯乙烯(PS),以及可降解塑料聚(己二酸丁二醇酯-对苯二甲酸丁二醇酯)(PBAT),进行了长期紫外线交替老化实验。该研究调查了不同粒径微塑料在老化过程中的变化以及污染物吸附情况。此外,还评估了微塑料对各种污染物的吸附能力。研究结果表明,粒径显著影响老化过程,导致吸附能力发生变化。老化后的PE对偶氮染料显示出更高的吸附能力。此外,PBAT对中性红的吸附能力是对抗生素吸附能力的两倍。重要的是,老化后PBAT对污染物的最大吸附能力约为PE的10倍。因此,在自然环境中老化的可降解塑料可能比传统塑料带来更高的生态风险。

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