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Insight into the photodegradation and universal interactive products of 2,2′,4,4′–tetrabromodiphenyl ether on three microplastics

Journal of Hazardous Materials 2022 28 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 50 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Feng Zhu Feng Zhu Linning Yin, Linning Yin, Linning Yin, Linning Yin, Nannan Wu, Nannan Wu, Nannan Wu, Feng Zhu Zunyao Wang, Feng Zhu Nannan Wu, Ahmed A. Allam, Feng Zhu Feng Zhu Feng Zhu Feng Zhu Ruijuan Qu, Feng Zhu Ruijuan Qu, Ahmed A. Allam, Zongli Huo, Zongli Huo, Feng Zhu Feng Zhu Feng Zhu Zunyao Wang, Jamaan S. Ajarem, Zunyao Wang, Zunyao Wang, Ruijuan Qu, Zunyao Wang, Ruijuan Qu, Zongli Huo, Ahmed A. Allam, Zunyao Wang, Ruijuan Qu, Feng Zhu Feng Zhu Feng Zhu Feng Zhu Zunyao Wang, Ruijuan Qu, Feng Zhu Zunyao Wang, Zongli Huo, Ahmed A. Allam, Feng Zhu Ruijuan Qu, Zunyao Wang, Feng Zhu Feng Zhu

Summary

Researchers investigated the photodegradation of a brominated flame retardant (BDE-47) on three types of microplastics under sunlight, finding that aged polystyrene inhibited degradation through light shielding while aged polypropylene and polyethylene promoted it through reactive oxygen species generation.

The transformation process of contaminants on microplastics (MPs) exposed to sunlight has attracted increasing attention. However, the interactions between them are typically disregarded; therefore, this work investigated the photodegradation of 2,2',4,4'-tetrabromodiphenyl ether (BDE-47) on three MPs (polystyrene (PS), polypropylene (PP) and polyethylene (PE)) and the interactions between these two. The inhibition of aged PS on the elimination of BDE-47 was due to light shielding, while aged PP and PE increased the degradation rate. More hydroxyl radicals (HO•) was detected in the PS system, which resulted in the higher degradation rate of BDE-47 on PS. A total of 33 different products were identified and four reaction pathways were presented, and the reaction mechanisms mainly included debromination, hydroxylation, carbon-oxygen-bond breaking and interactive reactions. The Ecological Structure Activity Relationship (ECOSAR) and Toxicity Estimation Software Tool (TEST) programs were used to evaluate the toxicity of reaction products, and the results indicated that even though BDE-47 was the most toxic, the interaction products were still toxic or harmful to aquatic organisms. This study provides significant information on the photodegradation of contaminants on common microplastics and their interaction, which cannot be ignored.

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