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Article ? AI-assigned paper type based on the abstract. Classification may not be perfect — flag errors using the feedback button. Tier 2 ? Original research — experimental, observational, or case-control study. Direct primary evidence. Marine & Wildlife Remediation Sign in to save

Microplastics as Both a Sink and a Source of Bisphenol A in the Marine Environment

Environmental Science & Technology 2019 346 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 45 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Xuemin Liu, Xuemin Liu, Huahong Shi Xuemin Liu, Huahong Shi Xuemin Liu, Xuemin Liu, Huahong Shi Xuemin Liu, Xuemin Liu, Xuemin Liu, Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Yaping Zhao, Yaping Zhao, Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Dionysios D. Dionysiou, Dionysios D. Dionysiou, Dionysios D. Dionysiou, Yaping Zhao, Yaping Zhao, Bing Xie, Bing Xie, Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Dionysios D. Dionysiou, Dionysios D. Dionysiou, Dionysios D. Dionysiou, Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Bing Xie, Bing Xie, Bing Xie, Bing Xie, Bing Xie, Huahong Shi Huahong Shi Huahong Shi Xuemin Liu, Huahong Shi Huahong Shi Huahong Shi Xuemin Liu, Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Bing Xie, Bing Xie, Bing Xie, Bing Xie, Bing Xie, Bing Xie, Yaping Zhao, Yaping Zhao, Yaping Zhao, Dionysios D. Dionysiou, Dionysios D. Dionysiou, Dionysios D. Dionysiou, Yaping Zhao, Huahong Shi Yaping Zhao, Huahong Shi Yaping Zhao, Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Dionysios D. Dionysiou, Huahong Shi Huahong Shi Bing Xie, Bing Xie, Dionysios D. Dionysiou, Huahong Shi Huahong Shi Bing Xie, Huahong Shi Bing Xie, Huahong Shi Bing Xie, Bing Xie, Huahong Shi Yaping Zhao, Huahong Shi Huahong Shi Huahong Shi Huahong Shi Dionysios D. Dionysiou, Yaping Zhao, Huahong Shi Huahong Shi Yaping Zhao, Huahong Shi Yaping Zhao, Bing Xie, Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Bing Xie, Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Yaping Zhao, Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Bing Xie, Huahong Shi Huahong Shi Bing Xie, Huahong Shi Huahong Shi Huahong Shi Huahong Shi Bing Xie, Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Huahong Shi Yaping Zhao, Huahong Shi Huahong Shi Huahong Shi Huahong Shi

Summary

Microplastics were shown to function as both a sink and a source for bisphenol A (BPA) in marine environments, absorbing BPA when concentrations in water are high and releasing it when concentrations drop, effectively acting as a chemical reservoir. This dynamic exchange behavior means microplastics could both reduce peak BPA concentrations and extend the duration of BPA exposure in marine ecosystems.

Microplastics were demonstrated to be an environmental sink for hydrophobic organic pollutants, while they can also serve as a potential source of such pollutants. In this study, the sorption and release of bisphenol A in marine water were investigated through laboratory experiments. Sorption and desorption isotherms were developed, and the results reveal that sorption and desorption depend on the crystallinity, elasticity, and hydrophobicity of the polymer concerned. The adsorption and partition of bisphenol A can be quantified using a dual-mode model of the sorption mechanisms. Polyamide and polyurethane were found to exhibit the highest sorption capacity for bisphenol A, and it was almost irreversible, probably due to hydrogen bonding. Polyethylenes and polypropylene exhibited high and reversible sorption without noticeable desorption hysteresis. Glassy polystyrene, poly(vinyl chloride), poly(methyl methacrylate), and poly(ethylene terephthalate) exhibited low sorption capacity and only partial reversibility. Low-density polyethylene and polycarbonate microplastic particles were for the first time proved to be a persistent source releasing bisphenol A into aquatic environments. Salinity, pH, coexisting estrogens, and water chemistry influence the sorption/desorption behaviors to different degrees. Plastic particles can serve as transportation vectors for bisphenol A, which may constitute an ecological risk.

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