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Unique metalloid uptake on microplastics: The interaction between boron and microplastics in aquatic environment

The Science of The Total Environment 2021 47 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.
Yingshuang Zhang, Yingshuang Zhang, Yingshuang Zhang, Hongru Jiang, Chongqing Wang Chongqing Wang Hui Wang, Hui Wang, Hongru Jiang, Hongru Jiang, Chongqing Wang Hongru Jiang, Hongru Jiang, Hongru Jiang, Hongru Jiang, Chongqing Wang Chongqing Wang Hongru Jiang, Yingshuang Zhang, Yingshuang Zhang, Yingshuang Zhang, Hongru Jiang, Hongru Jiang, Hongru Jiang, Yingshuang Zhang, Yingshuang Zhang, Yingshuang Zhang, Yingshuang Zhang, Hui Wang, Yingshuang Zhang, Hui Wang, Hongru Jiang, Hui Wang, Hui Wang, Hongru Jiang, Chongqing Wang Hongru Jiang, Hui Wang, Yingshuang Zhang, Wei Huang, Yingshuang Zhang, Yingshuang Zhang, Hongru Jiang, Chongqing Wang Hui Wang, Hongru Jiang, Hui Wang, Chongqing Wang Chongqing Wang Hui Wang, Yingshuang Zhang, Hui Wang, Hui Wang, Hui Wang, Hui Wang, Hui Wang, Hui Wang, Hui Wang, Hui Wang, Hui Wang, Hui Wang, Hui Wang, Hui Wang, Hui Wang, Hongru Jiang, Hui Wang, Chongqing Wang Hui Wang, Chongqing Wang Chongqing Wang Chongqing Wang Chongqing Wang Yingshuang Zhang, Yingshuang Zhang, Yingshuang Zhang, Hui Wang, Hui Wang, Hui Wang, Hui Wang, Hui Wang, Hui Wang, Chongqing Wang Hongru Jiang, Chongqing Wang Chongqing Wang Chongqing Wang Chongqing Wang Chongqing Wang Hui Wang, Hui Wang, Hui Wang, Hui Wang, Hui Wang, Hui Wang, Hui Wang, Hui Wang, Hui Wang, Hui Wang, Hui Wang, Hui Wang, Hui Wang, Chongqing Wang Chongqing Wang Chongqing Wang Chongqing Wang Hongru Jiang, Chongqing Wang Chongqing Wang Hongru Jiang, Hui Wang, Chongqing Wang Chongqing Wang Hui Wang, Hongru Jiang, Hui Wang, Yingshuang Zhang, Hongru Jiang, Chongqing Wang Chongqing Wang Chongqing Wang Chongqing Wang Hui Wang, Hongru Jiang, Chongqing Wang Chongqing Wang

Summary

Researchers investigated boron adsorption onto microplastics in aquatic environments, finding that aged PVC and PS particles adsorbed significantly more boron than pristine ones, with pH, humic acid, and ionic strength influencing the interaction.

Polymers
Study Type Environmental

Boron pollution in the aquatic environment has a hazardous effect on human health and the ecosystem as a metalloid pollutant, and few researchers have focused on the potential interaction between boron and microplastics. We investigated the adsorption of boron on four types of microplastics (polyvinyl chloride (PVC), aged PVC, polystyrene (PS), and aged PS). The adsorption behavior was explored by kinetics, isotherm models, and several aqueous factors, including pH, humic acid, ionic strength (Na), metal ion types (Mg, Ca, Cu, and Al), and the seawater environment. The adsorption capacities on microplastics were followed: aged PVC (0.91 mg/g) > aged PS (0.197 mg/g) > virgin PVC (0.1 mg/g) > virgin PS (0.005 mg/g). The adsorption kinetics and isotherm models suggested monolayer adsorption and chemisorption. Humic acid and high pH significantly inhibited the adsorption due to the complexation and hydrolysis of boric acid (B(OH)), respectively. The presence of metal ions may enhance or hinder adsorption, depending on the boron species, ion concentration, ion type, and microplastics categories. The unique interaction mainly depended on surface complexations of B(OH) with oxygen-containing groups on microplastics surface. Because aged microplastics have more oxygen-containing groups, they can combine more B(OH), and PVC can adsorb more boron due to the CCl bond and surface diffusion. In the aquatic environment, however, metal ions may occupy these binding sites, and the electrostatic force between borate ([B(OH)]) and microplastics will take precedence. In the simulated intestines of warm-blooded animals, we achieved the greatest boron desorption ratio on microplastics. This work explored the adsorption characteristics of boron by microplastics and revealed potential environmental risks of metalloid enrichment.

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