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Eco-Corona Dictates Mobility of Nanoplastics in Saturated Porous Media: The Critical Role of Preferential Binding of Macromolecules

Environmental Science & Technology 2022 58 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.
Meiling Zhu, Thilo Hofmann, Meiling Zhu, Thilo Hofmann, Tong Zhang Tong Zhang Tong Zhang Thilo Hofmann, Meiling Zhu, Thilo Hofmann, Thilo Hofmann, Meiling Zhu, Thilo Hofmann, Wei Chen, Zhanhua Zhang, Zhanhua Zhang, Tong Zhang Thilo Hofmann, Thilo Hofmann, Thilo Hofmann, Thilo Hofmann, Wei Chen, Thilo Hofmann, Thilo Hofmann, Thilo Hofmann, Thilo Hofmann, Tong Zhang Tong Zhang Tong Zhang Tong Zhang Tong Zhang Thilo Hofmann, Thilo Hofmann, Thilo Hofmann, Thilo Hofmann, Thilo Hofmann, Thilo Hofmann, Wei Chen, Thilo Hofmann, Thilo Hofmann, Thilo Hofmann, Thilo Hofmann, Thilo Hofmann, Wei Chen, Thilo Hofmann, Thilo Hofmann, Thilo Hofmann, Wei Chen, Tong Zhang Wei Chen, Wei Chen, Thilo Hofmann, Thilo Hofmann, Thilo Hofmann, Tong Zhang Thilo Hofmann, Thilo Hofmann, Thilo Hofmann, Wei Chen, Wei Chen, Wei Chen, Wei Chen, Thilo Hofmann, Thilo Hofmann, Wei Chen, Thilo Hofmann, Thilo Hofmann, Wei Chen, Thilo Hofmann, Wei Chen, Thilo Hofmann, Thilo Hofmann, Thilo Hofmann, Thilo Hofmann, Wei Chen, Tong Zhang Thilo Hofmann, Wei Chen, Wei Chen, Thilo Hofmann, Thilo Hofmann, Thilo Hofmann, Thilo Hofmann, Thilo Hofmann, Thilo Hofmann, Wei Chen, Wei Chen, Wei Chen, Wei Chen, Thilo Hofmann, Wei Chen, Thilo Hofmann, Tong Zhang Tong Zhang

Summary

The eco-corona that forms on nanoplastic surfaces through interaction with humic substances and extracellular polymeric substances (EPS) was found to critically determine nanoplastic mobility through saturated porous media. Humic-coated nanoplastics showed greater mobility than EPS-coated ones, suggesting natural organic matter composition governs nanoplastic transport in groundwater systems.

Polymers

Nanoplastics are an increasing environmental concern. In aquatic environments, nanoplastics will acquire an eco-corona by interacting with macromolecules (e.g., humic substances and extracellular polymeric substances (EPS)). Here, we show that the properties of the eco-corona and, consequently, its ability to enhance the transport of nanoplastics vary significantly with the surface functionality of nanoplastics and sources of macromolecules. The eco-corona derived from the EPS of Gram-negative Escherichia coli MG1655 enhances the transport of polystyrene (PS) nanospheres in saturated porous media to a much greater extent than the eco-corona derived from soil humic acid and fulvic acid. In comparison, the eco-corona from all three sources significantly enhance the transport of carboxylated PS (HOOC-PS). We show that the eco-corona inhibits the deposition of the two types of nanoplastics to the porous media mainly via steric repulsion. Accordingly, an eco-corona consisting of a higher mass of larger-sized macromolecules is generally more effective in enhancing transport. Notably, HOOC-PS tends to acquire macromolecules of lower hydrophobicity than PS. The more disordered and flexible structures of such macromolecules may result in greater elastic repulsion between the nanoplastics and sand grains and, consequently, greater transport enhancement. The findings of this study highlight the critical role of eco-corona formation in regulating the mobility of nanoplastics, as well as the complexity of this process.

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