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Ferrihydrite coating reduces microplastic induced soil water repellency

Environmental Science Processes & Impacts 2023 5 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 35 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Andreas Cramer, Johanna Schmidtmann, Pascal Benard, Anders Kaestner, Matthias B. Engelhardt, Stefan Peiffer, Andrea Carminati

Summary

Researchers tested whether ferrihydrite coating of polystyrene and PET microplastics (20-75 micrometres) reduces their hydrophobicity and soil water repellency using neutron radiography of capillary rise experiments, finding that coating changed surface wettability in a polymer-dependent manner with coated PET becoming wettable while coated polystyrene remained non-wettable.

Polymers

Addition of microplastics (MP) to soil has the potential to increase soil water repellency. However, coating of MP with soil abundant substances e.g., iron compounds, can reduce this effect. Here, we tested if pre-coating or in situ coating of MP with ferrihydrite (Fh) reduces soil water repellency. We applied hotspots of pristine and coated MP (20-75 μm, PS and PET) to sand and imaged capillary rise via neutron radiography. Capillary rise experiments in wetting-drying cycles were conducted using water and Fh suspension. Pristine MP hotspots were not wettable. Capillary rise of water into coated MP hotspots differed in wettability depending on polymer type. While coated PS was still non-wettable, water imbibed into the coated PET hotspot. Capillary rise of Fh suspensions in wetting and drying cycles also showed varying results depending on polymer type. MP hotspots were still non-wettable and local water content increased only marginally. Our results indicate that Fh coating of MP changes MP surface wettability depending on polymer type and therefore counteracts the hydrophobic properties of pristine MP. However, MP coating is likely to be slowed down by the initial hydrophobicity of pristine MP. Dynamics of MP coating and increasing wettability are key factors for biotic and abiotic degradation processes.

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