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Ultraviolet Irradiation Affects Microplastic Properties and Removal from Water Using Agglomeration–Micro-Flotation

Original title: Ultraviolet Irradiation Affects Microplastic Properties and Removal from Water Using Agglomeration–Micro-Flotation

Water 2026
Natatsawas Soonthornwiphat, Palot Srichonphaisarn, Mylah Villacorte-Tabelin, Pongsiri Julapong, Carlito Baltazar Tabelin, Dao Janjaroen, Theerayut Phengsaart

Summary

Sunlight breaks down plastic particles in water, making them harder to remove using standard water treatment methods because the aged plastic becomes more water-attracted rather than repelling water. This study found that using more of a special oil-based treatment (kerosene) can still effectively pull these sun-damaged microplastics out of water, which matters because it helps water treatment plants develop better strategies to filter out the tiny plastic particles that could otherwise end up in your drinking water.

The exposure of microplastics (MPs) to ultraviolet (UV) light in the environment can affect their flotation behavior and removal efficiency. This study investigated the effects of UVC irradiation on the physical and surface characteristics of polypropylene (PP), polyethylene (PE), acrylonitrile butadiene styrene (ABS), polystyrene (PS), polyethylene terephthalate (PET), and polyvinyl chloride (PVC), and evaluated their removal using agglomeration–micro-flotation. MPs were irradiated with UVC for 7 days, and they were characterized using particle size distribution analysis, CIE L*a*b* color analysis, and contact angle measurements. Flotation experiments were conducted using kerosene as a hydrophobic bridging liquid. The results showed that UVC irradiation induced polymer-dependent changes, including fragmentation, apparent shape-related changes, and redistribution behavior, resulting in changes in particle size distribution. Surface discoloration and reduced contact angle were also observed after UV exposure, suggesting photooxidative surface modification and increased surface hydrophilicity. These surface modifications reduced flotation performance at low kerosene dosages, particularly for PET and PVC. However, increasing kerosene dosage improved removal efficiency by enhancing agglomeration and particle–bubble attachment. The results indicated that agglomeration–micro-flotation is a promising approach for removing UV-aged MPs and provided insights into the influence of UV-induced surface modifications on flotation behavior.

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