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Enhanced removal of polystyrene microplastics by three-dimensional flower-like layered double oxide: Behavior and mechanism insight
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Researchers synthesized a magnetic iron-metal-organic gel composite anchored on phosphorus-doped carbon derived from Chlorella biomass, achieving 96% removal of polystyrene microplastics from tap water, seawater, and mining water via hydrogen bonding, π-π stacking, and Fe-O complexation.
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Researchers reviewed how clay-based composites and nanocomposites can effectively capture and remove microplastics from water and soil environments. These low-cost, naturally abundant materials show promise as practical tools for filtering microplastic contamination at scale, though further optimization is needed for widespread application.
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