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March 21, 2026Reviews in Chemical Engineering3 citationsOpen Access

Removal of microplastics from wastewater: various methods and functional coating materials

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BTBhavya TiwariRARaj Kumar Arya

Key Points

  • The research aims to evaluate various methods for removing microplastics from wastewater and assess the effectiveness of functional coatings.
  • Review of traditional and advanced wastewater treatment techniques.
  • Comparison of removal efficiencies across different coating materials.
  • In-depth analysis of novel technologies like TiO2-polymer membranes and 3D-printed scaffolds.
  • Advanced techniques achieve removal efficiencies of 95% to 99%, outperforming traditional methods.
  • Functionalized coatings can increase removal rates substantially, with efficiencies reaching up to 96%.
  • Scalability and cost remain significant challenges despite promising developments.

Abstract

Abstract Microplastics in wastewater pose significant environmental hazards owing to their toxic and bioaccumulative characteristics, rendering them resistant to degradation. Annually, over 1.5 million tons of microplastics infiltrate global waterways. While traditional wastewater treatment methods, including sedimentation and filtration, attain about 60–70 % removal effectiveness and inadequately collect microplastics, advanced techniques utilizing adsorption, electrostatic attraction, and degradation have efficiencies of 95 %, 99 %, and 95 %, respectively. Functionalized coatings, such as hydrophilic and hydrophobic surfaces, magnetic composites, and bio-based polymers like chitosan, can improve the mitigation of microplastic issues, such as membrane fouling. New technologies include photocatalytic TiO 2 -polymer membranes and 3D-printed porous scaffolds that can achieve approximately 90 % effectiveness in hybrid models. Various comparative studies have shown that the efficiencies of conventional sand filters (45–55 %) and basic membranes (65–75 %) can be increased to 82–88 % and 92–96 %, respectively, with coatings such as polydopamine. Despite these promising results, issues such as scalability, coating durability, and cost persist. Future directions include AI-driven material design, circular economy solutions such as enzyme-embedded coatings (with approximately 95 % efficiency), and robust policy frameworks. Incorporating sophisticated, environmentally friendly coatings into wastewater infrastructure offers a sustainable approach to reducing microplastic contamination and promoting global environmental conservation.

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Cite This Study

Tiwari et al. (2026) studied this question.

synapsesocial.com/papers/69be369a6e48c4981c675a14https://doi.org/10.1515/revce-2025-0062
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