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Advanced nanobubble flotation for enhanced removal of sub-10 µm microplastics from wastewater

Author

Listed:
  • Mingyi Jia

    (City University of Hong Kong)

  • Muhammad Usman Farid

    (City University of Hong Kong
    The Hong Kong University of Science and Technology)

  • Yuen-Wa Ho

    (The Hong Kong Polytechnic University)

  • Xinyao Ma

    (City University of Hong Kong)

  • Pak Wai Wong

    (City University of Hong Kong)

  • Theodora Nah

    (City University of Hong Kong
    City University of Hong Kong SAR)

  • Yuhe He

    (City University of Hong Kong
    City University of Hong Kong SAR)

  • Min Wei Boey

    (City University of Hong Kong)

  • Gang Lu

    (City University of Hong Kong)

  • James Kar-Hei Fang

    (The Hong Kong Polytechnic University
    City University of Hong Kong SAR)

  • Jun Fan

    (City University of Hong Kong)

  • Alicia Kyoungjin An

    (City University of Hong Kong
    The Hong Kong University of Science and Technology)

Abstract

Sub-10 µm microplastics (MPs) in aquatic environments pose significant ecological and health risks due to their mobility and potential to carry harmful microcontaminants. Our effluent analysis from a Hong Kong Sewage Treatment Works shows that traditional treatment often fails to effectively remove these MPs. These small-sized MPs are commonly neglected due to challenges in accurate quantification, analysis, and removal. This study introduces a nanobubble-assisted flotation process that enhances the removal efficiency of both regular and irregular small-sized MPs from wastewater. The proposed process outperforms the traditional flotation process by fostering a more effective interaction between bubbles and MPs, increasing removal rates of MPs from 1 µm to 10 µm by up to 12% and providing a total efficiency boost of up to 17% for various particle sizes. Improvements are attributed to enhanced collision and adhesion probabilities, hydrophobic interactions, as well as better floc flotation. Supported by empirical evidence, mathematical models, and Molecular Dynamics simulations, this research elucidates the nanoscale mechanisms at play. The findings confirm the nanobubble-assisted flotation technique as an innovative and practical approach to removing sub-10 µm MPs in water treatment processes.

Suggested Citation

  • Mingyi Jia & Muhammad Usman Farid & Yuen-Wa Ho & Xinyao Ma & Pak Wai Wong & Theodora Nah & Yuhe He & Min Wei Boey & Gang Lu & James Kar-Hei Fang & Jun Fan & Alicia Kyoungjin An, 2024. "Advanced nanobubble flotation for enhanced removal of sub-10 µm microplastics from wastewater," Nature Communications, Nature, vol. 15(1), pages 1-14, December.
  • Handle: RePEc:nat:natcom:v:15:y:2024:i:1:d:10.1038_s41467-024-53304-3
    DOI: 10.1038/s41467-024-53304-3
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    References listed on IDEAS

    as
    1. Yuet-Tung Tse & Sidney Man-Ngai Chan & Eric Tung-Po Sze, 2022. "Quantitative Assessment of Full Size Microplastics in Bottled and Tap Water Samples in Hong Kong," IJERPH, MDPI, vol. 19(20), pages 1-14, October.
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