Ebullition-Enhanced Release of Microplastics from Aquatic Sediment to Overlying Water: An Overlooked Transport Pathway

Abstract Microplastics (MPs) in aquatic systems are typically attributed to wastewater, runoff and atmospheric inputs, whereas the remobilization of sediment-associated MPs by benthic gas ebullition remains poorly understood. Here, we show that air-purged ebullition mobilized four common MPs, polyethylene (PE), polyethylene terephthalate (PET), polyvinyl chloride (PVC), and polylactic acid (PLA), from sediments into the overlying water, with release ratios of 8.9%–12.1% over 9 d. Suspended MP concentrations in the overlying water increased rapidly during the first 48 h, followed by slower release and eventual plateauing, with the decelerating release behavior empirically described by a power-law model. Theoretical calculations suggest that aggregation with suspended sediment can reduce the flotation velocities of MPs from 9.38–9.99 cm·s–1 to 8.64–9.95 cm·s–1. Combined experimental observations and theoretical analyses support a coupled flotation mechanism involving MPs attachment to rising bubbles, bubble-driven flow that counteracts gravitational settling, and transient pressure gradients. These processes could convert sediments from a long-term sink into a secondary source of MPs during ebullition. Overall, this study identifies benthic gas ebullition as an underappreciated pathway for MP remobilization and provides a mechanistic framework for understanding the fate and transport of sediment-associated MPs in aquatic environments.

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Publication Details

Journal
Environmental Science & Technology
Published
2026-10-05
DOI
https://doi.org/10.1021/acs.est.6c06432
Primary Topic
Microplastics and Plastic Pollution
Type
article
Field-Weighted Citation Impact
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article

Ebullition-Enhanced Release of Microplastics from Aquatic Sediment to Overlying Water: An Overlooked Transport Pathway

Shengdong Liu, Baoshan Xing, Xinghui Xia, Wen Zhang et al.
Environmental Science & Technology
Microplastics and Plastic Pollution
article

Ebullition-Enhanced Release of Microplastics from Aquatic Sediment to Overlying Water: An Overlooked Transport Pathway

Shengdong Liu, Baoshan Xing, Xinghui Xia, Wen Zhang, Peng Zhang, Jiahe Zhang, Zhuoqing Zhou, Xinjie Wang, Yang Li, Shoichiro Hamamoto
article en

Abstract

Abstract Microplastics (MPs) in aquatic systems are typically attributed to wastewater, runoff and atmospheric inputs, whereas the remobilization of sediment-associated MPs by benthic gas ebullition remains poorly understood. Here, we show that air-purged ebullition mobilized four common MPs, polyethylene (PE), polyethylene terephthalate (PET), polyvinyl chloride (PVC), and polylactic acid (PLA), from sediments into the overlying water, with release ratios of 8.9%–12.1% over 9 d. Suspended MP concentrations in the overlying water increased rapidly during the first 48 h, followed by slower release and eventual plateauing, with the decelerating release behavior empirically described by a power-law model. Theoretical calculations suggest that aggregation with suspended sediment can reduce the flotation velocities of MPs from 9.38–9.99 cm·s–1 to 8.64–9.95 cm·s–1. Combined experimental observations and theoretical analyses support a coupled flotation mechanism involving MPs attachment to rising bubbles, bubble-driven flow that counteracts gravitational settling, and transient pressure gradients. These processes could convert sediments from a long-term sink into a secondary source of MPs during ebullition. Overall, this study identifies benthic gas ebullition as an underappreciated pathway for MP remobilization and provides a mechanistic framework for understanding the fate and transport of sediment-associated MPs in aquatic environments.

Environmental Science & Technology
New Jersey Institute of Technology (US), University of Science and Technology of China (CN), Hokkaido University (JP), Beijing Normal University (CN)
Openalex Percentile: Top 23%
Microplastics and Plastic Pollution
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