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Chemical characterization of microplastic particles formed in airborne waste discharged from sewer pipe repairs

Environmental Science Processes & Impacts 2023 6 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 40 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Alexander Laskin Brianna Peterson, Ana C. Morales, Ana C. Morales, Jay M. Tomlin, Ana C. Morales, Brianna Peterson, Jay M. Tomlin, Yoorae Noh, Yoorae Noh, Alexander Laskin Felipe Rivera-Adorno, Alexander Laskin Carrie G. W. Gorman, Andrew J. Whelton, Peter E. Christ, Peter E. Christ, Brianna Peterson, Steven Sharpe, Alexander Laskin Brian O'callahan, Steven Sharpe, Shelby M. Huston, Yoorae Noh, Yoorae Noh, Felipe Rivera-Adorno, Brian O'callahan, Matthew Fraund, Yoorae Noh, Ryan C. Moffet, Yoorae Noh, Pritee Pahari, Pritee Pahari, Andrew J. Whelton, Brian O'callahan, Patrick Z. El‐Khoury, Patrick Z. El‐Khoury, Ryan C. Moffet, Andrew J. Whelton, Alla Zelenyuk, Alexander Laskin Alexander Laskin

Summary

Researchers chemically characterized the microplastic particles emitted as airborne waste during sewer pipe repair using cured-in-place lining technology, identifying the polymer composition and comparing it to the raw resin components, confirming the process as a source of urban microplastic emissions.

Microplastic particles are of increasing environmental concern due to the widespread uncontrolled degradation of various commercial products made of plastic and their associated waste disposal. Recently, common technology used to repair sewer pipes was reported as one of the emission sources of airborne microplastics in urban areas. This research presents results of the multi-modal comprehensive chemical characterization of the microplastic particles related to waste discharged in the pipe repair process and compares particle composition with the components of uncured resin and cured plastic composite used in the process. Analysis of these materials employs complementary use of surface-enhanced Raman spectroscopy, scanning transmission X-ray spectro-microscopy, single particle mass spectrometry, and direct analysis in real-time high-resolution mass spectrometry. It is shown that the composition of the relatively large (100 μm) microplastic particles resembles components of plastic material used in the process. In contrast, the composition of the smaller (micrometer and sub-micrometer) particles is significantly different, suggesting their formation from unintended polymerization of water-soluble components occurring in drying droplets of the air-discharged waste. In addition, resin material type influences the composition of released microplastic particles. Results are further discussed to guide the detection and advanced characterization of airborne microplastics in future field and laboratory studies pertaining to sewer pipe repair technology.

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