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Size-Resolved Identification and Quantification of Micro/Nanoplastics in Indoor Air Using Pyrolysis Gas Chromatography–Ion Mobility Mass Spectrometry

Journal of the American Society for Mass Spectrometry 2024 13 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 60 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Paul A. Helm, Mahin Hashemihedeshi, Paul A. Helm, Mahin Hashemihedeshi, Mahin Hashemihedeshi, Mahin Hashemihedeshi, Miriam L. Diamond, Ethan Haywood, Ethan Haywood, Miriam L. Diamond, Miriam L. Diamond, Liisa M. Jantunen Paul A. Helm, Miriam L. Diamond, Liisa M. Jantunen Paul A. Helm, Miriam L. Diamond, Paul A. Helm, Paul A. Helm, Liisa M. Jantunen Paul A. Helm, Miriam L. Diamond, Paul A. Helm, Paul A. Helm, Paul A. Helm, Miriam L. Diamond, Ethan Haywood, Ethan Haywood, Miriam L. Diamond, Daniel C. Gatch, Miriam L. Diamond, Lindsay S. Cahill, Daniel C. Gatch, Daniel C. Gatch, Lindsay S. Cahill, Daniel C. Gatch, Frank L. Dorman, Liisa M. Jantunen Liisa M. Jantunen Liisa M. Jantunen Paul A. Helm, Paul A. Helm, Paul A. Helm, Paul A. Helm, Paul A. Helm, Paul A. Helm, Miriam L. Diamond, Karl J. Jobst, Paul A. Helm, Liisa M. Jantunen Liisa M. Jantunen Paul A. Helm, Liisa M. Jantunen Liisa M. Jantunen Liisa M. Jantunen Paul A. Helm, Paul A. Helm, Liisa M. Jantunen Paul A. Helm, Liisa M. Jantunen Paul A. Helm, Miriam L. Diamond, Miriam L. Diamond, Lindsay S. Cahill, Paul A. Helm, Paul A. Helm, Paul A. Helm, Miriam L. Diamond, Miriam L. Diamond, Paul A. Helm, Karl J. Jobst, Miriam L. Diamond, Mahin Hashemihedeshi, Karl J. Jobst, Miriam L. Diamond, Frank L. Dorman, Mahin Hashemihedeshi, Miriam L. Diamond, Lindsay S. Cahill, Frank L. Dorman, Paul A. Helm, Frank L. Dorman, Miriam L. Diamond, Frank L. Dorman, Karl J. Jobst, Lindsay S. Cahill, Liisa M. Jantunen Miriam L. Diamond, Frank L. Dorman, Miriam L. Diamond, Miriam L. Diamond, Lindsay S. Cahill, Lindsay S. Cahill, Lindsay S. Cahill, Lindsay S. Cahill, Paul A. Helm, Paul A. Helm, Karl J. Jobst, Paul A. Helm, Paul A. Helm, Karl J. Jobst, Karl J. Jobst, Liisa M. Jantunen Lindsay S. Cahill, Karl J. Jobst, Miriam L. Diamond, Karl J. Jobst, Karl J. Jobst, Karl J. Jobst, Paul A. Helm, Lindsay S. Cahill, Lindsay S. Cahill, Miriam L. Diamond, Liisa M. Jantunen Karl J. Jobst, Karl J. Jobst, Lindsay S. Cahill, Lindsay S. Cahill, Paul A. Helm, Karl J. Jobst, Paul A. Helm, Lindsay S. Cahill, Liisa M. Jantunen

Summary

Scientists developed a new method to measure micro and nanoplastics in indoor air down to 56 nanometers in size, using advanced mass spectrometry techniques. They found significant concentrations of plastic particles in both a laboratory and a private home, with polystyrene being the most common type, and also detected flame retardant chemicals associated with plastic furniture foam. This study provides some of the first evidence that people are breathing in substantial amounts of nanoscale plastic particles indoors, where most people spend the majority of their time.

Humans are exposed to differing levels of micro/nanoplastics (MNPs) through inhalation, but few studies have attempted to measure <1 μm MNPs in air, in part due to a paucity of analytical methods. We developed an approach to identify and quantify MNPs in indoor air using a novel pyrolysis gas chromatographic cyclic ion mobility mass spectrometer (pyr-GCxcIMS). Four common plastic types were targeted for identification, namely, (polystyrene (PS), polyethylene (PE), polypropylene (PP), and polymethyl methacrylate (PMMA). The method was applied to size-resolved particulate (56 nm to 18 μm) collected from two different indoor environments using a Micro-Orifice Uniform Deposit Impactors (MOUDI) model 110 cascade impactor. Comprehensive two-dimensional separation by GCxcIMS also enabled the retrospective analysis of other polymers and plastic additives. The mean concentrations of MNP particles with diameters of <10 μm and <2.5 μm in the laboratory were estimated to be 47 ± 5 and 27 ± 4 μg/m<sup>3</sup>, respectively. In the private residence, the estimated concentrations were 24 ± 3 and 16 ± 2 μg/m<sup>3</sup>. PS was the most abundant MNP type in both locations. Nontargeted screening revealed the presence of plastic additives, such as TDCPP (tris(1,3-dichloro-2-propyl)phosphate) whose abundance correlated with that of polyurethane (PU). This is consistent with their use as flame retardants in PU-based upholstered furniture and building insulation. This study provides evidence of indoor exposure to MNPs and underlines the need for further study of this route of exposure to MNPs and the plastic additives carried with them.

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