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Abstract
Transformation of organophosphate esters (OPEs) in natural ambient air and potential health risks from coexposure to OPEs and their transformation products are largely unclear. Therefore, a novel framework combining field-based investigation, in silico prediction, and target and suspect screening was employed to understand atmospheric persistence and health impacts of OPEs. Alkyl-OPE transformation products ubiquitously occurred in urban ambient air. The transformation ratios of tris(2-butoxyethyl) phosphate were size-dependent, implying that transformation processes may be affected by particle size. Transformation products of chlorinated- and aryl-OPEs were not detected in atmospheric particles, and atmospheric dry deposition might significantly contribute to their removal. Although inhalation risk of coexposure to OPEs and transformation products in urban ambient air was low, health risks related to OPEs may be underestimated as constrained by the identification of plausible transformation products and their toxicity testing in vitro or in vivo at current stage. The present study highlights the significant impact of particle size on the atmospheric persistence of OPEs and suggests that health risk assessments should be conducted with concurrent consideration of both parental compounds and transformation products of OPEs, in view of the nonnegligible abundances of transformation products in the air and their potential toxicity in silico.
Original language | English |
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Pages (from-to) | 12003–12013 |
Journal | Environmental Science and Technology |
Volume | 56 |
Issue number | 17 |
Online published | 10 Aug 2022 |
DOIs | |
Publication status | Published - 6 Sept 2022 |
Funding
The present study was supported by the Science, Technology, and Innovation Commission of Shenzhen Municipality (JCYJ20190812155805559) and the Research Grants Council, University Grants Committee Theme-Based Research Scheme (T21-602/16-R). Special thanks go to Qi Wang, Rongben Wu, Linjie Jin, Shaopeng Xu, and Gabriel Y. Lee for their assistance in field sampling.
Research Keywords
- inhalation risk
- novel organophosphate esters
- particle size
- suspect screening
- transformation products
Publisher's Copyright Statement
- This full text is made available under CC-BY-NC-ND 4.0. https://creativecommons.org/licenses/by-nc-nd/4.0/
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- 1 Finished
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TBRS-ExtU-Lead: Diagnosis and Prognosis of Intensifying Eutrophication, Hypoxia and the Ecosystem Consequences around Hong Kong Waters: Coupled Physical-biogeochemical-pollution Studies - Prof. Paul Lam
GAN, J. (Main Project Coordinator [External]), RUAN, Y. P. (Principal Investigator / Project Coordinator) & LAM, K. S. P. (Co-Investigator)
1/01/17 → 31/12/22
Project: Research