Unexpected Increase in PM 2.5 ‐Bound Polycyclic Aromatic Hydrocarbons Despite Improved Air Quality: Long‐Term Measurements and Source Apportionment in the Pearl River Delta

环境科学 煤燃烧产物 生物质燃烧 环境化学 分摊 空气质量指数 生物量(生态学) 空气污染 污染 燃烧 三角洲 人类健康 污染 环境工程 微粒 珍珠 排放清单 大气科学 持久性有机污染物 环境监测
作者
Yunfeng He,Qingqing Yu,Yuqing Zhang,Metin Baykara,Quanfu He,Duohong Chen,Tao Zhang,Xiang Ding,X H Wang
出处
期刊:Journal Of Geophysical Research: Atmospheres [Wiley]
卷期号:131 (9)
标识
DOI:10.1029/2025jd046155
摘要

Abstract Polycyclic aromatic hydrocarbons (PAHs) are widespread environmental contaminants that pose significant risks to human health. Long‐term observations in PM 2.5 ‐bound PAHs are essential for understanding their source variations and assessing the impacts of emission control strategies. In this study, a total of 22 PAHs were measured at a rural site in the Pearl River Delta over a 12‐year period. Two distinct phases of variation were identified: During 2007–2013 (Phase I), PAH concentrations approximately doubled from 10.72 ± 4.77 ng m −3 to 23.56 ± 12.13 ng m −3 . In contrast, PAH concentrations decreased by 41% to 13.61 ± 7.17 ng m −3 during 2013–2018 (Phase II). Unexpectedly, an apparent increase in PAH mass fractions was identified (3% yr −1 ), which implied that PAH‐associated health risks did not decline despite improved air quality over the past decades. Correlation analysis and source apportionment revealed that PAHs originated primarily from coal combustion, accounting for 55% of the total contribution. In comparison, biomass burning and transportation accounted for 25% and 20%, respectively. Notably, the contributions of coal combustion significantly increased from 34% to 73%, while those of traffic emission and biomass burning decreased from 39% to 13% and from 27% to 14%, respectively. In addition, the persistently high PAH levels were primarily linked to coal combustion, resulting in PAH‐related health risks that remained approximately two orders of magnitude above the acceptable threshold. Our results highlight that future mitigation strategies should shift from a concentration‐based approach toward a health risk‐oriented framework that prioritizes the reduction of highly toxic components and their sources.
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