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Unappreciated Role of Photochemical Aging of Biogenic Organic Nitrates in Atmospheric Ozone Formation

  • Si Zhang
  • , Gehui Wang*
  • , Xinbei Xu
  • , Yuliang Liu
  • , Wei Nie
  • , Luyao Chen
  • , Rui Li
  • , Yining Gao
  • , Rui Li
  • , Can Wu
  • , Junke Zhang
  • , Andre S.H. Prevot*
  • *此作品的通讯作者
  • East China Normal University
  • Nanjing University
  • Southwest Jiaotong University
  • Paul Scherrer Institute

科研成果: 期刊稿件文章同行评审

摘要

Biogenic organic nitrate compounds (BONs) are major components of atmospheric secondary organic aerosols (SOA) and significantly impact the production of O3 through photochemical aging. However, the photolysis mechanisms and roles of BONs, especially the highly oxygenated molecules (HOMs-BONs), in the formation of the O3 remain unclear. By combining lab chamber experiments, numerical model simulation, and field observation, here we show that under our experimental conditions, the O3 formation rate through α-pinene-ONs photolysis is ten times greater than that of isoprene-ONs. This enhancement arises from stronger intramolecular interactions between the carbonyl and nitrooxy functional groups in α-pinene-ONs, which promote ultraviolet absorption and accelerate photolytic decomposition. The photolysis pathways of those BONs are different. While isoprene-ONs undergo photolysis through an initial cleavage of the O–NO2 bond followed by RO fragmentation, α-pinene-ONs undergo multigeneration photolysis commencing with C(O)–C bond cleavage and subsequent O–NO2 bond dissociation. We found that these BONs are actually oxidized by OH radicals via H abstraction from the peroxyhydroxyl group (−OOH) rather than the traditional thought from aldehyde (C(O)–H) or hydroxyl groups (−OH). Currently, the contribution of BONs photolysis to O3 formation is significantly underestimated in models, mainly due to neglecting the photolysis role of HOMs-BONs. Our study is the first to reveal a non-negligible contribution of α-pinene-ONs to atmospheric ozone formation, which should be accounted for by photochemical models in the future.

源语言英语
页(从-至)7260-7273
页数14
期刊Environmental Science and Technology
60
9
DOI
出版状态已出版 - 10 3月 2026

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