Atmospheric Processing of Nitrophenols and Nitrocresols From Biomass Burning Emissions

大气化学 环境科学 环境化学 气溶胶 化学 生物质燃烧 稀释 气温日变化 大气科学 臭氧 热力学 物理 地质学 有机化学
作者
Hongli Wang,Yaqin Gao,Siyuan Wang,Xiaokang Wu,Ying Liu,Xin Li,Dandan Huang,Shengrong Lou,Zhijun Wu,Song Guo,Shengao Jing,Yingjie Li,Cheng Huang,Geoffrey S. Tyndall,John J. Orlando,Xuan Zhang
出处
期刊:Journal Of Geophysical Research: Atmospheres [Wiley]
卷期号:125 (22) 被引量:41
标识
DOI:10.1029/2020jd033401
摘要

Abstract We present the analysis of the atmospheric budget of nitrophenols and nitrocresols, a class of nitroaromatics that raise great ecosystem and health concerns due to their phytotoxic and genotoxic properties, during the spring wheat harvest season in Eastern China. Significant quantities with maximum concentrations over 100 pptv and distinct diurnal patterns that peak around midnight and maintain low levels throughout the day were observed, in coincidence with the extensive open crop residue burning activities conducted in the vicinity. An observationally constrained zero‐dimension box model was constructed to assess the relative importance of various production and removal pathways at play in determining the measured surface concentrations. The NO 3 ‐initiated dark chemistry, in concert with meteorological variations predominantly dilution and entrainment, exerts major controls over the observed diurnal behaviors of nitrophenols and nitrocresols. Structural isomerism is predicted to have a significant impact on the multiphase partitioning and chemistry of nitrophenol isomers. Furthermore, simulations show that an appreciable amount of nitrophenols is present in the aerosol water, thereby representing an important source of water‐soluble brown carbon in atmospheric aerosols under the humid subtropical weather prevailing during the campaign. Sensitivity analysis performed on the model parameterizations of reaction schemes helps to further understand the chemistry underlying the diurnal cycles. Implementing NO‐dependent yields of cresols from toluene photooxidation improves the model predictions of nitrocresols at low NO ranges (<1 ppb), thereby underscoring the complexity of the peroxy radical reaction pathways from toluene photooxidation under atmospheric relevant conditions.
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