Attributing Increases in Ozone to Accelerated Oxidation of Volatile Organic Compounds at Reduced Nitrogen Oxides Concentrations

Author:

Zhang Zekun1,Jiang Jiakui1,Lu Bingqing1,Meng Xue1,Herrmann Hartmut2ORCID,Chen Jianmin1ORCID,Li Xiang13ORCID

Affiliation:

1. Department of Environmental Science & Engineering, Fudan University , Shanghai 200032 , China

2. Leibniz-Institut für Troposphärenforschung (IfT) , Permoserstr. 15, 04318 Leipzig , Germany

3. Institute of Eco-Chongming (IEC) , Shanghai , China

Abstract

Abstract Surface ozone (O3) is an important secondary pollutant affecting climate change and air quality in the atmosphere. Observations during the COVID-19 lockdown in urban China show that the co-abatement of nitrogen oxides (NOx) and volatile organic compounds (VOCs) caused winter ground-level O3 increases, but the chemical mechanisms involved are unclear. Here we report field observations in the Shanghai lockdown that reveals increasing photochemical formation of O3 from VOC oxidation with decreasing NOx. Analyses of the VOC profiles and NO/NO2 indicate that the O3 increases by the NOx reduction counteracted the O3 decreases through the VOC emission reduction in the VOC-limited region, and this may have been the main mechanism for this net O3 increase. The mechanism may have involved accelerated OH–HO2–RO2 radical cycling. The NOx reductions for increasing O3 production could explain why O3 increased from 2014 to 2020 in response to NOx emission reduction even as VOC emissions have essentially remained unchanged. Model simulations suggest that aggressive VOC abatement, particularly for alkenes and aromatics, should help reverse the long-term O3 increase under current NOx abatement conditions.

Funder

National Natural Science Foundation of China

Publisher

Oxford University Press (OUP)

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