Concentration and source changes of nitrous acid (HONO) during the COVID-19 lockdown in Beijing

北京 2019年冠状病毒病(COVID-19) 严重急性呼吸综合征冠状病毒2型(SARS-CoV-2) 2019-20冠状病毒爆发 亚硝酸 环境科学 大气科学 化学 气象学 病毒学 医学 物理 地理 中国 内科学 无机化学 疾病 考古 爆发 传染病(医学专业)
作者
Yusheng Zhang,Feixue Zheng,Zemin Feng,Chaofan Lian,Weigang Wang,Xiaolong Fan,Wei Ma,Zhuohui Lin,Chang Li,Gen Zhang,Chao Yan,Yusheng Zhang,Veli‐Matti Kerminen,Federico Bianchi,Tuukka Petäjä,Juha Kangasluoma,Markku Kulmala,Yongchun Liu
出处
期刊:Atmospheric Chemistry and Physics 卷期号:24 (15): 8569-8587
标识
DOI:10.5194/acp-24-8569-2024
摘要

Abstract. Nitrous acid (HONO) is an important precursor of OH radicals which affects not only the sinks of primary air pollutants but also the formation of secondary air pollutants, but its source closure in the atmosphere is still controversial due to a lack of experiment validation. In this study, the HONO budget in Beijing has been analyzed and validated through the coronavirus disease (COVID-19) lockdown event, which resulted in a significant reduction in air pollutant emissions, providing a rare opportunity to understand the HONO budget in the atmosphere. We measured HONO and related pollutants from 1 January to 6 March 2020, which covered the Chinese New Year (CNY) and the COVID-19 lockdown. The average concentration of HONO decreased from 0.97 ± 0.74 ppb before CNY to 0.53 ± 0.44 ppb during the COVID-19 lockdown, accompanied by a sharp drop in NOx and the greatest drop in NO (around 87 %). HONO budget analysis suggests that vehicle emissions were the most important source of HONO during the nighttime (53 ± 17 %) before CNY, well supported by the decline in their contribution to HONO during the COVID-19 lockdown. We found that the heterogeneous conversion of NO2 on ground surfaces was an important nighttime source of HONO (31 ± 5 %), while that on aerosol surfaces was a minor source (2 ± 1 %). Nitrate photolysis became the most important daytime source during the COVID-19 lockdown compared with that before CNY, resulting from the combined effect of the increase in nitrate and the decrease in NO. Our results indicate that reducing vehicle emissions should be an effective measure for alleviating HONO in Beijing.
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