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  4. Abundant nitrogen oxide and weakly acidic environment synergistically promote daytime particulate nitrate pollution
 
research article

Abundant nitrogen oxide and weakly acidic environment synergistically promote daytime particulate nitrate pollution

Wei, Yuting
•
Nenes, Athanasios  
•
Gao, Jie
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May 20, 2023
Journal Of Hazardous Materials

Nitrate is formed through the chemical production of gas-phase nitric acid and subsequent partitioning to the aerosol phase during the daytime. Many studies in the past separated these two aspects, even though they occur simultaneously in the atmosphere. To better understand the nitrate formation mechanism and effectively miti-gate its production, it is necessary to consider the synergy between these two mechanisms. For this, we analyze hourly-speciated ambient observations data, with EK&TMA (Empirical Kinetic & Thermodynamic Modeling Approach) map to comprehensively explore the factors controlling nitrate production. Results show that precursor NO2 concentration and aerosol pH, which are related to anthropogenic activities, are the two major factors for chemical kinetics production and gas/particle thermodynamic partitioning processes respectively. Abundant NO2 and weakly acidic environments are favorable conditions for daytime particulate nitrate pollution, thus collaborative control of coal source, vehicle source, and dust source is needed to alleviate nitrate pollution.

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Type
research article
DOI
10.1016/j.jhazmat.2023.131655
Web of Science ID

WOS:001009489900001

Author(s)
Wei, Yuting
Nenes, Athanasios  
Gao, Jie
Liang, Weiqing
Liang, Danni
Shi, Guoliang
Feng, Yinchang
Russell, Armistead G.
Date Issued

2023-05-20

Publisher

ELSEVIER

Published in
Journal Of Hazardous Materials
Volume

456

Article Number

131655

Subjects

Engineering, Environmental

•

Environmental Sciences

•

Engineering

•

Environmental Sciences & Ecology

•

nitrate production

•

gas phase

•

chemical kinetics

•

thermodynamics

•

synergistic effect

•

fine-particle ph

•

liquid water

•

chemical-composition

•

size distribution

•

aerosol acidity

•

haze events

•

winter haze

•

pm2.5

•

model

•

china

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LAPI  
Available on Infoscience
July 3, 2023
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/198742
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