Unveiling the Role of Carbonate Radical Anions in Dust‐Driven SO2 Oxidation

Author:

Liu Yangyang12ORCID,Wang Tao1,Ge Qiuyue1,You Wenbo1,Li Kejian1,Wang Wei1,Xie Lifang1,Wang Longqian1,Fang Xiaozhong1,Ruan Xuejun1,Yang Le1,Wang Runbo1,Zhang Liwu12ORCID

Affiliation:

1. Department of Environmental Science & Engineering Shanghai Key Laboratory of Atmospheric Particle Pollution and Prevention National Observations and Research Station for Wetland Ecosystems of the Yangtze Estuary IRDR International Center of Excellence on Risk Interconnectivity and Governance on Weather Fudan University Shanghai Peoples' Republic of China

2. Shanghai Institute of Pollution Control and Ecological Security Shanghai Peoples' Republic of China

Abstract

AbstractCarbonate radical anion () is generally overlooked in atmospheric chemistry. Our recent work emphasizes the important role of carbonate radicals produced on mineral dust surfaces in fast sulfate production under solar irradiation in the presence of CO2 at specifically low RH and light intensity. Yet so far how involves and affects secondary sulfate production under diverse RH, light intensity, and complex constituent matrix remains unknown, which essentially limits our comprehensive knowledge of initiated SO2 oxidation scheme in the atmosphere. Herein, we explored the heterogeneous SO2 oxidation over both model and authentic dust and clays in the presence of CO2 at atmospheric relevant RHs and light intensities. Interestingly, we observe that CO2 promotes sulfate yield over authentic dust and clays at atmospheric‐relevant RH and light intensity. This observation relates to the favorable kinetic between SO2 oxidation and while auto‐quenching of these radical ions is largely minimized due to the sufficient sites of crustal constituents. Furthermore, employing a suite of authentic dust and machine learning strategies, we evaluated the relative importance of each constituent within airborne minerals or clays as well as environmental conditions including relative humidity, light intensity, and CO2 concentration in affecting SO2 uptake capability. On this basis, sulfate formation mediated by dust‐driven pathway, accounting for nearly ∼20.9% of overall contribution by the end of this century during some pollution episodes, even higher than gas‐phase (∼16.9%), will be increased by 163% if CO2‐initiated SO2 oxidation scheme is incorporated.

Funder

Natural Science Foundation of Shanghai Municipality

Publisher

American Geophysical Union (AGU)

Subject

Space and Planetary Science,Earth and Planetary Sciences (miscellaneous),Atmospheric Science,Geophysics

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