Hydrazine and its Derivatives: Role on Nitrogen Dioxide Hydrolysis and Ensuing Nucleation in the Atmosphere

Author:

Ni Shuang1,An Guo‐Ce2,Peng Xin‐Yao1,Liu Xiang‐Huan1,Meng Ting‐Ting1,Song Xiao‐Ming1,Tang Yi‐Zhen3,Bai Feng‐Yang1ORCID,Zhao Zhen14ORCID

Affiliation:

1. Institute of Catalysis for Energy and Environment College of Chemistry and Chemical Engineering Shenyang Normal University Shenyang Liaoning 110034 People's Republic of China

2. College of Criminal Science and Technology Criminal Investigation Police University of China Shenyang Liaoning 110854 People's Republic of China

3. School of Environmental and Municipal Engineering Qingdao Technological University Qingdao 266033 People's Republic of China

4. State Key Laboratory of Heavy Oil Processing China University of Petroleum, Chang Ping Beijing 102249 People's Republic of China

Abstract

AbstractHydrazine (HD) and mono‐methyl hydrazine (MMH), as the compositions of rocket fuels and corrosion inhibitor, have a significant impact on the atmospheric environment. The effects of them on the reaction between NO2 and H2O were investigated theoretically from mechanism and kinetics, and it is expected that they can promote the hydrolysis of NO2 due to their lower free energy barriers. For the subsequent reaction HNO3+HONO+HD/MMH, acid base complex and zwitterionic structure were produced through isomerization. When one or two water molecules were involved in the subsequent reaction, only zwitterionic structure can be found with the lower free energy barrier, and the products were more stable than those without water molecules. To study the atmospheric behavior of HD/MMH, the structures, thermodynamics, interaction forces and temperature dependence of the clusters, which were consisted with HNO3 and HONO with the base molecules including ammonia, amine and amide, were further calculated, and the results show that the hydrogen bond is the main interaction in the clusters. The global minima remained fixed when the temperature increases from 200 K to 325 K. The forming reactions of the clusters were spontaneous, suggesting that ammonia, amine and amide can promote the nucleation of HNO3 and HONO molecules.

Funder

National Natural Science Foundation of China

Shenyang Normal University

Natural Science Foundation of Liaoning Province

Publisher

Wiley

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