4.7 Article

First-principles prediction of NO2 and SO2 adsorption on MgO/(Mg0.5Ni0.5)O/MgO(100)

期刊

APPLIED SURFACE SCIENCE
卷 566, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.apsusc.2021.150650

关键词

Density functional theory; Adsorption; NO2; SO2; Promoter; Strain

资金

  1. National Research Foundation of Korea (NRF) - Korean government (MSIP
  2. Ministry of Science, ICT&Future Planning) [2020R1F1A1066029, 2020R1A4A4079954]
  3. National Research Foundation of Korea [2020R1F1A1066029] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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The study explored the adsorption of NO2 and SO2 on MgO/(Mg0.5Ni0.5)O/MgO(1 0 0) and found that it is tunable through applied strain and certain promoters like Ca and Sr. The use of promoters was more effective in enhancing the strength of NO2 and SO2 adsorption compared to strain. The interactions between the adsorbate and the surface were further elucidated through an investigation of the density of states and Bader charge.
Developing high-performance adsorbents for NO2 and SO2 is a significant step in reducing air pollution. In this study, using first-principles modeling, NO2 and SO2 adsorption on MgO/(Mg0.5Ni0.5)O/MgO(1 0 0) was theoretically predicted. Adsorption of NO2 was stronger than that of SO2 on the MgO/(Mg0.5Ni0.5)O/MgO(1 0 0) surface. Both structural and chemical changes were applied to MgO/(Mg0.5Ni0.5)O/MgO(1 0 0) in order to investigate strategies for improving the strength of adsorption of these gases on the MgO/(Mg0.5Ni0.5)O/MgO(1 0 0) system. NO2 and SO2 adsorption on MgO/(Mg0.5Ni0.5)O/MgO(1 0 0) was found to be tunable using the applied strain and certain promoters, such as Ca and Sr. The approach with the promoter more effectively enhanced the strength of NO2 and SO2 adsorption on MgO/(Mg0.5Ni0.5)O/MgO(1 0 0) than the approach with the applied strain. The interactions between the adsorbate (i.e., NO2 and SO2) and the MgO/(Mg0.5Ni0.5)O/MgO(1 0 0)) surface were further elucidated through an investigation of the density of states and Bader charge.

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