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Autor(en) / Beteiligte
Titel
DFT outcome for comparative analysis of Be12O12, Mg12O12 and Ca12O12 nanocages toward sensing of N2O, NO2, NO, H2S, SO2 and SO3 gases
Ist Teil von
  • Computational and theoretical chemistry, 2022-05, Vol.1211, p.113694, Article 113694
Ort / Verlag
Elsevier B.V
Erscheinungsjahr
2022
Link zum Volltext
Quelle
ScienceDirect Journals (5 years ago - present)
Beschreibungen/Notizen
  • [Display omitted] •The report compares the adsorption of small gaseous molecules including, N2O, NO2, NO, H2S, SO2, and SO3 onto the Be12O12, Mg12O12 & Ca12O12 nanocages within the density functional theory framework.•Our thermodynamic analysis reveals that the gaseous molecules strongly bind with C12O12 nanocage with the maximum interaction energy of ∼ 124 kcal/mol for SO3@Ca12O12.•The general trend of adsorption of small gaseous molecules onto the selected nanocages is as follows Ca12O12 > Mg12O12 > Be12O12.•These gaseous molecules cause a significant effect on the electronic behaviour of nanocages. The gas sensing applications of nanocages find intense attention in environmental monitoring. In this research, the adsorption of nitrogen and sulfur-containing gaseous molecules i.e., N2O, NO2, NO, H2S, SO2, and SO3 on inorganic oxide nanocages are analyzed through DFT simulations. The adsorption of gaseous molecules with Be12O12, Mg12O12, and Ca12O12 is illustrated through the adsorption energies, optimized geometries, and electronic properties like HOMO-LUMO energies and NBO analysis. Our theoretical analysis indicates that the molecules strongly bind with the Ca12O12 nanocage. The adsorption energies of N2O@Ca12O12, NO2@Ca12O12, NO@Ca12O12, H2S@Ca12O12, SO2@Ca12O12 and SO3@Ca12O12 are −11.79, −46.53, −26.51, −50.26, −78.64 and −123.62 kcal/mol, respectively. Moreover, the HOMO-LUMO orbital analysis, density of state analysis (DOS), and natural bond orbital (NBO) analysis illustrate the significant impact of adsorption of these molecules on the electronic properties of respective nanocages, especially Ca12O12. Finally, it can be concluded that the Ca12O12 nanocage shows promising sensitivity towards the gaseous molecules which is followed by Mg12O12 and Be12O12.
Sprache
Englisch
Identifikatoren
ISSN: 2210-271X
DOI: 10.1016/j.comptc.2022.113694
Titel-ID: cdi_crossref_primary_10_1016_j_comptc_2022_113694

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