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Understanding the aqueous chemistry of quinoline and the diazanaphthalenes: insight from DFT study.
Enudi, Obieze C; Louis, Hitler; Edim, Moses M; Agwupuye, John A; Ekpen, Francis O; Bisong, Emmanuel A; Utsu, Patrick M.
Afiliación
  • Enudi OC; Computational and Bio-Simulation Research Group, University of Calabar, Calabar, Nigeria.
  • Louis H; Computational and Bio-Simulation Research Group, University of Calabar, Calabar, Nigeria.
  • Edim MM; Computational and Bio-Simulation Research Group, University of Calabar, Calabar, Nigeria.
  • Agwupuye JA; Computational and Bio-Simulation Research Group, University of Calabar, Calabar, Nigeria.
  • Ekpen FO; Computational and Bio-Simulation Research Group, University of Calabar, Calabar, Nigeria.
  • Bisong EA; Computational and Bio-Simulation Research Group, University of Calabar, Calabar, Nigeria.
  • Utsu PM; Computational and Bio-Simulation Research Group, University of Calabar, Calabar, Nigeria.
Heliyon ; 7(7): e07531, 2021 Jul.
Article en En | MEDLINE | ID: mdl-34296019
ABSTRACT
The inter-fragment interactions at various binding sites and the overall cluster stability of quinolone (QNOL), cinnoline (CNOL), quinazoline (QNAZ), and quinoxaline (QNOX) complexes with H2O were studied using the density functional theory (DFT) approach. The adsorption and H-bond binding energies, and the energy decomposition mechanism was considered to determine the relative stabilization status of the studied clusters. Scanning tunneling microscopy (STM), natural bonding orbitals (NBO) and charge decomposition were studied to expose the electronic distribution and interaction between fragments. The feasibility of formations of the various complexes were also studied by considering their thermodynamic properties. Results from adsorption studies confirmed the actual adsorption of H2O molecules on the various binding sites studied, with QNOX clusters exhibiting the best adsorptions. Charge decomposition analysis (CDA) revealed significant charge transfer from substrate to H2O fragment in most complexes, except in QNOL, CNOL and QNAZ clusters with H2O at binding position 4, where much charges are back-donated to substrate. The O---H inter-fragment bonds was discovered to be stronger than counterpart N---H bonds in the complexes, whilst polarity indices confirmed N---H as more polar covalent than O---H bonds. Thermodynamic considerations revealed that the formation process of all studied complexes are endothermic (+ve ΔH f ) and non-spontaneous (+ve ΔG f ).
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Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Idioma: En Revista: Heliyon Año: 2021 Tipo del documento: Article País de afiliación: Nigeria

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Idioma: En Revista: Heliyon Año: 2021 Tipo del documento: Article País de afiliación: Nigeria
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