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Synthesis of 2,1,3-Benzoxadiazole Derivatives as New Fluorophores-Combined Experimental, Optical, Electro, and Theoretical Study.
Frizon, Tiago E A; Vieira, André A; da Silva, Fabricia N; Saba, Sumbal; Farias, Giliandro; de Souza, Bernardo; Zapp, Eduardo; Lôpo, Michell N; Braga, Hugo de C; Grillo, Felipe; Curcio, Sergio F; Cazati, Thiago; Rafique, Jamal.
Afiliação
  • Frizon TEA; Department of Energy and Sustainability, Federal University of Santa Catarina, Araranguá, Brazil.
  • Vieira AA; Institute of Chemistry, Federal University of Bahia, Salvador, Brazil.
  • da Silva FN; Institute of Chemistry, Federal University of Bahia, Salvador, Brazil.
  • Saba S; Center for Natural and Human Sciences-CCNH, Federal University of ABC, Santo André, Brazil.
  • Farias G; Chemistry Department, Federal University of Santa Catarina, Florianópolis, Brazil.
  • de Souza B; Chemistry Department, Federal University of Santa Catarina, Florianópolis, Brazil.
  • Zapp E; Department of Exact Sciences and Education, Federal University of Santa Catarina, Blumenau, Brazil.
  • Lôpo MN; Institute of Chemistry, Federal University of Mato Grosso do Sul, Campo Grande, Brazil.
  • Braga HC; Institute of Science and Technology, Federal University of São Paulo, São José dos Campos, Brazil.
  • Grillo F; Department of Materials and Metallurgy, Federal Institute of Espírito Santo, Vitória, Brazil.
  • Curcio SF; Physics Department, Federal University of Ouro Preto, Ouro Preto, Brazil.
  • Cazati T; Physics Department, Federal University of Ouro Preto, Ouro Preto, Brazil.
  • Rafique J; Institute of Chemistry, Federal University of Mato Grosso do Sul, Campo Grande, Brazil.
Front Chem ; 8: 360, 2020.
Article em En | MEDLINE | ID: mdl-32478032
ABSTRACT
Herein, we report the synthesis and characterization of fluorophores containing a 2,1,3-benzoxadiazole unit associated with a π-conjugated system (D-π-A-π-D). These new fluorophores in solution exhibited an absorption maximum at around ~419 nm (visible region), as expected for electronic transitions of the π-π* type (ε ~2.7 × 107 L mol-1 cm-1), and strong solvent-dependent fluorescence emission (ΦFL ~0.5) located in the bluish-green region. The Stokes' shift of these compounds is ca. 3,779 cm-1, which was attributed to an intramolecular charge transfer (ICT) state. In CHCl3 solution, the compounds exhibited longer and shorter lifetimes, which was attributed to the emission of monomeric and aggregated molecules, respectively. Density functional theory was used to model the electronic structure of the compounds 9a-d in their excited and ground electronic states. The simulated emission spectra are consistent with the experimental results, with different solvents leading to a shift in the emission peak and the attribution of a π-π* state with the characteristics of a charge transfer excitation. The thermal properties were analyzed by thermogravimetric analysis, and a high maximum degradation rate occurred at around 300°C. Electrochemical studies were also performed in order to determine the band gaps of the molecules. The electrochemical band gaps (2.48-2.70 eV) showed strong correlations with the optical band gaps (2.64-2.67 eV).
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Tipo de estudo: Prognostic_studies Idioma: En Ano de publicação: 2020 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Tipo de estudo: Prognostic_studies Idioma: En Ano de publicação: 2020 Tipo de documento: Article