• Title of article

    Photoluminescent BaMoO4 nanopowders prepared by complex polymerization method (CPM)

  • Author/Authors

    Ana Paula de Azevedo Marques، نويسنده , , Dulce M.A. de Melo، نويسنده , , Carlos A. Paskocimas، نويسنده , , Paulo S. Pizani، نويسنده , , Miryam R. Joya، نويسنده , , Edson R. Leite، نويسنده , , Elson Longo، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2006
  • Pages
    8
  • From page
    671
  • To page
    678
  • Abstract
    The BaMoO4 nanopowders were prepared by the Complex Polymerization Method (CPM). The structure properties of the BaMoO4 powders were characterized by FTIR transmittance spectra, X-ray diffraction (XRD), Raman spectra, photoluminescence spectra (PL) and high-resolution scanning electron microscopy (HR-SEM). The XRD, FTIR and Raman data showed that BaMoO4 at 300 °C was disordered. At 400 °C and higher temperature, BaMoO4 crystalline scheelite-type phases could be identified, without the presence of additional phases, according to the XRD, FTIR and Raman data. The calculated average crystallite sizes, calculated by XRD, around 40 nm, showed the tendency to increase with the temperature. The crystallite sizes, obtained by HR-SEM, were around of 40–50 nm. The sample that presented the highest intensity of the red emission band was the one heat treated at 400 °C for 2 h, and the sample that displayed the highest intensity of the green emission band was the one heat treated at 700 °C for 2 h. The CPM was shown to be a low cost route for the production of BaMoO4 nanopowders, with the advantages of lower temperature, smaller time and reduced cost. The optical properties observed for BaMoO4 nanopowders suggested that this material is a highly promising candidate for photoluminescent applications.
  • Keywords
    Amorphous , Nanopowders , Complex polymerization method , BaMoO4 , Photoluminescence
  • Journal title
    JOURNAL OF SOLID STATE CHEMISTRY
  • Serial Year
    2006
  • Journal title
    JOURNAL OF SOLID STATE CHEMISTRY
  • Record number

    1331069