• Title of article

    Control of composition and crystallinity in hydroxyapatite films deposited by electron cyclotron resonance plasma sputtering Original Research Article

  • Author/Authors

    Housei Akazawa، نويسنده , , Yuko Ueno، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2014
  • Pages
    6
  • From page
    94
  • To page
    99
  • Abstract
    Hydroxyapatite (HAp) films were deposited by electron cyclotron resonance plasma sputtering under a simultaneous flow of H2O vapor gas. Crystallization during sputter-deposition at elevated temperatures and solid-phase crystallization of amorphous films were compared in terms of film properties. When HAp films were deposited with Ar sputtering gas at temperatures above 460 °C, CaO byproducts precipitated with HAp crystallites. Using Xe instead of Ar resolved the compositional problem, yielding a single HAp phase. Preferentially c-axis-oriented HAp films were obtained at substrate temperatures between 460 and 500 °C and H2O pressures higher than 1×10−2 Pa. The absorption signal of the asymmetric stretching mode of the PO43− unit (ν3) in the Fourier-transform infrared absorption (FT-IR) spectra was the narrowest for films as-crystallized during deposition with Xe, but widest for solid-phase crystallized films. While the symmetric stretching mode of PO43− (ν1) is theoretically IR-inactive, this signal emerged in the FT-IR spectra of solid-phase crystallized films, but was absent for as-crystallized films, indicating superior crystallinity for the latter. The Raman scattering signal corresponding to ν1 PO43− sensitively reflected this crystallinity. The surface hardness of as-crystallized films evaluated by a pencil hardness test was higher than that of solid-phase crystallized films.
  • Keywords
    A. Thin films , B. Plasma deposition , C. Infrared spectroscopy , C. Raman spectroscopy , C. X-ray diffraction
  • Journal title
    Journal of Physics and Chemistry of Solids
  • Serial Year
    2014
  • Journal title
    Journal of Physics and Chemistry of Solids
  • Record number

    1312108