• Title of article

    Weak bonding of alumina coatings on Ni(1 1 1)

  • Author/Authors

    Jarvis، نويسنده , , Emily A.A and Christensen، نويسنده , , Asbjorn and Carter، نويسنده , , Emily A، نويسنده ,

  • Issue Information
    هفته نامه با شماره پیاپی سال 2001
  • Pages
    22
  • From page
    55
  • To page
    76
  • Abstract
    We examine the structure and stability of an ultrathin ceramic film coating a metal substrate, specifically, an α-alumina, Al2O3, film grown on fcc nickel. This metal–ceramic interface may play a role in materials failure of current combustion engine thermal barrier coatings (TBCʹs). We characterize the (0 0 0 1) surface of α-Al2O3 and study the effect of increasing alumina film thickness on the alumina/nickel interface using periodic slab density functional theory within the generalized gradient approximation. Since Ni forms stable alloys with Al, it is not obvious whether the bonds between Ni and alumina will be Ni–Al, Ni–O, or both. Interestingly, our calculations indicate that the preferred bonding mode depends on the thickness of the alumina film. Namely, for one monolayer of alumina, the alumina appears amorphous and both Ni–O and Ni–Al interactions take place, while for two and three monolayers, Ni–O interactions decrease and Ni–Al bonds become more pronounced. By studying the effect of increasing alumina thickness on the Ni substrate, we observe a marked decrease in the work of adhesion for thicker alumina coatings. This provides a new atomic-scale explanation for the observed increase in spallation with increasing thickness of oxide layer (alumina) that forms during preparation and operational cycling of TBCʹs. The thickest alumina layers energetically prefer intra-ceramic bonding over Al2O3/Ni interface formation. Connections to metal catalyst–oxide support interfaces are also discussed.
  • Keywords
    Density functional calculations , Metal–insulator interfaces , Aluminum oxide , nickel , Coatings , ceramics
  • Journal title
    Surface Science
  • Serial Year
    2001
  • Journal title
    Surface Science
  • Record number

    1680414