• Title of article

    Surface diffusion on SrTiO3 (100): A temperature accelerated dynamics and first principles study

  • Author/Authors

    Hong، نويسنده , , Minki and Wohlwend، نويسنده , , Jennifer L. and Behera، نويسنده , , Rakesh K. and Phillpot، نويسنده , , Simon R. and Sinnott، نويسنده , , Susan B. and Uberuaga، نويسنده , , Blas P.، نويسنده ,

  • Issue Information
    هفته نامه با شماره پیاپی سال 2013
  • Pages
    5
  • From page
    237
  • To page
    241
  • Abstract
    Temperature accelerated dynamics (TAD) with an empirical potential is used to predict diffusion mechanisms and energy barriers associated with surface diffusion of adatoms and surface vacancies on (100) SrTiO3 (STO). Specifically, Sr, O, and Ti adatoms and vacancies are investigated on each termination – SrO and TiO2 – of the SrTiO3 surface. We find that the empirical potential predicts different surface mobility of adatoms depending on the surface termination: they are mobile with relatively low diffusion barriers on the SrO-terminated surface, whereas they are largely immobile on the TiO2-terminated surface. One important finding is that, of the two binding sites on the SrO-terminated surface, one is typically very close in energy to the saddle point. Thus, one of the two sites is a good estimator of the migration energy of the adatom, a conclusion supported by select density functional theory (DFT) calculations. Motivated by this result, we calculate the migration energies for a number of metal elements on the SrO-terminated surface: Ti, Ba, La, and Al. The DFT results also reveal that the details of the migration mechanism depend on the charge state of the diffusing species and that the ability of the empirical potential to properly estimate the migration mechanism depends on the magnitude and variability of the charge transfer between the adatom and the surface.
  • Keywords
    SrTiO3 , Temperature accelerated dynamics , surface diffusion , Migration energy
  • Journal title
    Surface Science
  • Serial Year
    2013
  • Journal title
    Surface Science
  • Record number

    1706143