4.7 Article

Energetics of defects formation and oxygen migration in pyrochlore compounds from first principles calculations

Journal

JOURNAL OF NUCLEAR MATERIALS
Volume 505, Issue -, Pages 255-261

Publisher

ELSEVIER SCIENCE BV
DOI: 10.1016/j.jnucmat.2017.11.005

Keywords

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Funding

  1. Excellence Initiative of the German federal and state governments
  2. Julich Aachen Research Alliance - High-Performance Computing
  3. German Federal Ministry for Education and Research (BMBF) [02NUK021A]

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In order to get better understanding of the selective order-disorder transition in pyrochlore compounds, using ab initio methods we calculated the formation energies of coupled cation anti-site and anion Frenkel pair defects and the energy barriers for the oxygen migration for number of families of A(2)B(2)O(7) pyrochlore-type compounds. While these parameters have been previously computed with force fieldbased methods, the ab initio results provide more reliable values that can be confidently used in subsequent analysis. We found a fairly good correlation between the formation energies of the coupled defects and the stability field of pyrochlores. In line with previous studies, the compounds that crystallize in defect fluorite structure are found to have smaller values of coupled defect formation energies than those crystallizing in the pyrochlore phase, although the correlation is not that sharp as in the case of isolated anion Frenkel pair defect. The investigation of the energy barriers for the oxygen migration shows that it is not a good, sole indicator of the tendency of the order-disorder phase transition in pyrochlores. However, we found that the oxygen migration barrier is reduced in the presence of the cation antisite defect. This points at disordering-induced enhancement of oxygen diffusion in pyrochlore compounds. (C) 2017 Elsevier B.V. All rights reserved.

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