Kinetic Monte Carlo Simulation of Oxygen Diffusion in Ytterbium Disilicate
Author(s) -
Brian Good
Publication year - 2016
Publication title -
mrs advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.253
H-Index - 15
eISSN - 2731-5894
pISSN - 2059-8521
DOI - 10.1557/adv.2015.54
Subject(s) - materials science , kinetic monte carlo , diffusion , vacancy defect , ytterbium , chemical physics , diffusion barrier , monte carlo method , thermal barrier coating , oxygen , thermal diffusivity , ceramic , thermodynamics , nanotechnology , crystallography , composite material , chemistry , statistics , physics , mathematics , optoelectronics , doping , organic chemistry , layer (electronics)
Ytterbium disilicate is of interest as a potential environmental barrier coating for aerospace applications, notably for use in next generation jet turbine engines. In such applications, the transport of oxygen and water vapor through these coatings to the ceramic substrate is undesirable if high temperature oxidation is to be avoided. In an effort to understand the diffusion process in these materials, we have performed kinetic Monte Carlo simulations of vacancy-mediated and interstitial oxygen diffusion in Ytterbium disilicate. Oxygen vacancy and interstitial site energies, vacancy and interstitial formation energies, and migration barrier energies were computed using Density Functional Theory. We have found that, in the case of vacancy-mediated diffusion, many potential diffusion paths involve large barrier energies, but some paths have barrier energies smaller than one electron volt. However, computed vacancy formation energies suggest that the intrinsic vacancy concentration is small. In the case of interstitial diffusion, migration barrier energies are typically around one electron volt, but the interstitial defect formation energies are positive, with the result that the disilicate is unlikely to exhibit experience significant oxygen permeability except at very high temperature.
Accelerating Research
Robert Robinson Avenue,
Oxford Science Park, Oxford
OX4 4GP, United Kingdom
Address
John Eccles HouseRobert Robinson Avenue,
Oxford Science Park, Oxford
OX4 4GP, United Kingdom