Simulation of proton diffusion in In-doped CaZrO3

First principles calculations, based on density functional theory, are exploited to investigate the mechanisms and energetics of proton mobility in In-doped CaZrO3. Binding sites for protons in the crystal are provided for a range of local In concentrations. A set of proton transfer hops is identifi...

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Main Authors: Bilic, Ante, Gale, Julian
Format: Journal Article
Published: Elsevier 2008
Subjects:
Online Access:http://hdl.handle.net/20.500.11937/34994
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author Bilic, Ante
Gale, Julian
author_facet Bilic, Ante
Gale, Julian
author_sort Bilic, Ante
building Curtin Institutional Repository
collection Online Access
description First principles calculations, based on density functional theory, are exploited to investigate the mechanisms and energetics of proton mobility in In-doped CaZrO3. Binding sites for protons in the crystal are provided for a range of local In concentrations. A set of proton transfer hops is identified and associated energy barriers for these proton steps are computed. The calculated lowest energy paths that lead to proton propagation in CaZrO3 exhibit energy barriers in excess of 0.6 eV. Together with previously reported activation energies for proton reorientations and attempt frequencies for proton moves, the present results provide a comprehensive set of data from which the rates of proton migration in In:CaZrO3 may be determined. The use of the data in kinetic Monte Carlo simulations at 1160 K reveals slightly higher proton mobility in In-doped crystal than in the pure CaZrO3. This suggests that dopant-proton trapping, expected from larger binding strengths at In octahedra by 0.1-0.2 eV, is relatively weak and short-ranged.
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spelling curtin-20.500.11937-349942017-09-13T15:52:27Z Simulation of proton diffusion in In-doped CaZrO3 Bilic, Ante Gale, Julian Inorganic ceramics Diffusion Proton conductor Kinetic Monte Carlo Modelling Density functional calculations First principles calculations, based on density functional theory, are exploited to investigate the mechanisms and energetics of proton mobility in In-doped CaZrO3. Binding sites for protons in the crystal are provided for a range of local In concentrations. A set of proton transfer hops is identified and associated energy barriers for these proton steps are computed. The calculated lowest energy paths that lead to proton propagation in CaZrO3 exhibit energy barriers in excess of 0.6 eV. Together with previously reported activation energies for proton reorientations and attempt frequencies for proton moves, the present results provide a comprehensive set of data from which the rates of proton migration in In:CaZrO3 may be determined. The use of the data in kinetic Monte Carlo simulations at 1160 K reveals slightly higher proton mobility in In-doped crystal than in the pure CaZrO3. This suggests that dopant-proton trapping, expected from larger binding strengths at In octahedra by 0.1-0.2 eV, is relatively weak and short-ranged. 2008 Journal Article http://hdl.handle.net/20.500.11937/34994 10.1016/j.ssi.2008.01.034 Elsevier restricted
spellingShingle Inorganic ceramics
Diffusion
Proton conductor
Kinetic Monte Carlo
Modelling
Density functional calculations
Bilic, Ante
Gale, Julian
Simulation of proton diffusion in In-doped CaZrO3
title Simulation of proton diffusion in In-doped CaZrO3
title_full Simulation of proton diffusion in In-doped CaZrO3
title_fullStr Simulation of proton diffusion in In-doped CaZrO3
title_full_unstemmed Simulation of proton diffusion in In-doped CaZrO3
title_short Simulation of proton diffusion in In-doped CaZrO3
title_sort simulation of proton diffusion in in-doped cazro3
topic Inorganic ceramics
Diffusion
Proton conductor
Kinetic Monte Carlo
Modelling
Density functional calculations
url http://hdl.handle.net/20.500.11937/34994