We use ab initio density functional theory + U calculations to characterize the oxide ion diffusion process in bulk Sr2Fe1.5Mo0.5O6-d (SFMO) by analyzing the formation and migration of oxygen vacancies. We show that SFMO's remarkable ionic conductivity arises from its intrinsic content of oxygen vacancies and a predicted very low migration barrier of such vacancies. Theoretical analysis of the electronic structure reveals a crucial role played by strongly hybridized Fe 3d/O 2p states to achieve the attendant mixed ion-electron conductor character so important for intermediate temperature fuel cell operation. We predict a next-nearest-neighbor-type migration pathway for the O2- ion should dominate. The low energy barrier of this pathway is mainly related to electrostatic interactions with homogeneously distributed Mo in the SFMO sublattice. We identify the reasons why Fe-rich perovskites, with the key addition of a certain concentration of Mo, produce excellent electronic and ionic transport properties so crucial for efficient operation of intermediate temperature solid oxide fuel cells.

Oxide ion transport in Sr2Fe1.5Mo0.5O6-delta, a mixed ion-electron conductor: new insights from first principles modeling / MUNOZ GARCIA, ANA BELEN; Pavone, Michele; Andrew M., Ritzmann; Emily A., Carter. - In: PHYSICAL CHEMISTRY CHEMICAL PHYSICS. - ISSN 1463-9076. - 15:(2013), pp. 6250-6259. [10.1039/c3cp50995h]

Oxide ion transport in Sr2Fe1.5Mo0.5O6-delta, a mixed ion-electron conductor: new insights from first principles modeling

MUNOZ GARCIA, ANA BELEN;PAVONE, MICHELE;
2013

Abstract

We use ab initio density functional theory + U calculations to characterize the oxide ion diffusion process in bulk Sr2Fe1.5Mo0.5O6-d (SFMO) by analyzing the formation and migration of oxygen vacancies. We show that SFMO's remarkable ionic conductivity arises from its intrinsic content of oxygen vacancies and a predicted very low migration barrier of such vacancies. Theoretical analysis of the electronic structure reveals a crucial role played by strongly hybridized Fe 3d/O 2p states to achieve the attendant mixed ion-electron conductor character so important for intermediate temperature fuel cell operation. We predict a next-nearest-neighbor-type migration pathway for the O2- ion should dominate. The low energy barrier of this pathway is mainly related to electrostatic interactions with homogeneously distributed Mo in the SFMO sublattice. We identify the reasons why Fe-rich perovskites, with the key addition of a certain concentration of Mo, produce excellent electronic and ionic transport properties so crucial for efficient operation of intermediate temperature solid oxide fuel cells.
2013
Oxide ion transport in Sr2Fe1.5Mo0.5O6-delta, a mixed ion-electron conductor: new insights from first principles modeling / MUNOZ GARCIA, ANA BELEN; Pavone, Michele; Andrew M., Ritzmann; Emily A., Carter. - In: PHYSICAL CHEMISTRY CHEMICAL PHYSICS. - ISSN 1463-9076. - 15:(2013), pp. 6250-6259. [10.1039/c3cp50995h]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11588/563651
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