When is doped with Y in 12.5% of Zr sites, density functional theory with the PBE functional predicts octahedral distortions within a cubic phase yielding a greater variety of proton binding sites than undoped . Proton binding sites, transition states, and normal modes are found and used to calculate transition state theory rate constants. The binding sites are used to represent vertices in a graph. The rate constants connecting binding sites are used to provide weights for graph edges. Vertex and color coding are used to find proton conduction pathways in . Many similarly probable proton conduction pathways which can be periodically replicated to yield long range proton conduction are found. The average limiting barriers at 600 K for seven step and eight step periodic pathways are 0.29 and 0.30 eV, respectively. Inclusion of a lattice reorganization barrier raises these to 0.42 and 0.33 eV, respectively. The majority of the seven step pathways have an interoctahedral rate limiting step while the majority of the eight step pathways have an intraoctahedral rate limiting step. While the average limiting barrier of the seven step periodic pathway including a lattice reorganization barrier is closer to experiment, how to appropriately weight different length periodic pathways is not clear. Likely, conduction is influenced by combinations of different length pathways. Vertex and color coding provide useful ways of finding the wide variety of long range proton conduction pathways that contribute to long range proton conduction. They complement more traditional serial methods such as molecular dynamics and kinetic Monte Carlo.
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7 June 2010
Research Article|
June 07 2010
The effect of yttrium dopant on the proton conduction pathways of , a cubic perovskite Available to Purchase
Maria A. Gomez;
Maria A. Gomez
a)
1Department of Chemistry,
Mount Holyoke College
, 50 College Street, South Hadley, Massachusetts 01075, USA
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Mythili Chunduru;
Mythili Chunduru
1Department of Chemistry,
Mount Holyoke College
, 50 College Street, South Hadley, Massachusetts 01075, USA
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Lorencia Chigweshe;
Lorencia Chigweshe
1Department of Chemistry,
Mount Holyoke College
, 50 College Street, South Hadley, Massachusetts 01075, USA
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Leigh Foster;
Leigh Foster
2Department of Chemistry,
Boston University
, 590 Commonwealth Avenue, Boston, Massachusetts 02215, USA
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S. J. Fensin;
S. J. Fensin
3Department of Chemical Engineering and Materials Science,
University of California
, 1 Shield Avenue, Davis, California 95616, USA
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Katharyn M. Fletcher;
Katharyn M. Fletcher
4MIN Fakultät, Institut für Physikalische Chemie,
Universität Hamburg
, Grindelallee 117, D-20146 Hamburg, Germany
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Laura E. Fernandez
Laura E. Fernandez
5Department of Chemistry,
Pennsylvania State University
, 104 Chemistry Building, University Park, Pennsylvania 16802, USA
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Maria A. Gomez
1,a)
Mythili Chunduru
1
Lorencia Chigweshe
1
Leigh Foster
2
S. J. Fensin
3
Katharyn M. Fletcher
4
Laura E. Fernandez
5
1Department of Chemistry,
Mount Holyoke College
, 50 College Street, South Hadley, Massachusetts 01075, USA
2Department of Chemistry,
Boston University
, 590 Commonwealth Avenue, Boston, Massachusetts 02215, USA
3Department of Chemical Engineering and Materials Science,
University of California
, 1 Shield Avenue, Davis, California 95616, USA
4MIN Fakultät, Institut für Physikalische Chemie,
Universität Hamburg
, Grindelallee 117, D-20146 Hamburg, Germany
5Department of Chemistry,
Pennsylvania State University
, 104 Chemistry Building, University Park, Pennsylvania 16802, USA
a)
Electronic mail: [email protected].
J. Chem. Phys. 132, 214709 (2010)
Article history
Received:
March 16 2010
Accepted:
May 13 2010
Citation
Maria A. Gomez, Mythili Chunduru, Lorencia Chigweshe, Leigh Foster, S. J. Fensin, Katharyn M. Fletcher, Laura E. Fernandez; The effect of yttrium dopant on the proton conduction pathways of , a cubic perovskite. J. Chem. Phys. 7 June 2010; 132 (21): 214709. https://doi.org/10.1063/1.3447377
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