Oxygen vacancy generation in rare-earth-doped SrTiO3
Calculations of the energetics of rare‐earth incorporation in SrTiO3 and other perovskite materials using classical potential models are widely featured in the literature. However, the standard incorporation mechanisms are often simplified and many do not account for the generation of oxygen vacanci...
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Published in | physica status solidi (b) Vol. 253; no. 11; pp. 2197 - 2203 |
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Main Authors | , , , , |
Format | Journal Article |
Language | English |
Published |
Blackwell Publishing Ltd
01.11.2016
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Subjects | |
Online Access | Get full text |
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Summary: | Calculations of the energetics of rare‐earth incorporation in SrTiO3 and other perovskite materials using classical potential models are widely featured in the literature. However, the standard incorporation mechanisms are often simplified and many do not account for the generation of oxygen vacancies. In this work, we use two mixed defect schemes that account for the introduction of rare‐earth dopants at both the A‐ and B‐sites of the perovskite structure and oxygen vacancies. An overall assessment of rare‐earth doping in SrTiO3 using the standard dopant incorporation modes with respect to dopant ionic radii is also given. Although the energies for our proposed mixed mechanisms are somewhat higher than the energies for the standard mechanisms, they are more realistic when compared to real samples, as they incorporate a range of different intrinsic defects, unlike the idealized standard schemes. Strong binding energies are reported throughout, in agreement with previous studies. A comparative study of these mixed schemes in BaTiO3 and SrTiO3 reveals that they are more likely to be active in BaTiO3. |
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Bibliography: | istex:5586B80D64E9B637E2664315C3B95384A31F2741 ArticleID:PSSB201600315 Belgian Development Cooperation ark:/67375/WNG-Z3QGFS6Q-G |
ISSN: | 0370-1972 1521-3951 |
DOI: | 10.1002/pssb.201600315 |