Abstract
An SOFC-anode material, Sr2MgMoO6 - δ, is investigated for both isovalent and aliovalent substitution effects at its redox-active cation site. Isovalent WVI-for-MoVI substitution has little effect on crystal and redox chemistry of the phase, whereas aliovalent NbV-for-MoVI substitution lowers the degree of cation order and, rather importantly, creates oxygen vacancies in the lattice. The increased oxygen-vacancy concentration should be a positive factor regarding the SOFC-anode performance, but a disadvantage is that electrical conductivity is slightly depressed in Sr2Mg(Mo,Nb)O6 - δ with increasing Nb content. The two systems, Sr2Mg(Mo,W)O6 - δ and Sr2Mg(Mo,Nb)O6 - δ, are found stable (up to 1000 °C or higher) in both reductive (5% H2/Ar) and oxidative (air) atmospheres, the range of oxygen-content variation upon such redox-cycling getting narrower with increasing substitution level. XANES data at the L edges of Mo, W and Nb reveal that in Sr2Mg(Mo,W)O6 - δ both Mo and W show variable oxidation states whereas in Sr2Mg(Mo,Nb)O6 - δ Nb is more redox-active than Mo. © 2010 Elsevier B.V. All rights reserved.
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Vasala, S., Lehtimäki, M., Haw, S. C., Chen, J. M., Liu, R. S., Yamauchi, H., & Karppinen, M. (2010). Isovalent and aliovalent substitution effects on redox chemistry of Sr2MgMoO6 - δ SOFC-anode material. Solid State Ionics, 181(15–16), 754–759. https://doi.org/10.1016/j.ssi.2010.03.037
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