4.6 Article

Structure and properties of MgMxCr2-xO4 (M = Li, Mg, Ti, Fe, Cu, Ga) spinels for electrode supports in solid oxide fuel cells

Journal

JOURNAL OF MATERIALS CHEMISTRY A
Volume 2, Issue 42, Pages 18106-18114

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c4ta03633f

Keywords

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Funding

  1. Office of Naval Research, USA [N00014-11-1-0247]
  2. Engineering and Physical Sciences Research Council, UK [EP/E064248/1]
  3. European Union's Seventh Framework Programme [[FCH JU-GA 278257]10]
  4. Engineering and Physical Sciences Research Council [EP/J016454/1, EP/E064248/1, EP/K015540/1] Funding Source: researchfish
  5. EPSRC [EP/K015540/1, EP/E064248/1, EP/J016454/1] Funding Source: UKRI

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Novel electrode scaffold materials based on chromium-rich spinets, such as MgMxCr2-xO4, = Li, Mg, Ti, Fe, Cu, Ga) have been investigated for solid oxide fuel cell (SOFC) applications, in terms of conductivity and chemical stability when operated in fuel environments. Cation distributions were obtained by Rietveld refinement from X-ray diffraction data (XRD), with cation site preference considered in agreement with literature, and correlated with electrical properties determined experimentally. The substitutions with cations such as Li and Cu on B site improved the conductivity of the materials in air, while introducing Fe and Ga in the structure led to a decrease in conductivity in air. However, Fe had a positive contribution under reducing conditions, generating a change in the conductivity mechanism from p-type in air, to n-type. Conductivity measurements indicated that MgFexCr2-xO4 spinets exhibit faster reduction kinetics, in comparison with other substituted cations at the B site which is desirable in fuel cell application, for a reasonably fast response of a cell or a stack to reach its full functional potential. MgFeCrO4 showed fast reduction kinetics, with increase of the conductivity in reducing conditions from 0.014 S cm(-1) to 0.4 S cm(-1) and equilibration time for reaching the maximum conductivity value of 10 hours, under dry 5% H-2/Ar at 850 degrees C.

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