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Surface analysis of mixed-conducting ferrite membranes by the conversion-electron Mössbauer spectroscopy
- Source :
- Journal of Solid State Chemistry. 184:2610-2614
- Publication Year :
- 2011
- Publisher :
- Elsevier BV, 2011.
-
Abstract
- Conversion-electron Moessbauer spectroscopy analysis of iron surface states in the dense ceramic membranes made of {sup 57}Fe-enriched SrFe{sub 0.7}Al{sub 0.3}O{sub 3-{delta}} perovskite, shows no traces of reductive decomposition or carbide formation in the interfacial layers after operation under air/CH{sub 4} gradient at 1173 K, within the limits of experimental uncertainty. The predominant trivalent state of iron cations at the membrane permeate-side surface exposed to flowing dry methane provides evidence of the kinetic stabilization mechanism, which is only possible due to slow oxygen-exchange kinetics and enables long-term operation of the ferrite-based ceramic reactors for natural gas conversion. At the membrane feed-side surface exposed to air, the fractions of Fe{sup 4+} and Fe{sup 3+} are close to those in the powder equilibrated at atmospheric oxygen pressure, suggesting that the exchange limitations to oxygen transport are essentially localized at the partially reduced surface. - Graphical Abstract: Conversion-electron Moessbauer spectroscopy analysis of dense ceramic membranes made of {sup 57}Fe-enriched SrFe{sub 0.7}Al{sub 0.3}O{sub 3-{delta}} perovskite, shows no reductive decomposition in thin interfacial layers after testing under air/CH{sub 4} gradient, enabling stable operation of the ferrite-based ceramic reactors for partial oxidation of methane. Highlights: > Conversion-electron Moessbauer spectroscopy is used for mixed-conducting membranes. > No decompositionmore » is detected in the membrane surface layers under air/CH{sub 4} gradient. > Due to kinetic stabilization, Fe{sup 3+} states prevail at the surface exposed to methane. > Transmission Moessbauer spectra show perovskite decomposition on equlibration in CH{sub 4}. > Ferrite-based ceramic reactors can stably operate under air/CH{sub 4} gradient.« less
- Subjects :
- Chemistry
Inorganic chemistry
Analytical chemistry
Oxygen transport
Condensed Matter Physics
Electronic, Optical and Magnetic Materials
Inorganic Chemistry
Conversion electron mössbauer spectroscopy
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Mössbauer spectroscopy
Materials Chemistry
Ceramics and Composites
visual_art.visual_art_medium
Ferrite (magnet)
Ceramic
Physical and Theoretical Chemistry
Energy source
Perovskite (structure)
Surface states
Subjects
Details
- ISSN :
- 00224596
- Volume :
- 184
- Database :
- OpenAIRE
- Journal :
- Journal of Solid State Chemistry
- Accession number :
- edsair.doi...........f578b8df4bdf0add31ab03846c7940ba
- Full Text :
- https://doi.org/10.1016/j.jssc.2011.07.003