<div class="csl-bib-body">
<div class="csl-entry">Opitz, A. K., Rameshan, C., Kubicek, M., Rupp, G., Nenning, A., Götsch, T., Blume, R., Hävecker, M., Knop-Gericke, A., Rupprechter, G., Klötzer, B., & Fleig, J. (2018). The Chemical Evolution of the La0.6Sr0.4CoO3−δ Surface Under SOFC Operating Conditions and Its Implications for Electrochemical Oxygen Exchange Activity. <i>Topics in Catalysis</i>, <i>61</i>, 2129–2141. https://doi.org/10.1007/s11244-018-1068-1</div>
</div>
Owing to its extraordinary high activity for catalysing the oxygen exchange reaction, strontium doped LaCoO3 (LSC) is one of the most promising materials for solid oxide fuel cell (SOFC) cathodes. However, under SOFC operating conditions this material suffers from performance degradation. This loss of electrochemical activity has been extensively studied in the past and an accumulation of strontium at the LSC surface has been shown to be responsible for most of the degradation effects. The present study sheds further light onto LSC surface changes also occurring under SOFC operating conditions. In-situ near ambient pressure X-ray photoelectron spectroscopy measurements were conducted at temperatures between 400 and 790 °C. Simultaneously, electrochemical impedance measurements were performed to characterise the catalytic activity of the LSC electrode surface for O2 reduction. This combination allowed a correlation of the loss in electro-catalytic activity with the appearance of an additional La-containing Sr-oxide species at the LSC surface. This additional Sr-oxide species preferentially covers electrochemically active Co sites at the surface, and thus very effectively decreases the oxygen exchange performance of LSC. Formation of precipitates, in contrast, was found to play a less important role for the electrochemical degradation of LSC.
en
dc.description.sponsorship
Fonds zur Förderung der wissenschaftlichen Forschung (FWF)
-
dc.language.iso
en
-
dc.publisher
SPRINGER/PLENUM PUBLISHERS
-
dc.relation.ispartof
Topics in Catalysis
-
dc.rights.uri
http://creativecommons.org/licenses/by/4.0/
-
dc.subject
oxygen reduction
en
dc.subject
SOFC cathode
en
dc.subject
Strontium segregation
en
dc.subject
NAP-XPS
en
dc.subject
impedance spectroscopy
en
dc.subject
Perovskite-type electrode
en
dc.title
The Chemical Evolution of the La0.6Sr0.4CoO3−δ Surface Under SOFC Operating Conditions and Its Implications for Electrochemical Oxygen Exchange Activity
en
dc.type
Article
en
dc.type
Artikel
de
dc.rights.license
Creative Commons Namensnennung 4.0 International
de
dc.rights.license
Creative Commons Attribution 4.0 International
en
dc.contributor.affiliation
Universität Innsbruck, Austria
-
dc.contributor.affiliation
Fritz Haber Institute of the Max Planck Society, Germany
-
dc.contributor.affiliation
Fritz Haber Institute of the Max Planck Society, Germany
-
dc.contributor.affiliation
Fritz Haber Institute of the Max Planck Society, Germany
-
dc.contributor.affiliation
Universität Innsbruck, Austria
-
dc.description.startpage
2129
-
dc.description.endpage
2141
-
dc.relation.grantno
F4502-N16
-
dc.type.category
Original Research Article
-
tuw.container.volume
61
-
tuw.journal.peerreviewed
true
-
tuw.peerreviewed
true
-
tuw.version
vor
-
tuw.project.title
In situ spectroscopy of chemical reactions on pure and doped ZrO2 thin films and zirconia-based metal-oxide systems