Abstract
Accelerating the oxygen reduction kinetics of solid oxide fuel cell (SOFC) cathodes is crucial to improve their efficiency and thus to provide the basis for an economically feasible application of intermediate temperature SOFCs. In this work, minor amounts of Pt were doped into lanthanum strontium ferrite (LSF) thin film electrodes to modulate the material's oxygen exchange performance. Surprisingly, Pt was found to be incorporated on the B-site of the perovskite electrode as non metallic Pt4+. The polarization resistance of LSF thin film electrodes with and without additional Pt surface doping was compared directly after film growth employing in situ electrochemical impedance spectroscopy inside a PLD chamber (i-PLD). This technique enables observation of the polarization resistance of pristine electrodes unaltered by degradation or any external contamination of the electrode surface. Moreover, growth of multi-layers of materials with different compositions on the very same single crystalline electrolyte substrate combined with in situ impedance measurements allow excellent comparability of different materials. Even a 5 nm layer of Pt doped LSF (1.5 at% Pt), i.e. a Pt loading of 80 ng cm−2, improved the polarization resistance by a factor of about 2.5. In addition, p(O2) and temperature dependent impedance measurements on both pure and Pt doped LSF were performed in situ and obtained similar activation energies and p(O2) dependence of the polarization resistance, which allow us to make far reaching mechanistic conclusions indicating that Pt4+ introduces additional active sites.
| Originalsprache | Englisch |
|---|---|
| Seiten (von - bis) | 2973-2986 |
| Seitenumfang | 14 |
| Fachzeitschrift | Journal of Materials Chemistry A |
| Jahrgang | 10.2022 |
| Ausgabenummer | 6 |
| Frühes Online-Datum | 3 Dez. 2021 |
| DOIs | |
| Publikationsstatus | Veröffentlicht - 14 Feb. 2022 |
| Extern publiziert | Ja |
Bibliographische Notiz
Funding Information:Scanning electron microscopy was carried out by J. Ring using facilities at the University Service Centre for Transmission Electron Microscopy (USTEM), TU Wien, Austria. The authors thank the Austrian Sciene Fund (FWF) (project number: P31165 -N37 and P31654) for nancial support. We also thank Huber Scientic for providing measurement equipment and A. Schmid for his support regarding AFM data plotting with Python. Part of this research was funded by the European Research Council (ERC) under the European Union's Horizon 2020 research and innovation programme, grant agreement no. 755 744/ERC— Starting Grant TUCAS. We gratefully acknowledge support from the K1-COMET center CEST (Centre for Electrochemical Surface Technology, Wiener Neustadt) funded by the Austrian Research Promotion Agency (FFG, award number 865 864).
Publisher Copyright:
© 2022 The Royal Society of Chemistry.
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