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In situ preparation of a La1.2Sr0.8Mn0.4Fe0.6O4 Ruddlesden–Popper phase with exsolved Fe nanoparticles as an anode for SOFCs.

Authors :
Chung, Yong Sik
Kim, Taewook
Shin, Tae Ho
Yoon, Heechul
Park, Seongmin
Sammes, Nigel Mark
Kim, Won Bae
Chung, Jong Shik
Source :
Journal of Materials Chemistry A; 4/14/2017, Vol. 5 Issue 14, p6437-6446, 10p
Publication Year :
2017

Abstract

A highly stable electrode material of Ruddlesden–Popper structure, La<subscript>1.2</subscript>Sr<subscript>0.8</subscript>Mn<subscript>0.4</subscript>Fe<subscript>0.6</subscript>O<subscript>4</subscript> (RPLSMF), is prepared from La<subscript>0.6</subscript>Sr<subscript>0.4</subscript>Mn<subscript>0.2</subscript>Fe<subscript>0.8</subscript>O<subscript>3</subscript> (LSMF) perovskite by in situ annealing in flowing H<subscript>2</subscript> at the operation temperature of solid oxide fuel cells. The crystallinity, morphology, and oxidation states of each element and electrochemical properties of RPLSMF are characterized. Doping Mn into the B-site of RPLSMF improves the phase stability of the structure in H<subscript>2</subscript> to prevent formation of La<subscript>2</subscript>O<subscript>3</subscript>. The XPS results also suggest that improved phase stability promotes formation of Fe<superscript>2+/3+</superscript> pairs that facilitate fuel oxidation by redox coupling. Additionally, during phase transition to RPLSMF, metallic Fe nanoparticles form, which enlarge H<subscript>2</subscript> chemisorption and oxidation sites. Consequently, RPLSMF exhibits outstanding and stable electrochemical activity with a maximum power density of 0.72 W cm<superscript>−2</superscript> at 1073 K when used as an anode material in LSGM electrolyte-supported cells. As the phase transition between the RPLSMF and LSMF is reversible under a redox environment, RPLSMF/GDC is applied as an electrode in the symmetrical cell of RPLSMF-GDC/LSGM/LSMF-GDC. It exhibits a substantial power density of 0.64 W cm<superscript>−2</superscript> with a total polarization resistance of 0.51 Ω cm<superscript>2</superscript>. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
20507488
Volume :
5
Issue :
14
Database :
Complementary Index
Journal :
Journal of Materials Chemistry A
Publication Type :
Academic Journal
Accession number :
123332731
Full Text :
https://doi.org/10.1039/c6ta09692a