Anisotropic catalytic activity of the orientation controlled Nd<sub>2</sub>NiO<sub>4+δ</sub>/YSZ hetero-epitaxial system for SOFC cathode
YAMADA, Atsuo
Department of Electronic Chemistry Interdisciplinary Graduate School of Science
Department of Chemical System Engineering
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Department of Electronic Chemistry Interdisciplinary Graduate School of Science
Department of Chemical System Engineering
YAMADA, Atsuo
Department of Electronic Chemistry Interdisciplinary Graduate School of Science
Department of Chemical System Engineering
< Réduire
Department of Electronic Chemistry Interdisciplinary Graduate School of Science
Department of Chemical System Engineering
Langue
en
Article de revue
Ce document a été publié dans
Electrochemistry Communications. 2010, vol. 12, n° 12, p. 1690-1693
Elsevier
Résumé en anglais
Electrode-electrolyte hetero-epitaxial systems for solid oxide fuel cells (SOFCs) with two different configuration of Nd<sub>2</sub>NiO<sub>4+δ</sub>(110)//YSZ(100) and Nd<sub>2</sub>NiO<sub>4+δ</sub>(100)//YSZ(110) were ...Lire la suite >
Electrode-electrolyte hetero-epitaxial systems for solid oxide fuel cells (SOFCs) with two different configuration of Nd<sub>2</sub>NiO<sub>4+δ</sub>(110)//YSZ(100) and Nd<sub>2</sub>NiO<sub>4+δ</sub>(100)//YSZ(110) were successfully fabricated by pulsed laser deposition. Thin films of Nd<sub>2</sub>NiO<sub>4+δ</sub> approximately 20 nm thick were grown on a commercial single crystal of YSZ. The preferred two-dimensional diffusion paths of the oxide ions were perpendicular to the substrate for both configurations and showed oxygen reduction capability different from each other. This opens up new research direction focusing on the details of anisotropic catalytic activity of SOFC cathode depending on the crystalline surface.< Réduire
Mots clés en anglais
K2NiF4
Solid oxide fuel cell
Epitaxial film
Oxygen reduction
Anisotropy
Origine
Importé de halUnités de recherche