Effect of structural parameters of Ni-ScSZ cermet components on the SOFC anodes characteristics
- Authors: Spirin A.V.1, Nikonov A.V.1, Lipilin A.S.1, Khrustov V.R.1, Kuterbekov K.A.2, Nurakhmetov T.N.2, Bekmyrza K.Z.2
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Affiliations:
- Institute of Electrophysics, Ural Branch
- Gumilev Eurasian National University
- Issue: Vol 52, No 7 (2016)
- Pages: 613-621
- Section: Article
- URL: https://journal-vniispk.ru/1023-1935/article/view/187956
- DOI: https://doi.org/10.1134/S1023193516070181
- ID: 187956
Cite item
Abstract
The effect of the degree of dispersion and the ratio of initial components of metalloceramic composites based on Ni and Sc2O3-stabilized ZrO2 (Ni/ScSZ) on the kinetics of sintering, conductivity, and polarization resistance of the corresponding anodes in solid-oxide fuel cells (SOFC) is studied. The composites are prepared from nano- and submicrosized powders of NiO and ScSZ (10.5 mol % Sc2O3) containing particles with the average size of 0.02–0.33 μm. Anode composites of three types differing in the ratio of initial components (NiO-ScSZ) with different degrees of dispersion: micro-micro, nano-micro, and nano-nano are studied. Due to the ratio of particle sizes, the anodic composites of the nano-nano type demonstrate the preferential electronic conduction (the percolation threshold) starting from the Ni content of about 35 vol %, in contrast to the other two types of anodic composites for which this threshold is achieved at 30 vol %. The lowest polarization resistance is typical of anode composites with the Ni content of about 40 vol %. The use of one or both components in the nanosized state makes it possible to decrease the anodic polarization up to two times. It is demonstrated that an active cermet anode for SOFC can be fabricated in the form of a planar three-layer structure Ni/ScSZ-ScSZ-Ni/ScSZ prepared from nanosized powders by the tape casting technique and cosintering.
About the authors
A. V. Spirin
Institute of Electrophysics, Ural Branch
Author for correspondence.
Email: spirin@iep.uran.ru
Russian Federation, 106 Amundsena St., Yekaterinburg, 620016
A. V. Nikonov
Institute of Electrophysics, Ural Branch
Email: spirin@iep.uran.ru
Russian Federation, 106 Amundsena St., Yekaterinburg, 620016
A. S. Lipilin
Institute of Electrophysics, Ural Branch
Email: spirin@iep.uran.ru
Russian Federation, 106 Amundsena St., Yekaterinburg, 620016
V. R. Khrustov
Institute of Electrophysics, Ural Branch
Email: spirin@iep.uran.ru
Russian Federation, 106 Amundsena St., Yekaterinburg, 620016
K. A. Kuterbekov
Gumilev Eurasian National University
Email: spirin@iep.uran.ru
Kazakhstan, 2 Satpaeva St., Astana, 010008
T. N. Nurakhmetov
Gumilev Eurasian National University
Email: spirin@iep.uran.ru
Kazakhstan, 2 Satpaeva St., Astana, 010008
K. Zh. Bekmyrza
Gumilev Eurasian National University
Email: spirin@iep.uran.ru
Kazakhstan, 2 Satpaeva St., Astana, 010008
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