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Long-Term Conductivity Stability of Electrolytic Membranes of Scandia Stabilized Zirconia Co-Doped with Ytterbia
by
Milovich, Filipp
, Tabachkova, Nataliya
, Borik, Mikhail
, Kuritsyna, Irina
, Lomonova, Elena
, Komarov, Boris
, Myzina, Valentina
, Agarkov, Dmitrii
, Korableva, Galina
, Kulebyakin, Alexey
in
Aging
/ Annealing
/ conductivity
/ Crystal lattices
/ Crystal structure
/ Crystallization
/ Crystals
/ Electric properties
/ Electrical conductivity
/ Electrolytes
/ Electrolytic cells
/ Grain boundaries
/ High temperature
/ Membranes
/ Phase composition
/ Phase transitions
/ Raman spectroscopy
/ Rare earth metals
/ Scandium oxides
/ single crystal
/ Single crystals
/ SOFC
/ Solid electrolytes
/ Solid oxide fuel cells
/ Solid solutions
/ Specific conductivity
/ Spectroscopy
/ Stability
/ structure
/ Temperature
/ Thermal cycling
/ X-ray diffraction
/ Zirconia
/ zirconia membranes
/ Zirconium
/ Zirconium dioxide
/ Zirconium oxide
2023
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Long-Term Conductivity Stability of Electrolytic Membranes of Scandia Stabilized Zirconia Co-Doped with Ytterbia
by
Milovich, Filipp
, Tabachkova, Nataliya
, Borik, Mikhail
, Kuritsyna, Irina
, Lomonova, Elena
, Komarov, Boris
, Myzina, Valentina
, Agarkov, Dmitrii
, Korableva, Galina
, Kulebyakin, Alexey
in
Aging
/ Annealing
/ conductivity
/ Crystal lattices
/ Crystal structure
/ Crystallization
/ Crystals
/ Electric properties
/ Electrical conductivity
/ Electrolytes
/ Electrolytic cells
/ Grain boundaries
/ High temperature
/ Membranes
/ Phase composition
/ Phase transitions
/ Raman spectroscopy
/ Rare earth metals
/ Scandium oxides
/ single crystal
/ Single crystals
/ SOFC
/ Solid electrolytes
/ Solid oxide fuel cells
/ Solid solutions
/ Specific conductivity
/ Spectroscopy
/ Stability
/ structure
/ Temperature
/ Thermal cycling
/ X-ray diffraction
/ Zirconia
/ zirconia membranes
/ Zirconium
/ Zirconium dioxide
/ Zirconium oxide
2023
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Long-Term Conductivity Stability of Electrolytic Membranes of Scandia Stabilized Zirconia Co-Doped with Ytterbia
by
Milovich, Filipp
, Tabachkova, Nataliya
, Borik, Mikhail
, Kuritsyna, Irina
, Lomonova, Elena
, Komarov, Boris
, Myzina, Valentina
, Agarkov, Dmitrii
, Korableva, Galina
, Kulebyakin, Alexey
in
Aging
/ Annealing
/ conductivity
/ Crystal lattices
/ Crystal structure
/ Crystallization
/ Crystals
/ Electric properties
/ Electrical conductivity
/ Electrolytes
/ Electrolytic cells
/ Grain boundaries
/ High temperature
/ Membranes
/ Phase composition
/ Phase transitions
/ Raman spectroscopy
/ Rare earth metals
/ Scandium oxides
/ single crystal
/ Single crystals
/ SOFC
/ Solid electrolytes
/ Solid oxide fuel cells
/ Solid solutions
/ Specific conductivity
/ Spectroscopy
/ Stability
/ structure
/ Temperature
/ Thermal cycling
/ X-ray diffraction
/ Zirconia
/ zirconia membranes
/ Zirconium
/ Zirconium dioxide
/ Zirconium oxide
2023
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Long-Term Conductivity Stability of Electrolytic Membranes of Scandia Stabilized Zirconia Co-Doped with Ytterbia
Journal Article
Long-Term Conductivity Stability of Electrolytic Membranes of Scandia Stabilized Zirconia Co-Doped with Ytterbia
2023
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Overview
The effect of high-temperature aging for 4800 h at a temperature of 1123 K on the crystal structure and the conductivity of (ZrO2)0.90(Sc2O3)0.09(Yb2O3)0.01 and (ZrO2)0.90(Sc2O3)0.08(Yb2O3)0.02 single-crystal membranes were studied. Such membrane lifetime testing is critical to the operation of solid oxide fuel cells (SOFCs). The crystals were obtained by the method of directional crystallization of the melt in a cold crucible. The phase composition and structure of the membranes before and after aging were studied using X-ray diffraction and Raman spectroscopy. The conductivities of the samples were measured using the impedance spectroscopy technique. The (ZrO2)0.90(Sc2O3)0.09(Yb2O3)0.01 composition showed long-term conductivity stability (conductivity degradation not more than 4%). Long-term high-temperature aging of the (ZrO2)0.90(Sc2O3)0.08(Yb2O3)0.02 composition initiates the t″ → t′ phase transformation. In this case, a sharp decrease in conductivity of up to 55% was observed. The data obtained demonstrate a clear correlation between the specific conductivity and the change in the phase composition. The (ZrO2)0.90(Sc2O3)0.09(Yb2O3)0.01 composition can be considered a promising material for practical use as a solid electrolyte in SOFCs.
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