研究目的
Investigating the formation of thin GDC films by the aerosol deposition method and their electrical properties for use as a diffusion barrier layer in solid oxide fuel cells.
研究成果
Dense and well-adhering films of gadolinium-doped ceria (GDC) could be formed by the aerosol deposition method if a suitable powder pretreatment was applied. The crystallite size of the powder was confirmed as a key parameter for successful aerosol deposition. The high densities and flawless morphologies of the GDC AD films were verified by SEM images. Impedance spectroscopy between 300 ?C and 1000 ?C revealed a slight annealing effect that increases the ionic conductivity up to a factor of four.
研究不足
The study is limited by the specific conditions and materials used, such as the GDC10 nanopowder and the ADM process parameters. The findings may not be generalizable to other materials or deposition methods.
1:Experimental Design and Method Selection:
The study used the aerosol deposition method (ADM) to produce GDC films. Different thermal and mechanical powder pretreatment procedures were investigated to link to the morphology and integrity of the sprayed films.
2:Sample Selection and Data Sources:
10 mol-percent gadolinium-doped ceria nanopowder (GDC10) was used as a starting material. Three batches with different thermal and mechanical powder pretreatment procedures were produced.
3:List of Experimental Equipment and Materials:
A custom-made AD apparatus, X-ray diffraction (XRD) analysis (D8 Advance, Bruker), SEM imaging (Leo 1530 VP, Zeiss), and impedance spectroscopy measurements were used.
4:Experimental Procedures and Operational Workflow:
Powders were milled in a planetary ball mill, tempered in an air atmosphere in a muffle furnace, and films were deposited onto ScSZ substrates using a nozzle with an outlet slit-orifice size of 10 mm by 0.5 mm.
5:5 mm.
Data Analysis Methods:
5. Data Analysis Methods: XRD analysis using the X’Pert HighScore Plus software was implemented for structure verification and TOPAS-Academic software for Rietveld refinement with integrated algorithms for Williamson-Hall analysis to determine the crystallite size and the internal strain.
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