Preparation method for nanometer cathode of solid oxide fuel cell
A solid oxide and fuel cell technology, applied in battery electrodes, nanotechnology for materials and surface science, nanotechnology, etc., can solve problems such as increased battery resistance, poor bonding, and overall effects that outweigh the gains, and reduce the Effects of cathode resistance, low polarization resistance, and increased output power
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Embodiment 1
[0018] Take 1.0 g of Ni 2 CoO 4 Powder, add 0.05 gram of terpineol, 0.05 gram of polyethylene glycol, and 0.02 gram of dibutyl phthalate to prepare ink. Coating of Ni on the other side of the electrolyte of the anode support complex using the Doctor Blade scraping method 2 CoO 4 layer, treated at 900-1100°C for 3 hours to obtain micron-sized Ni 2 CoO 4 cathode. Micron Ni 2 CoO 4 The cathode is peeled off, leaving a layer of about 800nm thick cathode layer on the surface of the electrolyte. Ni again 2 CoO 4 The electrode slurry is scraped and coated on the above-mentioned residual cathode layer, and after drying, it is baked at 800°C for 2 hours to obtain a Ni with a particle size of about 50nm. 2 CoO 4 nano cathode. In the prepared battery, the nanometer cathode layer is well bonded to the electrolyte layer, and there is no peeling or shedding phenomenon of the two layers. At 800°C, Ni 2 CoO 4 The polarization resistance of the nano-cathode is 0.010Ωcm 2 .
Embodiment 2
[0020] Take 0.1 g of Ag0 .1 mn 1.4 co 1.5 o 4 powder and 0.9 g of Sm 0.2 Ce 0.8 o 1.9 Powder, add 0.05 gram of terpineol, 0.05 gram of polyethylene glycol, and 0.02 gram of dibutyl phthalate to prepare ink. The other side of the electrolyte of the anode support complex was coated with Ag0 using the doctor blade scraping method .1 mn 1.4 co 1.5 o 4 –Sm 0.2 Ce 0.8 o 1.9 layer, treated at 1300°C for 10h to obtain micron-sized Ag0 .1 mn 1.4 co 1.5 o 4 –Sm 0.2 Ce 0.8 o 1.9 cathode. The micron-sized cathode was peeled off, leaving a cathode layer with a thickness of about 300 nm on the surface of the electrolyte. Ag0 .1 mn 1.4 co 1.5 o 4 –Sm 0.2 Ce 0.8 o 1.9 The electrode slurry is scraped and coated on the above-mentioned residual cathode layer, and after drying, it is baked at 800 ° C for 2 hours to obtain Ag0 with a particle size of about 30 nm. .1 mn 1.4 co 1.5 o 4 –Sm 0.2 Ce 0.8 o 1.9 nano cathode. In the prepared battery, the nanometer cathod...
Embodiment 3
[0022] Take 0.8 g of Zn 0.2 Fe 1.1 co 1.7 o 4 powder and 0.2 gram of YSZ powder, add 0.05 gram of terpineol, 0.05 gram of polyethylene glycol, and 0.02 gram of dibutyl phthalate to prepare ink. Zn coating on the other side of the electrolyte of the anode support complex using the DoctorBlade wipe method 0.2 Fe 1.1 co 1.7 o 4 – YSZ layer, treated at 1400°C for 8h to obtain micron-sized Zn 0.2 Fe 1.1 co 1.7 o 4 – YSZ cathode. The micron-sized cathode was peeled off, leaving a layer of about 500nm thick cathode layer on the surface of the electrolyte. Zn 0.2 Fe 1.1 co 1.7 o 4 –YSZ electrode slurry is scraped and coated on the above-mentioned residual cathode layer, after drying, it is baked at 900°C for 3 hours to obtain Zn particles with a particle size of about 25nm 0.2 Fe 1.1 co 1.7 o 4 – YSZ nano cathode. In the prepared battery, the nanometer cathode layer is well bonded to the electrolyte layer, and there is no peeling or shedding phenomenon of the two l...
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