Cathode material for solid oxide electrolytic cell and its preparation method and application
A solid oxide and cathode material technology, applied in the direction of electrodes, electrolysis process, electrolysis components, etc., can solve the problems of insufficient catalytic activity, low ion conductivity, volatilization, etc., and achieve high hydrogen production rate of electrolyzed water and comprehensive electrochemical performance The effect of high and high comprehensive electrochemical performance
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Embodiment 1
[0068] 1. Preparation
[0069] Synthesis of double perovskite Sr by solid-state reaction method 2 FeNbO 6 (Mn doping amount is taken as 0) powder, the specific operation is as follows:.
[0070] First, according to the molar ratio Sr(CO 3 ) 2 :Fe 2 o 3 :Nb 2 o 5 = 4:1:1 weigh the required raw material Sr(CO 3 ) 2 , Fe 2 o 3 , Nb 2 o 5 Next, put the weighed raw materials in a nylon ball mill jar, add an appropriate amount of absolute ethanol, mix and ball mill for 24 hours, then place the ball milled slurry in a 60°C oven to dry for 2 hours, and then sieve, Subsequently, the powder mixture obtained by sieving was placed in an alumina crucible, and calcined at 1200°C for 12 hours in air to obtain Sr 2 FeNbO 6 .
[0071] 2. Characterization
[0072] (1) The structural stability of the double perovskite was studied by X-ray diffraction method, and the obtained Sr 2 FeNbO 6 The X-ray diffraction pattern of figure 1 shown. Depend on figure 1 It can be seen that...
Embodiment 2
[0080] Prepare double perovskite Sr according to the method of embodiment 1 2 Fe 0.8 mn 0.2 NbO 6 Powder, the difference is that the composition of raw materials and the molar ratio of each component are Sr(CO 3 ) 2 :Fe 2 o 3 :MnO 2 :Nb 2 o 5 =2:0.4:0.2:0.5.
[0081] Study on the obtained Sr by X-ray diffraction method 2 Fe 0.8 mn 0.2 NbO 6 The stability of the double perovskite structure of the powder, the prepared Sr 2 Fe 0.8 mn 0.2 NbO 6 The X-ray diffraction spectrum of the powder is shown in Figure 4 . From Figure 4 It can be seen that the prepared Sr 2 Fe 0.8 mn 0.2 NbO 6 The powder has a stable and single Sr 2 Fe 0.8 mn 0.2 NbO 6 double perovskite structure.
[0082] According to the method of embodiment 1, to prepare the obtained Sr 2 Fe 0.8 mn 0.2 NbO 6 As the cathode material, prepare Sr 2 Fe 0.8 mn 0.2 NbO 6 -YSZ electrolytic cell, and test its hydrogen production rate, at the same time, set Ni-YSZ as a control. The hydrogen pr...
Embodiment 3
[0084] Prepare double perovskite Sr according to the method of embodiment 1 2 Fe 0.9 mn 0.1 NbO 6 Powder, the difference is that the composition of raw materials and the molar ratio of each component are Sr(CO 3 ) 2 :Fe 2 o 3 :MnO 2 :Nb 2 o 5 =2:0.45:0.1:0.5.
[0085] Study on the obtained Sr by X-ray diffraction method 2 Fe 0.9 mn 0.1 NbO 6 The stability of the double perovskite structure of the powder, the prepared Sr 2 Fe 0.9 mn 0.1 NbO 6 The X-ray diffraction spectrum of the powder is shown in Figure 6 . From Figure 6 It can be seen that the prepared Sr 2 Fe 0.9 mn 0.1 NbO 6 The powder has a stable and single Sr 2 Fe 0.9 mn 0.1 NbO 6 double perovskite structure.
[0086] According to the method of embodiment 1, to prepare the obtained Sr 2 Fe 0.9 mn 0.1 NbO 6 As the cathode material, prepare Sr 2 Fe 0.9 mn 0.1 NbO 6 -YSZ electrolytic cell, and test its hydrogen production rate, at the same time, set Ni-YSZ as a control. The hydrogen p...
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