Method for preparing large-specific-surface-area rare earth oxides or composite oxides through spray pyrolysis
A technology of rare earth oxide and large specific surface area, which is applied in the field of materials, can solve the problems of narrow size distribution, reduce the preparation temperature and time, and achieve the effects of simple operation and low cost
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Embodiment 1
[0038] The method for preparing cerium oxide by spray pyrolysis, the process steps are: dissolving cerium chloride in water to make a solution with a concentration of 350g / L, adding citric acid and stirring evenly, wherein the amount of citric acid is determined by the molar ratio of citric acid to cerium ions The ratio is 3:1; with air as the carrier gas, the mixed solution is sprayed into the roasting furnace for roasting, the air flow rate is 122L / h, the roasting temperature is 600°C, the residence time of the particles in the pyrolysis furnace is 0.6s, and the roasting produces A carbon-supported cerium oxide precursor; the carbon-supported cerium oxide precursor was calcined at 500° C. for 2.5 hours to obtain a cerium oxide solid.
[0039] The hydrochloric acid gas produced by roasting enters the tail gas absorption tower for recovery and reuse.
[0040] Experimental results: figure 1 The XRD pattern of the carbon-supported cerium oxide precursor is provided, showing tha...
Embodiment 2
[0042] The method for preparing cerium oxide by spray pyrolysis, the process steps are: dissolving cerium chloride in water to make a solution with a concentration of 10g / L, adding lactic acid and stirring evenly, wherein the consumption of lactic acid is 1.5 with the molar ratio of lactic acid and cerium ion: 1 meter; the mixed solution is sprayed into the roasting furnace with air as the carrier gas for roasting, wherein the air flow rate is 140L / h, the roasting temperature is 400°C, the residence time of the particles in the pyrolysis furnace is 2.5s, and the roasting generates carbon-loaded oxidation Cerium precursor: calcining the carbon-supported cerium oxide precursor at 600° C. for 2 hours to obtain a cerium oxide solid.
[0043] The hydrochloric acid gas produced by roasting enters the tail gas absorption tower for recovery and reuse.
[0044] Experimental results: Figure 4The XRD pattern of the carbon-supported cerium oxide precursor is provided, showing that the p...
Embodiment 3
[0046] The method for preparing cerium oxide by spray pyrolysis, the process steps are: dissolving cerium chloride in water to make a solution with a concentration of 100g / L, adding tartaric acid and stirring evenly, wherein the consumption of tartaric acid is 2 with the mol ratio of tartaric acid and cerium ion: 1 meter; the mixed solution is sprayed into the roasting furnace with air as the carrier gas for roasting, wherein the air flow rate is 100L / h, the roasting temperature is 500°C, the residence time of the particles in the pyrolysis furnace is 1.6s, and the roasting generates carbon-loaded oxidation Cerium precursor: Calcining the carbon-supported cerium oxide precursor at 600° C. for 3 hours to obtain a cerium oxide solid.
[0047] The hydrochloric acid gas produced by roasting enters the tail gas absorption tower for recovery and reuse.
[0048] Experimental results: Figure 7 The XRD pattern of the carbon-supported cerium oxide precursor is provided, showing that t...
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