Novel titanium dioxide particle material, preparation method thereof, application thereof in environment protection field
A technology of titanium dioxide and porous titanium dioxide, applied in the direction of titanium dioxide, chemical instruments and methods, titanium oxide/hydroxide, etc., can solve the problems of difficult solid-liquid separation, unfavorable adsorption and catalysis, and large pressure drop difference of nanoparticles, and achieve Good static adsorption performance, excellent adsorption capacity, and good regeneration performance
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[0073] The present invention provides a kind of preparation method of titania particle material, comprises the following steps:
[0074] 1) After mixing the titanium source and the solvent, a precursor solution is obtained;
[0075] 2) spraying the precursor liquid obtained in the above steps through microfluidics, and drying to obtain particles;
[0076] 3) After the particles obtained in the above steps are heat-treated, titanium dioxide particulate material is obtained.
[0077] The present invention can correspond to the performance and structure of the titanium dioxide particulate material in the above preparation method, as well as the corresponding optimization principles, and the corresponding performance and structure of the titanium dioxide particulate material, as well as the corresponding optimization principles, and will not repeat them here. .
[0078] The invention firstly mixes the titanium source and the solvent to obtain the precursor solution.
[0079] Th...
Embodiment 1
[0114] Dissolve F127 (8.0 g) in 120 ml of absolute ethanol, add 16 ml of concentrated hydrochloric acid, and stir at 35° C. and 350 rpm for 30 minutes to obtain a clear solution. Subsequently, 24 g of titanium isopropoxide was added, and the stirring was continued for 30 minutes to obtain a light yellow clear solution, which was the precursor solution. Subsequently, microfluidic spray drying was used for granulation, spray drying was carried out under the conditions of a nozzle size of 75 μm and a spray temperature of 150° C., and the obtained particles were calcined at 350° C. in a muffle furnace to obtain sample 1.
Embodiment 2
[0116] The muffle furnace calcination temperature in Example 1 was changed to 400° C., and other operations were the same as in Example 1 to obtain Sample 2.
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