Polyamide nanofiltration membrane containing sulfoacid betaine type colloid nanometer particle and preparation method thereof
A sulfobetaine and nanoparticle technology, applied in chemical instruments and methods, membrane technology, semi-permeable membrane separation, etc., can solve the problems of insignificant modification effect, easy aggregation of membranes, membrane defects, etc., and achieve good industrial practicality. The effect of improving the transmission efficiency and excellent membrane performance
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[0016] The polyamide nanofiltration membrane preparation method containing sulfobetaine type colloidal nanoparticles comprises the following steps:
[0017] (1) Using sulfobetaine group-containing olefin monomers and hydroxyalkyl acrylate monomers as functional monomers, prepare an aqueous solution, add a water-soluble oxidation-reduction initiator, and use soap-free emulsion polymerization to prepare sulfonate Acid betaine type colloidal nanoparticles;
[0018] (2) Uniformly disperse polyamine monomers and sulfobetaine-type colloidal nanoparticles in water, add sodium hydroxide as an acid absorbent, and prepare an aqueous phase solution; dissolve polyacyl chloride monomers in an organic solvent, and prepare organic phase solution;
[0019] (3) Immerse the porous polysulfone support membrane in the aqueous phase solution for 2 to 5 minutes, take out and remove the excess aqueous phase solution on the surface; then immerse in the organic phase solution for 0.5 to 3 minutes, ta...
Embodiment 1
[0029] Take 10g of 3-[N,N-dimethyl-[2-(2-methylprop-2-enoyloxy)ethyl]ammonium]propane-1-sulfonic acid inner salt and 2g of hydroxyethyl acrylate and add In 100ml of water, nitrogen gas was introduced, and potassium persulfate and sodium bisulfite (mass ratio 1:1) with a concentration of 1 wt% were added, at 30 o Soap-free emulsion polymerization was carried out at C for 5 hours, after several times of centrifugation, water washing, and vacuum drying, the sulfobetaine-type colloidal nanoparticles were obtained; the porous polysulfone support membrane was immersed in the aqueous phase solution for 2 minutes, and the aqueous phase solution was The concentration of piperazine is 0.2 wt%, the concentration of sulfobetaine-type colloidal nanoparticles is 0.05 wt%, and the concentration of NaOH is 0.01 wt%, take out and remove the excess aqueous phase solution on the surface; then immerse to a concentration of 0.1 wt% In the n-hexane solution of trimesoyl chloride, the interfacial po...
Embodiment 2
[0032] Take 30g of 3-[N,N-dimethyl-[2-(2-methylprop-2-enoyloxy)ethyl]ammonium]propane-1-sulfonic acid inner salt and 10g of hydroxyethyl acrylate and add In 100ml of water, nitrogen gas was introduced, and potassium persulfate and sodium bisulfite (mass ratio 1:1) were added with a concentration of 3 wt%, at 45 o Soap-free emulsion polymerization was carried out at C for 1 hour, after repeated centrifugation, water washing, and vacuum drying, sulfobetaine-type colloidal nanoparticles were obtained; the porous polysulfone support membrane was immersed in the aqueous phase solution for 5 minutes, and in the aqueous phase solution The concentration of piperazine is 2 wt%, the concentration of sulfobetaine type colloidal nanoparticles is 0.5 wt%, the concentration of NaOH is 0.5 wt%, take out and remove the excess aqueous phase solution on the surface; In the n-hexane solution of trimesoyl chloride, the interfacial polymerization reaction was carried out for 3 minutes at 70 o C f...
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