Quasi uncharged solvent resistance complex function ball and method for making same
A composite function, solvent-resistant technology, used in chemical instruments and methods, synthetic resin layered products, coatings, etc., can solve problems such as instability of electrophoretic particles
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Embodiment 1
[0032] (1) Preparation of polystyrene / titanium dioxide nanoparticles: prepared according to Chinese invention patent 200610011885.0;
[0033] (2) Disperse 2g of polystyrene / titanium dioxide nanoparticles obtained in step (1) into 1000mL of deionized water dissolved with 5g of PVP (MW=400000);
[0034] (3) 40g urea and 49mL formaldehyde are mixed to obtain a prepolymer;
[0035] Take 200ml of the polystyrene / titanium dioxide nano light sphere solution obtained in step (2) and dilute to a certain volume, add 20ml of prepolymer, adjust the pH value to 1 with HCl, polycondense at 15°C, and then solidify at 75°C. Centrifugal washing;
[0036] (4) Stability study: The obtained urea-formaldehyde resin-coated particles were dispersed in non-polar solvents (halogenated alkanes, aromatic compounds, fluorine-containing compounds, alkanes), and they could still be dispersed well after being left for a long time.
[0037] Figure 1 is a photo of polystyrene spheres / titanium dioxide nanopa...
Embodiment 2
[0039] (1) Preparation of polystyrene / titanium dioxide nanoparticles: prepared according to Chinese invention patent 200610011885.0;
[0040] (2) 2g of polystyrene / titanium dioxide nanoparticles obtained in step (1) were dispersed into 1000mL of deionized water dissolved with 200g of PVP (MW=2000);
[0041] (3) 40g urea is mixed with 147mL formaldehyde to obtain prepolymer;
[0042] Dilute 280mL of the polystyrene / titanium dioxide nano-light sphere solution obtained in step (2) to a certain volume, add 40mL of prepolymer, adjust the pH value to 6 with sulfuric acid, polycondense at 55°C, and then solidify at 80°C. Centrifugal washing;
[0043] (4) Stability study: The obtained urea-formaldehyde resin-coated particles were dispersed in non-polar solvents (halogenated alkanes, aromatic compounds, fluorine-containing compounds, alkanes), and they could still be dispersed well after being left for a long time.
[0044] Figure 2 is a Zeta change diagram.
Embodiment 3
[0046] (1) Preparation of polystyrene / titanium dioxide nanoparticles: prepared according to Chinese invention patent 200610011885.0;
[0047](2) 2g of polystyrene / titanium dioxide nanoparticles obtained in step (1) were dispersed into 1000mL of deionized water dissolved with 50g of PVP (MW=55000);
[0048] (3) 40g urea is mixed with 86mL formaldehyde to obtain prepolymer;
[0049] Dilute 200 mL of the polystyrene / titanium dioxide nano-light sphere solution obtained in step (2) to a certain volume, add 8 mL of prepolymer, adjust the pH value to 3 with HCl, polycondense at 30°C, solidify at 55°C, and centrifuge washing;
[0050] (4) Stability study: The obtained urea-formaldehyde resin-coated particles were dispersed in non-polar solvents (halogenated alkanes, aromatic compounds, fluorine-containing compounds, alkanes), and they could still be dispersed well after being left for a long time.
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