Preparation method of epoxy nanometer hybrid material with low surface energy
A low surface energy, epoxy nanotechnology, applied in the direction of silicon oxide, silicon dioxide, titanium dioxide, etc., can solve the problem of non-obvious improvement of contact angle, antifouling and antibacterial performance, and limit the large-scale production, application and preparation of antifouling coatings Problems such as complex process, to achieve the effect of convenient large-scale production, no dust pollution, and simple reaction equipment
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Embodiment 1
[0023] 3g titanium tetrachloride, 1g N, N-bis-(triethoxysilylpropyl) imine, 30g resorcinol type epoxy resin, 2.5g dehydrated alcohol and 0.3g ammonia water are fully stirred and mixed Put it into a high-pressure reactor and keep the temperature at 100°C for 3 hours. After the reaction is completed, the product is naturally cooled to room temperature.
[0024] The above product was vacuum degassed to remove residual reactants, then 30g of the product was mixed with 15g of aromatic polyamine, stirred evenly, cured at 80°C and 0MPa for 3h, and then placed in a 100°C oven for post-curing for 30h. That is, a transparent epoxy nano-hybrid material is obtained. It has been tested that its contact angle with water can reach 101°, which is 36° larger than that of pure epoxy resin under the same preparation conditions.
Embodiment 2
[0026] After fully stirring 1g of γ-thiopropyltriethoxysilane, 30g of diglycidyl terephthalate, 8g of polyglycidyl ether and 0.6g of hydrochloric acid, they were placed in a high-pressure reactor and kept at a constant temperature of 160°C for 36h to react After completion, the product was naturally cooled to room temperature.
[0027] Vacuum degas the above product to remove residual reactants, then mix 20g of the product with 4g of polyamide, stir evenly and cure at 100°C and 10MPa for 5h, then put it in an oven at 120°C for post-curing for 20h to obtain Transparent epoxy nanohybrid material. It has been tested that its contact angle with water can reach 97°, which is 32° higher than that of pure epoxy resin under the same preparation conditions.
Embodiment 3
[0029] Mix 4g of propyl titanate, 30g of triglycidyl cyanurate, 5g of acetone and 0.04g of tin salt of an organic acid, mix them thoroughly, put them in an autoclave, and keep the temperature at 120°C for 36h. After the reaction is completed The product was naturally cooled to room temperature.
[0030] Vacuum degas the above product to remove residual reactants, then mix 20g of the product with 8g of organic anhydride, stir evenly and cure at 90°C and 20MPa for 6h, then put it in an oven at 150°C for post-curing for 10h to obtain Transparent epoxy nanohybrid material. It has been tested that its contact angle with water can reach 109°, which is 44° higher than that of pure epoxy resin under the same preparation conditions.
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