Modified carbon material as well as preparation method and application thereof
A carbon material and modified carbon technology, applied in the field of modified carbon materials and their preparation, can solve the problems of large surface energy, weak surface force, poor compatibility, etc., achieve good modification effect, avoid negative effects, strong The effect of interfacial forces
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Embodiment 1
[0049] ① Disperse 200mg of multi-walled carbon nanotubes in a mixed solution of 100g of concentrated sulfuric acid and concentrated nitric acid (the mass ratio of concentrated sulfuric acid and concentrated nitric acid is 4:1), and stir at a speed of 4000r / min in an environment of 50°C 12h, then naturally cooled to room temperature, washed with deionized water until neutral, and then washed 3 times with absolute ethanol.
[0050] ② Disperse 1.5g of carbon nanotubes treated in step ① in a solution consisting of 50mL of thionyl chloride and 0.5mL of N,N dimethylformamide, and reflux the resulting solution at 70°C After 20 h, after the reaction, the unreacted thionamide was distilled off under reduced pressure, and then washed three times with absolute ethanol.
[0051] ③ Disperse 1.5 g of the carbon nanotubes treated in step ② in 50 mL of ethylenediamine, and condense the resulting solution under reflux for 20 hours at 60 ° C. After the reaction, remove the unreacted ethylenedia...
Embodiment 2
[0055] 1. with step 1. in embodiment 1;
[0056] 2. with the step in embodiment 1 2.;
[0057] 3. with the step 3. in embodiment 1;
[0058] ④ Disperse 0.06g of the modified carbon nanotubes obtained through the above steps and methods in 5mL of acetone solution, and after ultrasonic dispersion for 20min, add it to 9.9g of bisphenol A-type epoxy resin (E51), Then ultrasonically disperse for 10 minutes, then add 1.98g of curing agent 593, stir mechanically for 5 minutes, pour into a mold preheated at 30°C, then transfer to an oven at 30°C, vacuum degas for 30min, and then After curing for 24 hours, an epoxy resin composite material with a mass percentage of carbon nanotubes of 0.5% was obtained.
[0059] The impact strength of the epoxy resin composite material increased from 59.3MPa of pure resin to 79.5MPa, and the breaking strength of the epoxy resin composite increased from 1.21MPa·m of pure resin 1 / 2 , increased to 2.24MPa·m 1 / 2 .
Embodiment 3
[0061] 1. with step 1. in embodiment 1;
[0062] 2. with the step in embodiment 1 2.;
[0063] 3. with the step 3. in embodiment 1;
[0064] 4. Disperse 0.96g of the modified carbon nanotubes obtained through the above steps and methods in 5mL of acetone solution, and after ultrasonic dispersion for 20min, add it to 9.9g of bisphenol A-type epoxy resin (E51), Then ultrasonically disperse for 10 minutes, then add 1.98g of curing agent 593, stir mechanically for 5 minutes, pour into a mold preheated at 30°C, then transfer to an oven at 30°C, vacuum degas for 30min, and then After curing for 24 hours, an epoxy resin composite material with a mass percentage of carbon nanotubes of 0.8% was obtained.
[0065] The impact strength of the epoxy resin composite material increased from 59.3MPa of pure resin to 84.2MPa, and the breaking strength of the epoxy resin composite increased from 1.21MPa·m of pure resin 1 / 2 , increased to 2.36MPa m 1 / 2 .
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