MXene aerogel lithium negative electrode current collector capable of rapidly charging and discharging at high rate, preparation method thereof and application thereof
An airgel lithium and current collector technology, applied in the direction of electrode carrier/collector, negative electrode, electrical components, etc., can solve the problem of increasing metal lithium and electrolyte consumption, unstable solid electrolyte interface film, and limiting the operation of metal lithium batteries and other problems, to achieve a good electronic conductive network, reduce the local current density, and the method is simple and feasible.
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Embodiment 1
[0022] 1) Etching carbon-aluminum-titanium with hydrochloric acid and lithium fluoride, combined with ultrasonic-assisted stripping method to prepare MXene dispersion, the concentration of which is 0.1mg / mL;
[0023] 2) Prepare the graphene oxide dispersion with a concentration of 0.2 mg / mL, and uniformly mix the MXene dispersion and the graphene oxide dispersion in step 1) according to the mass ratio of MXene:rGO=0.7, and add excess hydrogen iodide for reduction agent to obtain a mixed dispersion;
[0024] 3) Transfer the mixed dispersion liquid in the above step 2) to a 100mL hydrothermal kettle, seal it and transfer it to an oven at 80°C for 6h at low temperature to obtain MXene hydrogel;
[0025] 4) Immerse the MXene hydrogel in the above step 3) in the ethanol solution, fully soak for 72 hours to remove the iodine element attached to the surface, and rinse with water until the pH of the cleaning solution is 7;
[0026] 5) The cleaned MXene hydrogel was dried in an oven a...
Embodiment 2
[0028] 1) Etching carbon-aluminum-titanium with hydrochloric acid and lithium fluoride, combined with ultrasonic-assisted stripping method to prepare MXene dispersion, the concentration of which is 1.0 mg / mL;
[0029] 2) Prepare the graphene oxide dispersion with a concentration of 0.2 mg / mL, and uniformly mix the MXene dispersion and the graphene oxide dispersion in step 1) according to the mass ratio of MXene:rGO=0.7, and add excess hydrogen iodide for reduction agent to obtain a mixed dispersion;
[0030] 3) Transfer the mixed dispersion liquid in the above step 2) to a 100mL hydrothermal kettle, seal it and transfer it to an oven at 80°C for 6h at low temperature to obtain MXene hydrogel;
[0031] 4) Immerse the MXene hydrogel in the above step 3) in the ethanol solution, fully soak for 72 hours to remove the iodine element attached to the surface, and rinse with water until the pH of the cleaning solution is 7;
[0032] 5) The cleaned MXene hydrogel was dried in an oven ...
Embodiment 3
[0034] 1) Etching carbon-aluminum-titanium with hydrochloric acid and lithium fluoride, combined with ultrasonic-assisted stripping method to prepare MXene dispersion with a concentration of 2 mg / mL;
[0035] 2) Prepare the graphene oxide dispersion with a concentration of 0.2 mg / mL, and uniformly mix the MXene dispersion and the graphene oxide dispersion in step 1) according to the mass ratio of MXene:rGO=0.7, and add excess hydrogen iodide for reduction agent to obtain a mixed dispersion;
[0036] 3) Transfer the mixed dispersion liquid in the above step 2) to a 100mL hydrothermal kettle, seal it and transfer it to an oven at 80°C for 6h at low temperature to obtain MXene hydrogel;
[0037] 4) Immerse the MXene hydrogel in the above step 3) in the ethanol solution, fully soak for 72 hours to remove the iodine element attached to the surface, and rinse with water until the pH of the cleaning solution is 7;
[0038] 5) The cleaned MXene hydrogel was dried in an oven at 80°C f...
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