Negative electrode active material, preparation method thereof, and lithium ion secondary battery prepared using the negative electrode active material
A negative electrode active material and oxide technology, applied in the field of negative electrode active material and its preparation, can solve problems such as restricting battery performance, and achieve the effects of avoiding the short circuit phenomenon of positive and negative contacts, reducing reaction, and improving cycle life
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Embodiment 1
[0022] Mix spherical oxides and rod-shaped oxides to obtain mixed oxides, put the mixed oxides into a solution of N-methylpyrrolidone with a mass fraction of 4% polyvinylidene fluoride and ball mill and mix for 1 hour, then add lithium titanate and Ball milling and mixing for 3 hours to obtain a slurry, heat the slurry and stir at 170°C until the sample is dried to obtain a titanium-based composite material, the titanium-based composite material is passed through Ar or N 2 Or bake at 600° C. for 24 hours under vacuum, and then cool down to room temperature to obtain the negative electrode active material. The spherical oxide and the rod-shaped oxide are respectively zirconia. It can be purchased from a supplier, the aspect ratio (the ratio of the longest side to the thickness) of the rod-shaped oxide is 6, the particle size of the spherical oxide and the longest side of the rod-shaped oxide are 7 μm, and the mixed oxide The mass fraction of rod-shaped oxides in the product is ...
Embodiment 2
[0024] Mix spherical oxides and rod-shaped oxides to obtain mixed oxides, put the mixed oxides into a solution of N-methylpyrrolidone with a mass fraction of 4% polyvinylidene fluoride and ball mill and mix for 1 hour, then add lithium titanate and Ball milling and mixing for 3 hours to obtain a slurry, heat the slurry and stir at 170°C until the sample is dried to obtain a titanium-based composite material, the titanium-based composite material is passed through Ar or N 2 Or bake at 600° C. for 30 hours under vacuum, and then cool down to room temperature to obtain the negative electrode active material. The spherical oxide and the rod-shaped oxide are respectively magnesium oxide. Lithium titanate can be prepared by methods disclosed in the art, or It can be purchased through a supplier, the aspect ratio (the ratio of the longest side to the thickness) of the rod-shaped oxide is 2, the particle size of the spherical oxide and the longest side of the rod-shaped oxide are 10 μm...
Embodiment 3
[0026] Mix spherical oxides and rod-shaped oxides to obtain mixed oxides, put the mixed oxides into a solution of N-methylpyrrolidone with a mass fraction of 4% polyvinylidene fluoride and ball mill and mix for 1 hour, then add lithium titanate and Ball milling and mixing for 3 hours to obtain a slurry, heat the slurry and stir at 170°C until the sample is dried to obtain a titanium-based composite material, the titanium-based composite material is passed through Ar or N 2 Or bake at 600° C. for 36 hours under vacuum, and then cool down to room temperature to obtain the negative electrode active material. The spherical oxide and the rod-shaped oxide are respectively yttrium oxide, and lithium titanate can be prepared by methods disclosed in the art. It can be purchased through a supplier, the aspect ratio (the ratio of the longest side to the thickness) of the rod-shaped oxide is 4, the particle size of the spherical oxide and the longest side of the rod-shaped oxide are 0.005 ...
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