Diaphragm and preparation method thereof, and lithium ion battery
A technology for lithium-ion batteries and diaphragms, applied in the field of inorganic-organic composite porous diaphragms and their preparation, can solve the problems of low flash point of acetone, potential safety hazards, diaphragm substrates affecting the performance of organic diaphragms, etc., to achieve high production efficiency and improve safety properties, improvement of overheating shrinkage performance and puncture strength effect
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Embodiment 1
[0042] The preparation of negative pole piece: take graphite as the negative electrode active material, and its weight content is 95%; With styrene-butadiene rubber (SBR) as binding agent, its weight content is 2%; With carbon black as conductive agent, its weight content is 3%; the above materials were added to deionized water and stirred evenly to make negative electrode slurry; the negative electrode slurry was evenly coated on copper foil, dried and compacted, and then cut into pieces and welded with negative electrode lugs to obtain negative electrode sheets .
[0043] Preparation of positive electrode sheet: lithium cobalt oxide (LiCoO 2 ) is positive electrode active material, and its weight content is 96%; With polyvinylidene fluoride (PVDF) as binding agent, its weight content is 2%; With carbon black as conductive agent, its weight content is 2%; Above-mentioned material Add it into N-methylpyrrolidone (NMP) and stir evenly to make a positive electrode slurry; evenl...
Embodiment 2
[0052] Different from embodiment 1 is the preparation of coating slurry:
[0053] Dilute 0.84 kg of polyacrylic acid-sodium polyacrylate aqueous solution with a mass fraction of 25% in deionized water. After mixing evenly, add 0.42 kg of vinylidene fluoride-hexafluoropropylene copolymer powder. After dispersing for 2 hours, the amount added is about 3.52 kg of SiO 2 After the powder is stirred for 1 hour, it is placed in a ball mill and ground for 1 hour, and then a sodium carboxymethyl cellulose solution with a solid content of 1.0 wt% is added to the ground slurry, wherein the degree of substitution of sodium carboxymethyl cellulose is 0.6, and the 1% aqueous solution The viscosity was 3000mPa·s, and the stirring was continued for 1h to obtain a coating slurry. The coating slurry had a viscosity of 300 mPa·s and a pH of 4.0.
[0054] Among them, SiO 2 The specific surface area is 4m 2 / g, the particle size D50 is 2.5 μm.
[0055] And the thickness of the single-layer ac...
Embodiment 3
[0058] Different from embodiment 1 is the preparation of coating slurry:
[0059] Dilute 2.52 kg of 25% polyacrylic acid-sodium polyacrylate aqueous solution in deionized water, mix well and add 0.42 kg of polyvinylidene fluoride-hexafluoropropylene powder. After dispersing for 2 hours, add about 3.1 kg of TiO 2 and Al 2 o 3 The mixture (the mass ratio of the two is 1:1) powder is stirred for 1h and then placed in a ball mill for grinding for 1h, and then a sodium carboxymethyl cellulose solution with a solid content of 1.0wt% is added to the slurry after grinding, wherein carboxymethyl The degree of substitution of cellulose sodium is 1.0, the viscosity of 1% aqueous solution is 2000mPa·s, and the stirring is continued for 1h to prepare the coating slurry. The coating slurry had a viscosity of 50 mPa·s and a pH of 4.5.
[0060] And the thickness of the single-layer active coating on the porous membrane substrate is 5 μm.
[0061] Among them, TiO 2 The specific surface ar...
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