Silicon-based composite anode material for lithium ion battery and preparation method thereof
A technology for lithium-ion batteries and negative electrode materials, applied in electrode manufacturing, battery electrodes, circuits, etc., can solve problems that hinder the large-scale application of silicon material negative electrode materials, poor electrochemical cycle stability of materials and batteries, and achieve good lithium ion transmission performance, ensure electrochemical stability, and improve the effect of electrical conductivity
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Embodiment 1
[0040] Get 23g silicon nanoparticles (particle diameter D50 is 100nm), 10g glucose and 2.5gS-p are dispersed in the mixed solvent of 700g water and 100g ethanol, through ultrafine ball milling 1h, then through spray-drying, obtain granular powder, the particle The powder was calcined at 200° C. for 0.5 h in a tube vacuum furnace under the protection of argon to obtain material A.
[0041] The above-mentioned material A, 5g polyacrylic acid, 0.25g carbon fiber and 172.5g Ks-6 were dispersed in a mixed solvent of 700g water and 100g ethanol, ball milled for 2h, and then spray-dried to obtain granular powder. In the furnace, protected by argon, calcined at 300°C for 0.5h to obtain material B.
[0042] Take 15g of the above-mentioned material B and 5g of medium-temperature pitch and disperse in 25g of toluene, stir and mix to obtain a paste mixture C, put the paste C into a vacuum tube furnace, protect it with argon, and calcinate at 1050°C for 90min to obtain a block composite ma...
Embodiment 2
[0046] Get 23g silicon nanoparticles (particle size D50 is 500nm), 10g glucose and 2.5gS-p are dispersed in the mixed solvent of 500g water and 100g ethanol, through ultrafine ball milling 3h, then through spray-drying, obtain granular powder, the particle The powder was calcined at 200° C. for 0.5 h in a tube vacuum furnace under the protection of argon to obtain material A.
[0047] The above material A, 5g of polyacrylic acid, 0.25g of carbon fiber and 172.5g of Ks-6 were dispersed in a mixed solvent of 700g of water and 100g of ethanol, ball milled for 3 hours, and then spray-dried to obtain a granular powder, which was placed in a tube vacuum In the furnace, protected by argon, calcined at 300°C for 0.5h to obtain material B.
[0048] Take 15g of the above-mentioned material B and 5g of medium-temperature pitch and disperse in 25g of toluene, stir and mix to obtain a paste mixture C, put the paste C into a vacuum tube furnace, protect it with argon, and calcinate at 1050°...
Embodiment 3
[0051] Get 34.5g silicon nanoparticles (particle diameter D50 is 100nm), 10g glucose and 2.5gS-p are dispersed in the mixed solvent of 1000g water and 100g ethanol, through ultrafine ball milling 1h, then through spray drying, obtain granular powder, will The granular powder was calcined at 200° C. for 0.5 h in a tube vacuum furnace under the protection of argon to obtain material A.
[0052] The above-mentioned material A, 10g polyacrylic acid, 0.25g carbon fiber and 172.5g Ks-6 were dispersed in a mixed solvent of 700g water and 100g ethanol, ball milled for 2h, and then spray-dried to obtain granular powder. In the furnace, protected by argon, calcined at 300°C for 0.5h to obtain material B.
[0053] Disperse 15g of the above-mentioned material B and 7.25g of medium-temperature pitch in 40g of toluene, stir and mix to obtain a paste mixture C, put the paste mixture C in a vacuum tube furnace, protect it with argon, and calcinate at 950°C for 120min to obtain a block composi...
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