Lithium ion secondary battery, composite positive electrode active material thereof and preparation method
A secondary battery and composite positive electrode technology, which is applied in the direction of secondary batteries, battery electrodes, circuits, etc., can solve the limitations of high-performance lithium-ion secondary battery applications, lithium-ion secondary battery rate performance limitations, and the electrochemistry of positive electrode active materials. Poor performance and other problems, to achieve the effect of improving cycle performance and storage performance, good thermal stability and chemical stability, and high energy density
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[0030] According to the preparation method of the composite positive electrode active material of the lithium ion secondary battery of the second aspect of the present invention, it is used to prepare the composite positive electrode active material of the lithium ion secondary battery of the first aspect of the present invention, comprising the steps of: (1) adding the dispersant The primary particles of deionized water and lithium manganese phosphate (LMP) are mixed and ball milled at a volume ratio of 1:1 to 3:1, and then ball milled and dispersed at a speed of 800r / min to 1000r / min for 1h to 2h to obtain lithium manganese phosphate ( Dispersion slurry of primary particles of LMP), wherein the general chemical formula of lithium manganese phosphate (LMP) is LiB y mn 1-y PO 4 , 0≤yx co 1-x o 2 , where, 0≤x<1, A is at least one of Ni, Mn, Al, Mg, Ca, Cr, Zr, Mo, Ag, Nb; (3) the primary particles of lithium manganese phosphate (LMP) Add the dispersion slurry to the dispers...
Embodiment 1
[0056] 1. Preparation of composite cathode active materials for lithium-ion secondary batteries
[0057] (1) The dispersant deionized water and lithium manganese phosphate (LiFe 0.1 mn 0.9 PO 4 ) of the primary particles ( figure 2 ) mixed and milled on a planetary ball mill at a volume ratio of 1:1, and then ball milled and dispersed for 1 hour at a speed of 800r / min to obtain lithium manganese phosphate (LiFe 0.1 mn 0.9 PO 4 ) of the primary particle dispersion slurry, where lithium manganese phosphate (LiFe 0.1 mn 0.9 PO 4 ) The primary particle size is 3nm ~ 10nm, BET specific surface area > 25m 2 / g;
[0058] (2) The dispersant deionized water and lithium cobalt series oxides (LiNi 0.4 co 0.4 mn 0.2 o 2 ) of the secondary particles ( figure 2 ) was mixed and milled on a planetary ball mill at a volume ratio of 1:1, and then ball milled and dispersed for 1 hour at a speed of 200r / min to obtain lithium-cobalt series oxides (LiNi 0.4 co 0.4 mn 0.2 o 2 ) d...
Embodiment 2
[0067] 1. Preparation of composite cathode active materials for lithium-ion secondary batteries
[0068] (1) The dispersant deionized water and lithium manganese phosphate (LiFe 0.3 mn 0.7 PO 4 ) primary particles in a planetary ball mill at a volume ratio of 1.5:1, and then ball milled and dispersed for 2 hours at a speed of 1000r / min to obtain lithium manganese phosphate (LiFe 0.3 mn 0.7 PO 4 ) of the primary particle dispersion slurry, where lithium manganese phosphate (LiFe 0.3 mn 0.7 PO 4 ) The primary particle size is 5nm ~ 12nm, BET specific surface area > 20m 2 / g;
[0069] (2) The dispersant deionized water and lithium cobalt series oxides (LiCoO 2 ) secondary particles were mixed and milled on a planetary ball mill at a volume ratio of 3:1, and then ball milled and dispersed for 3 hours at a speed of 400r / min to obtain lithium cobalt series oxides (LiCoO 2 ) dispersion slurry of secondary particles, in which lithium cobalt series oxides (LiCoO 2 ) The part...
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