Boron and barium activated lithium iron phosphate anode material
A technology of lithium iron phosphate and positive electrode materials, applied in battery electrodes, electrical components, circuits, etc., can solve problems such as low tap density and poor conductivity, and achieve the effects of increased electronic conductivity, reduced impedance, and improved diffusion coefficient
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Embodiment 1
[0025]Li2CO3 (99.73%), H3BO3 (AR), BaCO3 (99.8%), FeC2O4.2H2O (99.06%), NH4H2PO4 (98%) raw materials, mixed according to the ratio of 1mol Li: 0.00002mol B: 0.0003mol Ba: 1mol Fe: 1molP Finally, in absolute ethanol (AR) medium, high-speed ball milling for 20h (rotation speed 200r / mimn. After drying at 105-120°C, the precursor was obtained, and the dried precursor was placed in a high-temperature furnace. (>99.5%) atmosphere, calcined at a high temperature of 500-750°C for 24 hours to obtain the boron and barium activated lithium iron phosphate cathode material of the present invention.
Embodiment 2
[0027] Li2CO3 (99.73%), H3BO3 (AR), BaCO3 (99.8%), FeC2O4.2H2O (99.06%), NH4H2PO4 (98%) raw materials, mixed according to the ratio of 1mol Li: 0.00004mol B: 0.001mol Ba: 1mol Fe: 1molP Finally, in absolute ethanol (AR) medium, high-speed ball milling for 20h (rotation speed 200r / mimn. After drying at 105-120°C, the precursor was obtained, and the dried precursor was placed in a high-temperature furnace. (>99.5%) atmosphere, calcined at a high temperature of 500-750°C for 24 hours to obtain the boron and barium activated lithium iron phosphate cathode material of the present invention.
Embodiment 3
[0029] Li2CO3 (99.73%), H3BO3 (AR), BaCO3 (99.8%), FeC2O4.2H2O (99.06%), NH4H2PO4 (98%) raw materials, mixed according to the ratio of 1mol Li: 0.00005mol B: 0.003mol Ba: 1mol Fe: 1molP Finally, in absolute ethanol (AR) medium, high-speed ball milling for 20h (rotation speed 200r / mimn. After drying at 105-120°C, the precursor was obtained, and the dried precursor was placed in a high-temperature furnace. (>99.5%) atmosphere, calcined at a high temperature of 500-750°C for 24 hours to obtain the boron and barium activated lithium iron phosphate cathode material of the present invention.
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