Positive electrode active material for lithium ion secondary battery, method for manufacturing positive electrode active material for lithium ion secondary battery, and lithium ion secondary battery
A positive electrode active material and secondary battery technology, which is applied in the direction of secondary batteries, battery electrodes, chemical instruments and methods, etc., can solve the problems of thermal stability reduction and achieve the effect of inhibiting oxygen release
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Embodiment 1
[0162] (1) Preparation of positive electrode active material
[0163] The general formula with Ni as the main component: Ni 0.90 co 0.07 Al 0.03 (OH) 2 The metal composite hydroxide shown was dried by heating at 120° C. for 6 hours in air (oxygen concentration: 21% by volume) airflow (drying step).
[0164] Next, the dried metal composite hydroxide obtained in the drying step was heat-treated at 600° C. for 6 hours in an air current (heat treatment step). Thus, as a heat-treated metal complex compound, the general formula: Ni 0.90 co 0.07 Al 0.03 The metal composite oxide represented by O.
[0165] Next, Li / Me, which is the ratio of the number of atoms of lithium (Li) to the number of atoms of metals other than lithium (Me) in the resulting lithium mixture, was set to 1.01 for the heat-treated metal complex compound and lithium hydroxide obtained in the heat treatment step. The method was weighed and mixed sufficiently to obtain a lithium mixture (mixing process).
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Embodiment 2
[0198] In the crushing process, the particle size distribution is adjusted so that [(d90-d10) / volume average particle diameter] becomes 1.21, except that, the same operation as in Example 1 is carried out to obtain a positive electrode active material and a secondary battery, and carry out its evaluation. The results are shown in Table 1.
Embodiment 3
[0200] In the crushing process, the particle size distribution is adjusted so that [(d90-d10) / volume average particle diameter] becomes 0.88, except that, the same operation as in Example 1 is carried out to obtain a positive electrode active material and a secondary battery, and carry out its evaluation. The results are shown in Table 1.
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