Nonaqueous electrolyte secondary battery
A nonaqueous electrolyte secondary battery according to the present invention comprises a positive electrode that contains, as positive electrode active materials: a lithium transition metal composite oxide (A) that is configured of secondary particles, in each of which primary particles having an average particle diameter of 0.5 μm or more aggregate, or is configured of substantially one kind of particles, while having a volume-based D50 of from 0.6 μm to 3 μm; and a lithium transition metal composite oxide (B) that is configured of secondary particles, in each of which primary particles having an average particle diameter of 0.3 μm or less aggregate, while having a volume-based D50 of from 6 μm to 25 μm.
1 . A non-aqueous electrolyte secondary battery, comprising:
a positive electrode including a positive electrode active material;
a negative electrode; and
a non-aqueous electrolyte, wherein
the positive electrode includes: a lithium-transition metal composite oxide (A) having a median diameter on a volumetric basis (D50) of 0.6 μm to 3 μm and being a secondary particle formed by aggregation of primary particles having an average particle diameter of 0.5 μm or larger or being composed of substantially single particles; and a lithium-transition metal composite oxide (B) having a median diameter on a volumetric basis (D50) of 6 μm to 25 μm and being a secondary particle formed by aggregation of primary particles having an average particle diameter of 0.3 μm or smaller, as the positive electrode active material;
the lithium-transition metal composite oxide (A) contains 65 mol % or more of Ni based on a total number of moles of metal elements excluding Li, and Ti is not present on a particle surface of the lithium-transition metal composite oxide (A);
the lithium-transition metal composite oxide (B) contains 70 mol % or more of Ni based on a total number of moles of metal elements excluding Li, and Ti is present on a particle surface of the oxide; and
in the lithium-transition metal composite oxide (B), when particles having a particle diameter larger than a 70% particle diameter (D70) on a volumetric basis are defined as first particles, and particles having a particle diameter smaller than a 30% particle diameter (D30) on a volumetric basis are defined as second particles,
a mole fraction of Ti on surfaces of the second particles based on a total number of moles of metal elements excluding Li on surfaces of the second particles (B2) is larger than a mole fraction of Ti on surfaces of the first particles based on a total number of moles of metal elements excluding Li on surfaces of the first particles (B1), and
a ratio of the mole fraction of Ti on surfaces of the second particles (B2) to the mole fraction of Ti on surfaces of the first particles (B1) is 1.10 or more and 1.50 or less.
2 . The non-aqueous electrolyte secondary battery according to claim 1 , wherein a content rate of the lithium-transition metal composite oxide (A) based on a mass of the positive electrode active material is 20 to 55 mass %.
3 . The non-aqueous electrolyte secondary battery according to claim 1 , wherein the lithium-transition metal composite oxide (B) is a composite oxide represented by the general formula Li a Ni b Co c Mn d Ti e O f , wherein 0.8≤a≤1.2, b≥0.70, c≤0.10, 0.03≤d≤0.12, 0.01≤e≤0.05, 1≤f≤2, and b+c+d+e=1.
4 . The non-aqueous electrolyte secondary battery according to claim 1 , wherein a density of a positive electrode mixture layer including the positive electrode active material is 3.55 g/cc or higher.
5 . The non-aqueous electrolyte secondary battery according to claim 1 , wherein a ratio of the mole fraction of Ti on the surfaces of the second particles (B2) to the mole fraction of Ti on the surfaces of the first particles (B1) is 1.2 or more and 1.50 or less.
6 . The non-aqueous electrolyte secondary battery according to claim 1 ,
wherein a volume ratio of the first particles (B1) to the second particles (B2) is about 1:1.