Positive electrode active material, positive electrode, battery, battery pack, electronic device, electric vehicle, power storage device, and power system
US-2018287202-A1 · Oct 4, 2018 · US
US12119476B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-12119476-B2 |
| Application number | US-202017278233-A |
| Country | US |
| Kind code | B2 |
| Filing date | Jul 29, 2020 |
| Priority date | Nov 14, 2019 |
| Publication date | Oct 15, 2024 |
| Grant date | Oct 15, 2024 |
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The present invention relates to an electrode of a double-layer structure including a different type of particulate active material having a different average particle diameter, and a secondary battery including the same, and according to the present invention, the mechanical strength and stability of the electrode increases, and the secondary battery to which they are applied exhibits excellent discharge capacity.
Opening claim text (preview).
The invention claimed is: 1. An electrode for a secondary battery, comprising: a current collector layer; a lower mixture layer disposed on one or both surfaces of the current collector layer and including a first active material; and an upper mixture layer disposed on a surface of the lower mixture layer which is opposite to a surface of the lower mixture layer that comes in contact with the current collector layer, and including a second active material, wherein the second active material includes particles having diameters within a first particle diameter range and particles having diameters within a third particle diameter range, wherein the first active material includes particles having diameters within a second particle diameter range and particles having diameters within the third particle diameter range, wherein following conditions 1 and 2 are satisfied: D 1 >D 2 >D 3 [Condition 1] D 1 −D 3≥5 (μm) [Condition 2] wherein in the conditions 1 and 2 , D1 is an average particle diameter of the particles having diameters within the first particle diameter range, D2 is an average particle diameter of the particles having diameters within the second particle diameter range, and D3 is an average particle diameter of the particles having diameters within the third particle diameter range, and wherein in the upper mixture layer, a content ratio of the particles having diameters within the first particle diameter range to the particles having diameters within the third particle diameter range is in a range of 6:4 to 9:1 by weight, and a concentration of the particles having diameters within the first particle diameter range is higher in the upper mixture layer than in the lower mixture layer. 2. The electrode of claim 1 , wherein the average particle diameter of the particles having diameters within the first particle diameter range is in a range of 14 to 20 μm, wherein the average particle diameter of the particles having diameters within the second particle diameter range is in a range of 10 to 13 μm, and wherein the average particle diameter of the active material particles having diameters within the third particle diameter range is in a range of 3 to 9 μm. 3. The electrode of claim 1 , wherein in the lower mixture layer, a content ratio of the particles having diameters within the second particle size range to the particles having diameters within the third particle size range is in a range of 6:4 to 9:1 by weight. 4. The electrode of claim 1 , further comprising: a buffer layer interposed between the current collector layer and the lower mixture layer, wherein the buffer layer contains a niobium-containing oxide. 5. The electrode of claim 4 , wherein the niobium-containing oxide contained in the buffer layer includes at least one of Li 3 NbO 4 , LiNbO, or Nb 2 O 5 . 6. The electrode of claim 4 , wherein an average thickness of the buffer layer is in a range of 1 to 10 μm. 7. The electrode of claim 1 , wherein the current collector layer comprises a metal foil having an average thickness of 10 to 20 μm. 8. The electrode of claim 1 , wherein the electrode is for a lithium secondary battery. 9. A method of manufacturing an electrode for a secondary battery, comprising: forming a lower mixture layer on one or both sides of a current collector layer, and including active material containing particles having diameters within a second particle diameter range and particles having diameters within a third particle diameter range; forming an upper mixture layer on the lower mixture layer, and including active material containing particles having diameter within a first particle diameter range and particles having diameter within the third particle diameter range; and rolling the electrode on which the lower and upper mixture layers are applied, wherein following conditions 1 and 2 are satisfied: D 1 >D 2 >D 3 [Condition 1] D 1 −D 3≥5 (μm) [Condition 2] wherein in the conditions 1 and 2 , D1 is an average particle diameter of the particles having diameters within the first particle diameter range, D2 is an average particle diameter of the particles having diameters within the second particle diameter range, and D3 is an average particle diameter of the particles having diameters within the third particle diameter range, wherein in the upper mixture layer, a content ratio of the particles having diameters within the first particle diameter range to the particles having diameters within the third particle diameter range is in a range of 6:4 to 9:1 by weight, and a concentration of the particles having diameters within the first particle diameter range is higher in the upper mixture layer than in the lower mixture layer. 10. The method of claim 9 , wherein a porosity of the first and second mixture layers after the rolling is in a range of 20 to 30% (v/v). 11. The method of claim 9 , wherein a thickness ratio of the lower mixture layer to the upper mixture layer is in a range of 1:9 to 4:6. 12. The method of claim 9 , wherein the current collector layer comprises a metal foil having an average thickness of 10 to 20 μm. 13. The method of claim 9 , further comprising: forming a buffer layer containing an oxide containing niobium on the current collector before the lower mixture layer is formed. 14. The electrode of claim 1 , wherein in the upper mixture layer, the content ratio of the particles having diameters within the first particle diameter range to the particles having diameters within the third particle diameter range is in a range of 7:3 to 8:2 by weight. 15. The electrode of claim 1 , wherein in the lower mixture layer, a content ratio of the particles having diameters within the second particle size range to the particles having diameters within the third particle size range is in a range of 7:3 to 8:2 by weight. 16. The method of claim 9 , wherein in the upper mixture layer, the content ratio of the particles having diameters within the first particle diameter range to the particles having diameters within the third particle diameter range is in a range of 7:3 to 8:2 by weight. 17. The method of claim 9 , wherein in the lower mixture layer, a content ratio of the particles having diameters within the second particle size range to the particles having diameters within the third particle size range is in a range of 6:4 to 9:1 by weight. 18. The method of claim 9 , wherein in the lower mixture layer, a content ratio of the particles having diameters within the second particle size range to the particles having diameters within the third particle size range is in a range of 7:3 to 8:2 by weight. 19. An electrode for a secondary battery, comprising: a current collector layer; a lower mixture layer disposed on one or both surfaces of the current collector layer and including a first active material; and an upper mixture layer disposed on a surface of the lower mixture layer which is opposite to a surface of the lower mixture layer that comes in contact with the current collector layer, and including a second active material; and a buffer layer interposed between the current collector layer and the lower mixture layer, wherein the buffer layer contains a niobium-containing oxide, wherein the second active material includes particles having diameters within a first particle diameter range and particles having diameters within a third particle diameter range, wherein the first active material includes particles having diameters within a second particle diameter range
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