IP Library Patent Application 18231169
Patent Application
App. No. 18/231,169

POSITIVE ELECTRODE PLATE FOR NON-AQUEOUS ELECTROLYTE RECHARGEABLE BATTERY, NON-AQUEOUS ELECTROLYTE RECHARGEABLE BATTERY, AND METHOD FOR MANUFACTURING POSITIVE ELECTRODE PLATE FOR NON-AQUEOUS ELECTROLYTE RECHARGEABLE BATTERY

Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US None
App. No.
18/231,169
Abstract

A positive electrode plate for a non-aqueous electrolyte rechargeable battery includes a positive electrode mixture layer that is formed by a positive electrode mixture including a positive electrode active material and a conductive material. When R S =(R C ×B C )/(R A ×B A ) is satisfied, where R C (mass %) represents a percentage of the conductive material, B C (m 2 /g) represents a specific surface area of the conductive material, R A (mass %) represents a percentage of the positive electrode active material, B A (m 2 /g) represents a specific surface area of the positive electrode active material, and R S represents a total surface area ratio, an aspect ratio AR of the conductive material is thirty or greater, the total surface area ratio R S is in a range of 0.20 to 1.93, and a porosity P (%) of the positive electrode mixture layer is in a range of 40% to 55%.

Claims (31)

1 . A positive electrode plate for a non-aqueous electrolyte rechargeable battery, the battery including a positive electrode plate, a negative electrode plate, a separator insulating the positive electrode plate and the negative electrode plate, and a non-aqueous electrolyte, the positive electrode plate comprising:

a positive electrode current collector; and

a positive electrode mixture layer formed on a part of at least one surface of the positive electrode current collector and formed by a positive electrode mixture, the positive electrode mixture including a positive electrode active material and a conductive material,

wherein when R S =(R C ×B C )/(R A ×B A ) is satisfied, where R C (mass %) represents a percentage of the conductive material in the positive electrode mixture, B C (m 2 /g) represents a specific surface area of the conductive material, R A (mass %) represents a percentage of the positive electrode active material in the positive electrode mixture, B A (m 2 /g) represents a specific surface area of the positive electrode active material, and R S represents a total surface area ratio,

an aspect ratio AR of the conductive material is thirty or greater;

the total surface area ratio R S is in a range of 0.20 to 1.93; and

a porosity P (%) of the positive electrode mixture layer is in a range of 40% to 55%.

2 . The positive electrode plate according to claim 1 , wherein

the specific surface area B A (m 2 /g) of the positive electrode active material is in a range of 1.6 to 3.3 m 2 /g,

the specific surface area B C (m 2 /g) of the conductive material is in a range of 180 to 500 m 2 /g, and

the percentage R C (mass %) of the conductive material in the positive electrode mixture is in a range of 0.2 to 1.5 mass %.

3 . The positive electrode plate according to claim 1 , wherein:

the positive electrode mixture layer is divided in a thickness-wise direction of the positive electrode mixture layer into two regions, a separator region located closer to the separator, and a positive electrode current collector region located closer to the positive electrode current collector; and

a mass M UP (g) of the conductive material present in the separator region of the positive electrode mixture layer is greater than a mass M LOW (g) of the conductive material present in the positive electrode current collector region of the positive electrode mixture layer.

4 . The positive electrode plate according to claim 3 , wherein a conductive material upper-lower ratio R M is in a range of 1.5 to 20, where the conductive material upper-lower ratio R M is a mass ratio of the mass M UP (g) of the conductive material present in the separator region of the positive electrode mixture layer to the mass M LOW (g) of the conductive material present in the positive electrode current collector region of the positive electrode mixture layer.

5 . The positive electrode plate according to claim 3 , wherein a porosity P LOW (%) of the positive electrode current collector region of the positive electrode mixture layer is greater than a porosity P UP (%) of the separator region of the positive electrode mixture layer.

6 . The positive electrode plate according to claim 5 , wherein a porosity upper-lower ratio R P is in a range of 1.1 to 12, where the porosity upper-lower ratio R P is a ratio of the P LOW (%) of the positive electrode current collector region of the positive electrode mixture layer to the P UP (%) of the separator region of the positive electrode mixture layer.

7 . A non-aqueous electrolyte rechargeable battery, the battery comprising:

the positive electrode plate for a non-aqueous electrolyte rechargeable battery according to claim 1 .

8 . A method for manufacturing a positive electrode plate for a non-aqueous electrolyte rechargeable battery, the battery including a positive electrode plate, a negative electrode plate, a separator insulating the positive electrode plate and the negative electrode plate, and a non-aqueous electrolyte, wherein the positive electrode plate includes a positive electrode current collector and a positive electrode mixture layer, the positive electrode mixture layer being formed on a part of at least one surface of the positive electrode current collector and formed by a positive electrode mixture, and the positive electrode mixture including a positive electrode active material and a conductive material, the method comprising:

preparing a positive electrode mixture paste;

applying the positive electrode mixture paste to a part of at least one surface of the positive electrode current collector; and

drying the positive electrode mixture paste to form the positive electrode mixture layer, wherein:

the preparing a positive electrode mixture paste is performed so that when R S =(R C ×B C )/(R A ×B A ) is satisfied, where R C (mass %) represents a percentage of the conductive material in the positive electrode mixture, B C (m 2 /g) represents a specific surface area of the conductive material, R A (mass %) represents a percentage of the positive electrode active material in the positive electrode mixture, B A (m 2 /g) represents a specific surface area of the positive electrode active material, and R S represents a total surface area ratio,

an aspect ratio AR of the conductive material is thirty or greater;

the total surface area ratio R S is in a range of 0.20 to 1.93; and

a porosity P (%) of the positive electrode mixture layer is in a range of 40% to 55%.

9 . The method according to claim 8 , the positive electrode mixture layer being divided in a thickness-wise direction of the positive electrode mixture layer into two regions, a separator region located closer to the separator, and a positive electrode current collector region located closer to the positive electrode current collector, wherein:

the preparing a positive electrode mixture paste includes adjusting a solid content ratio NV of the positive electrode mixture paste, and the drying the positive electrode mixture paste includes controlling a drying temperature and a drying time period so that:

a conductive material upper-lower ratio R M after the drying is in a range of 1.5 to 20, where the conductive material upper-lower ratio R M is a mass ratio of a mass M UP (g) of the conductive material present in the separator region of the positive electrode mixture layer to a mass M LOW (g) of the conductive material present in the positive electrode current collector region of the positive electrode mixture layer; and

a porosity upper-lower ratio R P is in a range of 1.1 to 12, where the porosity upper-lower ratio R P is a ratio of a porosity P LOW (%) of the positive electrode current collector region of the positive electrode mixture layer to a porosity P UP (%) of the separator region of the positive electrode mixture layer.

Assignments (2)
CHANGE OF NAME Recorded Jan 16, 2025
From: PRIMEARTH EV ENERGY CO., LTD.
To: TOYOTA BATTERY CO., LTD.
Reel/Frame 070226/0103 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 10, 2023
From: DEGUCHI, SHOTARO
To: PRIMEARTH EV ENERGY CO., LTD.; TOYOTA JIDOSHA KABUSHIKI KAISHA; PRIME PLANET ENERGY & SOLUTIONS, INC.
Reel/Frame 064551/0914 →