Composite Positive Electrode Sheet with High Compacted Density, Method for Preparing the Same, and Energy Storage Device
The present application relates to a composite positive electrode sheet with a high compacted density, and a method for preparing the same, and an energy storage device. The composite positive electrode sheet of the present application comprises a current collector, a coating layer and a plurality of inserts.
1 . A composite positive electrode sheet, comprising a current collector, a coating layer and a plurality of inserts, the coating layer being arranged on an outer surface of the current collector, wherein
the inserts are inserted in the coating layer, and the inserts have a width D along a length direction of the composite positive electrode sheet ranging from 10 μm to 20 μm, a distance L between two adjacent inserts satisfying L≤50 μm, and a depth h of the portion of each insert inserted into the coating layer ranging from 30 μm to 50 μm taking the outer surface of the coating layer facing away from the current collector as a reference plane;
the inserts have a larger particle size than the coating layer; and
the composite positive electrode sheet has a compacted density of larger than or equal to 2.3 g/cm 3 .
2 . The composite positive electrode sheet according to claim 1 , wherein the coating layer has a thickness ranging from 70 μm to 120 μm.
3 . The composite positive electrode sheet according to claim 1 , wherein the coating layer and the inserts are both made from lithium iron manganese phosphate.
4 . The composite positive electrode sheet according to claim 1 , wherein the coating layer has a mean particle size Dv50 ranging from 0.6 μm to 0.8 μm, and the inserts have a mean particle size Dv50 ranging from 1.1 μm to 1.3 μm.
5 . The composite positive electrode sheet according to claim 1 , wherein the inserts have a width D along a length direction of the composite positive electrode sheet ranging from 14 μm to 18 μm.
6 . The composite positive electrode sheet according to claim 1 , wherein the inserts have a width D along a length direction of the composite positive electrode sheet of about 16 μm.
7 . The composite positive electrode sheet according to claim 1 , wherein the distance L between two adjacent inserts is less than or equal to 30 μm.
8 . The composite positive electrode sheet according to claim 1 , wherein the depth h of the portion of each insert inserted into the coating layer is about 45 μm, taking the outer surface of the coating layer facing away from the current collector as a reference plane.
9 . The composite positive electrode sheet according to claim 1 , wherein the ends of the inserts facing away from the current collector form protrusions on the outer surface of the coating layer facing away from the current collector, the protrusions protrude relative to the outer surface of the coating layer facing away from the current collector, and the protrusions are distributed in an array.
10 . A method for preparing the composite positive electrode sheet according to claim 1 , comprising the steps of:
(1) preparing a coating layer: coating a first positive electrode slurry on a surface of a current collector to form a coating layer; and
(2) preparing inserts: injecting a second positive electrode slurry into the coating layer with a syringe;
wherein the second positive electrode slurry has a larger particle size than the first positive electrode slurry.
11 . The method according to claim 10 , further comprising a post-treatment step, wherein the post-treatment step comprises pressing the composite positive electrode sheet obtained in step (2) on a press machine, so that the compacted density is larger than or equal to 2.3 g/cm 3 .
12 . The method according to claim 10 , wherein the ends of the inserts facing away from the current collector form protrusions on the surface of the outer surface of the coating layer facing away from the current collector.
13 . An energy storage device, comprising the composite positive electrode sheet according to claim 1 .