Slot die shim and slot die including same

The slot die shim with a multi-sectioned flow path addresses the issue of non-uniform slurry application, ensuring consistent electrode coating and improved battery discharge capacity.

JP7739438B2Active Publication Date: 2025-09-16LG ENERGY SOLUTION LTD
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Patent Information

Application Number
JP2023546326
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-12-08
Filing Date
2022-12-06
Publication Date
2025-09-16
Estimated Expiration
2042-12-06

AI Technical Summary

Technical Problem

Conventional slot dies struggle to uniformly adjust the amount of electrode slurry during coating, leading to non-uniform discharge capacity in secondary batteries.

Method used

A slot die shim with a flow path separated into multiple sections by protrusions, featuring connecting portions, first and second protrusions, and grooves to control slurry flow, ensuring uniform application.

Benefits of technology

The solution uniformly adjusts electrode slurry application, preventing sliding areas and maintaining consistent discharge capacity, thereby enhancing battery stability and reducing lithium deposition.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to a slot die shim interposed between a first slot die and a second slot die, in which a flow path through which a slurry flows is separated into multiple parts by multiple protrusions, the slot die shim including: a connecting portion that connects to the first and second slot dies; first protrusions that are included on one side of the connecting portion and are spaced apart from each other; and one or more second protrusions that are located between the first protrusions, the second protrusions including grooves through which the slurry flows.
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Description

[Technical Field]

[0001] This application claims the benefit of the filing date of Korean Patent Application No. 10-2021-0174948, filed with the Korean Intellectual Property Office on December 8, 2021, the entire contents of which are incorporated herein by reference.

[0002] The present invention relates to a slot die shim and a slot die including the same. More specifically, the present invention relates to a slot die shim and a slot die including the same that reduce the slurry supply flow rate at the end of an electrode slurry application section. [Background technology]

[0003] In recent years, the depletion of fossil fuels has led to rising energy costs and growing concerns about environmental pollution, leading to an increased demand for environmentally friendly alternative energy sources. Accordingly, research into various power generation technologies, including nuclear, solar, wind, and tidal power, is ongoing, and there is also growing interest in power storage devices to more efficiently use the energy produced in this way.

[0004] As technological development and demand for mobile devices increases, the demand for batteries as an energy source is growing rapidly, and much research is being done on batteries that can meet this demand.

[0005] In terms of battery shape, there is a high demand for prismatic and pouch-shaped secondary batteries that are thin and suitable for use in products such as mobile phones. In terms of materials, there is a high demand for lithium secondary batteries such as lithium-ion batteries and lithium-ion polymer batteries, which have advantages such as high energy density, discharge voltage, and output stability.

[0006] In general, a secondary battery includes an electrode assembly having a stacked structure of an anode, a cathode, and a separator disposed between the anode and the cathode. The anode and the cathode are fabricated by coating an electrode slurry containing an active material onto a current collector.

[0007] A die coater can be used to coat the electrode slurry containing the active material onto the current collector. A die coater is a device that uses a non-pulsating pump or piston pump to supply fluids, such as electrode slurry, adhesives, hard coating agents, ceramics, etc., between processed upper and lower dies, and coats the substrate, such as fabric, film, glass plate, or sheet, at a consistent thickness.

[0008] FIG. 1(a) is a front view of a conventional slot die shim and a side view of a substrate 3 to which an electrode slurry 4 has been applied using the conventional slot die, and FIG. 1(b) is a diagram showing how the electrode slurry 4 is applied to the substrate 3 using the conventional slot die.

[0009] A slot die used in manufacturing an electrode applies electrode slurry 4 continuously and in a fixed direction onto a substrate. A slot die usually has a slot die shim interposed between two dies to form an outlet through which the electrode slurry 4 is discharged. A slot die may have two or more dies, and a slot die shim may be provided between each of the two or more dies, and the shapes of the shims may be different from each other.

[0010] As electrode shapes become more diverse, research into die coater shims that can accommodate these shapes is also required. Summary of the Invention [Problem to be solved by the invention]

[0011] In view of the above-mentioned problems of the conventional art, an object of the present invention is to provide a slot die shim that uniformly adjusts the amount of electrode slurry in a coating portion where the electrode slurry is coated, and a slot die including the same. [Means for solving the problem]

[0012] One embodiment of the present invention provides a slot die shim interposed between a first slot die and a second slot die, with a flow path for slurry flow separated into a plurality of sections by a plurality of protrusions. The slot die shim includes: a connecting portion that connects the first and second slot dies; first protrusions that protrude from one side of the connecting portion and are spaced apart from one another; and one or more second protrusions that are located between the first protrusions, and the second protrusions include grooves through which the slurry flows.

[0013] One embodiment of the present invention provides a slot die comprising a first slot die; a second slot die and the slot die shim, wherein one of the first and second slot dies comprises a supply section for supplying a slurry and a storage section for storing the slurry. [Effects of the Invention]

[0014] The slot die shim and slot die including the same according to the embodiment of the present invention can uniformly adjust the amount of electrode slurry in the coating portion where the electrode slurry is coated, thereby preventing the formation of a sliding area at the end of the coating portion and reducing changes in the discharge capacity rate of the secondary battery. [Brief explanation of the drawings]

[0015] [Figure 1] (a) is a front view of a conventional slot die shim and a side view of a substrate to which electrode slurry has been applied using the shim, and (b) is a diagram showing how electrode slurry is applied to a substrate using a conventional slot die. [Figure 2] 1 is a front view of a slotted die shim according to one embodiment of the present disclosure, and a side view of a substrate to which electrode slurry has been applied using the slotted die shim. [Figure 3] FIG. 10 is a perspective view of a slot die shim according to another embodiment of the present invention. [Figure 4] FIG. 10 is a perspective view of a slot die shim according to still another embodiment of the present invention. [Figure 5]1 shows an assembly diagram of a slot die according to one embodiment of the present specification and a CC' cross-sectional view, (a) to (c) of which the CC' cross-sectional view shows the change in cross section due to the length of the guide of the die coater shim. [Figure 6] FIG. 10 is a perspective view showing a slot die including a slot die shim according to another embodiment of the present invention. [Figure 7] 1 is a perspective view and partial enlarged view of a slot die including a slot die shim according to another embodiment of the present disclosure. [Figure 8] FIG. 10 is a graph showing the measured step height of an electrode slurry applied by a slot die according to an embodiment of the present specification, along with corresponding cross-sectional views of the shape of a recess and a second protrusion. [Figure 9] FIG. 2 is an exploded view of an electrode assembly manufactured using a slot die according to one embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0016] The detailed description of the present invention is intended to fully explain the present invention to those skilled in the art. Throughout the specification, when a part is described as "comprising" a certain element or "featuring" a certain structure and shape, this means that other elements, structures, and shapes may be included, without excluding other elements, or excluding other structures and shapes, unless otherwise specified to the contrary.

[0017] Since the present invention can be modified in various ways and can have various embodiments, specific embodiments will be presented and described in detail in the detailed description, but this is not intended to limit the content of the invention to the embodiments, and it should be understood that the present invention encompasses all modifications, equivalents, and alternatives that fall within the spirit and technical scope of the present invention.

[0018] The present invention will be described in detail below with reference to the drawings. However, the drawings are for illustrative purposes only and the scope of the present invention is not limited by the drawings.

[0019] Fig. 2 is a front view of a slot die shim 10 according to one embodiment of the present specification and a side view of a substrate 3 to which electrode slurry 4 has been applied using the slot die shim. Fig. 5 is an assembly diagram and a CC' cross-sectional view of a slot die 100 according to one embodiment of the present specification, and (a) to (c) show the CC' cross-sectional view illustrating the change in cross section due to the length of the guide of the die coater shim. Fig. 7 is a perspective view and a partially enlarged view of a slot die 100 including a slot die shim 10 according to one embodiment of the present specification.

[0020] The slot die 100 applies the electrode slurry 4 to one surface of the substrate and may include a slot die shim 10, a first die 20, and a second die 30. The slot die 100 may have the slot die shim 10 positioned between the first and second dies 20, 30. The slot die shim 10 may be provided in a plate-like structure.

[0021] In this case, the substrate is not particularly limited as long as it can be coated with the electrode slurry, but the substrate may be an electrode current collector, specifically a metal foil, or a foil made of copper, aluminum, PET, or a combination of these materials.

[0022] An electrode slurry can be prepared by mixing an electrode active material, a conductive material, a binder, and a solvent. The electrode active material can include either a positive electrode active material or a negative electrode active material, and preferably includes a positive electrode active material. The positive electrode active material can include lithium ions.

[0023] The conductive material can increase the conductivity of the electrode active material, and the solvent can adjust the viscosity of the electrode slurry.

[0024] The binder physically stabilizes the electrode and increases the adhesive strength between the electrode active material and the conductive material and the sheet (current collector) to which the electrode slurry is applied in a subsequent process, such as an aluminum sheet or copper sheet.

[0025] The electrode active material, conductive material, binder, and solvent may be any of various electrode active materials, conductive materials, binders, and solvents used in the art, and the types thereof are not particularly limited.

[0026] The slotted shim 10 may include a connecting portion 11, a first protruding portion 12, and a second protruding portion 13. In the slotted shim 10, the first and second protruding portions 12, 13 may separate a flow path 14 through which the electrode slurry 4 flows into multiple paths.

[0027] The coupling portion 11 can couple the first and second dies 20, 30 to the slot die shim 10. Therefore, the coupling portion 11 may include a plurality of fastening grooves (not shown). The fastening grooves penetrate the coupling portion 11 along the thickness direction y and are fastened and fixed to the fastening grooves included in the first and second dies 20, 30 using bolts or the like. The fastening grooves may be aligned along the width direction x of the coupling portion 11.

[0028] The first protrusion 12 may be included to protrude from one side of the coupling portion 11, and a plurality of first protrusions 12 may be spaced apart from one another. The first protrusion 12 may extend from one side of the coupling portion 11 along the flow direction of the electrode slurry.

[0029] The slotted shim 10 according to the present invention may be provided with a flow path 14 through which the electrode slurry 4 is supplied by the first protrusions 12. That is, in the slotted shim 10, the electrode slurry 4 may be supplied to the spaces between the plurality of first protrusions 12, and the electrode slurry 4 may be applied to the entire surface of the substrate, or the electrode slurry 4 may not be applied to the area where the first protrusions 12 are located.

[0030] That is, the flow path 14 formed by the first protruding portion 12 may be provided in a structure that is open in the horizontal direction of the plane where the connecting portion 11 contacts the first and second dies 20, 30. In other words, the flow path 14 may be provided in a structure that is open only in the flow direction of the electrode slurry 4, and is closed on three sides by the connecting portion 11 and the second protruding portion 12.

[0031] The slot die 100 according to the present invention may include a coated portion (not shown) where the electrode slurry 4 is coated on one surface of the substrate 3, and an uncoated portion (not shown) where the electrode slurry 4 is not coated by the first protrusions 12. The uncoated portion may be a region of the slot die shim 10 where the first protrusions 12 are located.

[0032] The second protrusion 13 is located between a plurality of first protrusions 12 and may include one or more. In this specification, one or more may mean including one, or including a plurality of two or more.

[0033] Referring to FIG. 2, the slot die shim 10 according to one embodiment of the present invention includes one second protrusion 13, and therefore, the electrode formed by the slot die 100 according to one embodiment may have one half-coated portion.

[0034] When the slot die shim 10 includes two second protrusions 13, the electrode formed by the slot die 100 equipped with the slot die shim 10 including the two protrusions 13 may have two half-coated portions.

[0035] Referring to FIG. 7, a slot die 100 including a slot die shim 10 including three second protrusions 13 can manufacture an electrode having three semi-coated portions.

[0036] When one protrusion set is provided on the slotted die shim 10, the second protrusion 13 may be positioned between the pair of first guides 12a. When two or more protrusion sets are provided on the slotted die shim 10, a plurality of second protrusions 13 may be included and positioned between the first guide 12a and the second guide 12b.

[0037] The enlarged view of the second protruding portion 13 shown in Figure 7 is a view of a portion of the second protruding portion 13 enlarged from the second die 30 toward the first die 20. Referring to Figure 7, the second protruding portion 13 may include a groove 13a through which the electrode slurry flows. The groove 13a may be included inside the second protruding portion 13, or may be provided with an open surface. The opening of the groove 13a may be provided in the direction toward the second die 13 including the supply hole 1.

[0038] For example, groove 13a may be open in a part of the plane that contacts second protruding portion 13 and first die 20 or second die 30 provided with supply hole 1. That is, groove 13a may be provided in a structure in which three sides are closed by the inner wall of second protruding portion 13 except for the sides in the direction in which electrode slurry is supplied and flows. Groove 13a may be open along the longitudinal direction z of second protruding portion 13.

[0039] Therefore, the second protruding portion 13 can apply a smaller amount of electrode slurry to the entire surface of the substrate than the applied portion where the electrode slurry is applied by the flow path 14, and can form a semi-applied portion (not shown).

[0040] Referring to FIG. 5(a), the other end of the second protrusion 13 may be located on the same line as the ends of the lips 21, 31 of the first and second dies 20, 30, respectively.

[0041] 5(b), the other end of the second protrusion 13 may be located outside the slot die 100 relative to the ends of the lips 21, 31 of the first and second dies 20, 30. When configured in this manner, the slot die shim 10 may protrude outward. In this case, the other end of the second protrusion 13 may protrude from the lip end by more than 0 mm and not more than 0.3 mm, and the other end of the protruding second protrusion 13 protrudes to a level that does not contact the substrate to be coated. Specifically, the distance between the other end of the second protrusion 13 and the ends of the lips 21, 31 is smaller than the distance between the ends of the lips 21, 31 and the substrate.

[0042] 5(b), when the second protrusion 13 provided on the slotted die shim 10 protrudes outward, the pressure loss of the bead discharged through the groove 13a of the second protrusion 13 increases, and the difference in width (the coating width relative to the discharge width) decreases. As a result, the longer the length that the second protrusion 13 protrudes outward, the narrower the area where the step changes, i.e., the area where the coating amount changes, in other words, the area b in FIG. 8 where the coating amount gradually decreases and increases.

[0043] 5(c), the other end of the second protrusion 13 may be located more inward of the slot die than the ends of the lips 21, 31 of the first and second dies 20, 30. When provided in this manner, the slot die shim 10 does not protrude outward.

[0044] FIG. 8 is a graph showing the measured step height of the electrode slurry applied using a slot die 100 according to one embodiment of the present specification, along with the corresponding cross-sectional view of the shape of the semi-application portion and the second protrusion 13, and FIG. 9 is an exploded view of an electrode assembly manufactured using a slot die 100 according to one embodiment of the present invention.

[0045] The electrode (or first electrode) manufactured by the slot die 100 according to the present invention includes a semi-coated portion formed by the second protrusion 13, and the semi-coated portion may face the sliding section of another electrode (second electrode). For example, the anode manufactured by the slot die 100 according to the present invention may include a semi-coated portion at its end, and the semi-coated portion of the anode may face the sliding section provided at the end of the cathode.

[0046] In this case, the semi-coated portion may have a shape opposite to that of the sliding section. Referring to FIG. 9, the amount of electrode slurry gradually decreases toward the end of the cathode sliding section, while the amount of electrode slurry applied to the anode semi-coated portion initially decreases significantly, but the amount of electrode slurry or the thickness of the semi-coated portion becomes constant toward the end of the semi-coated portion. Therefore, the slotted shim 10 according to the present invention can maintain the same ratio of electrode slurry between the cathode and anode electrode slurry coated portions and the same ratio of electrode slurry between the cathode sliding region and the anode semi-coated portion.

[0047] That is, in the slotted shim 10 according to the present invention, in order to maintain the same ratio of electrode slurry or electrode active material throughout the active material-coated area, the amount of anode slurry can be reduced in accordance with the amount of reduction in the amount of cathode electrode slurry in the cathode sliding section, and the discharge capacity ratio can be maintained constant by reducing the amount of anode electrode slurry in accordance with the reduction in the amount of cathode electrode slurry.

[0048] Furthermore, since the amount of electrode slurry in the anode half-coated portion also decreases depending on the cathode sliding area, the discharge capacity of the anode can be set smaller than the discharge capacity of the cathode, thereby reducing lithium deposition and increasing the stability of the cell.

[0049] Groove 13a may have a height h of 0.1 mm to 10 mm, preferably 0.1 mm to 3 mm. Groove 13a may have a volume of 0.1 volume % to 80 volume % based on the volume of flow path 14 provided by first and second protrusions 12, 13, preferably 0.1 volume % to 60 volume % based on the volume of flow path 14 provided by first and second protrusions 12, 13.

[0050] Alternatively, the amount of electrode slurry supplied to the second protruding portion 13 may be 0.1% to 80% of the amount of electrode slurry supplied between the first and second protruding portions 12, 13. In other words, the amount of electrode slurry supplied through the groove 13a may be 0.1% to 80% of the amount of electrode slurry supplied through the flow path 14.

[0051] If the height T2 of the grooves 13a is less than 0.1 mm and the volume is less than 0.1%, the amount of electrode slurry applied to the partial application area is small, which can cause a problem of reduced total capacity of the secondary battery. If the height T2 of the grooves 13a exceeds 3 mm and the volume exceeds 60%, the amount of electrode slurry applied to the partial application area increases, which increases the proportion of lithium forming a surface film, which can reduce the stability of the cell.

[0052] 8, the height of the partial application portion may be adjusted by the difference (T1-T2) between the thickness T1 of the slotted dicing shim 10 and the height T2 of the groove 13a. Specifically, the height of H3 in FIG. 2 or the depth of a in FIG. 8 can be adjusted by the difference (T1-T2) between the thickness T1 of the slotted dicing shim 10 and the height T2 of the groove 13a.

[0053] The width of the sidewall of groove 13a of second protrusion 13, which has the same thickness as thickness T1 of slot dicem 10, affects the slope of region b, where the step changes in the electrode slurry pattern. Region c, where the step does not change in the pattern, is a region with a depth of a.

[0054] The first and second dies 20, 30 may be located at the top and bottom of the slot die shim 10. Here, the top and bottom of the slot die shim 10 may refer to directions perpendicular to the supply direction of the electrode slurry.

[0055] The first and second dies 20, 30 have mutually symmetrical truncated pyramid shapes, and are assembled so that one surface of the first and second dies 20, 30, which corresponds to the base of the truncated pyramid, faces each other. In this case, one surface of the first and second dies 20, 30 surrounds the outer surface of the slot die shim 10 and is preferably larger than one surface of the slot die shim 10. Therefore, when the slot die 100 is assembled, the slot die shim 10 does not protrude outward.

[0056] At least one of the first and second dies 20 and 30 has a supply hole 1 through which electrode slurry is supplied from the outside. The electrode slurry supplied from the outside through the supply hole 1 is stored in an internal space 2 formed inside at least one of the first and second dies 20 and 30.

[0057] A slot die shim 10 is interposed between the first and second dies 20, 30. Therefore, the first and second dies 20, 30 are spaced apart by the thickness of the slot die shim 10, forming a flow path 14 inside the slot die 100. The electrode slurry stored in the internal space 2 flows inside the slot die 100 along the flow path 14 and is discharged to the outside through a discharge port (not shown). This discharge port is elongated, and the slot die 100 moves at a constant speed above the substrate, allowing the electrode slurry to be applied widely and uniformly to the substrate.

[0058] FIG. 3 is a perspective view of a slot die shim 10 according to another embodiment of the present invention, FIG. 4 is a perspective view of a slot die shim 10 according to yet another embodiment of the present invention, and FIG. 6 is a perspective view showing a slot die 100 including a slot die shim 10 according to another embodiment of the present invention.

[0059] The first protrusion 12 may include a first guide 12a located at each end of the coupling portion 11 and extending in the flow direction of the electrode slurry 4, and a second guide portion 12b located between the first guide portions 12a and extending in the flow direction of the electrode slurry 4. The first and second guides 12a and 12b may form uncoated portions, which may serve as electrode tabs or may be connected to electrode leads.

[0060] The slot die shim 10 according to another embodiment of the present invention may include a pair of first guides 12 a and a protrusion set (not shown) including a second protrusion 13 .

[0061] The first guide 12a may be provided as a pair, positioned at both ends of the connecting portion 11. The first guide 12a may be provided to extend along the flow direction of the electrode slurry, or may be provided with an end in the flow direction of the electrode slurry bent in a direction perpendicular to the flow direction of the electrode slurry. That is, the first guide 12a may include only an extension portion 12a-1 provided to extend in the flow direction of the electrode slurry, or may include the extension portion 12a-1 and a bent portion 12a-2 located at the end of the extension portion 12a-1 and extending in a direction perpendicular to the flow direction of the electrode slurry.

[0062] The bent portion 12a-2 may be included in at least one of the pair of first guides 12a. That is, the first protrusion 12 may include a first guide 12a including both the extension portion 12a-1 and the bent portion 12a-2 and a first guide portion including only the extension portion 12a-1, or may include a pair of first guide portions 12a including both the extension portion 12a-1 and the bent portion 12a-2.

[0063] The first guide 12a may have a step 12c at an end, i.e., at an end of the extension portion 12a-1 or an end of the bent portion 12a-2. In this specification, the end may refer to a corner at the end of a structure.

[0064] The slotted dicing shim 10 may have a step 12c at the end of the first guide 12a, which may reduce the amount of electrode slurry supplied to both edges of the applicator, i.e., both end surfaces of the applicator. In addition, the slotted dicing shim 10 may have a sliding section formed at the edge of the applicator due to friction between the electrode slurry supplied to the flow path 14 and the first protrusion 12, reducing the flow rate.

[0065] The end 12c provided on the first guide 12a reduces the amount of electrode slurry supplied to the sliding section, and the frictional force with the first guide 12a and the end 12c can interrupt the supply of electrode slurry to the edge of the application section, so that a sliding section of the application section is not formed, and the electrode slurry is uniformly discharged to the edge and center parts of the application section, reducing thickness variations.

[0066] The step 12c may be provided with a size of 0.5 mm to 15 mm in the flow direction of the electrode slurry and 0.1 mm to 5 mm in the direction perpendicular to the flow direction of the electrode slurry. Preferably, the step 12c may be provided with a size of 1 mm to 10 mm in the flow direction of the electrode slurry and 0.1 mm to 1 mm in the direction perpendicular to the flow direction of the electrode slurry.

[0067] If the step 12c is formed with a size of less than 1 mm in the flow direction of the electrode slurry and less than 0.1 mm in the direction perpendicular to the flow direction of the electrode slurry, a sliding section may be formed at the end of the coated portion, resulting in a problem of thickness deviation of the resulting electrode.If the step 12c is formed with a size of more than 10 mm in the flow direction of the electrode slurry and more than 1 mm in the direction perpendicular to the flow direction of the electrode slurry, the electrode slurry may be coated even in the uncoated portion formed by the first guide 12a, resulting in a problem of no electrode tab being formed.

[0068] Referring to FIG. 4, a slotted die shim 10 according to another embodiment of the present invention may include a plurality of protrusion sets, and a slotted die shim 10 including a plurality of protrusion sets may be provided with a second guide 12b.

[0069] The slot die shim 10 may include a second guide 12b between a pair of first guides 12a. Like the first guide 12a, the second guide 12b may have steps 12c at both ends to prevent the edge of the applicator from sliding. In other words, the second guide 12b may have steps 12c at corners located opposite each other.

[0070] The uncoated portion formed by the second guide 12b may be slit in the middle to form two sheet-like electrodes.

[0071] While the present invention has been described above with reference to preferred embodiments, it will be understood by those skilled in the art that various modifications and variations can be made thereto without departing from the spirit and scope of the invention as set forth in the following claims. [Explanation of symbols]

[0072] 100 ···Slot die 10 ···Slotted die shim 11...Joining part 12...1st protrusion 12a First Guide 12a-1...extension part 12a-2...Bending part 12b...Second Guide 12c ···Step 13...Second protrusion 13a...Groove 14 Flow path 20 First die 21 First Lip 30 Second die 31 Second Lip 1...supply hole 2. Interior space 3...Base material 4. Electrode slurry

Claims

1. A slot die shim is interposed between a first die and a second die, and has a plurality of protrusions that separate a flow path through which an electrode slurry flows, The slotted die shim is a coupling portion coupled to the first die and the second die; two or more first protrusions spaced apart from one another and included on one side of the coupling portion; and one or more second protrusions located between the first protrusions; the second protruding portion includes a groove through which the electrode slurry flows, the groove being formed along the longitudinal direction of the second protruding portion and being open; The second protrusion at least forms a semi-coated portion, on the same line as the longitudinal direction of the groove, to which a smaller amount of the electrode slurry is applied than the coated portion to which the electrode slurry is applied by the flow path.

2. The slot dicing shim according to claim 1, wherein the groove has a height of 0.1 mm to 3 mm.

3. 2. The slot shim according to claim 1, wherein the volume of the groove is 0.1% by volume to 60% by volume based on the volume of the flow path provided between the first protrusion and the second protrusion.

4. the first protrusion includes two or more first guides located at both ends of the coupling portion and extending in a horizontal direction of a plane where the coupling portion contacts the first die and the second die, and second guides located between the two or more first guides and extending in a direction horizontal to a direction in which the first guides extend; The slot die shim of claim 1 , wherein the second protrusion is located between the first guide and the second guide.

5. The slot die shim according to claim 4 , wherein an end of at least one of the first guides is bent in a direction in which the second guide is located.

6. The slot die shim according to claim 4 or 5, wherein the first guide has a step at at least one corner.

7. The slot die shim according to claim 6 , wherein the step is provided at one of both corners of the first guide that is located on an outer periphery.

8. The slot die shim according to claim 4 , wherein the second guide has steps formed at opposing corners.

9. 2. The slot die shim according to claim 1, wherein the flow path is open in a horizontal direction of a plane where the joining portion contacts the first die and the second die, and has a structure in which three sides excluding the open side are closed.

10. The slotted die shim of claim 1 is included, The slot die shim is installed between two or more dies each having a lip at one end and the two or more lips so that electrode slurry is discharged between the two or more lips, a coupling portion extending in a width direction of the die and coupled to the two or more dies; a plurality of first protrusions spaced apart from each other and included in one side of the coupling portion; and a second protrusion positioned between the first protrusions and having a recess recessed inward, The other end of the second protrusion is located outside the slot die relative to the end of the lip in the protruding direction of the second protrusion. Slot die.

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