Lithium-ion secondary battery

The lithium-ion secondary battery addresses metal precipitation by using a separator with varying air permeability to disperse lithium ions, improving input/output characteristics and preventing metal elution, thus enhancing battery performance.

JP7744315B2Active Publication Date: 2025-09-25TOYOTA BATTERY CO LTD +2
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Patent Information

Application Number
JP2022149998
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-09-21
Publication Date
2025-09-25
Estimated Expiration
2042-09-21

AI Technical Summary

Technical Problem

Lithium-ion secondary batteries experience metal precipitation at the ends of the positive electrode composite layer due to concentrated lithium ion migration, leading to deteriorated input/output characteristics, which can be mitigated by reducing the input current but at the cost of reduced input characteristics.

Method used

The separator is designed with varying air permeability, having higher permeability in the direction opposite to the positive electrode composite layer ends, dispersing lithium ions towards the center where temperatures are higher, thereby reducing nonaqueous electrolyte replenishment and suppressing metal elution.

Benefits of technology

This configuration improves input characteristics and maintains favorable input/output characteristics by dispersing lithium ions and preventing metal precipitation, enhancing the battery's performance.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a lithium ion secondary battery which can achieve improvement in input / output properties.SOLUTION: A lithium ion secondary battery includes a negative electrode plate 20 including a negative electrode substrate 21 and a negative electrode mixture layer 22, a positive electrode plate 30 including a positive electrode substrate 31 and a positive electrode mixture layer 32, a separator 40 arranged between the negative electrode plate 20 and the positive electrode plate 30, and a nonaqueous electrolyte. The negative electrode substrate 21 includes a negative electrode connection portion 23 that projects from the negative electrode mixture layer 22 in a first width direction W1 and that is electrically connected to a negative electrode external terminal. The positive electrode substrate 31 includes a positive electrode connection portion 33 that projects from the positive electrode mixture layer 32 in a second width direction W2 opposite to the first width direction W1 and that is electrically connected to a positive electrode external terminal. The separator 40 has gas permeability that is greater at a portion facing an end 32a of the positive electrode mixture layer 32 in the second width direction W2 than at a portion facing an end 32b of the positive electrode mixture layer 32 in the first width direction W1.SELECTED DRAWING: Figure 3
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Description

[Technical Field]

[0001] The present disclosure relates to lithium-ion secondary batteries. [Background technology]

[0002] Conventionally, lithium-ion secondary batteries include a negative electrode plate, a positive electrode plate, a separator, and a nonaqueous electrolyte. The negative electrode plate has a negative electrode substrate and a negative electrode composite layer provided on the surface of the negative electrode substrate, and the positive electrode plate has a positive electrode substrate and a positive electrode composite layer provided on the surface of the positive electrode substrate. The separator is provided between the negative electrode plate and the positive electrode plate.

[0003] Among such lithium ion secondary batteries, there is one in which the air permeability of a portion of the separator is varied (see, for example, Patent Document 1). This separator has a first separator portion sandwiched between the positive electrode composite layer and the negative electrode composite layer, and a second separator portion sandwiched between the positive electrode substrate and the negative electrode composite layer in a portion where the positive electrode composite layer is not provided. The second separator portion is configured to have lower air permeability than the first separator portion. In such lithium ion secondary batteries, the lower air permeability of the second separator portion can inhibit the passage of aluminum ions, thereby inhibiting the deposition of aluminum constituting the positive electrode substrate on the negative electrode composite layer. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Publication No. 2019-21394 Summary of the Invention [Problem to be solved by the invention]

[0005] In the lithium-ion secondary battery described above, the first separator portion sandwiched between the positive electrode composite layer and the negative electrode composite layer has high breathability, resulting in a large amount of nonaqueous electrolyte replacement. This can lead to concentrated migration of lithium ions at positions corresponding to the widthwise ends of the positive electrode composite layer, and metals constituting the positive electrode composite layer can be eluted. Therefore, metal precipitation is likely to occur in the negative electrode composite layer at positions opposite the widthwise ends of the positive electrode composite layer. This can, for example, deteriorate the input / output characteristics of the lithium-ion secondary battery. While it is possible to suppress metal precipitation in the negative electrode composite layer by, for example, reducing the input current, this also reduces the input characteristics.

[0006] An object of the present disclosure is to provide a lithium ion secondary battery capable of improving input / output characteristics. [Means for solving the problem]

[0007] An embodiment of a lithium ion secondary battery that solves the above problems will be described. Aspect 1 is a lithium-ion secondary battery comprising: a negative electrode plate having a negative electrode substrate and a negative electrode composite layer provided on a surface of the negative electrode substrate; a positive electrode plate having a positive electrode substrate and a positive electrode composite layer provided on the surface of the positive electrode substrate; a separator provided between the negative electrode plate and the positive electrode plate; and a nonaqueous electrolyte, wherein the negative electrode substrate has a negative electrode connecting portion that protrudes beyond the negative electrode composite layer in a first width direction and is electrically connected to a negative electrode external terminal; and the positive electrode substrate has a positive electrode connecting portion that protrudes beyond the positive electrode composite layer in a second width direction that is opposite to the first width direction and is electrically connected to a positive electrode external terminal, and the separator is configured so that the air permeability of a portion of the separator facing an end of the positive electrode composite layer in the second width direction is greater than the air permeability of a portion of the separator facing an end of the positive electrode composite layer in the first width direction.

[0008] According to this configuration, the separator has high air permeability in the region facing the end of the positive electrode mixture layer in the second width direction, thereby reducing the amount of nonaqueous electrolyte replenishment in that region and suppressing lithium ion migration. Therefore, lithium ions migrating from the positive electrode mixture layer toward the negative electrode mixture layer can be dispersed toward the center in the width direction, where temperatures are higher and input characteristics are superior, rather than concentrating at the region corresponding to the end of the positive electrode mixture layer in the second width direction. This improves the input characteristics of the lithium ion secondary battery. Furthermore, elution of metals constituting the positive electrode mixture layer can be suppressed at the end of the positive electrode mixture layer in the second width direction. This suppresses metal precipitation in the negative electrode mixture layer at the region facing the end of the positive electrode mixture layer in the second width direction. Therefore, for example, the input / output characteristics of the lithium ion secondary battery can be maintained favorably.

[0009] [Aspect 2] In the lithium ion secondary battery according to [Aspect 1], the separator is preferably configured so that its air permeability increases toward the second width direction. According to this configuration, the separator has a higher air permeability toward the second width direction. Therefore, the amount of nonaqueous electrolyte replenishment decreases toward the portion facing the end of the positive electrode composite layer in the second width direction, and lithium ion migration is suppressed. Therefore, lithium ions migrate from the positive electrode composite layer toward the negative electrode composite layer without concentrating at the position corresponding to the end of the positive electrode composite layer in the second width direction. The ions are gradually diffused toward the center of the positive electrode composite layer in the width direction, where the temperature is high and input characteristics are superior. This improves the input characteristics of the lithium ion secondary battery. Furthermore, the effect of suppressing elution of metals constituting the positive electrode composite layer increases toward the end of the positive electrode composite layer in the second width direction. This suppresses metal precipitation in the negative electrode composite layer at the portion facing the end of the positive electrode composite layer in the second width direction. Therefore, for example, the input / output characteristics of the lithium ion secondary battery can be maintained better.

[0010] [Aspect 3] In the lithium ion secondary battery according to [Aspect 2], the separator preferably has an air permeability of 105% or more at the end in the second width direction relative to the end in the first width direction.

[0011] According to this configuration, the separator has an air permeability of 105% or more at the end in the second width direction relative to the end in the first width direction, so that, for example, the input / output characteristics of the lithium ion secondary battery are maintained favorably. [Effects of the Invention]

[0012] The lithium ion secondary battery of the present disclosure can improve input / output characteristics. [Brief explanation of the drawings]

[0013] [Figure 1] FIG. 1 is a perspective view of a lithium ion secondary battery according to one embodiment. [Figure 2] FIG. 2 is a schematic partial development view showing the configuration of an electrode body in one embodiment. [Figure 3] FIG. 3 is a schematic partial cross-sectional view showing the configuration of an electrode body in one embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0014] [Description of this embodiment] An embodiment of the lithium ion secondary battery 10 will be described below with reference to FIGS.

[0015] <Overall Configuration of Lithium-Ion Secondary Battery 10> As shown in FIG. 1, the lithium ion secondary battery 10 is configured as a cell battery. The lithium ion secondary battery 10 includes a battery case 11 and a lid 12. The battery case 11 has an opening (not shown) on the upper side. The lid 12 seals the opening. The battery case 11 is made of a metal such as an aluminum alloy. The lid 12 includes a negative electrode external terminal 13 and a positive electrode external terminal 14 used for charging and discharging power.

[0016] The lithium-ion secondary battery 10 includes an electrode assembly 15, a negative electrode current collector 16, and a positive electrode current collector 17. The electrode assembly 15 is housed inside a battery case 11. The negative electrode current collector 16 connects the negative electrode of the electrode assembly 15 to a negative electrode external terminal 13. The positive electrode current collector 17 connects the positive electrode of the electrode assembly 15 to a positive electrode external terminal 14.

[0017] The lithium ion secondary battery 10 includes a non-aqueous electrolyte 18. The non-aqueous electrolyte 18 is poured into a battery case 11. The lithium ion secondary battery 10 is configured as a sealed battery container by attaching a lid 12 to the battery case 11. In this manner, the battery case 11 accommodates the electrode assembly 15 and the non-aqueous electrolyte 18.

[0018] <Electrode body 15> As shown in FIG. 2, the electrode assembly 15 includes a negative electrode plate 20, a positive electrode plate 30, and a separator 40. The longitudinal direction of the electrode assembly 15 is referred to as the "lengthwise direction Z." The thickness direction of the electrode assembly 15 is referred to as the "thickness direction D." The direction intersecting the lengthwise direction Z and the thickness direction D of the electrode assembly 15 is referred to as the "widthwise direction W." One direction of the widthwise directions W is referred to as the "first widthwise direction W1," and the other direction of the widthwise directions W is referred to as the "second widthwise direction W2." In other words, the second widthwise direction W2 is the opposite direction to the first widthwise direction W1.

[0019] The electrode assembly 15 is formed by stacking a negative electrode plate 20, a positive electrode plate 30, and a separator 40. The separator 40 is provided between the negative electrode plate 20 and the positive electrode plate 30. Specifically, the electrode assembly 15 is formed by stacking the separator 40, the negative electrode plate 20, the separator 40, and the positive electrode plate 30 in this order.

[0020] The electrode body 15 is formed by winding a stack of a negative electrode plate 20, a positive electrode plate 30, and a separator 40 around an axis along the width direction W. The width direction W of the electrode body 15 coincides with the width directions of the strip-shaped negative electrode plate 20, positive electrode plate 30, and separator 40 before winding. The electrode body 15 has a flat shape in the thickness direction D. By winding the electrode body 15, the separator 40, the negative electrode plate 20, the separator 40, and the positive electrode plate 30 are repeatedly stacked in this order along the thickness direction D.

[0021] <Negative electrode plate 20> The negative electrode plate 20 functions as the negative electrode of the lithium ion secondary battery 10 . 2 and 3, the negative electrode plate 20 has a negative electrode substrate 21 and a negative electrode composite layer 22 provided on the surface of the negative electrode substrate 21. The negative electrode substrate 21 is an electrode substrate for the negative electrode. The negative electrode composite layer 22 is an electrode composite layer for the negative electrode and is provided on both sides of the negative electrode substrate 21.

[0022] The negative electrode substrate 21 has a negative electrode connecting portion 23. The negative electrode connecting portion 23 is a region on both sides of the negative electrode substrate 21 where the negative electrode composite material layer 22 is not provided. The negative electrode connecting portion 23 is provided at an end portion of the electrode body 15 in the first width direction W1. In other words, the negative electrode connecting portion 23 protrudes in the first width direction W1 further than the negative electrode composite material layer 22. The negative electrode connecting portion 23 also protrudes in the first width direction W1 further than the positive electrode plate 30 and the separator 40. The negative electrode connecting portion 23 is connected to the negative electrode current collector 16, and is thereby electrically connected to the negative electrode external terminal 13.

[0023] In this embodiment, negative electrode substrate 21 is made of Cu foil. Negative electrode substrate 21 serves as a base for the aggregate of negative electrode composite layer 22. Negative electrode substrate 21 functions as a current collecting member that collects electricity from negative electrode composite layer 22.

[0024] Negative electrode mixture layer 22 has a negative electrode active material and a negative electrode additive. Negative electrode plate 20 is produced, for example, by kneading the negative electrode active material and the negative electrode additive, applying the kneaded negative electrode mixture paste to negative electrode substrate 21, and drying the paste.

[0025] The negative electrode active material is an active material of the negative electrode, and is a material capable of absorbing and releasing lithium ions. As the negative electrode active material, for example, a powdered carbon material made of graphite or the like can be used.

[0026] The negative electrode additive is an additive for the negative electrode and includes a negative electrode solvent, a negative electrode binder, and a negative electrode thickener. The negative electrode solvent may be, for example, water. The negative electrode binder may be, for example, styrene butadiene rubber (SBR), polyvinylidene fluoride (PVDF), polyvinyl alcohol (PVA), or the like. The negative electrode thickener may be, for example, carboxymethyl cellulose (CMC). The negative electrode additive may further include, for example, a negative electrode conductive material.

[0027] <Positive electrode plate 30> The positive electrode plate 30 functions as the positive electrode of the lithium ion secondary battery 10 . 2 and 3, the positive electrode plate 30 has a positive electrode substrate 31 and a positive electrode composite layer 32 provided on the surface of the positive electrode substrate 31. The positive electrode substrate 31 is an electrode substrate for the positive electrode. The positive electrode composite layer 32 is an electrode composite layer for the positive electrode, and is provided on both sides of the positive electrode substrate 31.

[0028] The positive electrode substrate 31 has a positive electrode connection portion 33. The positive electrode connection portion 33 is a region on both sides of the positive electrode substrate 31 where the positive electrode composite material layer 32 is not provided. The positive electrode connection portion 33 is provided at an end portion of the electrode body 15 in the second width direction W2. In other words, the positive electrode connection portion 33 protrudes in the second width direction W2 further than the positive electrode composite material layer 32. The positive electrode connection portion 33 also protrudes in the second width direction W2 further than the negative electrode plate 20 and the separator 40. The positive electrode connection portion 33 is connected to the positive electrode current collector 17, and is thereby electrically connected to the positive electrode external terminal 14. The positive electrode composite material layer 32 is formed to have a smaller size in the width direction W than the negative electrode composite material layer 22. In other words, the negative electrode composite material layer 22 is formed to have a larger size in the width direction W than the positive electrode composite material layer 32 so as to protrude in the first width direction W1 and the second width direction W2 further than the positive electrode composite material layer 32.

[0029] In this embodiment, positive electrode substrate 31 is made of Al foil or Al alloy foil. Positive electrode substrate 31 serves as a base for the aggregate of positive electrode mixture layer 32. Positive electrode substrate 31 functions as a current collecting member that collects electricity from positive electrode mixture layer 32.

[0030] Positive electrode mixture layer 32 has a positive electrode active material and a positive electrode additive. Positive electrode plate 30 is produced, for example, by kneading the positive electrode active material and the positive electrode additive, applying the kneaded positive electrode mixture paste to positive electrode substrate 31, and drying the paste.

[0031] The positive electrode active material is an active material of the positive electrode, and is a material capable of absorbing and releasing lithium. The positive electrode active material is, for example, a ternary (NMC) lithium-containing composite oxide containing nickel, manganese, and cobalt, such as lithium nickel cobalt manganese oxide (LiNiCoMnO2). The positive electrode active material may be, for example, any one of lithium cobalt oxide (LiCoO2), lithium manganese oxide (LiMn2O4), and lithium nickel oxide (LiNiO2). The positive electrode active material may be, for example, a lithium-containing composite oxide containing nickel, cobalt, and aluminum (NCA).

[0032] The positive electrode additive is an additive for the positive electrode and includes a positive electrode solvent, a positive electrode conductive material, and a positive electrode binder. The positive electrode solvent may be a non-aqueous solvent such as NMP (N-methyl-2-pyrrolidone) solution. The positive electrode conductive material may be, for example, carbon fibers such as carbon nanotubes (CNT) and carbon nanofibers (CNF), but graphite, acetylene black (AB), ketjen black, or other carbon black may also be used. The positive electrode binder may be, for example, the same as the negative electrode binder. The positive electrode additive may further include, for example, a positive electrode thickener.

[0033] <Separator 40> The separator 40 is disposed between the negative electrode plate 20 and the positive electrode plate 30. The separator 40 is formed to be larger in the width direction W than the negative electrode composite layer 22 and the positive electrode composite layer 32 so as to protrude in the first width direction W1 and the second width direction W2 beyond the negative electrode composite layer 22 and the positive electrode composite layer 32. The separator 40 holds the nonaqueous electrolyte 18. The separator 40 is a nonwoven fabric made of a porous resin such as polypropylene. The separator 40 may be a porous polymer membrane such as a porous polyethylene membrane, a porous polyolefin membrane, or a porous polyvinyl chloride membrane, or a lithium ion or ion conductive polymer electrolyte membrane, either singly or in combination. When the electrode assembly 15 is immersed in the nonaqueous electrolyte 18, the nonaqueous electrolyte 18 permeates from the edges of the separator 40 toward the center.

[0034] <Nonaqueous electrolyte 18> The nonaqueous electrolyte 18 is a composition in which a supporting salt is contained in a nonaqueous solvent. In this embodiment, ethylene carbonate (EC) can be used as the nonaqueous solvent. The nonaqueous solvent may be one or more materials selected from the group consisting of propylene carbonate (PC), diethyl carbonate (DEC), dimethyl carbonate (DMC), ethyl methyl carbonate (EMC), etc.

[0035] The supporting electrolyte may be LiPF, LiBF, LiClO, LiAsF, LiCF, SO, LiC, F, SO, LiN(CF, SO), LiC(CF, SO), LiI, or the like. Alternatively, one or more lithium compounds (lithium salts) selected from these may be used. Thus, the nonaqueous electrolyte 18 contains a lithium compound.

[0036] <Detailed configuration of this embodiment> 3, separator 40 is configured so that the air permeability of a portion of positive electrode composite layer 32 facing end 32a in the second width direction W2 is greater than the air permeability of a portion of positive electrode composite layer 32 facing end 32b in the first width direction W1. Note that air permeability is a measure of how long it takes for a certain amount of fluid to pass through, with a higher value indicating a greater degree of difficulty for the fluid to pass through. Furthermore, air permeability can be increased, for example, by reducing the porosity of separator 40.

[0037] The separator 40 of this embodiment is configured so that its air permeability increases toward the second width direction W2. The air permeability of the separator 40 at the end in the second width direction W2 is preferably 105% or more of that at the end in the first width direction W1. The air permeability of the separator 40 of this embodiment is 108% or more of that at the end in the second width direction W2 relative to that at the end in the first width direction W1. Note that in FIG. 3, the change in air permeability is schematically illustrated using a gradation.

[0038] The air permeability of the separator 40 can be changed in the width direction W, for example, by varying the tension applied to the separator 40 during manufacturing. Also, the air permeability of the separator 40 can be changed in the width direction W, for example, by varying the temperature or time at which the separator 40 is heated during manufacturing.

[0039] Next, the functions and effects of the above embodiment will be described below. (1) The separator 40 has high air permeability in a portion facing the end 32a of the positive electrode mixture layer 32 in the second width direction W2. This reduces the amount of nonaqueous electrolyte solution 18 replenished in this portion, and suppresses lithium ion migration. Therefore, lithium ions migrate from the positive electrode mixture layer 32 toward the negative electrode mixture layer 22, and are dispersed toward the center in the width direction W, where temperatures are high and input characteristics are superior, rather than concentrating at a position corresponding to the end 32a of the positive electrode mixture layer 32 in the second width direction W2. This improves the input characteristics of the lithium-ion secondary battery 10. Furthermore, elution of metals constituting the positive electrode mixture layer 32 can be suppressed at the end 32a of the positive electrode mixture layer 32 in the second width direction W2. This suppresses metal precipitation in the negative electrode mixture layer 22 at a position facing the end 32a of the positive electrode mixture layer 32 in the second width direction W2. Therefore, for example, the input / output characteristics of the lithium ion secondary battery 10 can be maintained at a good level.

[0040] (2) Because the separator 40 has greater air permeability in the second width direction W2, the amount of nonaqueous electrolyte solution 18 replenished decreases toward the portion facing the end 32a of the positive electrode mixture layer 32 in the second width direction W2, and lithium ion migration is suppressed. Therefore, lithium ions migrate from the positive electrode mixture layer 32 toward the negative electrode mixture layer 22 without concentrating at a position corresponding to the end 32a of the positive electrode mixture layer 32 in the second width direction W2. Instead, the ions can be gradually diffused toward the center in the width direction W, where temperatures are higher and input characteristics are superior. This improves the input characteristics of the lithium-ion secondary battery 10. Furthermore, the effect of suppressing elution of metals constituting the positive electrode mixture layer 32 increases toward the end 32a of the positive electrode mixture layer 32 in the second width direction W2. This suppresses metal precipitation in the negative electrode mixture layer 22 at the portion facing the end 32a of the positive electrode mixture layer 32 in the second width direction W2. Therefore, for example, the input / output characteristics of the lithium ion secondary battery 10 can be maintained better.

[0041] (3) The air permeability of the separator 40 is 105% or more at the end in the second width direction W2 relative to the end in the first width direction W1, so that, for example, the input / output characteristics of the lithium ion secondary battery 10 are maintained favorably.

[0042] This embodiment can be modified as follows: This embodiment and the following modifications can be combined and implemented within the scope of technical compatibility. In the above embodiment, the separator 40 is configured so that its air permeability increases toward the second width direction W2. However, this is not limiting. That is, the air permeability of the separator 40 does not have to change continuously as long as the air permeability of the portion of the separator 40 facing the end 32a of the positive electrode composite layer 32 in the second width direction W2 is greater than the air permeability of the portion of the separator 40 facing the end 32b of the positive electrode composite layer 32 in the first width direction W1. For example, the separator 40 may be configured so that its air permeability increases in multiple steps toward the second width direction W2.

[0043] In the above embodiment, the air permeability of the separator 40 at the end in the second width direction W2 is 105% or more of that at the end in the first width direction W1, but this is not limited to this, and the air permeability at the end in the second width direction W2 may be less than 105% of that at the end in the first width direction W1. [Explanation of symbols]

[0044] 10 Lithium-ion secondary battery 11 Battery case 12 Lid 13 Negative external terminal 14 Positive external terminal 15 Electrode body 16 Negative electrode current collector 17 Positive electrode current collector 18 Nonaqueous electrolyte 20 negative electrode plate 21 Negative electrode substrate 22 Negative electrode composite layer 23 Negative electrode connection 30 positive electrode plate 31 Positive electrode substrate 32 Positive electrode mixture layer 32a end 32b end 33 Positive electrode connection 40 Separator D Thickness direction W width direction W1 1st width direction W2 Second width direction Z length direction

Claims

1. a negative electrode plate having a negative electrode substrate and a negative electrode composite layer provided on a surface of the negative electrode substrate; a positive electrode plate having a positive electrode substrate and a positive electrode composite layer provided on a surface of the positive electrode substrate; a separator provided between the negative electrode plate and the positive electrode plate; a non-aqueous electrolyte; the negative electrode base material has a negative electrode connecting portion that protrudes beyond the negative electrode composite material layer in a first width direction and is electrically connected to a negative electrode external terminal, the positive electrode substrate has a positive electrode connecting portion that protrudes beyond the positive electrode composite layer in a second width direction that is opposite to the first width direction and is electrically connected to a positive electrode external terminal, the separator is configured so that an air permeability indicating how long it takes for a certain amount of fluid to pass through a portion of the positive electrode mixture layer facing the end portion on the second width direction side is greater than an air permeability of a portion of the positive electrode mixture layer facing the end portion on the first width direction side. Lithium-ion secondary battery.

2. The separator is configured so that its air permeability increases toward the second width direction. The lithium ion secondary battery according to claim 1 .

3. The separator has an air permeability of 105% or more at the end in the second width direction relative to the end in the first width direction. The lithium ion secondary battery according to claim 2 .

Citation Information

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