Secondary battery electrode and method for manufacturing the same

A three-region electrode material layer structure with increasing porosity addresses ion migration issues in conventional laminated structures, improving both ion diffusibility and electronic conductivity for enhanced battery performance.

JP7754190B2Active Publication Date: 2025-10-15MURATA MFG CO LTD
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Patent Information

Application Number
JP2023557943
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-11-05
Filing Date
2022-10-20
Publication Date
2025-10-15
Estimated Expiration
2042-10-20

AI Technical Summary

Technical Problem

Conventional secondary battery electrodes with laminated structures have limited ion diffusion and electronic conductivity, particularly in regions with low porosity, leading to slower ion migration within the electrode material layer.

Method used

The electrode material layer is configured with three regions: a first region with low porosity, a second region with intermediate porosity, and a third region with high porosity, where the porosity increases in that order, allowing for improved ion diffusibility and electronic conductivity by facilitating quicker ion migration through the inclusion of a highly porous third region.

Benefits of technology

This configuration enhances ion diffusion and electronic conductivity, resulting in higher energy density and output performance of the secondary battery.

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Patent Text Reader

Abstract

An embodiment of the present invention provides a secondary battery electrode comprising a charge collector and an electrode material layer provided on the charge collector. The electrode material layer includes a first region, a second region, and a third region, the first region and the third region are provided on the charge collector, and the second region is provided at least on the first region. The first region, the second region, and the third region are provided in decreasing order of porosity.
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Description

[Technical Field]

[0001] The present invention relates to an electrode for a secondary battery and a method for manufacturing the electrode for a secondary battery. [Background technology]

[0002] Secondary batteries that can be repeatedly charged and discharged have been used for various purposes. For example, secondary batteries are used as power sources for electronic devices such as smartphones and laptop computers.

[0003] A secondary battery has a structure in which an electrode assembly including a positive electrode, a negative electrode, and a separator disposed between the positive and negative electrodes, and an electrolyte are housed in an exterior body. The electrodes include a current collector and an electrode material layer provided on at least one main surface of the current collector. Specifically, the positive electrode includes a positive electrode current collector and a positive electrode material layer provided on at least one main surface of the positive electrode current collector. The negative electrode includes a negative electrode current collector and a negative electrode material layer provided on at least one main surface of the negative electrode current collector. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2007-214038 [Patent Document 2] Japanese Patent Application Laid-Open No. 2011-175739 Summary of the Invention [Problem to be solved by the invention]

[0005] In recent years, there has been an increasing demand for higher energy density and higher output in secondary batteries. To meet this demand, some secondary batteries include a current collector and a laminated electrode material layer along the lamination direction, from the viewpoint of improving the electronic conductivity and ion diffusibility in the electrode material layer, which is a component of the electrode. As an example, the laminated electrode material layer may be composed of a first region located proximal to the current collector and having a relatively small porosity, and a second region located distal to the current collector and having a relatively large porosity.

[0006] The present inventors have now discovered that conventional secondary battery electrodes still have room for improvement in the following respects. Specifically, even if the electrode material layer has a laminated structure composed of a first region with low porosity and a second region with high porosity as described above, ion diffusion in the electrode material layer from one main surface (separator) to the other main surface (current collector) along the lamination (depth) direction in the electrode material layer where ions enter during battery charge and discharge remains constant. Therefore, it may still take a certain amount of time for ions to reach the interior of the first region with low porosity, particularly the interface region with the current collector. In other words, when the electrode material layer has a conventional laminated structure, it is difficult to say that ion diffusibility has been sufficiently improved in addition to electronic conductivity.

[0007] The present invention has been devised in view of the above circumstances. Specifically, an object of the present invention is to provide an electrode for a secondary battery that can suitably improve electronic conductivity and ion diffusibility, and a method for manufacturing an electrode for a secondary battery. [Means for solving the problem]

[0008] In order to achieve the above object, in one embodiment of the present invention, A current collector; an electrode material layer provided on the current collector, the electrode material layer includes a first region, a second region, and a third region; the first region and the third region are provided on the current collector; the second region is disposed on at least the first region; and The secondary battery electrode has the first region, the second region, and the third region having increasing porosity in that order.

[0009] In order to achieve the above object, in one embodiment of the present invention, (i) providing a current collector; (ii) providing a slurry for an electrode material layer on the current collector to form an electrode precursor; (iii) drying and pressing the electrode precursor; Including, The method for producing an electrode for a secondary battery is provided, wherein the step (ii) includes intermittently applying at least two first electrode material layer slurries at predetermined intervals, and continuously applying, onto the at least two first electrode material layer slurries, a second electrode material layer slurry having a volume ratio of solids including an active material that is relatively smaller than that of the first electrode material layer slurry. [Effects of the Invention]

[0010] According to the secondary battery electrode according to one embodiment of the present invention, it is possible to suitably improve the electronic conductivity and the ion diffusibility. [Brief explanation of the drawings]

[0011] [Figure 1A] 1 is a cross-sectional view schematically showing a secondary battery including an electrode for a secondary battery according to one embodiment of the present invention. [Figure 1B] 1 is a cross-sectional view schematically showing an electrode for a secondary battery according to one embodiment of the present invention. [Figure 2] FIG. 10 is a cross-sectional view schematically illustrating the difference in electrolyte permeability in an electrode material layer having regions with different porosities. [Figure 3A] 1 is a cross-sectional view schematically illustrating a method for producing an electrode for a secondary battery according to one embodiment of the present invention (a step of intermittently applying a slurry for a first electrode material layer). [Figure 3B]FIG. 2 is a cross-sectional view schematically illustrating a method for producing an electrode for a secondary battery according to one embodiment of the present invention (a step of continuously applying a slurry for a second electrode material layer). [Figure 3C] 1 is a cross-sectional view schematically illustrating a method for manufacturing an electrode for a secondary battery according to one embodiment of the present invention (a step of forming an electrode material layer). [Figure 3D] FIG. 10 is an enlarged cross-sectional view schematically showing a step of forming an electrode material layer including a third region. [Figure 4A] FIG. 10 is a cross-sectional view schematically showing a secondary battery including an electrode for a secondary battery according to another embodiment of the present invention. [Figure 4B] 4B is a plan view schematically showing an electrode for a secondary battery according to another embodiment of the present invention taken along line II' or line II-II' in FIG. 4A. FIG. [Figure 4C] FIG. 3 is a cross-sectional view schematically showing an electrode for a secondary battery according to another embodiment of the present invention. [Figure 4D] FIG. 3 is an enlarged cross-sectional view schematically showing an electrode material layer, which is a component of an electrode for a secondary battery according to another embodiment of the present invention. [Figure 5A] 4A and 4B are plan views schematically showing possible forms of the third region of the electrode material layer. [Figure 5B] 4A and 4B are plan views schematically showing possible forms of the third region of the electrode material layer. [Figure 5C] 4A and 4B are plan views schematically showing possible forms of the third region of the electrode material layer. [Figure 6] FIG. 2 is a cross-sectional view schematically showing the basic configuration of an electrode configuration layer. [Figure 7] 1 is a graph showing the relationship between linear pressure and density of an active material. DETAILED DESCRIPTION OF THE INVENTION

[0012] Hereinafter, an electrode for a secondary battery according to an embodiment of the present invention will be described in detail with reference to the drawings. The various elements in the drawings are merely shown schematically and exemplarily to facilitate understanding of the present invention, and the appearance, dimensional ratio, etc. may differ from the actual ones.

[0013] Before specifically describing the electrode for a secondary battery according to one embodiment of the present invention, the basic structure of a secondary battery will be described. Note that, as used herein, the term "secondary battery" refers to a battery capable of repeated charging and discharging. The term "secondary battery" is not limited to its name and may also encompass, for example, "energy storage devices." As used herein, a "planar view" refers to a state in which an object is viewed from above or below along the thickness direction based on the stacking direction of the electrode materials constituting the secondary battery. Furthermore, as used herein, a "cross-sectional view" refers to a state in which an object is viewed from a direction approximately perpendicular to the thickness direction based on the stacking direction of the electrode materials constituting the secondary battery. The terms "vertical direction" and "horizontal direction" used directly or indirectly in this specification correspond to the vertical direction and horizontal direction in the drawings, respectively. Unless otherwise specified, the same reference numerals or symbols refer to the same components or parts or have the same meaning. In a preferred embodiment, the vertical downward direction (i.e., the direction in which gravity acts) can be considered to correspond to the "downward direction," and the opposite direction can be considered to correspond to the "upward direction."

[0014] The various numerical ranges referred to in this specification are intended to include both the lower and upper limits. For example, a numerical range such as 1 to 10 can be interpreted as including the lower limit of "1" and the upper limit of "10."

[0015] [Basic structure of secondary batteries] A secondary battery has a structure in which an electrode assembly and an electrolyte are housed and sealed inside an outer casing. The electrode assembly may include a positive electrode, a negative electrode, and a separator disposed between the positive and negative electrodes. The electrode assembly may be a stacked electrode assembly or a wound (jelly roll) electrode assembly. A stacked electrode assembly is formed by stacking multiple electrode constituent layers, each including a positive electrode, a negative electrode, and a separator. A wound electrode assembly is formed by winding an electrode constituent layer, each including a positive electrode, a negative electrode, and a separator. Alternatively, for example, the electrode assembly may have a so-called stack-and-fold structure in which the positive electrode, separator, and negative electrode are stacked on a long film and then folded.

[0016] The positive electrode 10A is composed of at least a positive electrode current collector 11A and a positive electrode material layer 12A (see FIG. 6), with the positive electrode material layer 12A provided on at least one side of the positive electrode current collector 11A. A positive electrode-side lead-out tab is located at a portion of the positive electrode current collector 11A where the positive electrode material layer 12A is not provided, i.e., at an end of the positive electrode current collector 11A. The positive electrode material layer 12A contains a positive electrode active material as an electrode active material. The negative electrode 10B is composed of at least a negative electrode current collector 11B and a negative electrode material layer 12B (see FIG. 6), with the negative electrode material layer 12B provided on at least one side of the negative electrode current collector 11B. A negative electrode-side lead-out tab is located at a portion of the negative electrode current collector 11B where the negative electrode material layer 12B is not provided, i.e., at an end of the negative electrode current collector 11B. The negative electrode material layer 12B contains a negative electrode active material as an electrode active material.

[0017] The positive electrode active material contained in the positive electrode layer 12A and the negative electrode active material contained in the negative electrode layer 12B are materials directly involved in the transfer of electrons in the secondary battery and are the main materials of the positive and negative electrodes responsible for charge and discharge, i.e., the battery reaction. More specifically, the "positive electrode active material contained in the positive electrode layer 12A" and the "negative electrode active material contained in the negative electrode layer 12B" provide ions to the electrolyte, and these ions move between the positive electrode 10A and the negative electrode 10B, transferring electrons and causing charge and discharge. The positive electrode layer 12A and the negative electrode layer 12B are preferably layers capable of absorbing and releasing lithium ions. In other words, a secondary battery in which lithium ions move between the positive electrode 10A and the negative electrode 10B via the electrolyte to charge and discharge the battery is preferred. When lithium ions are involved in charge and discharge, the secondary battery corresponds to a so-called "lithium ion battery."

[0018] The positive electrode active material of the positive electrode layer 12A is, for example, granular, and preferably contains a binder to ensure sufficient contact between the particles and maintain their shape. Furthermore, the positive electrode layer 12A may contain a conductive additive to facilitate the transfer of electrons that drive the battery reaction. Similarly, the negative electrode active material of the negative electrode layer 12B is, for example, granular, and preferably contains a binder to ensure sufficient contact between the particles and maintain their shape. The negative electrode layer 12B may contain a conductive additive to facilitate the transfer of electrons that drive the battery reaction. Because they contain multiple components, the positive electrode layer 12A and the negative electrode layer 12B may also be referred to as a "positive electrode composite layer" and a "negative electrode composite layer," respectively.

[0019] The positive electrode active material is preferably a material that contributes to the absorption and desorption of lithium ions. From this perspective, the positive electrode active material is preferably, for example, a lithium-containing composite oxide. More specifically, the positive electrode active material is preferably a lithium transition metal composite oxide containing lithium and at least one transition metal selected from the group consisting of cobalt, nickel, manganese, and iron. That is, such a lithium transition metal composite oxide is preferably contained as the positive electrode active material in the positive electrode layer 12A of the secondary battery. For example, the positive electrode active material may be lithium cobalt oxide, lithium nickel oxide, lithium manganese oxide, lithium iron phosphate, or a material in which part of the transition metal is replaced with another metal. Such positive electrode active materials may be contained alone or in combination of two or more types. In a more preferred embodiment, the positive electrode active material contained in the positive electrode layer 12A is lithium cobalt oxide.

[0020] The binder that can be contained in the positive electrode layer 12A is not particularly limited, but can include at least one selected from the group consisting of polyvinylidene fluoride, vinylidene fluoride-hexafluoropropylene copolymer, vinylidene fluoride-tetrafluoroethylene copolymer, and polytetrafluoroethylene. The conductive additive that can be contained in the positive electrode layer 12A is not particularly limited, but can include at least one selected from the group consisting of carbon black such as thermal black, furnace black, channel black, ketjen black, and acetylene black; carbon fibers such as graphite, carbon nanotubes, and vapor-grown carbon fibers; metal powders such as copper, nickel, aluminum, and silver; and polyphenylene derivatives. For example, the binder of the positive electrode layer 12A can be polyvinylidene fluoride. By way of example only, the conductive additive of the positive electrode layer 12A is carbon black. Furthermore, the binder and conductive additive of the positive electrode layer 12A may be a combination of polyvinylidene fluoride and carbon black.

[0021] The negative electrode active material is preferably a material that contributes to the absorption and desorption of lithium ions, and from this perspective, the negative electrode active material is preferably, for example, any of various carbon materials, oxides, or lithium alloys.

[0022] Examples of various carbon materials for the negative electrode active material include graphite (natural graphite, artificial graphite), soft carbon, hard carbon, and diamond-like carbon. Graphite is particularly preferred due to its high electronic conductivity and excellent adhesion to the negative electrode current collector 11B. Examples of oxides for the negative electrode active material include at least one selected from the group consisting of silicon oxide, tin oxide, indium oxide, zinc oxide, and lithium oxide. The lithium alloy for the negative electrode active material may be any metal capable of forming an alloy with lithium, such as a binary, ternary, or higher alloy of lithium with a metal such as Al, Si, Pb, Sn, In, Bi, Ag, Ba, Ca, Hg, Pd, Pt, Te, Zn, or La. Such oxides preferably have an amorphous structure, as this reduces degradation due to inhomogeneities such as grain boundaries or defects. By way of example only, the negative electrode active material for the negative electrode material layer 12B may be artificial graphite.

[0023] The binder that can be contained in the negative electrode material layer 12B is not particularly limited, but can include at least one selected from the group consisting of styrene-butadiene rubber, polyacrylic acid, polyvinylidene fluoride, polyimide resin, and polyamide-imide resin. For example, the binder contained in the negative electrode material layer 12B can be styrene-butadiene rubber. The conductive additive that can be contained in the negative electrode material layer 12B is not particularly limited, but can include at least one selected from carbon black such as thermal black, furnace black, channel black, ketjen black, and acetylene black; carbon fiber such as graphite, carbon nanotubes, and vapor-grown carbon fiber; metal powder such as copper, nickel, aluminum, and silver; and polyphenylene derivatives. The negative electrode material layer 12B may also include a component derived from a thickener component (e.g., carboxymethyl cellulose) used during battery production.

[0024] By way of example only, the negative electrode active material and binder in the negative electrode material layer 12B may be a combination of artificial graphite and styrene-butadiene rubber.

[0025] The positive electrode current collector 11A and the negative electrode current collector 11B used in the positive electrode 10A and the negative electrode 10B are members that contribute to collecting and supplying electrons generated in the active material due to the battery reaction. Such current collectors may be sheet-like metal members and may be porous or perforated. For example, the current collectors may be metal foil, punched metal, mesh, expanded metal, etc. The positive electrode current collector 11A used in the positive electrode 10A is preferably made of a metal foil containing at least one selected from the group consisting of aluminum, stainless steel, nickel, etc., and may be, for example, aluminum foil. On the other hand, the negative electrode current collector 11B used in the negative electrode 10B is preferably made of a metal foil containing at least one selected from the group consisting of copper, stainless steel, nickel, etc., and may be, for example, copper foil.

[0026] The separator 50 is a component provided to prevent short circuits due to contact between the positive and negative electrodes and to maintain electrolyte integrity. In other words, the separator 50 is a component that allows ions to pass through while preventing electronic contact between the positive electrode 10A and the negative electrode 10B. Preferably, the separator 50 is a porous or microporous insulating component, and has a membrane shape due to its small thickness. By way of example only, a microporous membrane made of polyolefin may be used as the separator. In this regard, the microporous membrane used as the separator 50 may contain, for example, only polyethylene (PE) or only polypropylene (PP) as the polyolefin. Furthermore, the separator 50 may be a laminate composed of a "microporous membrane made of PE" and a "microporous membrane made of PP." The surface of the separator 50 may be covered with an inorganic particle coating layer and / or an adhesive layer. The surface of the separator may have adhesive properties.

[0027] The separator 50 is not particularly limited by its name, and may be a solid electrolyte, a gel electrolyte, insulating inorganic particles, or the like, which have similar functions. From the perspective of further improving the ease of handling of the electrodes, the separator 50 and the electrodes (positive electrode 10A / negative electrode 10B) are preferably bonded together. Bonding of the separator 50 and the electrodes can be achieved by using an adhesive separator as the separator 50, or by applying and / or thermocompressing an adhesive binder onto the electrode material layer (positive electrode material layer 12A / negative electrode material layer 12B). Examples of adhesive binder materials that provide adhesiveness to the separator 50 or the electrode material layer include polyvinylidene fluoride, vinylidene fluoride-hexafluoropropylene polymer, and acrylic resin. The thickness of the adhesive layer formed by applying an adhesive binder or the like may be 0.5 μm or more and 5 μm or less.

[0028] When the positive electrode 10A and the negative electrode 10B have layers capable of absorbing and releasing lithium ions, the electrolyte is preferably a non-aqueous electrolyte such as an organic electrolyte and / or an organic solvent (i.e., the electrolyte is preferably a non-aqueous electrolyte). The electrolyte contains metal ions released from the electrodes (positive electrode 10A and negative electrode 10B), and therefore, the electrolyte assists the migration of metal ions in the battery reaction.

[0029] The nonaqueous electrolyte is an electrolyte containing a solvent and a solute. A specific solvent for the nonaqueous electrolyte preferably contains at least a carbonate. The carbonate may be a cyclic carbonate and / or a chain carbonate. Although not particularly limited, the cyclic carbonate may include at least one selected from the group consisting of propylene carbonate (PC), ethylene carbonate (EC), butylene carbonate (BC), and vinylene carbonate (VC). The chain carbonate may include at least one selected from the group consisting of dimethyl carbonate (DMC), diethyl carbonate (DEC), ethyl methyl carbonate (EMC), and dipropyl carbonate (DPC). By way of example only, a combination of a cyclic carbonate and a chain carbonate may be used as the nonaqueous electrolyte, such as a mixture of ethylene carbonate and diethyl carbonate. As a specific solute of the non-aqueous electrolyte, a Li salt such as LiPF6, LiBF4, etc. is preferably used. As a specific solute of the non-aqueous electrolyte, a Li salt such as LiPF6 and / or LiBF4, etc. is preferably used.

[0030] Any current collecting leads used in the field of secondary batteries can be used as the positive electrode current collecting lead and the negative electrode current collecting lead. Such current collecting leads may be made of any material that allows electron transfer, such as conductive materials such as aluminum, nickel, iron, copper, and stainless steel. The positive electrode current collecting lead is preferably made of aluminum, and the negative electrode current collecting lead is preferably made of nickel. The shape of the positive electrode current collecting lead and the negative electrode current collecting lead is not particularly limited and may be, for example, wire-like or plate-like.

[0031] Any external terminal used in the field of secondary batteries can be used as the external terminal. Such external terminals may be made of any material that allows electron transfer, typically a conductive material such as aluminum, nickel, iron, copper, or stainless steel. The external terminals 5 may be electrically connected directly to the substrate or electrically connected indirectly to the substrate via another device. However, this is not a limitation. A positive electrode current collecting lead connected to each of the multiple positive electrodes may function as a positive electrode external terminal, and a negative electrode current collecting lead connected to each of the multiple negative electrodes may function as a negative electrode external terminal.

[0032] The exterior body may be in the form of a conductive hard case or a flexible case (e.g., a pouch). When the exterior body is in the form of a flexible case (e.g., a pouch), each of the multiple positive electrodes is connected to a positive electrode external terminal via a positive electrode current collecting lead. The positive electrode external terminal is fixed to the exterior body by a seal portion, which prevents leakage of the electrolyte. Similarly, each of the multiple negative electrodes is connected to a negative electrode external terminal via a negative electrode current collecting lead. The negative electrode external terminal is fixed to the exterior body by a seal portion, which prevents leakage of the electrolyte. However, this is not limited thereto, and the positive electrode current collecting lead connected to each of the multiple positive electrodes may have the function of a positive electrode external terminal, and the negative electrode current collecting lead connected to each of the multiple negative electrodes may have the function of a negative electrode external terminal. When the exterior body is in the form of a conductive hard case, each of the multiple positive electrodes is connected to a positive electrode external terminal via a positive electrode current collecting lead. The positive electrode external terminal is fixed to the exterior body by a seal portion, and the seal portion prevents leakage of the electrolyte.

[0033] The conductive hard case consists of a main body and a lid. The main body consists of a bottom and side sections that form the bottom surface of the exterior body. The main body and lid are sealed together after housing the electrode assembly, electrolyte, current collecting leads, and external terminals. The sealing method is not particularly limited, and examples include laser irradiation. Any material capable of forming a hard case-type exterior body in the field of secondary batteries can be used as the material for the main body and lid. Such materials may be any material that allows electron transfer, including conductive materials such as aluminum, nickel, iron, copper, and stainless steel. The dimensions of the main body and lid are determined primarily based on the dimensions of the electrode assembly. For example, it is preferable that the dimensions are large enough to prevent the electrode assembly from moving (shifting) within the exterior body when the electrode assembly is housed. Preventing movement of the electrode assembly prevents damage to the electrode assembly and improves the safety of the secondary battery.

[0034] The flexible case is composed of a soft sheet. The soft sheet is sufficient to allow the sealing portion to be folded, and is preferably a plastic sheet. The plastic sheet is a sheet that maintains its deformation due to an external force after the external force is applied and then removed, and a so-called laminated film can be used, for example. A flexible pouch made of a laminated film can be produced, for example, by overlapping two laminated films and heat-sealing their periphery. A typical laminated film is a film made by laminating a metal foil and a polymer film, and a specific example is a three-layer structure consisting of an outer layer polymer film / metal foil / inner layer polymer film. The outer layer polymer film is intended to prevent moisture penetration and damage to the metal foil due to contact, and polymers such as polyamide and polyester are suitable for use. The metal foil is intended to prevent moisture and gas penetration, and foils such as copper, aluminum, and stainless steel are suitable for use. The inner layer polymer film protects the metal foil from the electrolyte contained inside and serves to melt and seal the opening during heat sealing, and is preferably made of polyolefin or acid-modified polyolefin.

[0035] [Characteristics of the present invention] As described above in the basic configuration of the secondary battery, the secondary battery 500 has a structure in which an electrode assembly 100 including a positive electrode 10A, a negative electrode 10B, and a separator 50 disposed between the electrodes 10, the positive electrode 10A and the negative electrode 10B, and an electrolyte 20 are housed in an exterior case 30 (see FIG. 1A). The positive electrode 10A has a positive electrode current collector 11A and a positive electrode material layer 12A provided on at least one main surface of the positive electrode current collector 11A. The negative electrode 10B has a negative electrode current collector 11B and a negative electrode material layer 12B provided on at least one main surface of the negative electrode current collector 11B.

[0036] The present invention is characterized by the configuration of the secondary battery electrode 10, which is a component of the secondary battery 500. The present inventors have conducted extensive research into the configuration of a secondary battery electrode that can suitably improve electronic conductivity and ion diffusibility. Specifically, the present inventors have conducted extensive research into the configuration of a secondary battery electrode from the perspective of "how to quickly allow ions to reach the interior of a predetermined region of an electrode material layer with a low porosity when the electrode material layer has a laminated structure."

[0037] As a result, the inventors of the present invention came up with an electrode material layer with a new, unprecedented structure, rather than constituting the electrode material layer from two regions with a laminated structure as in the past (see FIG. 1B).

[0038] FIG. 1B is a cross-sectional view schematically showing an electrode for a secondary battery according to one embodiment of the present invention. As shown in FIG. 1B, the inventors of the present invention have devised an electrode for a secondary battery (the present invention) that does not have an electrode material layer with a laminated structure consisting of two regions (a first region and a second region), but that further includes a third region having a porosity greater than those of the two regions.

[0039] First, in one embodiment of the present invention, the electrode material layer 12 is composed of at least three regions (a first region 12X, a second region 12Y, and a third region 12Z). The following description will be given on the assumption that the electrode material layer 12 is composed of three regions (see FIG. 1B). However, the present invention is not limited to this, and the electrode material layer may be composed of more than three regions.

[0040] In one embodiment of the present invention, in a cross-sectional view of the electrode 10, the first region 12X is provided on the current collector 11. The second region 12Y is provided on at least the first region 12X. In one example, as shown in FIG. 1B , the second region 12Y is provided on the third region 12Z in addition to the first region 12X. That is, the second region 12Y is provided so as to cover the first region 12X and the third region 12Z. Furthermore, the third region 12Z is ​​provided on the current collector 11. That is, both the first region 12X and the third region 12Z are provided on the current collector 11.

[0041] Second, in one embodiment of the present invention, the porosity increases in the order of the first region 12X, the second region 12Y, and the third region 12Z. In this specification, when an electrode material layer has three or more regions, the first region refers to the region with the smallest porosity, and the third region refers to the region with the largest porosity.

[0042] In this specification, of the two opposing main surfaces of the electrode material layer, the main surface directly facing the current collector is referred to as the "first main surface," and the main surface opposite the first main surface is referred to as the "second main surface." In addition, in this specification, the phrase "the second region 12Y is provided on at least the first region 12X" means that the second region 12Y is provided so as to contact the main surface of the first region along the stacking direction. In this specification, the phrase "the first region 12X and the third region 12Z are both provided on the current collector 11" means that the first region 12X and the third region 12Z are both provided so as to contact the main surface of the current collector 11.

[0043] According to this configuration, compared to an electrode material layer having a laminated structure consisting of two regions (first and second regions), the electrode material layer 12 further includes a third region 12Z which has the highest porosity and is provided on the current collector 11. Specifically, the third region 12Z can be located in the inner region 12α of the electrode material layer 12 (see FIG. 2). When the electrode assembly 100 is immersed in the electrolyte solution 20, the electrode material layer 12 and the separator 50 directly face each other with only a small gap between them. Therefore, the electrolyte solution 20 is less likely to penetrate into the inner region 12α of the electrode material layer 12 than into the end region 12β of the electrode material layer 12.

[0044] In this regard, in one embodiment of the present invention, the third region 12Z is ​​the region with the largest porosity, and therefore the electrolyte for ion migration can be more easily impregnated into the third region 12Z, even in the inner region 12α of the electrode material layer 12. Therefore, the resistance of ions entering the third region 12Z can be reduced compared to a conventional configuration in which the third region 12Z does not exist.

[0045] This allows the following technical effects to be achieved when ions diffuse from the second main surface 12b side to the first main surface 12a side along the stacking (depth) direction during charge and discharge of the battery, passing through the inner region 12α of the electrode material layer 12. Specifically, in the electrode material layer 12 on the ion-entering side, ions not only move from the second region 12Y to the first region 12X, but also from the second region 12Y to the first region 12X via the third region 12Z, which is "more immersed in the electrolyte for ion migration."

[0046] This ion migration allows ions to reach the inside of the first region 12X of the electrode material layer 12 (particularly, the first region near the first main surface 12a of the electrode material layer 12) more quickly from the second main surface 12b side of the electrode material layer 12 compared to a conventional electrode material layer having a laminated structure consisting of two regions (first region and second region) without the third region. This shortens the time it takes for ions to reach the first region 12X of the electrode material layer 12, which has the smallest porosity, i.e., the first region 12X, which is "hardly permeable to the electrolyte for ion migration."

[0047] As a result, even if the electrode material layer 12 has a laminated structure, the inclusion of a region with a relatively small porosity not only improves electronic conductivity but also improves ion diffusibility (i.e., accelerates ion diffusion). Therefore, according to one embodiment of the present invention, the improved electronic conductivity and accelerated ion diffusion make it possible to preferably achieve high energy density and high output of the secondary battery 500.

[0048] [Method of manufacturing an electrode for a secondary battery according to the present invention] A method for producing an electrode for a secondary battery according to one embodiment of the present invention will be described below.

[0049] FIG. 3A is a cross-sectional view schematically showing a method for manufacturing an electrode for a secondary battery according to one embodiment of the present invention (a step of intermittently applying a slurry for a first electrode material layer). FIG. 3B is a cross-sectional view schematically showing a method for manufacturing an electrode for a secondary battery according to one embodiment of the present invention (a step of continuously applying a slurry for a second electrode material layer). FIG. 3C is a cross-sectional view schematically showing a method for manufacturing an electrode for a secondary battery according to one embodiment of the present invention (a step of forming an electrode material layer). FIG. 3D is an enlarged cross-sectional view schematically showing a step of forming an electrode material layer including a third region.

[0050] A method for manufacturing an electrode for a secondary battery according to one embodiment of the present invention includes the steps of: (i) preparing a current collector 11; (ii) forming an electrode precursor by providing a slurry for an electrode material layer on a current collector; (iii) drying and pressing the electrode precursor; In particular, in one embodiment of the present invention, the above step (ii) includes intermittently applying at least two first electrode material layer slurries 12X′ at predetermined intervals (see FIG. 3A), and continuously applying, onto the at least two first electrode material layer slurries 12X′, a second electrode material layer slurry 12Y′, the volume ratio of which is smaller than that of the first electrode material layer slurry 12X′ (see FIG. 3B).

[0051] According to this feature, during continuous application of the second electrode material layer slurry 12Y', a portion of the second electrode material layer slurry 12Y' can be allowed to penetrate into the uncoated portions between the first electrode material layer slurry 12X'. In this case, the volume ratio of solids in the second electrode material layer slurry 12Y' is relatively smaller than that of the first electrode material layer slurry 12X', and the uncoated portions are localized spaces where no slurry is present. As a result, the volume ratio of solids in the electrode material layer slurry that has penetrated into the uncoated portions 60 can be made relatively smaller than the volume ratio of solids in the second electrode material layer slurry 12Y' on the first electrode material layer slurry 12X' (see FIG. 3D ). That is, it is possible to form on the current collector 11 a third electrode material layer slurry 12Z' having a volume ratio of solids that is relatively smaller than the first electrode material layer slurry 12X' and the second electrode material layer slurry 12Y'.

[0052] As a result, a first electrode material layer slurry 12X' located on the current collector 11, a second electrode material layer slurry 12Y' located at least on the first electrode material layer slurry 12X', and a third electrode material layer slurry 12Z' located on the current collector 11 can be provided. This results in an electrode precursor being obtained from the electrode material layer slurries and the current collector in the characteristic arrangement described above. This electrode precursor is then dried and pressed (see FIGS. 3C and 3D). Finally, a secondary battery electrode 10 according to one embodiment of the present invention can be produced (see FIG. 1B).

[0053] In the obtained electrode 10, the electrode material layer 12, which is a component thereof, comprises, in cross-sectional view, a first region 12X provided on the current collector 11, a second region 12Y provided on at least the first region 12X, and a third region 12Z provided on the current collector 11. That is, the first region 12X and the third region 12Z are both provided on the current collector 11. Furthermore, since the volume ratios of the solid contents of the first electrode material layer slurry 12X' to the third electrode material layer slurry 12Z' decrease relatively in this order, the porosity of the obtained first region 12X to the third region 12Z also increases in this order.

[0054] According to this configuration, compared to an electrode material layer having a laminated structure consisting of two regions (first and second regions), the electrode material layer 12 further includes a third region 12Z which has the largest porosity and is provided on the current collector 11. As a result, in the electrode material layer 12 on the ion-entering side during charging and discharging of the battery, ions can not only move from the second region 12Y to the first region 12X, but also from the second region 12Y to the first region 12X via the third region 12Z, which is "more immersed in the electrolyte for ion migration."

[0055] This ion migration allows ions to reach the inside of the first region 12X of the electrode material layer 12 more quickly from the second main surface 12b side of the electrode material layer 12 compared to a conventional electrode material layer having a laminated structure consisting of two regions (first and second regions) without the third region. This shortens the time it takes for ions to reach the first region 12X, which is in a state where the electrolyte for ion migration is difficult to penetrate. As a result, even if the electrode material layer 12 has a laminated structure, it is possible to preferably improve electronic conductivity and ion diffusibility.

[0056] Note that one embodiment of the present invention can be used to obtain at least one of a positive electrode and a negative electrode. As an example, the present invention can be applied to a method for manufacturing a negative electrode. From the viewpoint of improving the electronic conductivity of the finally obtained electrode and accelerating the ion diffusion rate, it is preferable to apply the manufacturing method of the present invention to both the positive electrode and the negative electrode.

[0057] After manufacturing the electrode for a secondary battery according to one embodiment of the present invention, an electrode assembly is formed. Specifically, after forming at least one of a positive electrode and a negative electrode according to the manufacturing method described above, the positive electrode and the negative electrode are stacked in the stacking direction with a separator interposed therebetween to form an electrode configuration layer. By stacking at least two electrode configuration layers in the stacking direction, a stacked electrode assembly can be finally formed. Furthermore, by winding a single electrode configuration layer, a wound electrode assembly can be finally formed.

[0058] After forming a predetermined electrode assembly (wound type / laminated type), the electrode assembly is housed in an outer casing, and a current collecting tab is welded to the outer casing. Next, an electrolyte solution is injected into the outer casing under reduced pressure. During the injection of the electrolyte solution, the third region 12Z of the electrode material layer 12 has the smallest porosity compared to the other regions of the electrode material layer, and therefore the penetration rate of the electrolyte solution into the electrode material layer 12 can be increased compared to conventional electrode configurations that do not have the third region 12Z.

[0059] By going through the above steps, a secondary battery including an electrode for a secondary battery according to one embodiment of the present invention can finally be obtained.

[0060] The secondary battery electrode of the present invention preferably has the following configuration.

[0061] In one embodiment, the first region 12X and the third region 12Z of the electrode material layer 12 are preferably adjacent to each other (see FIG. 1B). In this case, the third region 12Z of the electrode material layer 12 can be disposed so as to fill the gap between one first region 12X and the other first region 12X that are spaced apart and face each other.

[0062] As described above, in one embodiment of the present invention, the presence of the third region 12Z, which has the highest porosity, can improve ion diffusibility. In this regard, according to this aspect, when the third region 12Z is ​​disposed adjacent to the first region 12X, which has the lowest porosity, the third region 12Z is ​​the region into which ions are most likely to enter, and therefore ions can more quickly reach the interior of the first region 12X, into which ions are least likely to enter (particularly, the first region, near the first main surface 12a of the electrode material layer 12). This can further shorten the time it takes for ions to reach the first region 12X, into which ions are least likely to enter, and can more suitably improve electronic conductivity and ion diffusibility.

[0063] In one embodiment, the third region 12Z is ​​preferably located on two or more sides of the first region 12X located at a predetermined location (see FIG. 1B). In this case, two or more third regions 12Z may be provided on the current collector 11 at a predetermined interval.

[0064] As described above, in one embodiment of the present invention, the presence of the third region 12Z, which has the highest porosity, can improve ion diffusibility. In this regard, according to this aspect, when the third region 12Z is ​​located on two or more sides of the first region 12X located at a predetermined location, the number of paths through which ions can travel from the third region 12Z, which is the most ion-introducing region, to the interior of the first region 12X, which is the most ion-introducing region (particularly, the first region, near the first main surface 12a of the electrode material layer 12). This further shortens the time it takes for ions to reach the first region 12X, which is the most ion-introducing region, and further improves electronic conductivity and ion diffusibility.

[0065] In one embodiment, two or more first regions 12X of the electrode material layer 12 are preferably provided on the current collector 11 at a predetermined interval, and the third regions 12Z of the electrode material layer 12 are preferably provided so as to fill the spaces between adjacent first regions 12X and the other first region 12X (see FIG. 1B). In this case, two or more third regions 12Z can be provided on the current collector 11 at a predetermined interval.

[0066] According to this aspect, when two or more first regions 12X are provided in the electrode material layer 12, the third regions 12Z are provided so as to fill the gaps between adjacent first regions 12X and the other first region 12X. According to this configuration, when two or more first regions 12X are provided, the third regions 12Z can be disposed adjacent to each first region 12X.

[0067] This arrangement allows ions to preferably reach the interior of each of the first regions 12X, into which ions are least likely to enter, via the third region 12Z, into which ions are most likely to enter. This further shortens the time it takes for ions to reach the interior of each of the first regions 12X, into which ions are least likely to enter, for the entire electrode material layer 12. This further improves the electron conductivity and ion diffusibility as a whole.

[0068] In one embodiment, in a cross-sectional view of the electrode, the third region 12ZI of the electrode material layer 12I is preferably arranged so that the second main surface 12b of the electrode material layer 12I and the first region 12XI of the electrode material layer 12I are connected to each other via the third region 12ZI (see Figures 4A to 4D).

[0069] In this case, in a cross-sectional view, the third region 12ZI can extend along the stacking direction so as to contact the stack having the first region 12XI and the second region 12YI. That is, the third region 12ZI can extend along the stacking direction so as to straddle the side portion 12XI1 of the first region 12XI and the side portion 12YI1 of the second region 12YI (see FIGS. 4C and 4D). Specifically, the third region 12ZI can be provided on the current collector 11I so as to extend along the stacking direction from the first main surface 12a to the second main surface 12b of the electrode material layer 12I. From another perspective, the third region 12ZI forms part of the second main surface 12b of the electrode material layer 12I (see FIG. 4B).

[0070] According to this configuration, one side of the third region 12ZI, which has the highest porosity, forms part of the second main surface 12b of the electrode material layer 12, and the other side contacts the first region 12XI. ​​As a result, when ions enter the electrode material layer 12 from the second main surface 12b along the stacking (depth) direction during battery charge and discharge, the ions enter not only the second region 12YI but also the third region 12ZI. This allows ions to travel more quickly from the third region 12ZI, which is the most ion-friendly region, to the inside of the first region 12XI, which is the least ion-friendly region. As a result, ion diffusibility can be further improved.

[0071] In one embodiment, it is more preferable that two or more of the above-mentioned laminates (having a first region 12XI and a second region 12YI) are provided at a predetermined interval, and that a third region 12ZI is provided in each of the laminates so as to fill the space between adjacent laminates (see Figures 4B and 4C).

[0072] According to this configuration, the third regions 12ZI may be repeatedly arranged at predetermined intervals in a plan view (see FIG. 4B). Specifically, the second regions 12YI and the third regions 12ZI may be alternately arranged in a plan view. Although not particularly limited, as an example of an arrangement form in which the third regions 12ZI are repeatedly arranged at predetermined intervals, the third regions 12ZI1 may be striped in a plan view (see FIG. 5A). As another example, the third regions 12ZI2 may be dotted in a plan view (see FIG. 5B). As yet another example, the third regions 12ZI3 may be meshed in a plan view (see FIG. 5C).

[0073] This repeated arrangement provides two or more third regions 12ZI, one of which forms part of the second main surface 12b of the electrode material layer 12 and the other of which is in contact with the first region 12XI. ​​This allows ions to enter not only the second region 12YI but also two or more third regions 12ZI when they enter the electrode material layer 12 from the second main surface 12b along the stacking (depth) direction during battery charge and discharge. As a result, ions can reach the interior of each of the two or more first regions 12XI more quickly. This further improves the ion diffusibility of the electrode material layer 12I as a whole.

[0074] As described above, the present invention has an advantage in that the presence of the third region, which has the highest porosity, allows ions to quickly reach the first region, which has the lowest porosity, via the third region. In this regard, if the cross-sectional width of the third region is relatively large, it may be difficult to ensure suitable electronic conductivity throughout the electrode material layer, thereby making it difficult to ensure high energy density. Taking this into consideration, in the embodiment shown in Figures 4B and 4C, when the first region 12XI and the second region 12YI have substantially the same width, the ratio of the width of the third region 12ZI to the width of the stack of the first region 12XI and the second region 12YI in a cross-sectional view may be 1:1, preferably 1:2, and more preferably 1:5.

[0075] Although one embodiment of the present invention has been described above, it is merely a typical example within the scope of application of the present invention. Therefore, it will be readily understood by those skilled in the art that the present invention is not limited to this embodiment and that various modifications can be made. [Example]

[0076] Examples of the present invention will be described below.

[0077] Example 1 <Production process> First, a current collector made of copper foil was prepared, followed by preparation of slurries for electrode material layers (a slurry for a first electrode material layer and a slurry for a second electrode material layer).

[0078] Specifically, the active material, binder, and conductive additive were weighed out in predetermined proportions to form the first electrode material layer slurry, and mixed with a solvent. The active material was selected to be relatively crushable in a constant-load press, thereby adjusting the solids content in the slurry to 60% by volume. The active material, binder, and conductive additive were weighed out in predetermined proportions to form the second electrode material layer slurry, and mixed with a solvent. The active material was selected to be relatively crushable in a constant-load press, thereby adjusting the solids content in the slurry to 45% by volume. In this Example 1, a negative electrode active material was selected as the active material. The relationship between linear pressure and density for the crush-resistant and crush-resistant negative electrode active materials is shown in Table 1, and the relationship between linear pressure and density for the active material is shown in FIG. 7.

[0079] [Table 1] TIFF0007754190000001.tif44149

[0080] Thereafter, conditions were set in a multi-layer simultaneous coater to enable intermittent coating of the first electrode material layer slurry at a predetermined interval on the current collector and continuous coating of the second electrode material layer slurry onto the intermittently coated first electrode material layer slurry, and to achieve a coating thickness of 160 μm for the electrode material layer slurry. The intermittent coating conditions for the first electrode material layer slurry were set to a coating distance of 5 mm and an uncoated distance of 5 mm. After setting these conditions, the multi-layer simultaneous coater was used to simultaneously perform intermittent coating of the first electrode material layer slurry and continuous coating of the second electrode material layer slurry.

[0081] By continuously coating the second electrode material layer slurry, the second electrode material layer slurry penetrates into the uncoated areas between the first electrode material layer slurries. This makes it possible to make the volume ratio of the solid content containing the active material in the electrode material layer slurry located in the uncoated areas relatively smaller than the volume ratio of the solid content containing the active material in the second electrode material layer slurry on the first electrode material layer slurry. As a result, an electrode precursor was formed that was composed of three electrode material layer slurries with mutually different solid content ratios in the slurries.

[0082] After forming the electrode precursor, the electrode precursor was dried and then pressed to a predetermined electrode thickness. After pressing, the electrode precursor (corresponding to an electrode sheet) was punched out to a diameter of 16.5 mm. This resulted in the formation of an electrode (negative electrode) having an electrode material layer composed of three regions. Specifically, when the electrode (negative electrode) had an electrode material layer composed of three regions, the first region was provided on the current collector, the second region was provided on the first region, and the third region was provided on the current collector. Specifically, the third region was provided so that the second main surface of the electrode material layer (corresponding to the main surface opposite to the main surface directly facing the current collector) and the first region were connected to each other via this third region.

[0083] After the formation of the negative electrode, a counter electrode (positive electrode) was prepared by continuously coating the positive electrode layer slurry onto a current collector (copper foil) to the same thickness (160 μm) as above.

[0084] After forming the positive and negative electrodes, the positive and negative electrodes were stacked in the stacking direction with a separator interposed between them to form an electrode assembly. A polyethylene porous film was used as the separator. After forming the electrode assembly, the electrode assembly was housed in an outer casing and a current collecting tab was welded. Next, an electrolyte solution was injected into the outer casing under reduced pressure. The electrolyte solution used was an organic electrolyte solution obtained by dissolving 1 mol of lithium hexafluorophosphate (LiPF6) per liter of solvent in a solvent with a weight ratio of 1:3 EC:EMC.

[0085] A secondary battery (coin cell with a diameter of 20 mm and a thickness of 1.6 mm) equipped with the electrode of the present invention was fabricated mainly through the above steps.

[0086] <Calculation / measurement details and results> The obtained electrode itself and the secondary battery provided with the electrode were evaluated for the following items.

[0087] (1) Porosity of each electrode material layer + area ratio of voids (%) The area density (mg / cm) of the three regions of the formed electrode (negative electrode) was 2 ) and volume density (mg / cm 3 The porosity of each region was calculated from the area ratio (%) of the voids when the cross-sectional SEM image of the electrode after evaluation was binarized using the free image analysis software Image J. The results are shown in Table 2.

[0088] (2) Discharge rate maintenance rate + discharge cycle maintenance rate (%) This secondary battery was initially charged and discharged in a thermostatic chamber at 25°C at a voltage range of 0.01 to 2.0 V and a current value of 0.1 C, and then charged and discharged twice at 0.5 C to stabilize it. It was then charged at 0.5 C to a voltage range of 0.01 V, and then discharged once at 0.2 C. It was then charged at 0.5 C to a voltage range of 0.01 V, and then discharged once at 2.0 C. The discharge rate retention (%) was calculated from the discharge capacity retention ratio at 2.0 C relative to 0.2 C. It was then subjected to 100 charge-discharge cycles at 0.5 C to 2.0 C, and the discharge cycle retention (%) was calculated from the discharge capacity retention ratio at the 100th cycle relative to the first cycle. The results are shown in Table 2.

[0089] (3) Electrolyte impregnation in electrodes The resulting electrode (negative electrode) was punched out to a diameter of 20 mm, and then 1 μL of PC was dropped onto the electrode surface using a syringe. The time from immediately after dropping until the PC completely penetrated the electrode was measured with a stopwatch. The results are shown in Table 3.

[0090] <Evaluation> As shown in Table 2, when the electrode (negative electrode) had an electrode material layer composed of three regions, the first region located at a predetermined position on the current collector had the smallest porosity / void area ratio. On the other hand, the third region located at another position on the current collector had the largest porosity / void area ratio. Specifically, the third region in contact with the laminate having the first and second regions had the largest porosity. Under these conditions, as shown in Table 2, the discharge rate retention rate was 78.0% and the discharge cycle retention rate was 85.2%, both of which were the highest. In other words, the battery characteristics were found to be the best. Furthermore, under these conditions, as shown in Table 3, the electrolyte penetration time in the electrode was the shortest at 40 s, indicating the best electrolyte impregnation.

[0091] Example 2 <Production process> First, a current collector made of copper foil was prepared, as in Example 1. Next, slurries for electrode material layers (a slurry for a first electrode material layer and a slurry for a second electrode material layer) were prepared.

[0092] Specifically, the slurry for the first electrode material layer was prepared by weighing out a predetermined ratio of an active material, a binder, and a conductive additive, and mixing the mixture with a solvent. The binder ratio was relatively high, and the solid content in the slurry was adjusted to 60% by volume. The slurry for the second electrode material layer was prepared by weighing out a predetermined ratio of an active material, a binder, and a conductive additive, and mixing the mixture with a solvent. The binder ratio was relatively low, and the solid content in the slurry was adjusted to 45% by volume. In this Example 2, a negative electrode active material was also selected as the active material.

[0093] Thereafter, conditions were set in a multi-layer simultaneous coater to enable intermittent coating of the first electrode material layer slurry at a predetermined interval on the current collector and continuous coating of the second electrode material layer slurry onto the intermittently coated first electrode material layer slurry, and to achieve a coating thickness of 140 μm for the electrode material layer slurry. The intermittent coating conditions for the first electrode material layer slurry were set to a coating distance of 5 mm and an uncoated distance of 5 mm. After setting these conditions, the multi-layer simultaneous coater was used to simultaneously perform intermittent coating of the first electrode material layer slurry and continuous coating of the second electrode material layer slurry.

[0094] This resulted in the formation of an electrode precursor composed of three electrode material layer slurries with different solid content ratios. The electrode precursor was then dried and pressed under the same conditions and method as in Example 1, and punched to form an electrode (negative electrode) having an electrode material layer composed of three regions. Furthermore, under the same conditions and method as in Example 1, the steps of forming a counter electrode (positive electrode), forming an electrode assembly, housing the electrode assembly in an exterior body, and injecting an electrolyte into the exterior body were carried out, thereby finally producing a secondary battery (coin cell with a diameter of 20 mm and a thickness of 1.6 mm) equipped with the electrode of the present invention.

[0095] <Calculation / measurement details and results> The obtained electrode itself and a secondary battery equipped with the electrode were evaluated for (1) the porosity of each region of the electrode material layer, (2) the discharge rate retention rate + discharge cycle retention rate (%), and (3) the electrolyte impregnation property of the electrode under the same conditions and methods as in Example 1. The results are shown in Tables 2 and 3.

[0096] <Evaluation> As shown in Table 2, when the electrode (negative electrode) had an electrode material layer composed of three regions, the area ratio of the porosity of the first region located at a predetermined position on the current collector was the smallest. On the other hand, it was found that the area ratio of the porosity of the third region located at another position on the current collector was the largest. Specifically, it was found that the porosity of the third region in contact with the laminate having the first and second regions was the largest. Under these conditions, as shown in Table 2, the discharge rate retention rate + discharge cycle retention rate (%) exceeded the specified standard of 70% compared to the comparative example, indicating good battery characteristics. Furthermore, under these conditions, as shown in Table 3, it was found that the electrolyte penetration time in the electrode was shorter than in the comparative example, indicating improved electrolyte impregnation.

[0097] Example 3 <Production process> First, a current collector made of copper foil was prepared, as in Examples 1 and 2. Next, slurries for electrode material layers (a slurry for a first electrode material layer and a slurry for a second electrode material layer) were prepared.

[0098] Specifically, the slurry for the first electrode material layer was prepared by weighing out a predetermined proportion of an active material, a binder, and a conductive additive, and mixing the mixture with a solvent. The proportion of the conductive additive was relatively high, and the solid content in the slurry was adjusted to 60% by volume. The slurry for the second electrode material layer was prepared by weighing out a predetermined proportion of an active material, a binder, and a conductive additive, and mixing the mixture with a solvent. The proportion of the conductive additive was relatively low, and the solid content in the slurry was adjusted to 50% by volume. In this Example 3, a negative electrode active material was also selected as the active material.

[0099] Thereafter, conditions were set in a multi-layer simultaneous coater to enable intermittent coating of the first electrode material layer slurry at a predetermined interval on the current collector and continuous coating of the second electrode material layer slurry onto the intermittently coated first electrode material layer slurry, and to achieve a coating thickness of 140 μm for the electrode material layer slurry. The intermittent coating conditions for the first electrode material layer slurry were set to a coating distance of 5 mm and an uncoated distance of 5 mm. After setting these conditions, the multi-layer simultaneous coater was used to simultaneously perform intermittent coating of the first electrode material layer slurry and continuous coating of the second electrode material layer slurry.

[0100] This resulted in the formation of an electrode precursor composed of three electrode material layer slurries with different solid content ratios. The electrode precursor was then dried and pressed under the same conditions and methods as in Examples 1 and 2, and punched to form an electrode (negative electrode) having an electrode material layer composed of three regions. Furthermore, under the same conditions and methods as in Examples 1 and 2, the steps of forming a counter electrode (positive electrode), forming an electrode assembly, housing the electrode assembly in an exterior body, and injecting an electrolyte into the exterior body were carried out, thereby finally producing a secondary battery (coin cell with a diameter of 20 mm and a thickness of 1.6 mm) equipped with the electrode of the present invention.

[0101] <Calculation / measurement details and results> The obtained electrodes themselves and secondary batteries equipped with the electrodes were evaluated for (1) the porosity of each region of the electrode material layer, (2) the discharge rate retention rate + discharge cycle retention rate (%), and (3) the electrolyte impregnation ability of the electrodes under the same conditions and methods as in Examples 1 and 2. The results are shown in Tables 2 and 3.

[0102] <Evaluation> As shown in Table 2, when the electrode (negative electrode) had an electrode material layer composed of three regions, the area ratio of the porosity of the first region located at a predetermined position on the current collector was the smallest. On the other hand, it was found that the area ratio of the porosity of the third region located at another position on the current collector was the largest. Specifically, it was found that the porosity of the third region in contact with the laminate having the first and second regions was the largest. Under these conditions, as shown in Table 2, the discharge rate retention rate + discharge cycle retention rate (%) exceeded the specified standard of 70% compared to the comparative example, indicating good battery characteristics. Furthermore, under these conditions, as shown in Table 3, it was found that the electrolyte penetration time in the electrode was shorter than in the comparative example, indicating improved electrolyte impregnation.

[0103] A comparative example will be described below.

[0104] Comparative Example 1 Comparative Example 1 differs from Example 1 in that only the first electrode material layer slurry in Example 1 is used as the electrode material layer slurry.

[0105] <Production process> First, a current collector made of copper foil was prepared, followed by a slurry for the electrode material layer.

[0106] Specifically, when forming the electrode material layer slurry by weighing out predetermined proportions of an active material, a binder, and a conductive additive and mixing them with a solvent, the same active material as used in the first electrode material layer slurry in Example 1, specifically, a relatively crushable active material, was used to adjust the solid content ratio in the slurry to 60 volume %. In Comparative Example 1, a negative electrode active material was selected as the active material.

[0107] Thereafter, a single continuous coating of the electrode material layer slurry was carried out on the current collector using a coating machine, and conditions were set so that the coating thickness of the electrode material layer slurry would be 160 μm. After setting these conditions, a single continuous coating of the electrode material layer slurry was carried out using the coating machine. As a result, an electrode precursor was formed that contained an electrode material layer slurry with a solids ratio of 60% by volume.

[0108] Thereafter, the electrode precursor was dried and pressed, and punched to form an electrode (negative electrode) having a current collector and an electrode material layer under the same conditions and method as in Example 1. Furthermore, under the same conditions and method as in Example 1, the steps of forming a counter electrode (positive electrode), forming an electrode assembly, housing the electrode assembly in an exterior body, and injecting an electrolyte into the exterior body were carried out, thereby finally producing a secondary battery (coin cell with a diameter of 20 mm and a thickness of 1.6 mm) equipped with an electrode including an electrode material layer of a single layer structure.

[0109] <Calculation / measurement details and results> The obtained electrode itself and a secondary battery equipped with the electrode were evaluated for (1) the porosity and void area ratio (%) of the electrode material layer, (2) the discharge rate retention rate + discharge cycle retention rate (%), and (3) the electrolyte impregnation ability of the electrode under the same conditions and methods as in Example 1. The results are shown in Tables 2 and 3.

[0110] <Evaluation> As shown in Table 2, it was found that the porosity and area ratio (%) of the void portion of the electrode material layer of the electrode (negative electrode) were close to the values ​​of the first region of the electrode material layer in Example 1. Under these conditions, as shown in Table 2, the discharge rate maintenance rate + discharge cycle maintenance rate (%) was below the specified standard of 70% compared to Examples 1 to 3, indicating poor battery characteristics. Furthermore, under these conditions, as shown in Table 3, it was found that the permeation time of the electrolyte solution in the electrode was approximately 1.6 to 2.0 times longer compared to Examples 1 to 3, indicating poor impregnation of the electrolyte solution.

[0111] Comparative Example 2 Comparative Example 2 differs from Example 1 in that only the second electrode material layer slurry in Example 1 is used as the electrode material layer slurry.

[0112] <Production process> A current collector made of copper foil was prepared, followed by a slurry for the electrode material layer.

[0113] Specifically, when forming the electrode material layer slurry by weighing out predetermined proportions of an active material, a binder, and a conductive additive and mixing them with a solvent, the same active material as used in the second electrode material layer slurry in Example 1, specifically, an active material that is relatively hard to crush, was used to adjust the solid content ratio in the slurry to 45 volume %. In Comparative Example 2, a negative electrode active material was selected as the active material.

[0114] Thereafter, a single continuous coating of the electrode material layer slurry was carried out to a coating thickness of 160 μm using a coater in the same manner as in Comparative Example 1. In this manner, an electrode precursor was formed containing an electrode material layer slurry with a solid content ratio of 45% by volume.

[0115] Thereafter, the electrode precursor was dried and pressed, and punched to form an electrode (negative electrode) having a current collector and an electrode material layer under the same conditions and method as in Example 1. Furthermore, under the same conditions and method as in Example 1, the steps of forming a counter electrode (positive electrode), forming an electrode assembly, housing the electrode assembly in an exterior body, and injecting an electrolyte into the exterior body were carried out, thereby finally producing a secondary battery (coin cell with a diameter of 20 mm and a thickness of 1.6 mm) equipped with an electrode including an electrode material layer of a single layer structure.

[0116] <Calculation / measurement details and results> The obtained electrode itself and a secondary battery equipped with the electrode were evaluated for (1) the porosity and void area ratio (%) of the electrode material layer, (2) the discharge rate retention rate + discharge cycle retention rate (%), and (3) the electrolyte impregnation ability of the electrode under the same conditions and methods as in Example 1. The results are shown in Tables 2 and 3.

[0117] <Evaluation> As shown in Table 2, it was found that the porosity and area ratio (%) of the void portion of the electrode material layer of the electrode (negative electrode) were close to the values ​​of the second region of the electrode material layer in Example 1. Under these conditions, as shown in Table 2, the discharge rate maintenance rate + discharge cycle maintenance rate (%) was below the specified standard of 70% compared to Examples 1 to 3, indicating poor battery characteristics. Furthermore, under these conditions, as shown in Table 3, it was found that the permeation time of the electrolyte solution in the electrode was about 1.5 to 1.8 times longer compared to Examples 1 to 3, indicating poor impregnation of the electrolyte solution.

[0118] Comparative Example 3 Comparative Example 3 is the same as Example 1 in that the first electrode material layer slurry and the second electrode material layer slurry in Example 1 are used as electrode material layer slurries. On the other hand, Comparative Example 3 differs from Example 1 in that both the first electrode material layer slurry and the second electrode material layer slurry are continuously applied.

[0119] <Production process> First, a current collector made of copper foil was prepared, followed by preparation of slurries for electrode material layers (a slurry for a first electrode material layer and a slurry for a second electrode material layer).

[0120] Specifically, as in Example 1, the active material, binder, and conductive additive were weighed out in predetermined proportions to form the first electrode material layer slurry, and when mixed with a solvent, an active material that is relatively easy to crush in a constant-load press was used, and the solid content ratio in the slurry was adjusted to 60% by volume. The active material, binder, and conductive additive were weighed out in predetermined proportions to form the second electrode material layer slurry, and when mixed with a solvent, an active material that is relatively hard to crush in a constant-load press was used, and the solid content ratio in the slurry was adjusted to 45% by volume. In Comparative Example 3, a negative electrode active material was selected as the active material.

[0121] Thereafter, conditions were set in the multi-layer simultaneous coater so as to enable continuous coating of the first electrode material layer slurry onto the current collector and continuous coating of the second electrode material layer slurry onto the first electrode material layer slurry, and so as to achieve a coating thickness of 160 μm. After setting these conditions, continuous coating of the first electrode material layer slurry and continuous coating of the second electrode material layer slurry were simultaneously carried out using the multi-layer simultaneous coater.

[0122] In this way, an electrode precursor was formed, which contained two slurries for electrode material layers each having a different solid content ratio.

[0123] Thereafter, the electrode precursor was dried and pressed, and punched to form an electrode (negative electrode) having a current collector and an electrode material layer under the same conditions and method as in Example 1. Furthermore, under the same conditions and method as in Example 1, the steps of forming a counter electrode (positive electrode), forming an electrode assembly, housing the electrode assembly in an exterior body, and injecting an electrolyte into the exterior body were carried out, thereby finally producing a secondary battery (coin cell with a diameter of 20 mm and a thickness of 1.6 mm) equipped with an electrode including an electrode material layer composed of two regions of a laminated structure.

[0124] <Calculation / measurement details and results> The resulting electrode itself and a secondary battery equipped with the electrode were evaluated for (1) the porosity and void area ratio (%) of each of the two regions, (2) the discharge rate retention rate + discharge cycle retention rate (%), and (3) the electrolyte impregnation ability of the electrode under the same conditions and methods as in Example 1. The results are shown in Tables 2 and 3.

[0125] <Evaluation> As shown in Table 2, it was found that the porosity and void area ratio (%) of the first region of the electrode material layer of the electrode (negative electrode) were relatively close to the values ​​of the first region in Example 1. It was also found that the porosity and void area ratio (%) of the second region of the electrode material layer of the electrode (negative electrode) were approximately the same as the values ​​of the second region in Example 1. Under these conditions, as shown in Table 2, it was found that the discharge rate maintenance rate + discharge cycle maintenance rate (%) was below the specified standard of 70% compared to Examples 1 to 3. Furthermore, under these conditions, as shown in Table 3, the electrolyte penetration time in the electrode was 80 seconds, which was the longest, and was approximately 1.7 to 2.0 times longer than Examples 1 to 3. From the above, it was found that the electrolyte impregnation was the poorest.

[0126] Comparative Example 4 Comparative Example 4 is the same as Example 2 in that the first electrode material layer slurry and the second electrode material layer slurry of Example 2 are used as electrode material layer slurries. On the other hand, Comparative Example 4 differs from Example 2 in that both the first electrode material layer slurry and the second electrode material layer slurry are continuously applied.

[0127] <Production process> First, a current collector made of copper foil was prepared, followed by preparation of slurries for electrode material layers (a slurry for a first electrode material layer and a slurry for a second electrode material layer).

[0128] Specifically, as in Example 2, the active material, binder, and conductive additive were weighed out in predetermined proportions to form a slurry for the first electrode material layer, and the proportion of the binder was relatively high and the solid content in the slurry was adjusted to 60% by volume when mixed with a solvent. The active material, binder, and conductive additive were weighed out in predetermined proportions to form a slurry for the second electrode material layer, and the proportion of the binder was relatively low and the solid content in the slurry was adjusted to 45% by volume when mixed with a solvent. In Comparative Example 4, a negative electrode active material was selected as the active material.

[0129] Thereafter, conditions were set in the multi-layer simultaneous coater so as to enable continuous coating of the first electrode material layer slurry onto the current collector and continuous coating of the second electrode material layer slurry onto the first electrode material layer slurry, and so as to achieve a coating thickness of 140 μm. After setting these conditions, continuous coating of the first electrode material layer slurry and continuous coating of the second electrode material layer slurry were simultaneously carried out using the multi-layer simultaneous coater.

[0130] In this way, an electrode precursor was formed, which contained two slurries for electrode material layers each having a different solid content ratio.

[0131] Thereafter, the electrode precursor was dried and pressed, and punched to form an electrode (negative electrode) having a current collector and an electrode material layer under the same conditions and method as in Example 2. Furthermore, by going through the steps of forming a counter electrode (positive electrode), forming an electrode assembly, housing the electrode assembly in an exterior body, and injecting an electrolyte into the exterior body under the same conditions and method as in Example 2, a secondary battery (coin cell with a diameter of 20 mm and a thickness of 1.6 mm) equipped with an electrode including an electrode material layer composed of two regions of a laminated structure was finally produced.

[0132] <Calculation / measurement details and results> The resulting electrode itself and a secondary battery equipped with the electrode were evaluated for (1) the porosity of each of the two regions, (2) the discharge rate retention rate + discharge cycle retention rate (%), and (3) the electrolyte impregnation ability of the electrode under the same conditions and methods as in Example 2. The results are shown in Tables 2 and 3.

[0133] <Evaluation> As shown in Table 2, it was found that the porosity of the first region of the electrode material layer of the electrode (negative electrode) was approximately the same as that of the first region in Example 2. It was found that the porosity of the second region of the electrode (negative electrode) was slightly higher than that of the second region in Example 2. Under these conditions, as shown in Table 2, it was found that the discharge rate maintenance rate + discharge cycle maintenance rate (%) was below the specified standard of 70% compared to Examples 1 to 3. Furthermore, under these conditions, as shown in Table 3, the penetration time of the electrolyte solution into the electrode was approximately 1.4 to 1.7 times longer compared to Examples 1 to 3. From the above, it was found that the impregnation of the electrolyte solution was poor.

[0134] Comparative Example 5 Comparative Example 5 is the same as Example 3 in that the first electrode material layer slurry and the second electrode material layer slurry of Example 3 are used as electrode material layer slurries. On the other hand, Comparative Example 5 differs from Example 3 in that both the first electrode material layer slurry and the second electrode material layer slurry are continuously applied.

[0135] <Production process> First, a current collector made of copper foil was prepared, followed by preparation of slurries for electrode material layers (a slurry for a first electrode material layer and a slurry for a second electrode material layer).

[0136] Specifically, as in Example 3, the active material, binder, and conductive additive were weighed out in predetermined proportions to form a slurry for the first electrode material layer, and the proportion of the conductive additive was relatively increased to adjust the solid content ratio in the slurry to 60% by volume when mixed with a solvent. The active material, binder, and conductive additive were weighed out in predetermined proportions to form a slurry for the second electrode material layer, and the proportion of the conductive additive was relatively decreased to adjust the solid content ratio in the slurry to 50% by volume when mixed with a solvent. In Comparative Example 5, a negative electrode active material was selected as the active material.

[0137] Thereafter, conditions were set in the multi-layer simultaneous coater so as to enable continuous coating of the first electrode material layer slurry onto the current collector and continuous coating of the second electrode material layer slurry onto the first electrode material layer slurry, and so as to achieve a coating thickness of 140 μm. After setting these conditions, continuous coating of the first electrode material layer slurry and continuous coating of the second electrode material layer slurry were simultaneously carried out using the multi-layer simultaneous coater.

[0138] In this way, an electrode precursor was formed, which contained two slurries for electrode material layers each having a different solid content ratio.

[0139] Thereafter, the electrode precursor was dried and pressed, and punched to form an electrode (negative electrode) having a current collector and an electrode material layer, under the same conditions and method as in Example 3. Furthermore, by going through the steps of forming a counter electrode (positive electrode), forming an electrode assembly, housing the electrode assembly in an exterior body, and injecting an electrolyte into the exterior body under the same conditions and method as in Example 3, a secondary battery (coin cell with a diameter of 20 mm and a thickness of 1.6 mm) equipped with an electrode including an electrode material layer composed of two regions of a laminated structure was finally produced.

[0140] <Calculation / measurement details and results> The resulting electrode itself and a secondary battery equipped with the electrode were evaluated for (1) the porosity of each of the two regions, (2) the discharge rate retention rate + discharge cycle retention rate (%), and (3) the electrolyte impregnation ability of the electrode under the same conditions and methods as in Example 3. The results are shown in Tables 2 and 3.

[0141] <Evaluation> As shown in Table 2, it was found that the porosity of the first region of the electrode material layer of the electrode (negative electrode) was approximately the same as that of the first region in Example 3. It was found that the porosity of the second region of the electrode material layer of the electrode (negative electrode) was slightly higher than that of the second electrode material layer in Example 3. Under these conditions, as shown in Table 2, it was found that the discharge rate maintenance rate + discharge cycle maintenance rate (%) was approximately 60%, which was lower than the predetermined standard of 70% compared to Examples 1 to 3. Furthermore, under these conditions, as shown in Table 3, the penetration time of the electrolyte solution into the electrode was approximately 1.4 to 1.7 times longer compared to Examples 1 to 3. From the above, it was found that the impregnation of the electrolyte solution was poor.

[0142] Comparative Example 6 Comparative Example 6 is the same as Example 1 in that the first electrode material layer slurry and the second electrode material layer slurry of Example 1 are used as electrode material layer slurries, and in that the first electrode material layer slurry is intermittently applied and the second electrode material layer slurry is continuously applied. On the other hand, Comparative Example 6 differs from Example 1 in that the first electrode material layer slurry contains an active material that is relatively resistant to crushing, and the second electrode material layer slurry contains an active material that is relatively easy to crush.

[0143] <Production process> First, a current collector made of copper foil was prepared, followed by preparation of slurries for electrode material layers (a slurry for a first electrode material layer and a slurry for a second electrode material layer).

[0144] Specifically, the active material, binder, and conductive additive were weighed out in predetermined proportions to form the first electrode material layer slurry, and mixed with a solvent to form the slurry. By using an active material that is relatively hard to crush in a constant-load press, the solid content in the slurry was adjusted to 45% by volume. The active material, binder, and conductive additive were weighed out in predetermined proportions to form the second electrode material layer slurry, and mixed with a solvent to form the slurry. By using an active material that is relatively easy to crush in a constant-load press, the solid content in the slurry was adjusted to 60% by volume. In Comparative Example 6, a negative electrode active material was selected as the active material.

[0145] Thereafter, conditions were set in a multi-layer simultaneous coater to enable intermittent coating of the first electrode material layer slurry at a predetermined interval on the current collector and continuous coating of the second electrode material layer slurry onto the intermittently coated first electrode material layer slurry, and to achieve a coating thickness of 160 μm for the electrode material layer slurry. The intermittent coating conditions for the first electrode material layer slurry were set to a coating distance of 5 mm and an uncoated distance of 5 mm. After setting these conditions, the multi-layer simultaneous coater was used to simultaneously perform intermittent coating of the first electrode material layer slurry and continuous coating of the second electrode material layer slurry.

[0146] During continuous coating of the second electrode material layer slurry, the second electrode material layer slurry has a higher solids content than the first electrode material layer slurry, and combined with the effect of gravity, a relatively larger amount of solids may penetrate into the gaps located in the uncoated areas. Therefore, the volume ratio of the solids containing the active material in the electrode material layer slurry located in the uncoated areas may be relatively higher than the volume ratio of the solids containing the active material in the second electrode material layer slurry above the first electrode material layer slurry. Therefore, as described below, in Comparative Example 6, the porosity of the first region, the second region, and the third region of the electrode material layer of the final electrode may decrease in this order. As a result, an electrode precursor was formed containing three electrode material layer slurries with different solids content ratios.

[0147] After forming the electrode precursor, the electrode precursor was dried and then pressed to a predetermined electrode thickness. After pressing, the electrode precursor (corresponding to an electrode sheet) was punched out to a diameter of 16.5 mm. This resulted in the formation of an electrode (negative electrode) having an electrode material layer composed of three regions. Specifically, when the electrode (negative electrode) had an electrode material layer composed of three regions, the first region was provided on the current collector, the second region was provided on the first region, and the third region was provided on the current collector. Specifically, the third region was provided so that the second main surface of the electrode material layer (corresponding to the main surface opposite to the main surface directly facing the current collector) and the first region were connected to each other via this third region.

[0148] Thereafter, the electrode precursor was dried and pressed, and punched to form an electrode (negative electrode) having a current collector and an electrode material layer, under the same conditions and method as in Example 1. Furthermore, under the same conditions and method as in Example 1, the steps of forming a counter electrode (positive electrode), forming an electrode assembly, housing the electrode assembly in an exterior body, and injecting an electrolyte into the exterior body were carried out, thereby finally producing a secondary battery (coin cell with a diameter of 20 mm and a thickness of 1.6 mm) equipped with an electrode.

[0149] <Calculation / measurement details and results> The obtained electrode itself and a secondary battery equipped with the electrode were evaluated for (1) the porosity and void area ratio (%) of each region of the electrode material layer, (2) the discharge rate retention rate + discharge cycle retention rate (%), and (3) the electrolyte impregnation ability of the electrode under the same conditions and methods as in Example 1. The results are shown in Tables 2 and 3.

[0150] <Evaluation> As shown in Table 2, the magnitude relationship between the porosity and the area ratio (%) of the void portions of each region of the electrode material layer of the electrode (negative electrode) was opposite to that of Example 1. Specifically, in Example 1, the porosities of the first region, the second region, and the third region increased in this order. In contrast, in Comparative Example 6, the porosities of the first region, the second region, and the third region decreased in this order. Under these conditions, as shown in Table 2, the discharge rate retention was 53.8%, the lowest among Examples 1 to 7 described below. Furthermore, the discharge cycle retention (%) was approximately 60%, below the predetermined standard of 70% compared to Examples 1 to 3. Furthermore, under these conditions, as shown in Table 3, the electrolyte penetration time in the electrode was approximately 1.15 to 1.4 times longer compared to Examples 1 to 3. From the above, it was found that the electrolyte impregnation was poorer than in Examples 1 to 3.

[0151] Comparative Example 7 Like Comparative Example 6, Comparative Example 7 is the same as Example 1 in that the first electrode material layer slurry and the second electrode material layer slurry of Example 1 are used as electrode material layer slurries, and that the first electrode material layer slurry is intermittently coated and the second electrode material layer slurry is continuously coated. On the other hand, like Comparative Example 6, Comparative Example 7 differs from Example 1 in that the first electrode material layer slurry contains an active material that is relatively resistant to crushing, and the second electrode material layer slurry contains an active material that is relatively easy to crush. Furthermore, Comparative Example 7 differs from Comparative Example 6 only in that the solids ratio in the second electrode material layer slurry is 52.5% by volume instead of 60% by volume. Therefore, to avoid redundancy, a description of the <production process> will be omitted, and the following description will mainly focus on the <calculation / measurement details and results> and <evaluation>.

[0152] In Comparative Example 7, as in Comparative Example 6, the obtained electrode itself and a secondary battery including the electrode were evaluated for (1) the porosity and void area ratio (%) of each region of the electrode material layer, (2) the discharge rate retention rate + discharge cycle retention rate (%), and (3) the electrolyte impregnation ability of the electrode under the conditions and by the method described in Example 1. The results are shown in Tables 2 and 3.

[0153] <Evaluation> As shown in Table 2, the magnitude relationship between the porosity and the area ratio (%) of the void portion of each region of the electrode material layer of the electrode (negative electrode) was opposite to that of Example 1. Specifically, in Example 1, the porosities of the first region, the second region, and the third region increased in this order. In contrast, in Comparative Example 7, the porosities of the first region, the second region, and the third region decreased in this order. Under these conditions, as shown in Table 2, the discharge rate retention rate and discharge cycle retention rate (%) were found to be around 60%, below the predetermined standard of 70% compared to Examples 1 to 3. Furthermore, under these conditions, as shown in Table 3, the permeation time of the electrolyte solution in the electrode was about 1.4 to 1.7 times longer compared to Examples 1 to 3. From the above, it was found that the impregnation of the electrolyte solution was not as good as in Examples 1 to 3.

[0154] [Table 2] TIFF0007754190000002.tif24963

[0155] [Table 3] TIFF0007754190000003.tif8455 [Industrial Applicability]

[0156] The secondary battery according to one embodiment of the present invention can be used in various fields where power storage is expected. For example, the secondary battery according to one embodiment of the present invention, particularly the nonaqueous electrolyte secondary battery, can be used in the electrical, information, and communications fields where mobile devices are used (e.g., mobile devices such as mobile phones, smartphones, laptops, digital cameras, activity monitors, arm computers, and electronic paper), household and small industrial applications (e.g., power tools, golf carts, and household, nursing care, and industrial robots), large industrial applications (e.g., forklifts, elevators, and port cranes), transportation systems (e.g., hybrid cars, electric cars, buses, trains, electrically assisted bicycles, and electric motorcycles), power system applications (e.g., various power generation systems, road conditioners, smart grids, and general-purpose household power storage systems), medical applications (e.g., medical devices such as earphones and hearing aids), medical applications (e.g., medication management systems), IoT, and space and deep-sea applications (e.g., space probes and submersible research vessels). [Explanation of symbols]

[0157] 10, 10I electrode 10A, 10AI positive electrode 10B, 10BI negative electrode 11, 11I current collector 11A, 11AI positive electrode current collector 11B, 11BI Negative electrode current collector 12, 12I electrode material layer 12X, 12XI 1st area 12XIa Side of the First Region 12X' Slurry for first electrode material layer 12Y, 12YI, 12YI1, 12YI2, 12YI3 2nd area 12YIa Side of the second region 12Y' Slurry for second electrode material layer 12Z, 12ZI, 12ZI1, 12ZI2, 12ZI3 3rd area 12Z' Slurry for the third electrode material layer formed in the uncoated area 12A, 12AI positive electrode material layer 12B, 12BI negative electrode material layer 12a: First main surface of electrode material layer 12b Second main surface of electrode material layer 12α inner region of the electrode material layer 12β Edge region of electrode material layer 20, 20I electrolyte 30, 30I Exterior body 50, 50I separator 60 Uncoated area 100, 100I electrode assembly 500, 500I secondary battery

Claims

1. A current collector; an electrode material layer provided on the current collector; Equipped with the electrode material layer includes a first region, a second region, and a third region; the first region and the third region are provided on the current collector; the second region is disposed on at least the first region; and the porosity of the first region is greatest, the porosity of the second region is greatest, and the porosity of the third region is greatest in this order; an electrode for a secondary battery, wherein the electrode material layer has a first main surface directly facing the current collector and a second main surface opposite the first main surface, and the third region is provided such that, in a cross-sectional view of the electrode, the second main surface of the electrode material layer and the first region are connected to each other via the third region.

2. The electrode for a secondary battery according to claim 1 , wherein the first region and the third region are adjacent to each other.

3. The electrode for a secondary battery according to claim 1 , wherein the third region is located on two or more sides of the first region located at a predetermined location.

4. 2. The electrode for a secondary battery according to claim 1, wherein two or more third regions are provided on the current collector at predetermined intervals.

5. two or more first regions are provided on the current collector at predetermined intervals, The electrode for a secondary battery according to claim 1 , wherein the third region is provided so as to fill a gap between one of the first regions and the other of the first regions that are adjacent to each other.

6. 2. The electrode for a secondary battery according to claim 1, wherein the electrode material layer has a first main surface directly facing the current collector and a second main surface opposite to the first main surface, and in a plan view of the electrode, the second region and the third region of the electrode material layer form part of the second main surface of the electrode material layer.

7. 2. The electrode for a secondary battery according to claim 1, wherein the third region is provided on the current collector so as to extend from a first main surface of the electrode material layer that directly faces the current collector to a second main surface that is opposite to the first main surface, in a cross-sectional view of the electrode.

8. 2. The electrode for a secondary battery according to claim 1, wherein the first region and the second region of the electrode material layer form a laminate, and in a cross-sectional view of the electrode, the third region extends so as to contact the laminate.

9. 9. The electrode for a secondary battery according to claim 8, wherein two or more of the laminates are provided at a predetermined interval, and the third region is provided so as to fill the gap between one of the laminates and the other of the laminates adjacent to each other.

10. The electrode for a secondary battery according to claim 9 , wherein the third region is provided in a striped pattern in a plan view of the electrode.

11. 2. The electrode for a secondary battery according to claim 1, wherein, when the electrode material layer has more than three regions, the porosity of the first region is the smallest, while the porosity of the third region is the largest.

12. 2. The electrode for a secondary battery according to claim 1, which is capable of absorbing and releasing lithium ions.

13. A secondary battery comprising the electrode for secondary batteries according to any one of claims 1 to 12.

14. A method for producing an electrode for a secondary battery according to claim 1, comprising: (i) providing a current collector; (ii) providing a slurry for an electrode material layer on the current collector to form an electrode precursor; (iii) drying and pressing the electrode precursor; Including, the step (ii) comprising intermittently applying at least two first electrode material layer slurries at predetermined intervals, and continuously applying, onto the at least two first electrode material layer slurries, a second electrode material layer slurry having a volume ratio of solids containing an active material that is relatively smaller than that of the first electrode material layer slurry.

15. The manufacturing method according to claim 14 , wherein, during the continuous coating, a part of the slurry for the second electrode material layer is allowed to penetrate into uncoated portions between the slurry for the first electrode material layer.

16. 16. The manufacturing method according to claim 15, wherein a volume ratio of solids containing an active material in the electrode material layer slurry located in the uncoated portion is made relatively smaller than a volume ratio of solids containing an active material in the second electrode material layer slurry on the first electrode material layer slurry.

Citation Information

Patent Citations

  • Nonaqueous secondary battery, electrode, method of manufacturing nonaqueous secondary battery, and method of manufacturing electrode

    JP2007214038A

  • Lithium secondary battery, and manufacturing method therefor

    JP2011175739A

  • Electrode for battery

    JP2013051209A

  • Negative electrode for lithium ion secondary battery, lithium ion secondary battery with negative electrode for lithium ion secondary battery, and manufacturing method thereof

    JP2013251213A

  • Electrode for lithium ion secondary battery and lithium ion secondary battery

    JP2016058247A