Battery and method for manufacturing the battery

The battery design with protruding electrode layers and insulating members addresses the challenge of short circuits in thin cells, achieving high capacity and reliability by preventing short circuits.

JP7748657B2Active Publication Date: 2025-10-03PANASONIC INTELLECTUAL PROPERTY MANAGEMENT CO LTD
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Patent Information

Application Number
JP2022581228
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-02-15
Filing Date
2021-12-23
Publication Date
2025-10-03
Estimated Expiration
2041-12-23

AI Technical Summary

Technical Problem

Batteries face a challenge in achieving high capacity density while maintaining reliability, as thinner unit cells are prone to short circuits at their end faces.

Method used

A battery design with unit cells stacked in parallel, where positive and negative electrode layers protrude beyond each other's end faces, with insulating and conductive members covering these protrusions to prevent short circuits, allowing for electrical connections.

Benefits of technology

This design achieves both high capacity density and high reliability by effectively preventing short circuits, enabling thinner unit cells with improved electrical connections.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

This battery (1) is provided with an electric power generation element (10) which comprises a plurality of unit cells (100). The plurality of unit cells (100) are electrically connected in parallel, while being stacked in the normal direction of the main surface. A lateral surface (13) is provided with a recess (13a) and a projection (13b) by having each positive electrode layer (120) protrude beyond each negative electrode layer (110). A lateral surface (14) is provided with a recess (14a) and a projection (14b) by having each negative electrode layer (110) protrude beyond each positive electrode layer (120). The recess (13a) includes an inclined surface, which is an end surface (110a) of the negative electrode layer (110). The recess (14a) includes an inclined surface, which is an end surface (120a) of the positive electrode layer (120). This battery (1) is additionally provided with: an insulating member (21) which is arranged in the recess (13a); an insulating member (22) which is arranged in the recess (14a); a conductive member (31) which is in contact with the projection (13b); and a conductive member (32) which is in contact with the projection (14b).
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Description

[Technical Field]

[0001] The present disclosure relates to batteries and methods for manufacturing batteries. [Background technology]

[0002] BACKGROUND ART Batteries in which a current collector and an active material layer are stacked have been known (see, for example, Patent Documents 1 to 3).

[0003] For example, Patent Document 1 discloses a secondary battery in which multiple units each having a current collector serving as a positive electrode, a separator, and a current collector serving as a negative electrode are stacked together. This configuration aims to increase the capacity of the secondary battery. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2015-233003 [Patent Document 2] Japanese Patent Application Laid-Open No. 2009-16188 [Patent Document 3] International Publication No. 2019 / 039412 Summary of the Invention [Problem to be solved by the invention]

[0005] In order to increase the capacity density of a battery, it is necessary to make the unit cell thinner. However, as the thickness of the unit cell decreases, short circuits tend to occur at the end faces of the unit cell, which reduces the reliability of the battery.

[0006] Therefore, the present disclosure provides a battery and a method for manufacturing the battery that can achieve both high capacity density and high reliability. [Means for solving the problem]

[0007] A battery according to one aspect of the present disclosure is a battery including a power generating element including a plurality of unit cells each having a positive electrode layer, a negative electrode layer, and a solid electrolyte layer located between the positive electrode layer and the negative electrode layer, wherein the plurality of unit cells are electrically connected in parallel and stacked in a direction normal to a principal surface, the power generating element having a first side surface and a second side surface, wherein the positive electrode layer of each of the plurality of unit cells protrudes beyond the negative electrode layer of each of the plurality of unit cells on the first side surface, thereby forming first recesses and first protrusions that are alternately arranged along the direction normal to the principal surface, and the negative electrode layer of each of the plurality of unit cells protrudes beyond the positive electrode layer of each of the plurality of unit cells on the second side surface, thereby forming first recesses and first protrusions that are alternately arranged along the direction normal to the principal surface. the first recess includes a first inclined surface that is an end face of the negative electrode layer and inclined with respect to the normal direction of the principal surface, and the second recess includes a second inclined surface that is an end face of the positive electrode layer and inclined with respect to the normal direction of the principal surface; the battery further includes a first insulating member disposed in the first recess, a second insulating member disposed in the second recess, a first conductive member in contact with the first convex portion, and a second conductive member in contact with the second convex portion, and the positive electrode layer of each of the plurality of unit cells is electrically connected via the first conductive member, and the negative electrode layer of each of the plurality of unit cells is electrically connected via the second conductive member.

[0008] A method for manufacturing a battery according to one aspect of the present disclosure includes a first step of preparing a plurality of unit cells each having a positive electrode layer, a negative electrode layer, and a solid electrolyte layer located between the positive electrode layer and the negative electrode layer, wherein a first inclined surface inclined with respect to a normal to a principal surface is provided on the end surface of the negative electrode layer at a first end surface of each of the plurality of unit cells, so that the positive electrode layer protrudes beyond the negative electrode layer, and a second inclined surface inclined with respect to the normal to the principal surface is provided on the end surface of the positive electrode layer at a second end surface of each of the plurality of unit cells, so that the negative electrode layer protrudes beyond the positive electrode layer. The method for manufacturing a battery further includes a second step of stacking the plurality of unit cells in a direction normal to the principal surfaces by arranging the positive electrode layers or the negative electrode layers facing each other and aligning protruding portions of the positive electrode layers and protruding portions of the negative electrode layers; a third step of arranging a first insulating member to cover the first inclined surface and a second insulating member to cover the second inclined surface; and a fourth step of arranging a first conductive member that electrically connects the protruding portions of the positive electrode layers and a second conductive member that electrically connects the protruding portions of the negative electrode layers. [Effects of the Invention]

[0009] The battery according to the present disclosure can achieve both high capacity density and high reliability. [Brief explanation of the drawings]

[0010] [Figure 1] FIG. 1 is a cross-sectional view showing the cross-sectional structure of a battery according to a first embodiment. [Figure 2] FIG. 2 is a plan view of the power generating element of the battery according to the first embodiment. [Figure 3A] FIG. 3A is a cross-sectional view showing a cross-sectional configuration of a first example of a unit cell included in the power generating element according to the first embodiment. [Figure 3B] FIG. 3B is a cross-sectional view showing a cross-sectional configuration of a second example of a unit cell included in the power generating element according to embodiment 1. As shown in FIG. [Figure 3C] FIG. 3C is a cross-sectional view showing a cross-sectional configuration of a third example of a unit cell included in the power generating element according to the first embodiment. [Figure 4A] FIG. 4A is a cross-sectional view showing the cross-sectional configuration of the power generating element according to the first embodiment. [Figure 4B] FIG. 4B is a cross-sectional view showing a cross-sectional configuration of a modified example of the power generating element according to embodiment 1. As shown in FIG. [Figure 5] FIG. 5 is a cross-sectional view showing a cross-sectional configuration of a modified example of the insulating member according to the first embodiment. [Figure 6] FIG. 6 is a cross-sectional view showing a cross-sectional configuration of another modified example of the insulating member according to the first embodiment. [Figure 7A] FIG. 7A is a flowchart showing an example of a method for manufacturing the battery according to embodiment 1. [Figure 7B] FIG. 7B is a flowchart showing another example of the method for manufacturing the battery according to embodiment 1. [Figure 8] FIG. 8 is a cross-sectional view showing a cross-sectional configuration of a battery according to the second embodiment. [Figure 9A] FIG. 9A is a flowchart showing an example of a method for manufacturing a battery according to the second embodiment. [Figure 9B] FIG. 9B is a flowchart showing an example of a method for manufacturing a battery according to the second embodiment. [Figure 10] FIG. 10 is a cross-sectional view showing a cross-sectional configuration of a battery according to the third embodiment. [Figure 11] FIG. 11 is a cross-sectional view showing a cross-sectional configuration of a battery according to the fourth embodiment. [Figure 12] FIG. 12 is a cross-sectional view showing a cross-sectional configuration of a battery according to the fifth embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0011] (Summary of the Disclosure) A battery according to one aspect of the present disclosure is a battery including a power generating element including a plurality of unit cells each having a positive electrode layer, a negative electrode layer, and a solid electrolyte layer located between the positive electrode layer and the negative electrode layer, wherein the plurality of unit cells are electrically connected in parallel and stacked in a direction normal to a principal surface, the power generating element having a first side surface and a second side surface, wherein the positive electrode layer of each of the plurality of unit cells protrudes beyond the negative electrode layer of each of the plurality of unit cells on the first side surface, thereby forming first recesses and first protrusions that are alternately arranged along the direction normal to the principal surface, and the negative electrode layer of each of the plurality of unit cells protrudes beyond the positive electrode layer of each of the plurality of unit cells on the second side surface, thereby forming first recesses and first protrusions that are alternately arranged along the direction normal to the principal surface. the first recess includes a first inclined surface that is an end face of the negative electrode layer and inclined with respect to the normal direction of the principal surface, and the second recess includes a second inclined surface that is an end face of the positive electrode layer and inclined with respect to the normal direction of the principal surface; the battery further includes a first insulating member disposed in the first recess, a second insulating member disposed in the second recess, a first conductive member in contact with the first convex portion, and a second conductive member in contact with the second convex portion, and the positive electrode layer of each of the plurality of unit cells is electrically connected via the first conductive member, and the negative electrode layer of each of the plurality of unit cells is electrically connected via the second conductive member.

[0012] As a result, the end face of the negative electrode layer is an inclined surface, so that the positive electrode layer can protrude from a first side surface of the power generating element, which is a stack of unit cells. On the first side surface, the end face of the negative electrode layer is covered by the first insulating member arranged in the first recess. Therefore, when first protrusions including the end faces of the positive electrode layer are electrically connected to each other, it is possible to suppress the occurrence of a short circuit between the positive electrode layer and the negative electrode layer. Similarly, the end face of the positive electrode layer is an inclined surface, so that the negative electrode layer can protrude from a second side surface of the power generating element, which is a stack of unit cells. On the second side surface, the end face of the positive electrode layer is covered by the second insulating member arranged in the second recess. Therefore, when second protrusions including the end faces of the negative electrode layer are electrically connected to each other, it is possible to suppress the occurrence of a short circuit between the positive electrode layer and the negative electrode layer. Suppressing the occurrence of a short circuit allows the unit cells to be made thinner, thereby achieving both high capacity density and high reliability.

[0013] Furthermore, for example, the first conductive member may cover the first insulating member, and the second conductive member may cover the second insulating member.

[0014] This allows the positive electrode layers to be easily electrically connected to each other by the first conductive member so as to straddle the first insulating member. Similarly, the negative electrode layers to be easily electrically connected to each other by the second conductive member so as to straddle the second insulating member. This improves the reliability of the connection between the positive electrode layers and the first conductive member, and the connection between the negative electrode layers and the second conductive member.

[0015] Furthermore, for example, the first convex portion may include a third inclined surface that is inclined along the normal direction to the principal surface and is at least a part of the end surface of the positive electrode layer, and the second convex portion may include a fourth inclined surface that is inclined along the normal direction to the principal surface and is at least a part of the end surface of the negative electrode layer.

[0016] This allows the end face of the positive electrode layer included in the first convex portion to be separated from the end face of the negative electrode layer included in the first concave portion. Similarly, the end face of the negative electrode layer included in the second convex portion to be separated from the end face of the positive electrode layer included in the second concave portion. This further reduces the risk of short-circuiting between the positive electrode layer and the negative electrode layer, further improving the reliability of the battery.

[0017] Furthermore, for example, the first inclined surface, the third inclined surface, and a portion of the end surface of the solid electrolyte layer may be flush with each other, and the second inclined surface, the fourth inclined surface, and a portion of the end surface of the solid electrolyte layer may be flush with each other.

[0018] This allows the end face of the positive electrode layer included in the first convex portion to be spaced farther from the end face of the negative electrode layer included in the first concave portion. Similarly, the end face of the negative electrode layer included in the second convex portion to be spaced farther from the end face of the positive electrode layer included in the second concave portion. This further suppresses the occurrence of a short circuit between the positive electrode layer and the negative electrode layer. In addition, the end faces of the positive electrode layer, the solid electrolyte layer, and the negative electrode layer can be collectively beveled.

[0019] Furthermore, for example, the first convex portion may include a first flat surface that is at least a part of the end surface of the positive electrode layer and is parallel to the normal direction of the principal surface, and the second convex portion may include a second flat surface that is at least a part of the end surface of the negative electrode layer and is parallel to the normal direction of the principal surface.

[0020] This allows for good contact between the flat surface that is at least a part of the end face of the positive electrode layer and the first conductive member, thereby reducing the connection resistance between the positive electrode layer and the first conductive member and improving reliability.Similarly, this allows for good contact between the flat surface that is at least a part of the end face of the negative electrode layer and the second conductive member, thereby reducing the connection resistance between the negative electrode layer and the second conductive member and improving reliability.

[0021] Furthermore, for example, the first insulating member may have a side surface flush with the first flat surface, and the second insulating member may have a side surface flush with the second flat surface.

[0022] As a result, there is no step between the positive electrode layer and the first insulating member, so the positive electrode layers can be tightly covered with the first conductive member so as to straddle the first insulating member, thereby improving contact between the multiple positive electrode layers and the first conductive member. Similarly, there is no step between the negative electrode layer and the second insulating member, so the negative electrode layers can be tightly covered with the second conductive member so as to straddle the second insulating member, thereby improving contact between the multiple negative electrode layers and the second conductive member.

[0023] Furthermore, for example, the positive electrode layer of each of the plurality of unit cells may include a positive electrode current collector and a positive electrode active material layer disposed on a main surface of the positive electrode current collector facing the negative electrode layer, and the negative electrode layer of each of the plurality of unit cells may include a negative electrode current collector and a negative electrode active material layer disposed on a main surface of the negative electrode current collector facing the positive electrode layer.

[0024] This makes it possible to easily form a power generating element consisting of a laminate in which a positive electrode layer protrudes from a first side surface and a negative electrode layer protrudes from a second side surface by stacking multiple unit cells having the same configuration, alternating between front and back sides.

[0025] Furthermore, for example, in the plurality of unit cells, two adjacent positive electrode layers may share the positive electrode current collector, and in the plurality of unit cells, two adjacent negative electrode layers may share the negative electrode current collector.

[0026] This allows the number of current collectors to be reduced, and the capacity density of the battery to be further increased.

[0027] Furthermore, for example, at least one of the first conductive member and the second conductive member may have a multi-layer structure.

[0028] This allows each layer of the multilayer structure to have a different function. For example, a conductive material with low connection resistance can be used for the innermost layer that contacts the positive electrode layer or the negative electrode layer, and a conductive material with high durability can be used for the outermost layer. This improves the reliability of the battery.

[0029] Furthermore, for example, the outermost layer of the multilayer structure may be a plating layer or a solder layer.

[0030] This makes it possible to achieve low resistance, high heat resistance, high durability, and the like in the outermost layer.

[0031] Furthermore, for example, the battery according to one aspect of the present disclosure may further include a sealing member that exposes a portion of each of the first conductive member and the second conductive member and seals the power generating element.

[0032] This makes it possible to protect the power generating element from external factors such as moisture and impact, thereby improving the reliability of the battery.

[0033] Furthermore, for example, at least one of the first insulating member and the second insulating member may include a gap.

[0034] This allows the voids to alleviate stress that occurs when the power generating element expands or contracts due to heat generated during battery use, thereby suppressing damage to the power generating element and improving the reliability of the battery.

[0035] Furthermore, for example, the first side surface and the second side surface may be surfaces facing back to back with each other.

[0036] This allows the end face of the positive electrode layer included in the first protrusion to be separated from the end face of the negative electrode layer included in the second protrusion, thereby making it possible to suppress the occurrence of a short circuit.

[0037] A method for manufacturing a battery according to an aspect of the present disclosure includes a first step of preparing a plurality of unit cells each having a positive electrode layer, a negative electrode layer, and a solid electrolyte layer located between the positive electrode layer and the negative electrode layer, wherein a first inclined surface inclined with respect to a normal to a principal surface is provided on the end surface of the negative electrode layer at a first end surface of each of the plurality of unit cells, so that the positive electrode layer protrudes beyond the negative electrode layer, and a second inclined surface inclined with respect to the normal to the principal surface is provided on the end surface of the positive electrode layer at a second end surface of each of the plurality of unit cells, so that the negative electrode layer protrudes beyond the positive electrode layer. The method for manufacturing a battery further includes a second step of stacking the plurality of unit cells in a direction normal to the principal surface by arranging the positive electrode layers or the negative electrode layers facing each other and aligning protruding portions of the positive electrode layers and protruding portions of the negative electrode layers; a third step of arranging a first insulating member to cover the first inclined surface and a second insulating member to cover the second inclined surface; and a fourth step of arranging a first conductive member that electrically connects the protruding portions of the positive electrode layers and a second conductive member that electrically connects the protruding portions of the negative electrode layers.

[0038] This makes it possible to manufacture a battery that has both high capacity density and high reliability.

[0039] Specifically, by stacking unit cells in which at least a portion of the end face is inclined, a power generating element having a first side surface from which a positive electrode layer protrudes and a second side surface from which a negative electrode layer protrudes can be formed. By disposing an insulating member in the recesses of each of the first and second side surfaces, the protruding positive electrode layer and the negative electrode layer can be insulated from each other on the first side surface, and the protruding negative electrode layer and the positive electrode layer can be insulated from each other on the second side surface. In this state, by disposing a conductive member on each of the first and second side surfaces, the protruding positive electrode layers can be electrically connected together, and the protruding negative electrode layers can be electrically connected together. This enables current collection from each of multiple unit cells connected in parallel. Since no current collecting tabs are required, a significant decrease in capacity density is suppressed, and a highly reliable battery can be obtained.

[0040] Also, for example, the third step may be performed after the second step.

[0041] This allows the first insulating members and the second insulating members to be disposed simultaneously in the plurality of first recesses and the plurality of second recesses, respectively, thereby reducing the time required for the process.

[0042] Also, for example, the second step may be performed after the third step.

[0043] This allows the first insulating member and the second insulating member to be individually and accurately positioned for each unit cell, thereby more effectively suppressing the occurrence of short circuits between the positive electrode layer and the negative electrode layer.

[0044] Furthermore, for example, in the first step, the first end face and the second end face of each of the plurality of unit cells may be processed to prepare the plurality of unit cells each having the first inclined surface and the second inclined surface.

[0045] This makes it possible to form an inclined surface of a desired shape, and to adjust the amount of protrusion of the positive electrode layer or negative electrode layer.

[0046] Furthermore, for example, the processing in the first step may be performed by shear cutting, score cutting, razor cutting, ultrasonic cutting, laser cutting, jet cutting, or polishing.

[0047] This allows the end surface to be easily processed.

[0048] Furthermore, for example, in the processing in the first step, the end faces of the negative electrode layer, the solid electrolyte layer, and the positive electrode layer may be collectively inclined at an angle with respect to the normal direction to the principal surface at each of the first end face and the second end face.

[0049] This allows the end faces of the unit cells to be processed all at once, thereby shortening the time required for the process.

[0050] Furthermore, for example, after the second step and the third step are performed and before the fourth step is performed, the protruding portion of the positive electrode layer and the first insulating member may be flattened, and the protruding portion of the negative electrode layer and the second insulating member may be flattened.

[0051] This allows the conductive member to be disposed on a flat surface in the fourth step, thereby reducing the connection resistance between each of the positive electrode layer and the negative electrode layer and the conductive member, and improving reliability.

[0052] Hereinafter, the embodiments will be specifically described with reference to the drawings.

[0053] The embodiments described below are all comprehensive or specific examples. The numerical values, shapes, materials, components, component placement and connection configurations, steps, and step order shown in the following embodiments are merely examples and are not intended to limit the present disclosure. Furthermore, among the components in the following embodiments, components not described in the independent claims are described as optional components.

[0054] Furthermore, each figure is a schematic diagram and is not necessarily an exact illustration. Therefore, for example, the scales of the figures do not necessarily match. Furthermore, in each figure, substantially the same components are given the same reference numerals, and redundant explanations are omitted or simplified.

[0055] Furthermore, in this specification, terms indicating the relationship between elements, such as parallel or perpendicular, terms indicating the shape of elements, such as rectangular or circular, and numerical ranges are not expressions that only express a strict meaning, but are expressions that also include a substantially equivalent range, for example, a difference of about a few percent.

[0056] In this specification and drawings, the x-axis, y-axis, and z-axis refer to the three axes of a three-dimensional Cartesian coordinate system. When the shape of the power generating element of a battery in a plan view is rectangular, the x-axis and y-axis are directions parallel to the first side of the rectangle and the second side perpendicular to the first side, respectively. The z-axis is the stacking direction of the multiple unit cells included in the power generating element. In this specification, the "stacking direction" coincides with the direction normal to the main surfaces of the current collector and active material layer. In this specification, the term "plan view" refers to a view perpendicular to the main surface, unless otherwise specified.

[0057] Furthermore, in this specification, the terms "upper" and "lower" do not refer to the upward direction (vertically upward) and downward direction (vertically downward) in absolute spatial recognition, but are used as terms defined by a relative positional relationship based on the stacking order in a stacked configuration. Furthermore, the terms "upper" and "lower" are used not only when two components are arranged with a gap between them and another component is present between them, but also when two components are arranged closely together and are in contact with each other. In the following description, the negative side of the z axis is referred to as "lower" or "lower side," and the positive side of the z axis is referred to as "upper" or "upper side."

[0058] Furthermore, in this specification, unless otherwise specified, "protruding" means protruding outward from the center of the unit cell in a cross-sectional view perpendicular to the main surface of the unit cell. "Element A protrudes from element B" means that the tip of element A protrudes further from the tip of element B in the protruding direction, i.e., the tip of element A is farther from the center of the unit cell than the tip of element B. The "protruding direction" is considered to be a direction parallel to the main surface of the unit cell. Furthermore, "protruding portion of element A" means a part of element A that protrudes further from the tip of element B in the protruding direction. Examples of elements include an electrode layer, an active material layer, a solid electrolyte layer, and a current collector.

[0059] Furthermore, in this specification, ordinal numbers such as "first" and "second" do not refer to the number or order of components unless otherwise specified, but are used to avoid confusion between and distinguish between components of the same type.

[0060] (Embodiment 1) [1. Overview] First, an outline of the battery according to the first embodiment will be described with reference to FIGS.

[0061] Fig. 1 is a cross-sectional view showing the cross-sectional configuration of a battery 1 according to this embodiment. Fig. 2 is a plan view of a power generating element 10 of the battery 1 according to this embodiment. Specifically, Fig. 1 shows a cross section taken along line II shown in Fig. 2.

[0062] As shown in Fig. 1, a battery 1 according to this embodiment includes a power generating element 10 including a plurality of plate-shaped unit cells 100. The plurality of unit cells 100 are electrically connected in parallel and stacked in the direction normal to their principal surfaces. The battery 1 is, for example, an all-solid-state battery. The battery 1 further includes insulating members 21 and 22 and conductive members 31 and 32.

[0063] 1, the power generating element 10 includes eight unit cells 100. The number of unit cells 100 included in the power generating element 10 may be more than one, for example, two, three or more, or four or more.

[0064] The shape of the power generating element 10 in plan view is rectangular as shown in Fig. 2, but is not limited to this. The shape of the power generating element 10 in plan view may be a polygon such as a square, hexagon, or octagon, or may be a circle or an ellipse.

[0065] As shown in Fig. 1, the power generating element 10 has main surfaces 11 and 12. The main surfaces 11 and 12 are back-to-back and parallel to each other. The direction perpendicular to the main surface 11 or 12 is the normal direction to the main surfaces, which is the z-axis direction in the drawing. Note that in cross-sectional views such as Fig. 1, the thickness of each layer is exaggerated to make the layer structure of the power generating element 10 easier to understand.

[0066] As shown in FIG. 2, the power generating element 10 has side surfaces 13 and 14 facing back to back, and side surfaces 15 and 16 facing back to back.

[0067] The side surface 13 is an example of a first side surface, and as shown in FIG. 1 , has recesses 13a and protrusions 13b arranged alternately along the normal to the principal surface. On the side surface 13, the positive electrode layer 120 of each of the unit cells 100 protrudes beyond the negative electrode layer 110. Specifically, the end face of the negative electrode layer 110 is an inclined surface inclined with respect to the normal to the principal surface, causing the positive electrode layer 120 to protrude beyond the negative electrode layer 110. The recesses 13a include the inclined surfaces that are the end faces of the negative electrode layers 110. An insulating member 21 is disposed in the recesses 13a of the side surface 13. A conductive member 31 is disposed to cover the protrusions 13b of the side surface 13. The conductive member 31 corresponds to a positive electrode extraction electrode of the power generating element 10.

[0068] The side surface 14 is an example of a second side surface, and has recesses 14a and protrusions 14b arranged alternately along the normal to the principal surface. On the side surface 14, the negative electrode layer 110 of each of the unit cells 100 protrudes beyond the positive electrode layer 120. Specifically, the end face of the positive electrode layer 120 is an inclined surface inclined with respect to the normal to the principal surface, causing the negative electrode layer 110 to protrude beyond the positive electrode layer 120. The recesses 14a include the inclined surfaces that are the end faces of the positive electrode layers 120. An insulating member 22 is disposed in the recesses 14a of the side surface 14. A conductive member 32 is disposed to cover the protrusions 14b of the side surface 14. The conductive member 32 corresponds to the negative electrode extraction electrode of the power generating element 10.

[0069] 2 are planes parallel to each other. Sides 15 and 16 are surfaces that include the long sides of the rectangle of power generating element 10 in a plan view. In this embodiment, current is extracted from each of side surfaces 13 and 14 of power generating element 10. Therefore, the distance between side surface 13 and side surface 14 can be increased, and conductive members 31 and 32 can be spaced far apart, thereby suppressing the occurrence of short circuits.

[0070] As described above, on the side surface 13, the negative electrode layer 110 of each of the unit cells 100 is covered with the insulating member 21, and the positive electrode layer 120 of each of the unit cells 100 protrudes from the negative electrode layer 110. Therefore, the positive electrode layers 120 can be easily electrically connected to each other via the conductive member 31.

[0071] Similarly, on the side surface 14, the positive electrode layer 120 of each of the unit cells 100 is covered with the insulating member 22, and the negative electrode layer 110 of each of the unit cells 100 protrudes beyond the positive electrode layer 120. Therefore, the negative electrode layers 110 can be easily electrically connected to each other via the conductive member 32.

[0072] The above configuration can suppress the occurrence of short circuits between the negative electrode layer 110 and the positive electrode layer 120 on each of the side surfaces 13 and 14. Suppressing the occurrence of short circuits allows the unit cell 100 to be made thinner, thereby realizing a battery 1 that achieves both high capacity density and high reliability.

[0073] [2. Unit cell configuration] Next, the configuration of the unit cell 100 will be described with reference to FIG.

[0074] 1 , each of the plurality of unit cells 100 includes an anode layer 110, a cathode layer 120, and a solid electrolyte layer 130 located between the anode layer 110 and the cathode layer 120. The anode layer 110 includes an anode current collector 111 and an anode active material layer 112. The cathode layer 120 includes a cathode current collector 121 and a cathode active material layer 122. In each of the plurality of unit cells 100, the anode current collector 111, the anode active material layer 112, the solid electrolyte layer 130, the cathode active material layer 122, and the cathode current collector 121 are stacked in this order in the direction normal to the principal surface.

[0075] The configurations of the multiple unit cells 100 are substantially identical to one another. The order of the layers is reversed between two adjacent unit cells 100. For example, in FIG. 1 , the bottommost unit cell 100 is stacked in the following order toward the positive side of the z axis: a positive electrode current collector 121, a positive electrode active material layer 122, a solid electrolyte layer 130, a negative electrode active material layer 112, and a negative electrode current collector 111. In contrast, the unit cell 100 immediately above the bottommost unit cell 100 is stacked in the following order: a negative electrode current collector 111, a negative electrode active material layer 112, a solid electrolyte layer 130, a positive electrode active material layer 122, and a positive electrode current collector 121.

[0076] In this embodiment, two adjacent unit cells 100 share either the negative electrode current collector 111 or the positive electrode current collector 121. For example, the bottommost unit cell 100 and the unit cell 100 immediately above it share the negative electrode current collector 111.

[0077] 1, in a plurality of unit cells 100, two adjacent negative electrode layers 110 share a mutual negative electrode current collector 111. Negative electrode active material layers 112 are provided on both main surfaces of the shared negative electrode current collector 111. An end face of the shared negative electrode current collector 111 is flush with one end face of each of the two adjacent negative electrode active material layers 112.

[0078] Furthermore, two adjacent positive electrode layers 120 share a common positive electrode current collector 121. Positive electrode active material layers 122 are provided on both main surfaces of the shared positive electrode current collector 121. An end face of the shared positive electrode current collector 121 is flush with one end face of each of the two adjacent positive electrode active material layers 122.

[0079] The negative electrode current collector 111 and the positive electrode current collector 121 are each a conductive foil-like, plate-like, or mesh-like member. The negative electrode current collector 111 and the positive electrode current collector 121 may each be, for example, a conductive thin film. The negative electrode current collector 111 and the positive electrode current collector 121 may be made of a material such as stainless steel (SUS), aluminum (Al), copper (Cu), or nickel (Ni). The negative electrode current collector 111 and the positive electrode current collector 121 may be made of different materials.

[0080] The thickness of each of the negative electrode current collector 111 and the positive electrode current collector 121 is, for example, but not limited to, 5 μm or more and 100 μm or less. The negative electrode active material layer 112 is in contact with a main surface of the negative electrode current collector 111. The negative electrode current collector 111 may include a current collector layer that is a layer containing a conductive material and is provided in a portion that is in contact with the negative electrode active material layer 112. The positive electrode current collector 121 is in contact with a main surface of the positive electrode active material layer 122. The positive electrode current collector 121 may include a current collector layer that is a layer containing a conductive material and is provided in a portion that is in contact with the positive electrode active material layer 122.

[0081] The negative electrode active material layer 112 is disposed on the main surface of the negative electrode current collector 111 facing the positive electrode layer 120. The negative electrode active material layer 112 contains, for example, a negative electrode active material as an electrode material. The negative electrode active material layer 112 is disposed opposite the positive electrode active material layer 122.

[0082] The negative electrode active material contained in the negative electrode active material layer 112 may be, for example, graphite, metallic lithium, or the like. As the material for the negative electrode active material, various materials capable of extracting and inserting ions such as lithium (Li) or magnesium (Mg) may be used.

[0083] The material contained in the negative electrode active material layer 112 may be, for example, a solid electrolyte such as an inorganic solid electrolyte. Examples of inorganic solid electrolytes that can be used include sulfide solid electrolytes and oxide solid electrolytes. Examples of sulfide solid electrolytes that can be used include a mixture of lithium sulfide (LiS) and diphosphorus pentasulfide (P2S5). Examples of materials that can be used in the negative electrode active material layer 112 include a conductive material such as acetylene black, or a binder such as polyvinylidene fluoride.

[0084] The negative electrode active material layer 112 is produced by applying a paste-like paint, in which the materials contained in the negative electrode active material layer 112 are kneaded together with a solvent, onto the main surface of the negative electrode current collector 111 and drying the paint. In order to increase the density of the negative electrode active material layer 112, the negative electrode layer 110 (also referred to as a negative electrode plate) including the negative electrode active material layer 112 and the negative electrode current collector 111 may be pressed after drying. The thickness of the negative electrode active material layer 112 is, for example, 5 μm or more and 300 μm or less, but is not limited to this.

[0085] The positive electrode active material layer 122 is disposed on the main surface of the positive electrode current collector 121 on the negative electrode layer 110 side. The positive electrode active material layer 122 is a layer containing a positive electrode material such as an active material. The positive electrode material is a material that constitutes a counter electrode of the negative electrode material. The positive electrode active material layer 122 contains, for example, a positive electrode active material.

[0086] Possible positive electrode active materials that can be used in the positive electrode active material layer 122 include, for example, lithium cobalt oxide composite oxide (LCO), lithium nickel oxide composite oxide (LNO), lithium manganese oxide composite oxide (LMO), lithium-manganese-nickel composite oxide (LMNO), lithium-manganese-cobalt composite oxide (LMCO), lithium-nickel-cobalt composite oxide (LNCO), and lithium-nickel-manganese-cobalt composite oxide (LNMCO).Various materials that can extract and insert ions such as Li or Mg can be used as the positive electrode active material.

[0087] The positive electrode active material layer 122 may contain, for example, a solid electrolyte such as an inorganic solid electrolyte. Examples of inorganic solid electrolytes include sulfide solid electrolytes and oxide solid electrolytes. Examples of sulfide solid electrolytes include a mixture of Li2S and P2S5. The surface of the positive electrode active material may be coated with a solid electrolyte. Examples of materials that may be used in the positive electrode active material layer 122 include a conductive material such as acetylene black, or a binder such as polyvinylidene fluoride.

[0088] The positive electrode active material layer 122 is produced by applying a paste-like paint, in which the materials contained in the positive electrode active material layer 122 are kneaded with a solvent, onto the main surface of the positive electrode current collector 121 and drying the paint. In order to increase the density of the positive electrode active material layer 122, the positive electrode layer 120 (also referred to as a positive electrode plate) including the positive electrode active material layer 122 and the positive electrode current collector 121 may be pressed after drying. The thickness of the positive electrode active material layer 122 is, for example, 5 μm or more and 300 μm or less, but is not limited to this.

[0089] The solid electrolyte layer 130 is disposed between the negative electrode active material layer 112 and the positive electrode active material layer 122. The solid electrolyte layer 130 is in contact with both the negative electrode active material layer 112 and the positive electrode active material layer 122. The solid electrolyte layer 130 is a layer containing an electrolyte material. A commonly known electrolyte for batteries can be used as the electrolyte material. The thickness of the solid electrolyte layer 130 may be 5 μm or more and 300 μm or less, or 5 μm or more and 100 μm or less.

[0090] The solid electrolyte layer 130 includes a solid electrolyte. For example, an inorganic solid electrolyte or other solid electrolyte may be used as the solid electrolyte. For example, a sulfide solid electrolyte or an oxide solid electrolyte may be used as the inorganic solid electrolyte. For example, a mixture of Li2S and P2S5 may be used as the sulfide solid electrolyte. In addition to the electrolyte material, the solid electrolyte layer 130 may contain a binder such as polyvinylidene fluoride.

[0091] In this embodiment, the negative electrode active material layer 112, the positive electrode active material layer 122, and the solid electrolyte layer 130 are maintained in the shape of parallel plates. This makes it possible to prevent cracking or collapse due to bending. Alternatively, the negative electrode active material layer 112, the positive electrode active material layer 122, and the solid electrolyte layer 130 may be smoothly curved together.

[0092] Furthermore, the anode active material layer 112 may be smaller than the anode current collector 111 in a plan view. That is, the anode current collector 111 may have a portion on the main surface facing the cathode layer 120 that is not provided with the anode active material layer 112. Similarly, the cathode active material layer 122 may be smaller than the cathode current collector 121 in a plan view. That is, the cathode current collector 121 may have a portion on the main surface facing the anode layer 110 that is not provided with the cathode active material layer 122. A solid electrolyte layer 130 may be provided on the portion on the main surface of each current collector where no active material layer is provided.

[0093] [3. End face structure of unit cell] Next, the end face structure of the unit cell 100 will be described with reference to Fig. 3A. Fig. 3A is a cross-sectional view showing the cross-sectional configuration of a first example of a unit cell included in the power generating element 10 according to this embodiment.

[0094] The unit cell 100A shown in Fig. 3A is one of the unit cells 100 shown in Fig. 1. Specifically, the unit cell 100A is the unit cell 100 located in the uppermost layer.

[0095] The unit cell 100A includes a protruding portion 113 where the negative electrode layer 110 protrudes beyond the positive electrode layer 120, and a protruding portion 123 where the positive electrode layer 120 protrudes beyond the negative electrode layer 110. In this embodiment, the protruding portion 123 and the protruding portion 113 are provided on two end faces 103 and 104 of the unit cell 100A that face back to back, respectively.

[0096] The protrusions 113 and 123 are each formed by cutting the end face of the plate-like unit cell 100A obliquely with respect to the normal to the main surface. In this embodiment, the end faces of the unit cells 100A are cut collectively, so that the end faces become inclined surfaces that are flat surfaces inclined obliquely with respect to the normal to the main surface.

[0097] Specifically, the end face 103 of the unit cell 100A includes the end face 110a of the anode layer 110, the end face 120a of the cathode layer 120, and the end face 130a of the solid electrolyte layer 130. These end faces 110a, 120a, and 130a are flush with each other. The end face 104 of the unit cell 100A includes the end face 110b of the anode layer 110, the end face 120b of the cathode layer 120, and the end face 130b of the solid electrolyte layer 130. These end faces 110b, 120b, and 130b are flush with each other. For example, the end faces 103 and 104 are parallel to each other, but this is not a limitation. At least one of the end faces 103 and 104 may be a curved surface that is convex or concave. At least one of the end faces 103 and 104 may include multiple inclined surfaces with different inclination angles.

[0098] The end face 110a of the negative electrode layer 110 is an example of a first inclined face inclined in the direction normal to the principal surface. The end face 110a includes an end face 111a of the negative electrode current collector 111 and an end face 112a of the negative electrode active material layer 112. The end faces 111a and 112a are flush with each other.

[0099] The end surface 120a of the positive electrode layer 120 is an example of a third inclined surface inclined in the direction normal to the principal surface. The end surface 120a includes an end surface 121a of the positive electrode current collector 121 and an end surface 122a of the positive electrode active material layer 122. The end surfaces 121a and 122a are flush with each other.

[0100] The end surface 120a of the positive electrode layer 120 does not have to be an inclined surface, and may be a surface perpendicular to the main surface. Furthermore, at least a portion of the end surface 130a of the solid electrolyte layer 130 may be a surface perpendicular to the main surface. In other words, only the end surface 110a of the negative electrode layer 110, or only the end surface 110a and a portion of the end surface 130a of the solid electrolyte layer 130, may be an inclined surface.

[0101] The end surface 120b of the positive electrode layer 120 is an example of a second inclined surface inclined in the direction normal to the principal surface. The end surface 120b includes an end surface 121b of the positive electrode current collector 121 and an end surface 122b of the positive electrode active material layer 122. The end surfaces 121b and 122b are flush with each other.

[0102] The end face 110b of the negative electrode layer 110 is an example of a fourth inclined face inclined in the direction normal to the principal surface. The end face 110b includes an end face 111b of the negative electrode current collector 111 and an end face 112b of the negative electrode active material layer 112. The end faces 111b and 112b are flush with each other.

[0103] The end surface 110b of the negative electrode layer 110 does not have to be an inclined surface and may be a surface perpendicular to the main surface. Furthermore, at least a portion of the end surface 130b of the solid electrolyte layer 130 may be a surface perpendicular to the main surface. In other words, only the end surface 120b of the positive electrode layer 120, or only the end surface 120b and a portion of the end surface 130b of the solid electrolyte layer 130, may be an inclined surface.

[0104] [4. Side structure of power generating element] Next, the side structure of the power generating element 10 will be described using FIGS. 3A, 3B, 3C, 4A, and 4B while also referring to FIG. 1 as appropriate.

[0105] As described above, in the power generating element 10 according to this embodiment, one current collector is shared by two adjacent unit cells 100. To achieve this configuration, the power generating element 10 shown in Fig. 1 is formed by stacking not only the unit cell 100A shown in Fig. 3A, but also the unit cell 100B shown in Fig. 3B and the unit cell 100C shown in Fig. 3C.

[0106] 3B and 3C are cross-sectional views showing the cross-sectional configurations of second and third examples of unit cells included in the power generating element 10 according to this embodiment, respectively.

[0107] 3B has a configuration similar to that of the unit cell 100A shown in FIG. 3A, but excluding the positive electrode current collector 121. That is, the positive electrode layer 120B of the unit cell 100B includes only the positive electrode active material layer 122.

[0108] The unit cell 100C shown in Fig. 3C has a configuration in which the negative electrode current collector 111 is removed from the unit cell 100A shown in Fig. 3A. That is, the negative electrode layer 110C of the unit cell 100C includes only the negative electrode active material layer 112. Note that the stacking order of the layers is reversed in Fig. 3C compared to Figs. 3A and 3B.

[0109] 4A is a cross-sectional view showing the cross-sectional configuration of the power generating element 10 according to this embodiment. As shown in Fig. 4A, the power generating element 10 has a structure in which unit cells 100B and 100C are alternately stacked on top of unit cell 100C as the bottom layer, and unit cell 100A is stacked on top of unit cell 100C as the top layer.

[0110] The number and combination of unit cells included in the power generating element 10 are not particularly limited. For example, a plurality of unit cells 100A alone may be repeatedly stacked. By stacking a plurality of unit cells 100A so that the order of the layers is alternating, the power generating element 10A shown in FIG. 4B can be formed. FIG. 4B is a cross-sectional view showing the cross-sectional configuration of a modified example of the power generating element of this embodiment.

[0111] In this case, as shown in FIG. 4B, no current collector is shared between two adjacent unit cells 100A. In other words, two current collectors of the same polarity are arranged one on top of the other. In this case, an adhesive layer may be provided between the current collectors. The adhesive layer may be, for example, conductive, but may not be conductive.

[0112] As a result, on the side surface 13 of the power generating element 10, the protruding portions 123 of the positive electrode layers 120 are aligned with each other to form convex portions 13b. On the side surface 14, the protruding portions 113 of the negative electrode layers 110 are aligned with each other to form convex portions 14b.

[0113] Specifically, on the side surface 13, protrusions 13b are formed by the positive electrode layers 120 protruding, and recesses 13a are formed by the negative electrode layers 110 being recessed. In the power generating element 10, the protruding portions of the positive electrode layers 120 or the protruding portions of the negative electrode layers 110 of two adjacent unit cells 100 are aligned, so that approximately half the number of protrusions 13b and recesses 13a are provided as stacked unit cells 100. In the example shown in Fig. 1, five protrusions 13b and four recesses 13a are alternately arranged one by one along the normal direction of the main surface.

[0114] The recess 13a is an example of a first recess, and includes an end surface 110a of the negative electrode layer 110. Specifically, as shown in Fig. 4A, the recess 13a includes an end surface 111a of the negative electrode current collector 111 and an end surface 112a of each of the two negative electrode active material layers 112. The end surfaces 111a and 112a are inclined surfaces, thereby forming the recess 13a.

[0115] The inclination angle of the end face is defined as the angle between the main surface 11 and the end face, and is, for example, 30° to 60°, for example, 45°, but is not limited to this. The smaller the inclination angle, the deeper the recess 13a can be formed, and the more effectively the occurrence of a short circuit can be suppressed. The larger the inclination angle, the larger the effective area of ​​the unit cell 100 can be secured, and the more effectively the higher the capacity density can be achieved. The same applies to the recess 14a described below.

[0116] The protrusion 13b is an example of a first protrusion, and includes an end face 120a of the positive electrode layer 120. Specifically, the protrusion 13b includes an end face 121a of the positive electrode current collector 121 and end faces 122a of the two positive electrode active material layers 122. The end faces 121a and 122a are inclined surfaces, which allows the distance between the tip of the protrusion 13b and the recess 13a to be increased.

[0117] On the side surface 14, protrusions 14b are formed by the negative electrode layers 110 protruding, and recesses 14a are formed by the positive electrode layers 120 being recessed. In the power generating element 10, the protruding portions of the positive electrode layers 120 or the protruding portions of the negative electrode layers 110 of two adjacent unit cells 100 are aligned, so that approximately half the number of protrusions 14b and recesses 14a are provided as stacked unit cells 100. In the example shown in FIG. 1, four protrusions 14b and five recesses 14a are alternately arranged one by one along the normal direction of the main surface.

[0118] The recess 14a is an example of a second recess, and includes the end surface 120b of the positive electrode layer 120. Specifically, as shown in Fig. 4A, the recess 14a includes the end surface 121b of the positive electrode current collector 121 and the end surfaces 122b of the two positive electrode active material layers 122. The end surfaces 121b and 122b are inclined surfaces, thereby forming the recess 14a.

[0119] The protrusion 14b is an example of a second protrusion, and includes an end face 110b of the negative electrode layer 110. Specifically, as shown in Fig. 4B, the protrusion 14b includes an end face 111b of the negative electrode current collector 111 and end faces 112b of the two negative electrode active material layers 112. The end faces 111b and 112b are inclined surfaces, which allows the distance between the tip of the protrusion 14b and the recess 14a to be increased.

[0120] [5. Insulating materials] Next, insulating members 21 and 22 will be described with reference to Fig. 1. In the following description, end faces 110a, 110b, 120a, 120b, 130a, and 130b are as shown in Fig. 4A.

[0121] The insulating member 21 is an example of a first insulating member, and is disposed in the recess 13a as shown in FIG. 1 . Specifically, the insulating member 21 covers the end face 110a of the negative electrode layer 110. Specifically, the insulating member 21 covers the entire end face 110a of the negative electrode layer 110 and also covers the end face 130a of the solid electrolyte layer 130. The insulating member 21 may cover the end face 122a of the positive electrode active material layer 122. The insulating member 21 does not cover the end face 121a of the positive electrode current collector 121. By providing the insulating member 21 on the side face 13, the end face 110a of the negative electrode layer 110 is not exposed on the side face 13, and at least a portion of the end face 120a of the positive electrode layer 120 is exposed.

[0122] The insulating member 22 is an example of a second insulating member and is disposed in the recess 14a. Specifically, the insulating member 22 covers the end face 120b of the positive electrode layer 120. Specifically, the insulating member 22 covers the entire end face 120b of the positive electrode layer 120 and also covers the end face 130b of the solid electrolyte layer 130. The insulating member 22 may cover the end face 112b of the negative electrode active material layer 112. The insulating member 22 does not cover the end face 111b of the negative electrode current collector 111. By providing the insulating member 22 on the side face 14, the end face 120b of the positive electrode layer 120 is not exposed on the side face 14, and at least a portion of the end face 110b of the negative electrode layer 110 is exposed.

[0123] The insulating members 21 and 22 are each formed using an insulating material that is electrically insulating. For example, an epoxy-based resin material can be used as the insulating material, but inorganic materials may also be used. Usable insulating materials are selected based on various properties such as flexibility, gas barrier properties, impact resistance, and heat resistance. The insulating members 21 and 22 are formed using the same material, but may also be formed using different materials.

[0124] Note that insulating members may also be arranged on each of side surfaces 15 and 16. The insulating members may, for example, cover the entirety of each of side surfaces 15 and 16 and be connected to insulating member 21 arranged in recess 13a of side surface 13 and insulating member 22 arranged in recess 14a of side surface 14. In other words, insulating members 21 and 22 may be formed integrally with the insulating members covering each of side surfaces 15 and 16.

[0125] The outer surface 21a of the insulating member 21 and the outer surface 22a of the insulating member 22 are both flat. Both the outer surfaces 21a and 22a are perpendicular to the main surfaces. Furthermore, both the outer surfaces 21a and 22b are located inside the tips of the protrusions 13b and 14b.

[0126] The shapes of the insulating members 21 and 22 are not limited to the example shown in FIG.

[0127] Fig. 5 is a cross-sectional view showing a modified example of the insulating member of this embodiment. Insulating members 221 and 222 shown in Fig. 5 have outer surfaces 221a and 222a that are curved convexly outward. In this case, a portion of outer surface 221a may protrude beyond the tip of protrusion 13b. Furthermore, a portion of outer surface 222a may protrude beyond the tip of protrusion 14b. At least one of outer surfaces 221a and 222a may be curved concavely.

[0128] Fig. 6 is a cross-sectional view showing another modified example of the insulating member of the present embodiment. Insulating members 321 and 322 shown in Fig. 6 have flat outer surfaces 321a and 322a that are perpendicular to the main surfaces. Outer surface 321a is flush with the tip portions of protrusions 13b. Outer surface 322a is flush with the tip portions of protrusions 14b.

[0129] As a result, protrusions 13b and 14b are firmly supported by insulating members 321 and 322, respectively, and therefore damage is suppressed, thereby achieving a highly reliable battery.

[0130] [6. Conductive materials] Next, the conductive members 31 and 32 will be described with reference to FIG.

[0131] The conductive member 31 is an example of a first conductive member, and is in contact with the protrusions 13b. Specifically, the conductive member 31 covers the insulating member 21. More specifically, the conductive member 31 is provided so as to straddle the insulating member 21 and contact each of the plurality of protrusions 13b. As a result, the conductive member 31 electrically connects each of the plurality of positive electrode layers 120 and functions as a positive electrode extraction electrode of the battery 1. In this embodiment, the conductive member 31 covers the entire side surface 13 of the power generating element 10, from the end of the main surface 11 to the end of the main surface 12.

[0132] The conductive member 32 is an example of a second conductive member and is in contact with the protrusions 14b. Specifically, the conductive member 32 covers the insulating member 22. More specifically, the conductive member 32 is provided so as to straddle the insulating member 22 and contact each of the plurality of protrusions 14b. As a result, the conductive member 32 electrically connects each of the plurality of negative electrode layers 110 and functions as a negative electrode extraction electrode of the battery 1. In this embodiment, the conductive member 32 covers the entire side surface 14 of the power generating element 10 from the end of the main surface 11 to the end of the main surface 12.

[0133] The conductive members 31 and 32 are formed using a conductive resin material or the like. Alternatively, the conductive members 31 and 32 may be formed using a metal material such as solder. Usable conductive materials are selected based on various properties such as flexibility, gas barrier properties, impact resistance, heat resistance, and solder wettability. The conductive members 31 and 32 are formed using the same material, but may also be formed using different materials.

[0134] The shapes of the conductive members 31 and 32 are not particularly limited. For example, the conductive member 31 may cover only a portion of the side surface 13. The length of the conductive member 31 along the y-axis direction may be shorter than the length of the side surface 13 along the y-axis direction. The same may be true for the conductive member 32. Furthermore, the conductive member 31 may be provided for each protrusion 13b. The conductive member 32 may be provided for each protrusion 14b. The conductive members 31 and 32 are electrically insulated from each other.

[0135] [7. Manufacturing method] Next, a method for manufacturing the battery 1 will be described with reference to FIG. 7A.

[0136] FIG. 7A is a flowchart showing a method for manufacturing the battery 1 according to this embodiment.

[0137] As shown in Fig. 7A, first, a plurality of plate-shaped unit cells are prepared (S10). The prepared unit cells are, for example, unit cells 100A, 100B, and 100C shown in Figs. 3A to 3C before their end faces are processed. The end faces before processing are, for example, flat surfaces perpendicular to the main surfaces, but may also be inclined surfaces.

[0138] Next, the end faces of each of the prepared unit cells are beveled (S20). Specifically, at the first end face of each of the unit cells, the end face 110a of the negative electrode layer 110 is beveled to make the positive electrode layer 120 protrude from the negative electrode layer 110. Furthermore, at the second end face of each of the unit cells, the end face 120a of the positive electrode layer 120 is beveled to make the negative electrode layer 110 protrude from the positive electrode layer 120. Here, in the case of unit cell 100A, the first end face and second end face are the unprocessed surfaces of end faces 103 and 104 shown in FIG. 3A, respectively. The same applies to unit cells 100B and 100C.

[0139] In this embodiment, the end faces of the plurality of unit cells are processed simultaneously. As a result, the end faces of the anode layer 110, the cathode layer 120, and the solid electrolyte layer 130 are all inclined. This results in the formation of unit cells 100A, 100B, and 100C, each having an inclined end face.

[0140] The end faces are processed by cutting or polishing using a cutting blade. By tilting the cutting blade obliquely with respect to the normal direction of the main surface, an inclined surface is formed on the end face of the unit cell.

[0141] For example, various cutting methods can be used, including shear cutting, score cutting, razor cutting, ultrasonic cutting, laser cutting, jet cutting, and others. For example, in shear cutting, various cutting blades can be used, such as a Goebel slit blade, a gang slit blade, a rotary chopper blade, and a shear blade. A Thomson blade can also be used.

[0142] The polishing may be physical or chemical, but the method for forming the inclined surface is not limited to these methods.

[0143] Next, the plurality of unit cells 100A, 100B, and 100C are stacked (S30). Specifically, the plurality of unit cells 100A, 100B, and 100C are stacked with the positive electrode layers 120 facing each other or the negative electrode layers 110 facing each other, and with the protruding portions 123 of the positive electrode layers 120 and the protruding portions 113 of the negative electrode layers 110 aligned with each other. This forms, for example, the power generating element 10 shown in FIG. 4A.

[0144] Next, insulating members 21 and 22 are placed in recesses 13a and 14a, respectively (S40). Specifically, insulating member 21 is placed so as to cover end face 110a of negative electrode layer 110 included in recess 13a, and insulating member 22 is placed so as to cover end face 120b of positive electrode layer 120 included in recess 14a.

[0145] The insulating members 21 and 22 are arranged by applying and curing a fluid resin material, for example. The application is performed by inkjet printing or screen printing, or by dipping the end faces of the unit cells into the resin material. The curing is performed by drying, heating, light irradiation, or the like, depending on the resin material used.

[0146] Next, a conductive member 31 that electrically connects the protruding portions 123 of the positive electrode layer 120 to each other is disposed, and a conductive member 32 that electrically connects the protruding portions 113 of the negative electrode layer 110 to each other is disposed (S50). For example, the conductive member 31 is disposed by applying a conductive resin so as to cover the outer surface 21a of the insulating member 21 and the protruding portions 13b that are not covered by the insulating member 21, and then curing the resin. The conductive member 32 is disposed by applying a conductive resin so as to cover the outer surface 22a of the insulating member 22 and the protruding portions 14b that are not covered by the insulating member 22, and then curing the resin. The conductive members 31 and 32 may be formed by, for example, printing, plating, vapor deposition, sputtering, welding, soldering, bonding, or other methods.

[0147] Through the above steps, the battery 1 shown in FIG. 1 can be manufactured.

[0148] In steps S10 and S20, a single large unit cell may be prepared, and the prepared unit cell may be cut diagonally and separated into individual units, thereby forming a plurality of unit cells with inclined end faces. In other words, steps S10 and S20 may be performed in the same process. For example, a unit cell having both a negative electrode current collector 111 and a positive electrode current collector 121 may be separated into individual units, thereby forming a plurality of unit cells 100A. By stacking these multiple unit cells 100A, the power generating element 10A shown in FIG. 4B can be easily formed.

[0149] Furthermore, a step of pressing the prepared plurality of unit cells individually or after stacking the plurality of unit cells in the normal direction to the main surface may be performed.

[0150] 7A shows an example in which the arrangement of insulating members 21 and 22 (S40) is performed after the stacking of unit cells (S30), but this is not limiting. As shown in FIG. 7B, the stacking of unit cells (S30) may be performed after the arrangement of insulating members (S40). FIG. 7B is a flowchart showing another example of a method for manufacturing battery 1 according to the present embodiment.

[0151] In the example shown in Figure 7B, an insulating member is placed to cover each end face of unit cells 100A, 100B, and 100C before stacking. That is, an insulating material is individually applied to the end face of each unit cell and cured, and then multiple unit cells are stacked. Note that the insulating material may be cured after stacking.

[0152] 7A and 7B, in step S10, a unit cell having an inclined surface formed on its end face may be prepared. That is, the unit cell 100A, 100B, or 100C shown in FIGS. 3A to 3C may be prepared. In this case, the process of processing the end face (S20) can be omitted.

[0153] (Embodiment 2) Next, a second embodiment will be described.

[0154] The second embodiment differs from the first embodiment in that the manufacturing method of the battery includes a step of flattening the end faces of the protrusions. The following description will focus on the differences from the first embodiment, and the description of the commonalities will be omitted or simplified.

[0155] First, the configuration of the battery according to this embodiment will be described with reference to Fig. 8. Fig. 8 is a cross-sectional view showing the cross-sectional configuration of battery 401 according to this embodiment.

[0156] 8, battery 401 includes power generating element 410 and insulating members 421 and 422. As in the first embodiment, battery 401 also includes conductive members 31 and 32, which are not shown in FIG.

[0157] The side surface 413 of the power generating element 410 includes alternately arranged recesses 413a and protrusions 413b. Each of the plurality of protrusions 413b includes a flat surface 413c.

[0158] The flat surface 413c is an example of a first flat surface, and is at least a part of the end surface of the positive electrode layer 120. For example, the flat surface 413c includes the end surface of the positive electrode current collector 121 and a part of the end surface of the positive electrode active material layer 122. The flat surface 413c may also include a part of the end surface of the solid electrolyte layer 130.

[0159] The side surface 414 of the power generating element 410 includes alternately arranged recesses 414a and protrusions 414b. Each of the plurality of protrusions 414b includes a flat surface 414c.

[0160] The flat surface 414c is an example of a second flat surface, and is at least a part of the end surface of the negative electrode layer 110. For example, the flat surface 414c includes the end surface of the negative electrode current collector 111 and a part of the end surface of the negative electrode active material layer 112. The flat surface 414c may also include a part of the end surface of the solid electrolyte layer 130.

[0161] The insulating members 421 are arranged in the recessed portions 13a. The insulating members 421 have outer surfaces 421a. The outer surfaces 421a are flush with the flat surfaces 413c of the protruding portions 413b.

[0162] The insulating members 422 are disposed in the recesses 14a. The insulating members 422 have outer surfaces 422a. The outer surfaces 422a are flush with the flat surfaces 414c of the protrusions 414b.

[0163] By flattening the tip portions of each of the protrusions 413b and 414b in this manner, the strength of each of the protrusions 413b and 414b can be increased. Furthermore, since the flat surface 413c and the outer surface 421a of the insulating member 421 are flush with each other, and since the flat surface 414c and the outer surface 422a of the insulating member 422 are flush with each other, each of the protrusions 413b and 414b can be firmly supported. This reduces the risk of the positive electrode active material layer 122 and the negative electrode active material layer 112 collapsing, and improves the reliability of the battery 401.

[0164] Next, a method for manufacturing battery 401 according to this embodiment will be described with reference to FIGS. 9A and 9B.

[0165] 9A is a flowchart showing an example of a method for manufacturing battery 401 according to this embodiment. As shown in FIG. 9A, the steps up to disposing the insulating member (S10 to S40) are the same as the steps shown in FIG. 7A of the first embodiment. In step S40, the insulating material may be disposed so as to cover the entire protrusion of the power generating element. This prevents a shortage of insulating material and avoids the occurrence of a short circuit.

[0166] In this embodiment, after the insulating material is disposed, the side surfaces of the power generating element 410 are flattened (S45). Specifically, the protruding portion 123 (i.e., the convex portion 413b) of the positive electrode layer 120 and the insulating member 421 are flattened, and the protruding portion 113 (i.e., the convex portion 414b) of the negative electrode layer 110 and the insulating member 422 are flattened. For example, the protruding portions are exposed, and the side surfaces are polished until flat surfaces 413c and 414c are formed. Note that cutting may be performed instead of polishing.

[0167] After the surfaces are flattened, conductive members 31 and 32 are arranged so as to cover flat surface 413c and outer surface 421a of insulating member 421, and flat surface 414c and outer surface 422a of insulating member 422, respectively (S50). By flattening the surfaces on which conductive members 31 and 32 are arranged, conductive members 31 and 32 can be arranged with precision and without gaps.

[0168] As in the first embodiment, the arrangement of the insulating member (S40) is performed after the stacking of the unit cells (S30), but this is not limiting. As shown in Fig. 9B, the stacking of the unit cells (S30) may be performed after the arrangement of the insulating member (S40).

[0169] 9A and 9B, in step S10, a unit cell having an inclined surface formed on its end face may be prepared. That is, the unit cell 100A, 100B, or 100C shown in FIGS. 3A to 3C may be prepared. In this case, the process of processing the end face (S20) can be omitted.

[0170] (Embodiment 3) Next, a third embodiment will be described.

[0171] The third embodiment differs from the first embodiment in that the battery includes a sealing member. The following description will focus on the differences from the first embodiment, and descriptions of the commonalities will be omitted or simplified.

[0172] 10 is a cross-sectional view showing the cross-sectional configuration of battery 501 according to the present embodiment. As shown in Fig. 10, battery 501 further includes a sealing member 540 in addition to the configuration of battery 1 according to embodiment 1.

[0173] The sealing member 540 exposes a portion of each of the conductive members 31 and 32 and seals the power generating element 10. The sealing member 540 is provided, for example, so that the power generating element 10 and the insulating members 21 and 22 are not exposed.

[0174] The sealing member 540 is formed, for example, using an insulating material that is electrically insulating. Examples of insulating materials that can be used include commonly known battery sealing material materials, such as sealants. Examples of insulating materials that can be used include resin materials. The insulating material may be a material that is insulating but does not have ion conductivity. For example, the insulating material may be at least one of epoxy resin, acrylic resin, polyimide resin, and silsesquioxane.

[0175] The sealing member 540 may include a plurality of different insulating materials. For example, the sealing member 540 may have a multi-layer structure. Each layer of the multi-layer structure may be formed using a different material and have different properties.

[0176] The sealing member 540 may contain a particulate metal oxide material. Examples of the metal oxide material that can be used include silicon oxide, aluminum oxide, titanium oxide, zinc oxide, cerium oxide, iron oxide, tungsten oxide, zirconium oxide, calcium oxide, zeolite, and glass. For example, the sealing member 540 may be formed using a resin material in which a plurality of particles made of a metal oxide material are dispersed.

[0177] The particle size of the metal oxide material may be equal to or smaller than the distance between the positive electrode current collector 121 and the negative electrode current collector 111. The particle shape of the metal oxide material may be, for example, spherical, oval spherical, or rod-shaped, but is not limited to these.

[0178] By providing the sealing member 540, the reliability of the battery 501 can be improved in various respects, such as mechanical strength, short-circuit prevention, and moisture resistance.

[0179] In this embodiment, the conductive members 31 and 32 are each provided so as to be located below the lowest current collector of the power generating element 10. Specifically, the conductive members 31 and 32 cover part of the outer surface of the sealing member 540 that covers the main surface 11 of the power generating element 10.

[0180] This improves the mountability when mounting the battery 501 on a substrate, for example. Also, the formation of a gap between the battery 501 and the mounting substrate improves heat dissipation performance.

[0181] At least one of the conductive members 31 and 32 may be provided so as to be located above the uppermost current collector of the power generating element 10. Specifically, at least one of the conductive members 31 and 32 may cover a portion of the outer surface of the sealing member 540 that covers the main surface 12 of the power generating element 10.

[0182] (Fourth embodiment) Next, a fourth embodiment will be described.

[0183] The fourth embodiment differs from the first embodiment in that the conductive member has a multi-layer structure. The following description will focus on the differences from the first embodiment, and description of the commonalities will be omitted or simplified.

[0184] 11 is a cross-sectional view showing the cross-sectional configuration of battery 601 according to the present embodiment. As shown in Fig. 11, battery 601 includes conductive members 631 and 632 instead of conductive members 31 and 32, as compared to battery 1 according to embodiment 1.

[0185] The conductive member 631 has a multi-layer structure. Specifically, the conductive member 631 includes a first layer 631a and a second layer 631b.

[0186] The first layer 631a is the innermost layer of the multi-layer structure, and is a layer that covers the protruding portion 123 of the positive electrode layer 120 exposed on the side surface 13. The first layer 631a is formed using, for example, a conductive material that has good contact with the positive electrode layer 120.

[0187] The second layer 631b is the outermost layer of the multi-layer structure and is the layer exposed to the outside of the battery 601. The second layer 631b is, for example, a plated layer or a solder layer. The second layer 631b is formed by a method such as plating, printing, or soldering.

[0188] The conductive member 632 has a multi-layer structure. Specifically, the conductive member 632 includes a first layer 632a and a second layer 632b.

[0189] The first layer 632a is the innermost layer of the multi-layer structure, and is a layer that covers the protruding portion 113 of the negative electrode layer 110 exposed on the side surface 14. The first layer 632a is formed using, for example, a conductive material that has good contact with the negative electrode layer 110.

[0190] The second layer 632b is the outermost layer of the multi-layer structure and is the layer exposed to the outside of the battery 601. The second layer 632b is, for example, a plated layer or a solder layer. The second layer 632b is formed by a method such as plating, printing, or soldering.

[0191] For example, by forming second layers 631b and 632b using a material suitable for mounting on a substrate, the mountability of battery 601 can be improved. For example, first layer 631a or 632a may have a higher gas barrier property than second layer 631b or 632b. For example, second layer 631b or 632b may have better flexibility, impact resistance, or solder wettability than first layer 631a or 632a.

[0192] Furthermore, second layer 631b does not have to cover the entire outer surface of first layer 631a. Second layer 631b may cover only a portion of first layer 631a. For example, when battery 601 is mounted on a substrate, second layer 631b may be formed only on the portion that will be mounted on the substrate.

[0193] The number of layers included in the conductive members 631 and 632 may be three or more. One of the conductive members 631 and 632 may have a single-layer structure, as in the first embodiment.

[0194] (Embodiment 5) Next, a fifth embodiment will be described.

[0195] Embodiment 5 differs from embodiment 1 in that the insulating member includes a gap. The following description will focus on the differences from embodiment 1, and description of commonalities will be omitted or simplified.

[0196] 12 is a cross-sectional view showing the cross-sectional configuration of battery 701 according to the present embodiment. As shown in Fig. 12, battery 701 includes insulating members 721 and 722 instead of insulating members 21 and 22, as compared to battery 1 according to the first embodiment.

[0197] Each of the insulating members 721 and 722 includes a void 723. The void 723 is a space filled with a predetermined gas. The gas is, for example, dry air, but is not limited to this. The size and shape of the void 723 are also not particularly limited. The void 723 may be provided between the insulating member 721 and the side surface 13 of the power generating element 10, or between the insulating member 722 and the side surface 14 of the power generating element 10. Alternatively, the void 723 may be provided between the insulating member 721 and the conductive member 31, or between the insulating member 722 and the conductive member 32.

[0198] In this way, by providing the gap 723 in the insulating member 721 or 722, it is possible to alleviate stress caused by expansion and contraction due to charging and discharging of the battery 701, as well as mechanical shocks, etc. This reduces the possibility of breaking the battery 701, and improves its reliability.

[0199] (Other embodiments) While the batteries and battery manufacturing methods according to one or more aspects have been described based on the embodiments, the present disclosure is not limited to these embodiments. As long as they do not deviate from the gist of the present disclosure, various modifications conceivable by those skilled in the art to the present embodiments and configurations constructed by combining components of different embodiments are also included within the scope of the present disclosure.

[0200] For example, the unit cell 100 does not have to be limited to one minimum unit consisting of the negative electrode layer 110, the positive electrode layer 120, and the solid electrolyte layer 130. The unit cell 100 may include several minimum units stacked in the direction normal to the main surface.

[0201] Furthermore, for example, in the above embodiment, an example was shown in which the first side surface where the positive electrode layer 120 protrudes from the negative electrode layer 110 is side surface 13 shown in FIG. 2, and the second side surface where the negative electrode layer 110 protrudes from the positive electrode layer 120 is side surface 14, but this is not limited to this. The first side surface may be side surface 15 or 16. In other words, the first side surface where the positive electrode layer protrudes from the negative electrode layer and the second side surface where the negative electrode layer protrudes from the positive electrode layer may be connected to each other. Furthermore, the first side surface and the second side surface may be side surface 15 and 16, respectively. In other words, electrodes may be taken out from the long side of the power generating element 10, which has a rectangular shape in a plan view.

[0202] The first side surface and the second side surface may be one side surface of the power generating element 10. Specifically, the first side surface may be a part of one of the side surfaces 13 to 16, and the second side surface may be another part of the same side surface.

[0203] Furthermore, various modifications, substitutions, additions, omissions, etc. can be made to each of the above-described embodiments within the scope of the claims or their equivalents. [Industrial Applicability]

[0204] The present disclosure can be used, for example, as batteries for electronic devices, electrical appliances, electric vehicles, and the like. [Explanation of symbols]

[0205] 1, 401, 501, 601, 701 batteries 10, 10A, 410 power generation element 11, 12 Main surfaces 13, 14, 15, 16, 413, 414 Side 13a, 14a recess 13b, 14b, 413b, 414b Convex part 21, 22, 221, 222, 321, 322, 421, 422, 721, 722 absolute components 21a, 22a, 221a, 222a, 321a, 322a, 421a, 422a outer surface 31, 32, 631, 632 conductive materials 100, 100A, 100B, 100C unit セル 103, 104, 110a, 110b, 111a, 111b, 112a, 112b, 120a, 120b, 121a, 121b, 122a, 122b, 130a, 130b end faces 110, 110C negative electrode layer 111 negative electrode collector 112 Negative electrode active material layer 113, 123 protrusions 120, 120B positive electrode layer 121 positive electrode collector 122 positive electrode active material layer 130 Solid Electrolyte Layer 413c, 414c flat surface 540 Sealing material 631a, 632a, first floor 631b, 632b Layer 2 723 Gap

Claims

1. A battery including a power generating element including a plurality of unit cells each having a positive electrode layer, a negative electrode layer, and a solid electrolyte layer located between the positive electrode layer and the negative electrode layer, the plurality of unit cells are electrically connected in parallel and stacked in a direction normal to a principal surface; the power generating element has a first side and a second side, on the first side surface, the positive electrode layer of each of the plurality of unit cells protrudes beyond the negative electrode layer of each of the plurality of unit cells, thereby providing first recesses and first protrusions that are alternately arranged along a normal direction to the principal surface, on the second side surface, the negative electrode layer of each of the plurality of unit cells protrudes beyond the positive electrode layer of each of the plurality of unit cells, thereby providing second recesses and second protrusions that are alternately arranged along a direction normal to the principal surface, the first recess includes a first inclined surface that is an end surface of the negative electrode layer and is inclined with respect to a direction normal to the principal surface, the second recess includes a second inclined surface that is an end surface of the positive electrode layer and is inclined with respect to the normal direction of the principal surface, The battery further comprises: a first insulating member disposed in the first recess; a second insulating member disposed in the second recess; a first conductive member in contact with the first protrusion; a second conductive member in contact with the second protrusion, the positive electrode layers of the plurality of unit cells are electrically connected to each other via the first conductive member, the negative electrode layers of the plurality of unit cells are electrically connected to each other via the second conductive member. battery.

2. the first conductive member covers the first insulating member, The second conductive member covers the second insulating member. The battery of claim 1 .

3. the first protrusion includes a third inclined surface that is inclined along a direction normal to the principal surface and that is at least a part of an end surface of the positive electrode layer, the second protrusion includes a fourth inclined surface that is inclined along the normal direction of the principal surface and that is at least a part of the end surface of the negative electrode layer; The battery according to claim 1 or 2.

4. the first inclined surface, the third inclined surface, and a part of the end surface of the solid electrolyte layer are flush with each other; the second inclined surface, the fourth inclined surface, and a part of the end surface of the solid electrolyte layer are flush with each other. The battery of claim 3.

5. the first convex portion includes a first flat surface that is at least a part of an end surface of the positive electrode layer and is parallel to a normal direction of the principal surface, the second convex portion includes a second flat surface that is at least a part of an end surface of the negative electrode layer and is parallel to a normal direction of the principal surface, The battery according to any one of claims 1 to 4.

6. the first insulating member has a side surface flush with the first flat surface, the second insulating member has a side surface flush with the second flat surface; The battery of claim 5.

7. The positive electrode layer of each of the plurality of unit cells is a positive electrode current collector; a positive electrode active material layer disposed on a main surface of the positive electrode current collector facing the negative electrode layer, The negative electrode layer of each of the plurality of unit cells is a negative electrode current collector; a negative electrode active material layer disposed on a main surface of the negative electrode current collector facing the positive electrode layer, The battery of any one of claims 1 to 6.

8. In the plurality of unit cells, two adjacent positive electrode layers share the positive electrode current collector with each other, In the plurality of unit cells, two adjacent negative electrode layers share the negative electrode current collector. The battery of claim 7.

9. At least one of the first conductive member and the second conductive member has a multilayer structure. The battery of any one of claims 1 to 8.

10. The outermost layer of the multilayer structure is a plating layer or a solder layer.

10. The battery of claim 9.

11. The power generating element may further include a sealing member that exposes a portion of each of the first conductive member and the second conductive member and seals the power generating element. The battery of any one of claims 1 to 10.

12. At least one of the first insulating member and the second insulating member includes a gap. The battery of any one of claims 1 to 11.

13. The first side surface and the second side surface are surfaces facing each other. The battery of any one of claims 1 to 12.

14. A method for manufacturing a battery, comprising: The method includes a first step of preparing a plurality of unit cells each having a positive electrode layer, a negative electrode layer, and a solid electrolyte layer located between the positive electrode layer and the negative electrode layer; a first inclined surface inclined with respect to a direction normal to a principal surface of each of the plurality of unit cells is provided on the end surface of the negative electrode layer, so that the positive electrode layer protrudes from the negative electrode layer; a second inclined surface inclined with respect to the normal direction of the principal surface is provided on the end surface of the positive electrode layer at a second end surface of each of the plurality of unit cells, whereby the negative electrode layer protrudes beyond the positive electrode layer; The method for manufacturing a battery further comprises: a second step of stacking the plurality of unit cells in a direction normal to the principal surfaces, with the positive electrode layers or the negative electrode layers facing each other and with protruding portions of the positive electrode layers and protruding portions of the negative electrode layers aligned; a third step of disposing a first insulating member so as to cover the first inclined surface and disposing a second insulating member so as to cover the second inclined surface; a fourth step of arranging a first conductive member that electrically connects the protruding portions of the positive electrode layer to each other and arranging a second conductive member that electrically connects the protruding portions of the negative electrode layer to each other, How batteries are manufactured.

15. The third step is performed after the second step. The method for manufacturing the battery according to claim 14.

16. The second step is performed after the third step. The method for manufacturing the battery according to claim 14.

17. In the first step, the first end surface and the second end surface of each of the plurality of unit cells are processed to prepare the plurality of unit cells each having the first inclined surface and the second inclined surface. A method for manufacturing the battery according to any one of claims 14 to 16.

18. The processing in the first step is performed by shear cutting, score cutting, razor cutting, ultrasonic cutting, laser cutting, jet cutting, or grinding. A method for manufacturing the battery of claim 17.

19. In the processing in the first step, the end surfaces of the negative electrode layer, the solid electrolyte layer, and the positive electrode layer are collectively inclined obliquely with respect to a direction normal to the principal surface at each of the first end surface and the second end surface. The method for manufacturing the battery according to claim 17 or 18.

20. Furthermore, after the second step and the third step are performed and before the fourth step is performed, the protruding portion of the positive electrode layer and the first insulating member are planarized, and the protruding portion of the negative electrode layer and the second insulating member are planarized. A method for manufacturing the battery according to any one of claims 14 to 19.

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