Electrochemical elements
The electrochemical device uses a conductive plate with elastic locking portions to maintain stable electrical connection and enhance sealing performance by addressing misalignment and non-uniform pressure issues in existing electrochemical cells.
Patent Information
- Application Number
- JP2024540483
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-08-08
- Filing Date
- 2023-08-08
- Publication Date
- 2025-10-23
- Estimated Expiration
- 2043-08-08
AI Technical Summary
Existing electrochemical cells face issues with uneven bonding between lid and base members due to reaction forces from elastic members, misalignment of elastic members during sealing, and non-uniform pressure application on gaskets, leading to decreased sealing performance and electrical connection.
The electrochemical device features a conductive plate with elastic locking portions that are inserted into recessed container holes, providing a secure electrical connection and uniform pressure distribution, while maintaining a gap between the conductive plate and lid to prevent deformation and enhance sealing.
This configuration ensures stable electrical connection and improved sealing performance by preventing misalignment and uniform pressure application, even with variations in the power generating element's thickness.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to an electrochemical device in which a power generating element is sealed in a case. [Background technology]
[0002] BACKGROUND ART Various types of batteries have been disclosed in the past, in which a power generating element is housed in an internal space formed by a recessed container and a lid member that covers the opening of the recessed container.
[0003] Japanese Patent Laid-Open Publication No. 2012-69508 (Patent Document 1) discloses an electrochemical cell with stable electrochemical characteristics. The electrochemical cell has a sealed container. The sealed container is made up of a base member and a lid member. A storage space for storing an electrochemical element is formed between the two members. An elastic member that presses the electrochemical element is disposed between the lid member and the electrochemical element. Patent Document 1 discloses, as the elastic member, a leaf spring that is bent in a V-shape in cross section, or a diaphragm-shaped spring that is formed into a concave curved surface that warps from the center toward the outer periphery.
[0004] Furthermore, Japanese Patent Laid-Open Publication No. 2010-56067 (Patent Document 2) discloses a coin-type lithium secondary battery in which a battery element having a first electrode, a solid electrolyte, and a second electrode is sealed in a container having a metal case, a metal sealing plate, and a gasket interposed therebetween, and a conductive elastic body is disposed between the battery element and the metal case or the metal sealing plate. The conductive elastic body can press the laminate with a pressure of 0.1 MPa or more, thereby increasing the contact surface pressure between the first electrode, the second electrode, and the solid electrolyte. As a result, a decrease in current density can be suppressed. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] Japanese Patent Application Laid-Open No. 2012-69508 [Patent Document 2] Japanese Patent Application Laid-Open No. 2010-56067 Summary of the Invention
[0006] However, in the electrochemical cell of Patent Document 1, in an embodiment in which the elastic member presses the electrode assembly while its position is restricted by the lid member, the lid member and the base member must be joined together while the lid member presses the elastic member when sealing the electrochemical cell. This makes the lid member prone to tilting due to reaction force from the elastic member, potentially resulting in uneven bonding between the lid member and the base member. Furthermore, if the elastic member is not fixed to the lid member or the electrode assembly, the elastic member may become misaligned during sealing. On the other hand, in an embodiment in which the elastic member (diaphragm-shaped spring) is engaged with a seal ring or a base member to separate the elastic member from the lid member, the width from the center to the outer periphery in the height direction (the overall thickness of the spring) becomes large. Furthermore, because the spring is engaged at the outer periphery, which is the upper end in the height direction, a large gap, including the gap between the elastic member and the lid member, is generated between the lid member and the electrochemical element, which hinders the electrochemical cell from achieving high capacity.
[0007] Furthermore, in the coin-type lithium secondary battery of Patent Document 2, it is necessary to crimp the metal case so that the conductive elastic body presses the battery element with a certain level of pressure or more while applying an appropriate pressure to the gasket. However, it is difficult to make the thickness of the resin gasket uniform throughout, and it is also difficult to apply a uniform pressure to the entire gasket, which can lead to a decrease in sealing performance.
[0008] Therefore, an object of the present disclosure is to provide an electrochemical element that can maintain good electrical connection.
[0009] In order to solve the above problems, the present disclosure is configured as follows. Specifically, the electrochemical device according to the present disclosure includes a case having a recessed container with a bottom and sidewalls and a lid covering the opening of the recessed container; a power generating element sealed in the case, the power generating element having a first electrode layer disposed on the bottom side, a second electrode layer disposed on the lid side, and an isolation layer disposed between the first and second electrode layers; and a conductive plate disposed between the power generating element and the lid. The first electrode layer is electrically connected to a first conductive path leading from the inside of the case to the outside. The second electrode layer is electrically connected via the conductive plate to a second conductive path leading from the inside of the case to the outside. The recessed container has an insertion hole having an opening in the upper end surface of the sidewall. The conductive plate has an elastic locking portion extending from an edge of the conductive plate and inserted into the insertion hole to attach the conductive plate to the recessed container. The elastic locking portion inserted into the insertion hole presses against the side surface of the insertion hole.
[0010] According to the electrochemical device according to the present disclosure, good electrical connection can be maintained. [Brief explanation of the drawings]
[0011] [Figure 1] FIG. 1 is a cross-sectional view showing an electrochemical device according to a first embodiment. [Figure 2] FIG. 2 is an external perspective view showing the concave container of the electrochemical device of FIG. [Figure 3] FIG. 3 is a plan view showing the electrochemical device of FIG. 1 (excluding the cover and the conductive plate). [Figure 4] FIG. 4 is a plan view showing the conductive plate of the electrochemical device of FIG. [Figure 5] FIG. 5 is an external perspective view showing a modified example of the conductive plate of the electrochemical device of FIG. [Figure 6] FIG. 6 is a cross-sectional view showing an electrochemical device according to a second embodiment. [Figure 7] FIG. 7 is a cross-sectional view showing an electrochemical device according to a third embodiment. [Figure 8] FIG. 8 is a cross-sectional view showing an electrochemical device according to a fourth embodiment. [Figure 9]FIG. 9 is an external perspective view showing the concave container of the electrochemical device according to the first modification. [Figure 10] FIG. 10 is an external perspective view showing a conductive plate according to the second modification. [Figure 11] FIG. 11 is a perspective view showing the appearance of a concave container corresponding to the conductive plate shown in FIG. [Figure 12] FIG. 12 is an external perspective view showing a concave container of an electrochemical device according to Modification 3. As shown in FIG. [Figure 13] FIG. 13 is a cross-sectional view showing an electrochemical device according to the fourth modification. [Figure 14] FIG. 14 is an external perspective view showing a concave container according to the sixth modification. DETAILED DESCRIPTION OF THE INVENTION
[0012] (Configuration 1) An electrochemical device according to an embodiment of the present disclosure may include a case having a recessed container having a bottom and sidewalls and a lid covering the opening of the recessed container; a power generating element sealed in the case, the power generating element having a first electrode layer disposed on the bottom side, a second electrode layer disposed on the lid side, and an isolation layer disposed between the first and second electrode layers; and a conductive plate disposed between the power generating element and the lid. The first electrode layer may be electrically connected to a first conductive path extending from the inside to the outside of the case. The second electrode layer may be electrically connected to a second conductive path extending from the inside to the outside of the case via the conductive plate. The recessed container may have an insertion hole having an opening in an upper end surface of the sidewall. The conductive plate may have an elastic locking portion extending from an edge of the conductive plate and inserted into the insertion hole to attach the conductive plate to the recessed container. The elastic locking portion inserted into the insertion hole may press against a side surface of the insertion hole.
[0013] The conductive plate is fixed to the recessed container by the elastic force of the elastic locking portion, thereby maintaining a good electrical connection. Furthermore, the conductive plate can be easily attached to the recessed container by simply inserting the elastic locking portion from above the upper end surface of the recessed container toward the insertion hole.
[0014] (Configuration 2) In the electrochemical element of Configuration 1, the elastic locking portion may have a tip portion folded back in the opposite direction to the insertion direction into the insertion hole, thereby allowing the elastic locking portion to be easily inserted into the insertion hole and the tip portion to press against the side surface of the insertion hole to fix the conductive plate to the recessed container, thereby maintaining good electrical connection.
[0015] (Configuration 3) In the electrochemical element of Configuration 1, the elastic locking portion may have a corrugated plate shape. When the elastic locking portion is inserted into the insertion hole, each curved surface of the corrugated plate is pressed against the side surface of the insertion hole, bending the portion so as to extend in the insertion direction, and the resulting elastic force presses against the side surface of the insertion hole. As a result, the conductive plate can be easily fixed to the recessed container 11, and good electrical connection can be maintained.
[0016] (Configuration 4) In the electrochemical element of Configuration 1, a gap may be formed between the conductive plate and the lid member. This prevents the lid member from contacting the power-generating element, and therefore, when joining the lid member to the upper end surface of the side wall of the concave container, the lid member is not affected by variations in the thickness of the power-generating element, thereby improving the sealing performance of the case.
[0017] (Configuration 5) An electrochemical device according to another embodiment may include a case having a recessed container having a bottom and sidewalls and a lid covering the opening of the recessed container; an exterior material sealed within the case, the exterior material including a first electrode terminal disposed on the bottom side and a second electrode terminal disposed on the lid side; a flat element having a power generating element enclosed within the exterior material, the power generating element including a first electrode layer, a second electrode layer, and an isolation layer disposed between the first and second electrode layers; and a conductive plate disposed between the flat element and the lid. The first electrode terminal may be electrically connected to a first conductive path extending from the interior of the case to the exterior. The second electrode terminal may be electrically connected to a second conductive path extending from the interior of the case to the exterior via the conductive plate. The recessed container may have an insertion hole having an opening in an upper end surface of the sidewall. The conductive plate may have an elastic locking portion extending from an edge of the conductive plate and inserted into the insertion hole to attach the conductive plate to the recessed container. The elastic locking portion inserted into the insertion hole may press against the side surface of the insertion hole. This allows the conductive plate to be fixed to the recessed container by the elastic force of the elastic locking portion, thereby maintaining a good electrical connection. Furthermore, the conductive plate can be easily attached to the recessed container by simply inserting the elastic locking portion from above the upper end surface of the recessed container toward the insertion hole.
[0018] Hereinafter, the first embodiment of the present disclosure will be specifically described using an example in which the electrochemical device is an all-solid-state battery, with reference to Figures 1 to 5. First, as shown in Figure 1, the electrochemical device 1 is composed of a case 10, a power generating element 20 and a conductive plate 30 housed in the case 10, and external terminals 13 and 14 disposed on the outer surface of the case 10.
[0019] The case 10 includes a recessed container 11 and a lid member 12. The recessed container 11 is made of ceramic. The recessed container 11 includes a rectangular bottom 111 and a rectangular tubular sidewall 112 that is formed continuously from the outer periphery of the bottom 111 and has a cylindrical space therein for accommodating the power generating element 20. The sidewall 112 extends substantially perpendicular to the bottom 111 in a vertical cross-sectional view. A conductor 113 is formed inside the bottom 111. The conductor 113 extends between the power generating element 20 and the bottom 111 so as to be conductively connected to the power generating element 20, forming a conductive path corresponding to the electrode layer 21. A conductor 114 is formed inside the sidewall 112. As shown in FIG. 1 , a portion of the conductor 114 is exposed on the underside or side of an insertion hole 115 (described later) and forms a conductive path corresponding to the electrode layer 22. The manufacturing method of the concave container 11 will be described later. The material of the concave container 11 is not particularly limited, and various materials such as resin, glass (borosilicate glass, glass ceramics, etc.), metal, and ceramic can be used. A composite material in which ceramic or glass powder is dispersed in resin may also be used. When the concave container 11 is made of a metal material, it is preferable to coat the inner surface of the bottom 111 and the inner circumferential surface of the side wall 112 of the concave container 11 with an insulating material such as resin or glass to ensure insulation between the concave container 11 and the power generating element 20 or between the concave container 11 and the flat element 50 (see FIG. 8 ), which will be described later. Furthermore, the concave container 11 is not limited to a rectangular shape in plan view, and may be a circular, elliptical, or polygonal shape. The internal space for accommodating the power generating element 20 is not limited to a cylindrical shape, and may be formed into a polygonal cylindrical shape such as a rectangular cylindrical shape depending on the shape of the power generating element 20. Furthermore, the conductor 114 may be formed on the inner surface of the side wall 112 instead of inside the side wall 112, and may further penetrate the inside of the bottom 111 to be electrically connected to the external terminal 14. In this case, it is preferable to form an insulating layer between the outer peripheral surface of the power generating element 20 and the conductor 114, for example, on the inner surface of the conductor 114, so that the outer peripheral surface of the power generating element 20 and the conductor 114 do not come into contact with each other.
[0020] The side wall 112 has insertion holes 115 on its upper end surface into which elastic locking portions 31 of the conductive plate 30 (described later) are inserted. The insertion holes 115 have openings on the upper end surface of the side wall 112. The depth of the insertion holes 115 is not particularly limited, as long as the elastic locking portions 31 can be inserted. The width between one side surface of the insertion hole 115 and the other side surface facing the one side surface is smaller than the width of the elastic locking portions 31 before being inserted into the insertion hole 115. That is, as described later, the elastic locking portions 31 are inserted into the insertion holes 115 while shrinking and deforming, and their elastic force presses against the one and other side surfaces of the insertion hole 115. In this embodiment, four insertion holes 115 are formed on the upper end surface of the side wall 112. The same number of insertion holes 115 are formed at positions corresponding to the elastic locking portions 31.
[0021] The lid member 12 is a rectangular metal thin plate that covers the opening of the recessed container 11. As shown in FIGS. 1 and 3 , the lid member 12 is joined (seam-welded) to the recessed container 11 by a rectangular frame-shaped seal ring 15 disposed between the lower surface of the outer peripheral edge of the lid member 12 and the upper end of the recessed container 11. This completely seals the interior space of the case 10. The interior space of the case 10 is preferably a vacuum atmosphere or an inert gas atmosphere such as nitrogen, taking into consideration the influence on the power generating element 20. The lid member 12 is not limited to a metal thin plate as long as it can cover the opening of the recessed container 11. The shape of the lid member 12 is not limited to a rectangular shape, and can be variously changed to a circular shape, an elliptical shape, a polygonal shape, etc., depending on the shape of the recessed container 11 in a planar view. The lid member 12 may also have a shape other than a flat plate. The lid member 12 may be bonded to the recessed container 11 with an adhesive. The method of joining the lid member 12 to the recessed container 11 is not particularly limited as long as it can seal the interior space of the case 10.
[0022] The external terminal 13 is disposed on the outer surface of the bottom 111 of the hollow container 11. The external terminal 13 is electrically connected to an electrode layer 21 (described later) via a conductor 113. The electrode layer 21 functions as a positive electrode layer (described later). Therefore, the conductor 113 serves as a conductive path that connects the external terminal 13 and the positive electrode layer, and the external terminal 13 functions as a positive electrode terminal.
[0023] The external terminal 14 is disposed on the outer surface of the bottom 111 of the recessed container 11, spaced apart from the external terminal 13. The external terminal 14 is electrically connected to the elastic locking portion 31 of the conductive plate 30 (described later) via the conductor portion 114. As described later, the conductive plate 30 is electrically connected to the electrode layer 22, which functions as a negative electrode layer. Therefore, the conductor portion 114 serves as a conductive path between the external terminal 14 and the negative electrode layer, and the conductive plate 30 serves as a connection terminal between this conductive path and the electrode layer 22, so that the external terminal 14 functions as a negative electrode terminal. Note that the arrangement of the external terminals 13 and 14 is not limited to the above. They may be disposed on the outer surface of the side wall portion 112 of the recessed container 11, or the lid member 12 may function as the conductor portion 114, with the external terminal 14 formed on the outer surface of the lid member 12. However, arranging these two terminals at a fixed distance from each other on the outer surface of the bottom 111 of the recessed container 11 facilitates mounting on the surface of a circuit board.
[0024] Here, a method for manufacturing the concave container 11 will be described. First, a metal paste is printed onto a ceramic green sheet to form a printed pattern that will become the conductor portions 113 and 114. Next, a plurality of green sheets with these printed patterns formed thereon are stacked and fired. The above-mentioned insertion hole 115 is formed by stacking a plurality of green sheets with different shapes. This makes it possible to manufacture a concave container 11 that has the conductor portions 113 and 114 inside and the insertion hole 115 in the upper end surface of the side wall portion 112. However, the manufacturing method is not limited to this, as long as the insertion hole 115 can be formed in the upper end surface of the side wall portion 112. Note that the external terminals 13 and 14 can also be formed by using this metal paste printed pattern.
[0025] The power generating element 20 includes a laminated body in which an electrode layer (positive electrode layer) 21, an electrode layer (negative electrode layer) 22, and a solid electrolyte layer 23 are stacked. The solid electrolyte layer 23 is disposed between the electrode layers 21 and 22 as a separator. That is, in this embodiment, the separator is the solid electrolyte layer 23. The power generating element 20 is formed in a cylindrical shape. The electrode layer 21, the solid electrolyte layer 23, and the electrode layer 22 are stacked in this order from the bottom 111 side (bottom in the figure) of the recessed container 11. That is, the power generating element 20 is housed in the internal space of the case 10, with the electrode layer 21, which is one end thereof, facing the bottom 111 side of the recessed container 11, and the electrode layer 22, which is the other end thereof, facing the lid member 12. The shape of the power generating element 20 is not limited to a cylindrical shape and can be variously modified, such as a rectangular parallelepiped shape or a polygonal prism shape. The power generating element 20 may also have multiple laminated bodies. The plurality of laminates may be stacked so as to be connected in series.
[0026] The electrode layer 21 is a positive electrode pellet obtained by placing a positive electrode mixture containing lithium cobalt oxide, a sulfide-based solid electrolyte, and graphene as a conductive additive in a mass ratio of 65:30:5 in a mold with a diameter of 7.45 mm and forming it into a cylindrical shape. The positive electrode active material of the electrode layer 21 is not particularly limited as long as it functions as the positive electrode layer of the power generation element 20. For example, the positive electrode active material may be lithium nickel oxide, lithium manganese oxide, lithium-nickel-cobalt-manganese composite oxide, olivine-type composite oxide, or an appropriate mixture of these. The other constituent materials and their proportions are also not particularly limited. The size and shape of the electrode layer 21 are not limited to a cylindrical shape and can be variously changed depending on the size and shape of the electrochemical device 1.
[0027] The electrode layer 22 is made of LTO (Li4Ti5O 12The negative electrode pellet is a cylindrically formed negative electrode mixture containing a 50:40:10 weight ratio of lithium titanate (aluminum oxide), a sulfide-based solid electrolyte, and graphene. The negative electrode active material of the electrode layer 22 is not particularly limited as long as it functions as the negative electrode layer of the power generating element 20. For example, it may be metallic lithium, a lithium alloy, a carbon material such as graphite or low-crystalline carbon, or an oxide such as SiO, or an appropriate mixture of these. The other constituent materials and their proportions are also not particularly limited. The size and shape of the electrode layer 22 are not limited to a cylindrical shape and can be variously changed depending on the size and shape of the electrochemical device 1.
[0028] The solid electrolyte layer (separator layer) 23 contains a sulfide-based solid electrolyte. The solid electrolyte layer 23 is formed into a cylindrical shape. The solid electrolyte contained in the electrode layer 21, the electrode layer 22, and the solid electrolyte layer 23 is not particularly limited, but a sulfide-based solid electrolyte, particularly an argyrodite-type sulfide-based solid electrolyte, is preferably used in terms of ion conductivity. When using a sulfide-based solid electrolyte, it is preferable to coat the surface of the positive electrode active material with a lithium ion conductive material such as niobium oxide to prevent reaction with the positive electrode active material. The solid electrolyte contained in the solid electrolyte layer 23, the electrode layer 21, and the electrode layer 22 may be a hydride-based solid electrolyte, an oxide-based solid electrolyte, or the like. The size and shape of the solid electrolyte layer 23 are not limited to a cylindrical shape and can be variously changed depending on the size and shape of the electrochemical device 1.
[0029] As shown in FIGS. 1 and 4 , the conductive plate 30 is a metal plate in a plan view that is placed in the opening of the recessed container 11 of the case 10. The conductive plate 30 has four elastic locking portions 31 on its edge at positions corresponding to the insertion holes 115. The number of elastic locking portions 31 is not limited and may be determined according to the number of insertion holes 115. The shape of the conductive plate 30 in a plan view is not particularly limited and may be a square shape as shown in FIG. 4 or a circular shape. For example, if the conductive plate 30 has four elastic locking portions 31, the conductive plate 30 may be square in a plan view. If the conductive plate 30 has two elastic locking portions 31, the conductive plate 30 may be round in a plan view. In this embodiment, the elastic locking portions 31 extend from the edge of the conductive plate 30 toward the insertion holes 115 (downward in FIG. 1 ). The elastic locking portion 31 has a tip portion 311 folded back in the direction opposite to the direction in which the elastic locking portion 31 is inserted into the insertion hole 115. The tip portion 311 is folded back radially inward. Alternatively, the tip portion 311 may be folded back radially outward. As shown in FIG. 1 , in a vertical cross section taken along the folding direction of the tip portion 311 in a plan view, the width between one side surface of the insertion hole 115 and the other side surface facing the one side surface is smaller than the width of the elastic locking portion 31 before being inserted into the insertion hole 115. Therefore, the elastic locking portion 31 is inserted into the insertion hole 115 while bending such that the folded tip portion 311 is further bent toward the elastic locking portion 31. After being inserted into the insertion hole 115, the tip of the tip portion 311 presses against the side surface of the insertion hole 115 by its elastic force. This fixes the conductive plate 30 to the recessed container 11. As described above, the electrochemical element 1 can easily attach the conductive plate 30 to the recessed container 11 simply by inserting the elastic locking portions 31 into the insertion holes 115. Furthermore, the conductive plate 30 is fixed to the recessed container 11 by the elastic force of the elastic locking portions 31, so that a good electrical connection can be maintained. Furthermore, when inserted into the insertion holes 115, the elastic locking portions 31 are in contact with the conductor portions 114 exposed on a portion of the bottom or side surface of the insertion holes 115. As a result, the conductive plate 30 functions as a current collector and also as a connection terminal that electrically connects the electrode layer 22 to a conductive path leading to the external terminal 14.The conductive plate 30 covers a part of the opening of the hollow container 11. The area of the conductive plate 30 in a plan view is smaller than the area of the opening of the hollow container 11.
[0030] As shown in FIG. 1 , the conductive plate 30 has a recess recessed toward the electrode layer 22 at a contact position with the upper surface of the electrode layer 22, which is the other end of the power-generating element 20. The bottom surface 32 of the recess is flat so that it can press the power-generating element 20 over a wider area. The periphery of the bottom surface 32 of the recess is formed with a step 33 displaced in the thickness direction. The step 33 is a peripheral wall of a truncated cone whose diameter gradually decreases toward the power-generating element 20. As shown in FIG. 1 , the bottom surface 32 of the recess faces the electrode layer 22 and is in contact with the upper surface of the electrode layer 22. In this way, the flat bottom surface 32 presses the electrode layer 22 over a wider area, thereby suppressing damage to the electrode layer 22 when the power-generating element 20 expands. Furthermore, by ensuring a wider contact area between the conductive plate 30 and the power-generating element 20 and establishing a conductive connection between the conductive plate 30 and the power-generating element 20 over a wider area, better electrical connection can be maintained. Furthermore, the step 33 allows the overall thickness of the conductive plate 30 to be reduced. Furthermore, the position of the edge of the conductive plate 30, i.e., the elastic locking portion 31, can be freely set in the height direction (thickness direction of the conductive plate). Therefore, even if a gap is formed between the lid member 12 and the conductive plate 30, the distance between the lid member 12 and the bottom surface 32 of the conductive plate 30 does not increase. As a result, the gap between the lid member 12 and the power generating element 20 can be prevented from increasing, thereby achieving a high capacity of the electrochemical element 1. The thickness direction is the vertical direction in FIG. 1 (height direction of the electrochemical element 1), and can also be said to be the direction perpendicular to the bottom surface 32 in the drawing.
[0031] Examples of metals that can be used to form the conductive plate 30 include nickel, iron, copper, chromium, cobalt, titanium, aluminum, and alloys thereof. In order to facilitate the function of the plate spring, stainless steels for springs such as SUS301-CSP, SUS304-CSP, SUS316-CSP, SUS420J2-CSP, SUS631-CSP, and SUS632J1-CSP are preferably used.
[0032] Furthermore, the thickness of the conductive plate 30 is preferably 0.05 mm or more, more preferably 0.07 mm or more, and particularly preferably 0.1 mm or more, in order to ensure a certain level of pressing force on the power generating element 20. On the other hand, in order to prevent the conductive plate 30 from becoming too thick, which would increase the storage volume inside the case 10, and to make the conductive plate 30 easily deformable so that it can be easily engaged with the side wall portion 112, the thickness of the conductive plate 30 is preferably 0.5 mm or less, more preferably 0.4 mm or less, and particularly preferably 0.3 mm or less.
[0033] In order to reduce contact resistance, the area of the bottom surface 32 of the conductive plate 30 is preferably 10% or more, more preferably 30% or more, particularly preferably 50% or more, and most preferably 60% or more, of the area of the opposing electrode layer 22 of the power-generating element 20 in a planar view. On the other hand, in order to reduce the radial circumferential gap of the power-generating element 20, the area of the bottom surface 32 of the conductive plate 30 is preferably 100% or less, more preferably 95% or less, particularly preferably 90% or less, and most preferably 85% or less, of the area of the opposing electrode layer 22 of the power-generating element 20 in a planar view. Furthermore, the shape of the bottom surface 32 of the conductive plate 30 does not have to be completely flat, and may be an embossed or otherwise textured surface in order to reduce contact resistance with the power-generating element 20.
[0034] After the power generating element 20 is accommodated inside the recessed container 11, the conductive plate 30 is placed on the upper surface of the power generating element 20. After aligning the positions of the elastic locking portions 31 and the insertion holes 115 in a plan view, the conductive plate 30 is attached and fixed to the recessed container 11 by pressing the elastic locking portions 31 of the conductive plate 30 into the insertion holes 115. After the bottom surface 32 of the conductive plate 30 contacts the power generating element 20, the conductive plate 30 is pressed further downward. As a result, the conductive plate 30 bends slightly in the direction away from the electrode layer 22 while in contact with the power generating element 20. The elastic force of the conductive plate 30 presses the power generating element 20 toward the bottom 111 of the recessed container 11. As a result, the conductive plate 30 makes more stable contact with the power generating element 20, and good electrical connection can be maintained without misalignment due to vibration or the like. In this case, forming the recessed portion in the conductive plate 30 reduces the effect of bending on the planar bottom surface 32, thereby maintaining a better electrical connection. Although the conductive plate 30 has the stepped portion 33, the configuration is not particularly limited as long as the resilient locking portion 31 can press the power generating element 20 toward the bottom 111 of the recessed container 11 when inserted into the insertion hole 115. For example, the conductive plate 30 may have a spring piece 34 that rises from the conductive plate 30 toward the electrode layer 22 of the power generating element 20 so as to contact the upper surface of the electrode layer 22 of the power generating element 20. As shown in FIG. 5 , the spring piece 34 may be formed by notching a U-shape near the center of the conductive plate 30 in a plan view, with the tip of the spring piece 34 inclined toward the electrode layer 22. Note that the conductive plate 30 in FIG. 5 is a modified version of the conductive plate 30 shown in FIG. 10 (described later). Therefore, the tip 311 of the resilient locking portion 31 may be folded back circumferentially relative to the inner circumferential surface of the recessed container 11. The shape, number and location of the spring pieces 34 are not particularly limited as long as they can press the power generating element 20 toward the bottom 111 of the recessed container 11 .
[0035] A gap is formed between the conductive plate 30 and the lid member 12. That is, the conductive plate 30 and the lid member 12 do not come into contact with each other. This prevents deformation of the lid member 12 even when a volume change in the power-generating element 20 pushes the conductive plate 30 toward the lid member 12. The lid member 12 and the recessed container 11 are welded together via the seal ring 15, as described above. By providing a gap between the conductive plate 30 and the lid member 12, the effects of welding heat on the power-generating element 20 can be reduced. Furthermore, because the conductive plate 30 and the lid member 12 do not come into contact with each other, the lid member 12 is not affected by a volume change in the power-generating element 20 when it is joined to the upper end surface of the side wall portion 112 of the recessed container 11, and the sealing performance of the case 10 can be further improved.
[0036] (Second embodiment) Next, the electrochemical device 1 of the second embodiment will be specifically described with reference to Fig. 6. In the electrochemical device 1 of this embodiment, the description of the same configuration as the electrochemical device 1 of the first embodiment will basically be omitted, and only the configuration different from the electrochemical device 1 of the first embodiment will be described.
[0037] In the electrochemical device 1 of this embodiment, the power generating element 20 has a porous metal layer 24. The porous metal layer 24 is formed on the surface of the electrode layer 22. That is, the power generating element 20 has the porous metal layer 24 formed between the electrode layer 22 and the conductive plate 30. The porous metal layer 24 is in contact with the bottom surface 32 of the conductive plate 30.
[0038] The porous metal layer 24 is a porous metal substrate with a high porosity, such as a foamed metal porous body, having pores penetrating from one surface to the other. It can be compressed by pressing and functions as a current collector. The porous metal layer 24 covers the surface of the electrode layer 22. To reduce electrical resistance, it is preferable that the porous metal layer 24 not only contacts the electrode layer 22 but also has a portion embedded in the negative electrode mixture of the electrode layer 22, thereby integrating with the electrode layer 22. As shown in FIG. 6 , the porous metal layer 24 may be disposed on the surface of the electrode layer 21 on the lower surface of the electrode layer 22, i.e., the bottom 111 side, or may be provided so that a portion of the porous metal layer 24 is embedded in the positive electrode mixture of the electrode layer 21, thereby integrating with the electrode layer 21.
[0039] The porosity of the porous metal layer 24 is preferably 80% or more, and more preferably 90% or more, to make it easier to adjust variations in the thickness of the power generating element 20 due to compression. On the other hand, to ensure good conductivity, the porosity of the porous metal layer 24 is preferably 99% or less. The thickness of the porous metal layer 24 before assembly into the electrochemical device 1 is preferably 0.1 mm or more, more preferably 0.3 mm or more, and particularly preferably 0.5 mm or more, and is preferably 3 mm or less, more preferably 2 mm or less, and particularly preferably 1.5 mm or less.
[0040] By providing the porous metal layer 24 in this manner, it is possible to sufficiently absorb variations in the thickness of the power generating element 20 or the height of the case 10, and as a result, it is possible to suppress variations in the value of the internal resistance. Alternatively, if the porous metal layer 24 is previously integrated with the second electrode layer, it is possible to reduce the electrical resistance at the conductive points between the bottom surface 32 of the conductive plate 30 or the spring pieces and the power generating element 20.
[0041] (Third embodiment) Next, the electrochemical device 1 of the third embodiment will be specifically described with reference to Fig. 7. In the electrochemical device 1 of this embodiment, the description of the same configuration as the electrochemical device 1 of the first embodiment will basically be omitted, and only the configuration different from the electrochemical device 1 of the first embodiment will be described.
[0042] The electrochemical element 1 of this embodiment has a conductive sheet 40 between the electrode layer 22 and the conductive plate 30. In this embodiment, the conductive sheet 40 is a conductive carbon sheet made of expanded graphite, i.e., a graphite sheet. The graphite sheet is manufactured as follows. First, particles of acid-treated graphite, which is natural graphite that has been treated with an acid, are heated. The acid present between the layers of the acid-treated graphite then vaporizes and foams, causing it to expand. This expanded graphite (expanded graphite) is molded into a felt shape and then rolled using a rolling mill to form a sheet. The conductive sheet 40 is manufactured by hollowing out a circular shape from the expanded graphite sheet. As described above, expanded graphite is formed when the acid vaporizes and the acid-treated graphite foams. Therefore, the graphite sheet is formed into a porous shape. Therefore, the graphite sheet has the conductivity inherent to graphite itself as well as flexibility not found in conventional graphite products. However, the method for manufacturing the graphite sheet is not limited to this, and the graphite sheet may be made of a material other than expanded graphite, and the graphite sheet may be manufactured by any method.
[0043] The apparent density of the graphite sheet is 0.3 g / cm 3 More preferably, 0.7 g / cm 3 or more, 1.5 g / cm 3 Preferably, it is equal to or less than 1.3 g / cm 3 It is preferable that the apparent density of the graphite sheet is set to the value below. If the apparent density of the graphite sheet is too low, the graphite sheet becomes more susceptible to breakage, while if the apparent density is too high, the flexibility decreases. Note that the apparent density is not limited to graphite sheets, but can also be applied to conductive sheets 40 formed from other materials, such as conductive tape.
[0044] The thickness of the graphite sheet is preferably 0.05 mm or more, more preferably 0.07 mm or more, and is preferably 0.5 mm or less, more preferably 0.2 mm or less. If the graphite sheet is too thin, it becomes more susceptible to breakage, and if it is too thick, the graphite sheet narrows the internal space of the case 10 that houses the power generating element 20, reducing the volume (thickness) of the power generating element 20 that can be housed therein. Note that the thickness of the graphite sheet is not limited to that of a graphite sheet, and can also be applied to conductive sheets 40 formed from other materials such as conductive tape or metal.
[0045] In this way, by providing the conductive sheet 40, which is more flexible than the conductive plate 30, i.e., more easily deformable, the pressing force of the conductive plate 30 is transmitted more uniformly to the power generating element 20, which can prevent damage to the power generating element 20 and stabilize the electrical connection. Note that the conductive sheet 40 may be disposed between the electrode layer 21 and the bottom 111 of the recessed container 11, as shown in FIG. 7. This can further prevent damage to the power generating element 20 and stabilize the electrical connection.
[0046] (Fourth embodiment) Next, the electrochemical device 1 of the fourth embodiment will be specifically described with reference to Fig. 8. In the electrochemical device 1 of this embodiment, the description of the same configuration as the electrochemical devices 1 of the first and second embodiments will basically be omitted, and only the configuration different from the electrochemical devices 1 of the first and second embodiments will be described.
[0047] The electrochemical device 1 of this embodiment accommodates a flat element 50 in the internal space of a case 10. As shown in FIG. 8 , the flat element 50 includes an outer can (electrode terminal) 51, a sealing can (electrode terminal) 52, the power generating element 20, and a gasket 53.
[0048] The outer can 51 includes a circular flat portion 511 and a cylindrical side wall portion 512 formed continuously from the outer periphery of the flat portion 511. The cylindrical side wall portion 512 is provided so as to extend substantially perpendicular to the flat portion 511 in a vertical cross-sectional view. The outer can 51 is made of a metal material such as stainless steel. The outer can 51 is disposed on the bottom 111 side of the recessed container 11.
[0049] The sealing can 52 has a circular flat portion 521 and a cylindrical peripheral wall portion 522 that is formed continuously from the outer periphery of the flat portion 521. The opening of the sealing can 52 faces the opening of the outer can 51. The sealing can 52 is made of a metal material such as stainless steel. The sealing can 52 is arranged on the lid member 12 side. The power generating element 20 is housed between the outer can 51 and the sealing can 52. Therefore, the outer can 51 functions as an electrode terminal that is connected to the conductor portion 113, and the sealing can 52 functions as the other electrode terminal that is connected to the conductive plate 30.
[0050] After the power generating element 20 is accommodated in the internal space of the outer can 51 and the sealing can 52, the outer can 51 and the sealing can 52 are crimped together with a gasket 53 interposed between the cylindrical side wall 512 of the outer can 51 and the peripheral wall 522 of the sealing can 52. More specifically, the outer can 51 and the sealing can 52 are arranged with their openings facing each other, the peripheral wall 522 of the sealing can 52 is inserted into the cylindrical side wall 512 of the outer can 51, and then the outer can 51 and the sealing can 52 are crimped together with the gasket 53 interposed between the cylindrical side wall 512 and the peripheral wall 522. As a result, the internal space formed by the outer can 51 and the sealing can 52 is sealed. That is, the outer can 51 and the sealing can 52 are exterior materials that enclose the power generating element 20 in their internal space. Note that the shapes of the outer can 51 and the sealing can 52 are not limited to being circular in plan view, and can be variously modified, such as elliptical or polygonal.
[0051] The gasket 53 is made of a resin material such as polyamide resin, polypropylene resin, or polyphenylene sulfide resin. The method for sealing the internal space formed by the outer can 51 and the sealable can 52 is not limited to crimping via the gasket 53, and other methods may be used. For example, the cylindrical side wall portion 512 of the outer can 51 and the peripheral wall portion 522 of the sealable can 52 may be joined and sealed using a heat-melting resin, adhesive, or the like.
[0052] After the flat element 50 is accommodated inside the recessed container 11, the conductive plate 30 is placed on the top surface of the flat element 50 and fixed by engaging the elastic locking portion 31 with the insertion hole 115. At this time, the bottom surface 32 of the conductive plate 30 comes into contact with the flat portion 521 of the sealing can 52, and then the conductive plate 30 is pressed further downward, bending slightly in the opposite direction from the flat element 50. The elastic force of the conductive plate 30 presses the flat element 50 toward the bottom portion 111 of the recessed container 11. This allows the conductive plate 30 to make more stable contact with the flat element 50, and similar to the electrochemical device 1 of the first embodiment described above, good electrical connection can be maintained without misalignment due to vibration or the like.
[0053] In the electrochemical element 1 of this embodiment, although not specifically shown, the porous metal layer 24 or conductive sheet 40 described above may be disposed between the flat element 50 and the conductive plate 30. Furthermore, the porous metal layer 24 or conductive sheet 40 may be disposed between the flat element 50 and the bottom 111 of the recessed container 11.
[0054] The flat element 50 is not limited to an all-solid-state battery having a solid electrolyte layer, but may be a non-aqueous electrolyte battery such as a lithium ion secondary battery, another battery having a flat shape, or a capacitor such as a lithium ion capacitor.
[0055] (Variation 1) 9, the recessed container 11 of Modification 1 has two insertion holes 115. In this case, the number of elastic locking portions 31 formed on the conductive plate 30 is two. As described above, in the electrochemical device 1 of each embodiment, the number of insertion holes 115 is not limited, and it is sufficient that multiple insertion holes 115 are formed so that multiple elastic locking portions 31 can be inserted therein.
[0056] (Variation 2) As shown in Fig. 10, the tip portion 311 of the elastic locking portion 31 may be folded back in the circumferential direction rather than the radial direction relative to the inner peripheral surface of the recessed container 11. As shown in Fig. 11, the insertion hole 115 formed at the upper end of the side wall portion 112 of the recessed container 11 is formed so that the elastic locking portion 31 can be inserted and so that after the elastic locking portion 31 is inserted, the tip portion 311 can press against the side surface of the insertion hole 115 by the elastic force of the elastic locking portion 31. As such, in the electrochemical device 1 of each embodiment, the direction in which the tip portion 311 is folded back is not particularly limited, and as described above, the tip portion 311 may be folded back radially outward from the recessed container 11.
[0057] (Variation 3) Variation 3 is a variation of the recessed container 11 of Variation 2 shown in FIG. 11. As shown in FIG. 12, the insertion hole 115 formed as an opening in the upper end surface of the recessed container 11 may be in communication with the internal space of the recessed container 11. That is, the insertion hole 115 is a notch cut out from the upper end surface to the inner circumferential surface of the recessed container 11. The insertion hole 115 has openings in the upper end surface and the inner circumferential surface of the recessed container 11. The insertion hole 115 only needs to have an opening in at least the upper end surface of the recessed container 11 so that the tip end 311 of the elastic locking portion 31 can be inserted from above the recessed container 11. The tip end 311 of the elastic locking portion 31, which has a shape similar to that of the elastic locking portion 31 shown in FIG. 10, is inserted into the insertion hole 115 of Variation 3. In this way, even in the insertion hole 115 communicating with the internal space of the recessed container 11, by inserting the tip portion 311 of the elastic locking portion 31, the conductive plate 30 can be attached and fixed to the recessed container 11.
[0058] (Variation 4) As shown in FIG. 13 , the elastic locking portion 31 of the conductive plate 30 may have a corrugated plate shape in the electrochemical device 1 of each embodiment. The corrugated elastic locking portion 31 has multiple curved surfaces. When the elastic locking portion 31 is inserted into the insertion hole 115, each curved surface of the elastic locking portion 31 is pressed against the side surface of the insertion hole 115 and bends to extend in the insertion direction. As a result, each curved surface of the elastic locking portion 31 presses the side surface of the insertion hole 115 radially inward or radially outward due to its elastic force. As a result, the conductive plate 30 can be easily fixed to the recessed container 11.
[0059] (Variation 5) Although not specifically shown, the insertion hole 115 may be a notch formed in the upper end surface of the side wall portion 112. That is, the insertion hole 115 may be formed so as to have an opening at least in the upper end surface of the side wall portion 112 by being expanded by the elastic locking portion 31 inserted into the notch. In this way, the insertion hole 115 may be a notch as long as it allows the elastic locking portion 31 of the conductive plate 30 to be inserted from above the side wall portion 112 of the recessed container 11, or may be in communication with the internal space of the recessed container 11 as described above.
[0060] (Variation 6) 14, in the electrochemical device 1 of each embodiment, the insertion holes 115 in the sidewall 112 of the recessed container 11 may be partially blocked by support portions 116 so as to be able to lock the folded-back tip portions 311 of the elastic locking portions 31 of the conductive plate 30. The bottom surface of each support portion 116 can lock the tip portions 311 of the elastic locking portions 31 inserted into the insertion holes 115, preventing the elastic locking portions 31 from slipping out of the insertion holes 115 even when a strong force is applied to the conductive plate 30. The recessed container 11 shown in FIG. 14 is a modified example of the recessed container 11 shown in FIG. 12.
[0061] (Other variations) In each embodiment, the electrode layer 21 functions as a positive electrode layer and the electrode layer 22 functions as a negative electrode layer, but the electrode layer 21 may function as a negative electrode layer and the electrode layer 22 may function as a positive electrode layer. In this case, the external terminal 13 functions as a negative electrode terminal and the external terminal 14 functions as a positive electrode terminal.
[0062] In the above-described fourth embodiment, the flat element 50 is accommodated in the internal space of the case 10 so that the outer can 51 is disposed on the bottom 111 side of the recessed container 11, but the flat element 50 may also be accommodated so that the sealing can 52 is disposed on the bottom 111 side of the recessed container 11. In other words, the flat element 50 may be accommodated in the internal space of the case 10 in a state in which the flat element 50 shown in FIG. 8 is turned upside down.
[0063] In the above-described embodiment, the power generating element 20 is configured as a laminate obtained by stacking the electrode layer 21, the electrode layer 22, and the solid electrolyte layer 23. However, by providing a separator (not shown) as an isolation layer instead of the solid electrolyte layer 23 and accommodating an electrolyte solution together with the power generating element 20 in the internal space of the case 10, the electrochemical element can be configured as a lithium ion secondary battery, a lithium ion capacitor, an electric double layer capacitor, or the like. In this case, the separator and the electrolyte solution are those typically used in lithium ion secondary batteries, lithium ion capacitors, electric double layer capacitors, or the like. Furthermore, the electrode layer 21 and the electrode layer 22 may be replaced with positive and negative electrode mixture layers typically used in various electrochemical elements 1.
[0064] Furthermore, the present invention can contribute to the achievement of Goal 7 "Affordable and clean energy" and Goal 12 "Responsible consumption and production" of the Sustainable Development Goals (SDGs) advocated by the United Nations. [Example]
[0065] [Evaluation of vibration resistance] An electrochemical element (all-solid-state battery) shown in Fig. 6 was fabricated using a conductive plate made of SUS304-CSP with a thickness of 0.2 mm. The electrochemical element of this example was subjected to a vibration test as follows to evaluate its vibration resistance.
[0066] A test was conducted in which sine wave vibration was applied to the electrochemical element of the example in three directions (length, width, and height) in sequence. The sine wave was swept in a logarithmic manner, with the frequency varying from 7 Hz to 200 Hz, over a 15-minute period, and this sweep was repeated 12 times in each of the three directions. Between 7 Hz and 18 Hz, the sweep was performed so that the peak acceleration was maintained at 1 G. From 18 Hz, the sweep was performed up to a frequency (approximately 50 Hz) where the peak acceleration reached 8 G while maintaining a total amplitude of 0.8 mm. Further, the sweep was performed up to 200 Hz, with the peak acceleration maintained at 1 G.
[0067] The AC impedance of the electrochemical element of the example that underwent the vibration test was measured at 1 kHz with an applied voltage of 10 mV, and the measured AC impedance was compared with the value measured before the vibration test. No change was observed, confirming that good electrical connection was maintained by the conductive plate attached to the side wall of the concave container.
[0068] [Evaluation of sealing properties] In addition to the vibration resistance test, the sealing property of the case of the electrochemical element of the example was confirmed by the "Helium Leak Test Method" (bombing method) described in JIS-Z2331. The electrochemical element was placed in a tank and pressurized with helium gas for 2 hours, and then the area around the electrochemical element was evacuated in a vacuum chamber for 1 minute to determine the amount of helium gas leakage. After 10 minutes, the leakage amount was 1 x 10 -10 Pa·m 3 / s or less, demonstrating excellent sealing properties.
[0069] Although the embodiments have been described above, the present disclosure is not limited to the above embodiments, and the above embodiments and variations may be combined with each other, and various modifications are possible as long as they do not deviate from the spirit of the present disclosure. [Explanation of symbols]
[0070] 1 electrochemical element, 10 case, 11 concave container, 12 lid material, 13 external terminal, 14 external terminal, 15 seal ring, 111 bottom, 112 side wall, 113 conductor portion, 114 conductor portion, 115 insertion hole, 116 support portion, 20 power generating element, 30 conductive plate, 31 elastic locking portion, 311 tip portion, 32 bottom surface, 33 step portion, 34 spring piece, 40 conductive sheet, 50 flat element, 51 outer can, 511 flat portion, 52 sealed can, 521 flat portion, 53 gasket
Claims
1. a case having a concave container having a bottom and a side wall and a lid covering an opening of the concave container; a power generating element sealed in the case, the power generating element including a first electrode layer disposed on the bottom side, a second electrode layer disposed on the lid side, and an isolation layer disposed between the first electrode layer and the second electrode layer; a conductive plate disposed between the power generating element and the lid, the first electrode layer is electrically connected to a first conductive path that leads from the inside to the outside of the case; the second electrode layer is electrically connected to a second conductive path that leads from the inside to the outside of the case via the conductive plate; the recessed container has an insertion hole having an opening on an upper end surface of the side wall portion, the conductive plate has an elastic locking portion extending from an edge of the conductive plate and inserted into the insertion hole to attach the conductive plate to the recessed container; The elastic locking portion inserted into the insertion hole presses against a side surface of the insertion hole.
2. The electrochemical device according to claim 1 , The elastic locking portion has a tip portion that is folded back in a direction opposite to the insertion direction into the insertion hole.
3. The electrochemical device according to claim 1 , The electrochemical element, wherein the elastic engaging portion has a corrugated plate shape.
4. The electrochemical device according to any one of claims 1 to 3, An electrochemical element, wherein a gap is formed between the conductive plate and the lid member.
5. a case having a concave container having a bottom and a side wall and a lid covering an opening of the concave container; a flat element including an exterior material sealed in the case, the exterior material including a first electrode terminal arranged on the bottom side and a second electrode terminal arranged on the lid material side, and a power generating element sealed inside the exterior material, the power generating element including a first electrode layer, a second electrode layer, and an isolation layer arranged between the first electrode layer and the second electrode layer; a conductive plate disposed between the flat element and the lid material, the first electrode terminal is electrically connected to a first conductive path that leads from the inside to the outside of the case; the second electrode terminal is electrically connected to a second conductive path that leads from the inside to the outside of the case via the conductive plate; the recessed container has an insertion hole having an opening on an upper end surface of the side wall portion, the conductive plate has an elastic locking portion extending from an edge of the conductive plate and inserted into the insertion hole to attach the conductive plate to the recessed container; The elastic locking portion inserted into the insertion hole presses against a side surface of the insertion hole.
Citation Information
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