The present disclosure relates to a battery.
Batteries such as a lithium ion secondary battery usually includes a cathode current collector, a cathode active material layer, an electrolyte layer, an anode active material layer, and an anode current collector. The cathode current collector usually includes a cathode tab, and the cathode tab is electronically connected to a cathode current collecting terminal. Meanwhile, the anode current collector usually includes an anode tab, and the anode tab is electronically connected to an anode current collecting terminal. Patent Literature 1 discloses a joining method of joining a laminated structure in which a plurality of metal foils and a plurality of insulating films are layered, and a metal plate arranged in an end of the laminated structure.
Patent Literature 1: Japanese Patent Application Laid-Open (JP-A) No. 2011-129328
In general, the thickness of a tab is thin, and thus unintended deformation tends to occur. When unintended deformation occurs, there is a possibility that the deformation may cause poor bonding of a tab and a current collecting terminal.
The present disclosure has been made in view of the above circumstances, and a main object thereof is to provide a battery with excellent bonding of tabs and current collecting terminals.
The present disclosure provides a battery including a power generating element, wherein: the power generating element includes a first active material layer, a second active material layer, an electrolyte layer arranged between the first active material layer and the second active material layer, a first current collector that collects currents of the first active material layer, and a second current collector that collects currents of the second active material layer; the first current collector includes a first tab; the battery includes a first current collecting terminal electronically connected to the first tab; in a plan view in a thickness direction of the power generating element, the first current collecting terminal includes a base part, and a protruding part that protrudes to the first tab side on the basis of the base part; the first tab includes a slit extending from an end part T1 of the first current collecting terminal side to the first active material layer side; the slit contacts the protruding part; and the first tab includes a buckling part including the slit.
According to the present disclosure, by arranging a slit in a tab, and by further arranging a buckling part including the slit, a battery with excellent bonding of tabs and current collecting terminals may be achieved.
In the disclosure, in a plan view in a thickness direction of the power generating element, an end part TS of the first active material layer side of the slit may be positioned in outer side compared to an end part TF of the first active material layer.
In the disclosure, the first current collecting terminal may include a plurality of the protruding part.
In the disclosure, the first tab may include a plurality of the slit with respect to one of the protruding part.
In the disclosure, the power generating element may be in a sheet shape.
The battery in the present disclosure exhibits an effect of excellent bonding of tabs and current collecting terminals.
The battery in the present disclosure is hereinafter explained in details with reference to drawings. Each drawing described as below is a schematic view, and the size and the shape of each portion are appropriately exaggerated in order to be understood easily. Furthermore, in the present description, upon expressing an embodiment of arranging one member with respect to the other member, when it is expressed simply “on” or “below”, both of when the other member is directly arranged on or below the one member so as to contact with each other, and when the other member is arranged above or below the one member interposing an additional member, can be included unless otherwise described.
Battery 100 illustrated in
The battery 100 illustrated in
According to the present disclosure, by arranging a slit in a tab, and by further arranging a buckling part including the slit, a battery with excellent bonding of tabs and current collecting terminals may be achieved. As described above, in general, the thickness of a tab is thin, and thus unintended deformation tends to occur. When unintended deformation occurs, there is a possibility that the deformation may cause poor bonding of a tab and a current collecting terminal. For example, when unintended deformation occurs in the root of the tab, the deformed tab may contact other parts with different polarity to possibly cause short circuit. In particular, when a current collecting terminal and a tab are bonded by pushing the current collecting terminal including a protruding part against the tab, the current collecting terminal and the tab may be strongly bonded, but on the other hand, the deformation of the tab may easily occur due to the protruding part. In contrast, in the present disclosure, a slit is arranged in the tab. Thereby, when the current collecting terminal including the protruding part is pushed against the tab, a buckling part including the slit is formed. In this manner, by arranging the slit in the tab, and by positively arranging the part where the buckling occurs, the deformation of the tab can be controlled. As a result, a battery with excellent bonding of tabs and current collecting terminals may be achieved.
1. Power Generating Element
The power generating element in the present disclosure includes a first active material layer, a second active material layer, an electrolyte layer arranged between the first active material layer and the second active material layer, a first current collector that collects currents of the first active material layer, and a second current collector that collects currents of the second active material layer.
In the present disclosure, when the first active material layer is a cathode active material layer, the first current collector is a cathode current collector, the second active material layer is an anode active material layer, and the second current collector is an anode current collector. In contrast, when the first active material layer is an anode active material layer, the first current collector is an anode current collector, the second active material layer is a cathode active material layer, and the second current collector is a cathode current collector.
(1) First Current Collector
The first current collector in the present disclosure is electronically connected to the first active material layer, and collects currents of the first active material layer. The first current collector is, for example, arranged in the surface of the first active material layer that is opposite to the electrolyte layer. Also, as shown in
As shown in
As shown in
Also, as shown in
Also, as shown in
As shown in
The first current collector in the present disclosure is a cathode current collector or an anode current collector. Examples of the material for the cathode current collector may include a metal such as aluminum, SUS, and nickel. Examples of the material for the anode current collector may include a metal such as copper, SUS, and nickel. Examples of the shape of the first current collector may include a foil shape and a mesh shape. The thickness of the first current collector is, for example, 200 μm or less, and may be 20 μm or less. Meanwhile, the thickness of the first current collector is, for example, 5 μm or more.
(2) Second Current Collector
The second current collector in the present disclosure is electronically connected to the second active material layer, and collects currents of the second active material layer. The second current collector is, for example, arranged in the surface of the second active material layer that is opposite from the electrolyte layer. Also, as shown in
As shown in
(3) First Active Material Layer, Second Active Material Layer, and Electrolyte Layer
The first active material layer in the present disclosure is a cathode active material layer or an anode active material layer. The second active material layer in the present disclosure has the polarity opposite to that of the first active material layer.
The cathode active material layer contains at least a cathode active material. The cathode active material layer may further contain at least one of a conductive material, an electrolyte and a binder. Examples of the cathode active material may include an oxide active material. Examples of the oxide active material may include a rock salt bed type active material such as LiNi1/3Co1/3Mn1/3O2; a spinel type active material such as LiMn2O4; and an olivine type active material such as LiFePO4. Also, as the cathode active material, sulfur (S) may be used. Examples of the shape of the cathode active material may include a granular shape.
Examples of the conductive material may include a carbon material. The electrolyte may be a solid electrolyte and may be an electrolyte solution. The solid electrolyte may be an organic solid electrolyte such as a gel electrolyte, and may be an inorganic solid electrolyte such as an oxide solid electrolyte and a sulfide solid electrolyte. Also, the electrolyte solution (liquid electrolyte) contains, for example, a supporting electrolyte such as LiPF6, and a solvent such as a carbonate-based solvent. Also, examples of the binder may include a rubber-based binder and a fluoride-based binder.
The anode active material layer contains at least an anode active material. The anode active material layer may further contain at least one of a conductive material, an electrolyte, and a binder. Examples of the anode active material may include a metal active material such as Li and Si, a carbon active material such as graphite, and an oxide active material such as Li4Ti5O12. Examples of the shape of the anode active material may include a granular shape and a foil shape. The conductive material, the electrolyte, and the binder are in the same contents as those described above.
The electrolyte layer is arranged between the cathode active material layer and the anode active material layer, and contains at least an electrolyte. The electrolyte may be a solid electrolyte and may be an electrolyte solution. The electrolyte is in the same contents as those described above. The electrolyte layer may include a separator.
(4) Power Generating Element
The power generating element in the present disclosure may be in a sheet shape and may be in a winding shape. In the case of the sheet shape, in structure wise, unintended deformation may easily occur in a tab, but in the present disclosure, by arranging a slit in the tab and further arranging a buckling part, occurrence of the unintended deformation in the tab can be inhibited. Meanwhile, in the case of the winding shape, since the first tab is winded in a spiral shape, the rigidity of the first tab is improved by the circular arc part of the spiral. On the other hand, for example, when the power generating element is in a plane winding shape (a plane shape is formed by pressing the power generating element in a winding shape), deformation of the first tab tends to occur in that flat part. In that point, the effect of the present disclosure can be exhibited better when the power generating element is in the plane winding shape compared to when the power generating element is in a winding shape where the first tab is winded in a spiral shape. The battery preferably includes a plurality of the power generating element. Also, when the battery includes a plurality of the power generating element, a plurality of the first tab may not be bonded to each other but may be electronically connected to the first current collecting terminal.
2. Current Collecting Terminal
The battery in the present disclosure includes a first current collecting terminal electronically connected to the first tab. Also, the battery in the present disclosure includes a second current collecting terminal electronically connected to the second tab. There are no particular limitations on the material of these current collecting terminals, and examples thereof may include a metal such as SUS.
As shown in
The first current collecting terminal includes at least a base part and a protruding part. The shape of the base part in a plan view (outer periphery shape of the base part in a plan view in the thickness direction) is, for example, in a square shape such as a rectangular shape and a foursquare shape. Meanwhile, the first current collecting terminal may include just one protruding part, and may include a plurality of the protruding part. In the latter case, the plurality of the protruding part is preferably arranged regularly in a fixed pitch. Also, the protruding part has a shape that protrudes to the first tab side on the basis of the base part. Here,
As shown in
The first current collecting terminal may include one or two or more of a wall part arranged so as to share a side of the base part. By arranging the wall part, the rigidity of the first current collecting terminal improves. Also, by arranging the wall part, for example, when unintended deformation occurs in a tab, occurrence of short circuit can be inhibited. For example, first current collecting terminal 20a shown in
Meanwhile, the second current collecting terminal may include a base part, and a protruding part that protrudes to the second tab side on the basis of the base part, similarly to the first current collecting terminal. Further, a slit in the second tab may contact the protruding part in the second current collecting terminal, and the second tab may include a buckling part including the slit. Preferable embodiments of the second current collecting terminal are the same as the preferable embodiments of the first current collecting terminal described above; thus the descriptions herein are omitted.
3. Battery
The battery in the present disclosure may include an outer package that stores the power generating element. Examples of the outer package may include a laminate type outer package and a case type outer package. Also, the kind of the battery in the present disclosure is not particularly limited, but is typically a lithium ion secondary battery. Further, the application of the battery in the present disclosure is not particularly limited, and examples thereof may include a power source for vehicles such as hybrid electric vehicles (HEV), plug-in hybrid electric vehicles (PHEV), battery electric vehicles (BEV), gasoline-fueled automobiles and diesel powered automobiles. In particular, it is preferably used as a power source for driving hybrid electric vehicles or battery electric vehicles. Also, the battery in the present disclosure may be used as a power source for moving bodies other than vehicles (such as rail road transportation, vessel and airplane), and may be used as a power source for electronic products such as information processing equipment.
There are no particular limitations on the method for producing the battery in the present disclosure.
After that, as shown in
The present disclosure is not limited to the embodiments. The embodiments are exemplification, and any other variations are intended to be included in the technical scope of the present disclosure if they have substantially the same constitution as the technical idea described in the claims of the present disclosure and have similar operation and effect thereto.
Number | Date | Country | Kind |
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2021-214240 | Dec 2021 | JP | national |