This application claims priority to and the benefit of Korean Patent Application No. 10-2022-0003634, filed on Jan. 10, 2022, in the Korean Intellectual Property Office, and all the benefits accruing therefrom under 35 U.S.C. §119, the content of which in its entirety is herein incorporated by reference.
The disclosure relates to a battery and, more specifically, to a current collector, a secondary battery including the same, and an electronic device including the battery.
A secondary battery may be charged and discharged several times, and use of a secondary battery may be high compared to a primary battery, e.g., use of a secondary battery may be preferred over use of a primary battery. Secondary batteries may be used in various fields and devices.
With the development of industrial technology and the advent of new devices, secondary batteries with higher energy density are desired. Accordingly, secondary batteries having various structures such as stacked cell structures have been introduced.
For secondary batteries used in small devices, an increase in energy density may be limited as volumes of the secondary batteries decrease with a decrease in sizes of the devices. This results in an increase in the number of times secondary batteries are charged and discharged, and eventually the life of the secondary batteries may be shortened.
An embodiment provides a current collector having a structure capable of accommodating a step existing in an applied portion, e.g., present in a cell stack in which the current collector may be used, while increasing a contact area.
An embodiment provides a secondary battery including such a current collector.
An embodiment provides a secondary battery having an optimized electrode structure inside the battery.
An embodiment provides an electronic apparatus including such a secondary battery.
Additional aspects will be set forth in portion in the description which follows and, in portion, will be apparent from the description, or may be learned by practice of the presented embodiments of the disclosure.
A current collector in accordance with an embodiment includes a first conductive plate including first and second grooves, wherein the first and second grooves are configured to accommodate a fixing member, and wherein the first and second grooves are symmetrical to each other. In an embodiment, the current collector may further include a second conductive plate connected to the first conductive plate, the second conductive plate including third and fourth grooves, and a third conductive plate connected to the second conductive plate, the third conductive plate including fifth and sixth grooves each configured to provide the current collector with elasticity, wherein the third and fourth grooves may be symmetrical to each other, the fifth and sixth grooves may be symmetrical to each other, the third groove, fourth groove, fifth groove, and sixth groove may be provided at positions overlapping the first and second grooves, and the first conductive plate, second conductive plate, and third conductive plate may be a contiguous body.
A secondary battery according to an embodiment includes: a first current collector; a second current collector arranged to face the first current collector; a cell stack, which is provided between the first and second current collectors, the cell stack including a plurality of stacked unit cells; first and second fixing members spaced away from each other to fix the cell stack; a plurality of primary current collectors provided on the side surfaces of the cell stack, wherein at least two of the primary current collectors are connected to the first current collector, and a remainder of the primary current collectors are connected to the second current collector; and a case accommodating the first and second current collectors, the cell stack, the first and second fixing members, and the plurality of primary current collectors. The cell stack may include a plurality of nonparallel linear sides, wherein at least one of the primary current collectors is on each of the linear sides, and the first and second current collectors may be on the cell stack between the first and second fixing members, and each of the first and second current collectors may include a groove configured to accommodate portions of the first and second fixing members.
In an embodiment, each of the first and second fixing members may include a jig covering portions of the side surfaces of the cell stack and covering portions of the first and second surfaces of the cell stack, and the first and second fixing members may be symmetrical. In an embodiment, a number of primary current collectors present in the secondary battery may be greater than or equal to four and less than or equal to a number of unit cells present in the cell stack. In an embodiment, the first current collector may include first and second bonding portions connected to at least two of the plurality of primary current collectors, the first and second boding portions being spaced apart from each other. In an embodiment, the second current collector may include third and fourth bonding portions connected to at least two of the plurality of primary current collectors, the third and fourth bonding portions being spaced apart from each other. In an embodiment, the cell stack may include: a first side surface that is linear; and a second side surface that is linear, the second side surface being nonparallel with the first side surface and symmetrical to the first side surface, wherein two of the primary current collectors may be provided on each of the first and second side surfaces. In an embodiment, the first side surface and the second side surface may form an acute angle, a right angle, or an obtuse angle with each other.
In an embodiment, a first primary current collector of the two primary current collectors provided in the first side surface may be connected to a portion of the current collector layer of the first electrode layer of each of the plurality of unit cells, and a second primary current collector of the two primary current collectors may be connected to a remaining portion of the current collector layer. In an embodiment, a first primary current collector of the two primary current collectors provided in the second side surface may be connected to a portion of the current collector layer of the second electrode layer of each of the plurality of unit cells, and a second primary current collector of the two primary current collectors may be connected to a remaining portion of the current collector layer.
In an embodiment, each of the first and second current collectors may have a thickness corresponding to a distance between the cell stack and each of the first and second fixing members.
In an embodiment, the cell stack may include: a first side surface that is linear; a second side surface that is liner and nonparallel with the first side surface; a third side surface that is liner and nonparallel with the first and second side surfaces; and a fourth side surface that is liner and nonparallel with the first side surface, second side surface, and third side surface, wherein one primary current collector may be provided on each of the first side surface, second side surface, third side surface, and fourth side surface. In an embodiment, a portion of the current collector layer of the first electrode layer of each of the plurality of unit cells may be connected to the primary current collector provided on the first side surface, and a remaining portion may be connected to the primary current collector provided on the second side surface. In an embodiment, the current collector layer of the first electrode layer of each of the plurality of unit cells includes a tab connected to the primary current collector provided on one of the first and second side surfaces, and the position of a tab formed in a portion of the current collector layer of the first electrode layer and the position of a tab located on a remaining portion of the current collector layer of the first electrode layer may be different from each other.
In an embodiment, a portion of the current collector layer of the second electrode layer of each of the plurality of unit cells may be connected to the primary current collector provided on the third side surface, and a remaining portion may be connected to the primary current collector provided on the fourth side surface. In an embodiment, the current collector layer of the second electrode layer of each of the plurality of unit cells includes a tab connected to the primary current collector provided on one of the third and fourth side surfaces, and the position of a tab located in a portion of the current collector layer of the second electrode layer and the position of a tap located on a remaining of the current collector layer of the second electrode layer may be different from each other.
In an embodiment, the first and second side surfaces may be symmetrical to the third and fourth side surfaces. One of the first and second side surfaces and one of the third and fourth side surfaces may form an acute angle, a right angle, or an obtuse angle with each other. In an embodiment, each of the unit cells include: a first electrode layer; a second electrode layer arranged face the first electrode layer; a separator arranged between the first and second electrode layers; a first current collector layer in contact with the first electrode layer and arranged in a first direction; a second current collector layer in contact with the second electrode layer, spaced apart from the first current collector layer, and arranged in a second direction; and an electrolyte supplied between the first and second electrode layers, and the first direction and the second direction may form an acute angle, a right angle, or an obtuse angle. The separator may include position tabs for alignment of the first and second current collector layers.
In an embodiment, the current collector layer of the first electrode layer of each of the plurality of unit cells may be connected to the primary current collectors provided in the first and second side surfaces.
In an embodiment, the current collector layer of the second electrode layer of each of the plurality of unit cells may be connected to the primary current collectors provided in the third and fourth side surfaces.
An electronic apparatus according to an embodiment includes: a control unit for controlling the operation of the apparatus; and a battery, and the battery includes a secondary battery according to the embodiment. In an embodiment, the electronic apparatus may include a wearable device.
The above and other aspects, features, and advantages of certain embodiments of the disclosure will be more apparent from the following description taken in conjunction with the accompanying drawings, in which:
Reference will now be made in detail to embodiments, examples of which are illustrated in the accompanying drawings, wherein like reference numerals refer to like elements throughout. In this regard, the present embodiments may have different forms and should not be construed as being limited to the descriptions set forth herein. Accordingly, the embodiments are merely described below, by referring to the figures, to explain aspects. As used herein, the term “and/or” includes any and all combinations of one or more of the associated listed items. Expressions such as “at least one of,” when preceding a list of elements, modify the entire list of elements and do not modify the individual elements of the list.
Hereinafter, a current collector, a secondary battery including the current collector, and an electronic apparatus including the secondary battery according to example embodiments will be described in detail with reference to the accompanying drawings.
In the following description, the thickness of the layers or regions illustrated in the drawings may be somewhat exaggerated for clarity of the specification. In addition, the embodiments described below are only illustrative, and various modifications are possible from these embodiments. In addition, in the layer structure described below, the expressions “upper portion” or “on” may include not only the case that one element is directly on another element in a contact manner, but also the case that one element is above another element in a contactless manner.
It will be understood that, although the terms “first,” “second,” “third,” etc. may be used herein to describe various elements, components, regions, layers, and/or sections, these elements, components, regions, layers and/or sections should not be limited by these terms. These terms are only used to distinguish one element, component, region, layer, or section from another element, component, region, layer, or section. Thus, “a first element,” “component,” “region,” “layer,” or “section” discussed below could be termed a second element, component, region, layer, or section without departing from the teachings herein.
The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting. As used herein, “a”, “an,” “the,” and “at least one” do not denote a limitation of quantity, and are intended to include both the singular and plural, unless the context clearly indicates otherwise. For example, “an element” has the same meaning as “at least one element,” unless the context clearly indicates otherwise. “At least one” is not to be construed as limiting “a” or “an.” “Or” means “and/or.” It will be further understood that the terms “comprises” and/or “comprising,” or “includes” and/or “including” when used in this specification, specify the presence of stated features, regions, integers, steps, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, regions, integers, steps, operations, elements, components, and/or groups thereof.
Furthermore, relative terms, such as “lower” or “bottom” and “upper” or “top,” may be used herein to describe one element’s relationship to another element as illustrated in the Figures. It will be understood that relative terms are intended to encompass different orientations of the device in addition to the orientation depicted in the Figures. For example, if the device in one of the figures is turned over, elements described as being on the “lower” side of other elements would then be oriented on “upper” sides of the other elements. The exemplary term “lower,” can therefore, encompasses both an orientation of “lower” and “upper,” depending on the particular orientation of the figure. Similarly, if the device in one of the figures is turned over, elements described as “below” or “beneath” other elements would then be oriented “above” the other elements. The exemplary terms “below” or “beneath” can, therefore, encompass both an orientation of above and below.
“About” as used herein is inclusive of the stated value and means within an acceptable range of deviation for the particular value as determined by one of ordinary skill in the art, considering the measurement in question and the error associated with measurement of the particular quantity (i.e., the limitations of the measurement system). For example, “about” can mean within one or more standard deviations, or within ± 30%, 20%, 10% or 5% of the stated value.
Unless otherwise defined, all terms (including technical and scientific terms) used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this disclosure belongs. It will be further understood that terms, such as those defined in commonly used, e.g., non-technical, dictionaries, should be interpreted as having a meaning that is consistent with their meaning in the context of the relevant art and the present disclosure, and will not be interpreted in an idealized or overly formal sense unless expressly so defined herein.
Exemplary embodiments are described herein with reference to cross section illustrations that are schematic illustrations of idealized embodiments. As such, variations from the shapes of the illustrations as a result, for example, of manufacturing techniques and/or tolerances, are to be expected. Thus, embodiments described herein should not be construed as limited to the particular shapes of regions as illustrated herein but are to include deviations in shapes that result, for example, from manufacturing. For example, a region illustrated or described as flat may, typically, have rough and/or nonlinear features. Moreover, sharp angles that are illustrated may be rounded. Thus, the regions illustrated in the figures are schematic in nature and their shapes are not intended to illustrate the precise shape of a region and are not intended to limit the scope of the present claims.
Referring to
The stack cell 120 includes a plurality of cells vertically stacked on the bottom of the case 190. On a plane, e.g., in a plan view, the shape of the stack cell 120 is similar to that of the case 190. That is, the edge boundary of the stack cell 120 viewed in a plan view may be close to, e.g., adjacent, the inner boundary of the case 190. In an embodiment, the inner boundary of the case 190 may be circular, and at least half of the edge boundary of the stack cell 120 corresponds to an arc of a circle concentric with the inner boundary of the case 190. The rest of the edge boundary of the stack cell 120 may include a portion of the arc and two linear sections. The linear section represents a portion with a flat (also referred to herein as linear) side, e.g., side surface.
The ratio, e.g., percentage, occupied by the linear sections in the entire edge boundary of the stack cell 120 is small. The two linear sections are spaced apart from each other. The length of each linear section is not long enough to significantly deviate the entire shape, e.g., perimeter, of the edge boundary of the stack cell 120 from a circular shape.
The linear sections may exist at the edge boundary of the stack cell 120, and the edge boundary of the stack cell 120 may be close to, e.g., resemble, a circle. Accordingly, the area occupied by the stack cell 120 in the case 190 may be increased. In other words, the area occupied by the electrode of the cell in the inner area of the case 190 may be increased. This suggests that the energy density of the stack cell 120 may be increased.
A current collector 150 of a first electrode and a current collector 170 of a second electrode are provided between each of the two linear sections and the case 190. The current collector 150 of the first electrode and the current collector 170 of the second electrode are in contact with the two linear sections, respectively, and are spaced apart from the case 190.
One of the current collector 150 of the first electrode and the current collector 170 of the second electrode may be a current collector of a positive electrode, and the other may be a current collector of a negative electrode. The current collector of the positive electrode refers to a current collector belonging to the positive electrode or a current collector in contact with the positive electrode, and the current collector of the negative electrode refers to a current collector belonging to the negative electrode or a current collector in contact with the negative electrode.
In an embodiment, the current collector 150 of the first electrode may include a first current collector tab 150A and a second current collector tab 150B. The first current collector tab 150A and the second current collector tab 150B are spaced apart from each other. The first current collector tab 150A may be connected to a portion of a current collector layer of the first electrode stacked of the stack cell 120, and the second current collector tab 150B may be connected to the rest of the current collector layer of the stacked first electrode of the stack cell 120. In an embodiment, the first and second current collector tabs 150A and 150B may be combined into one current collector tab. That is, the current collector 150 of the first electrode may include only one current collector tab connected to all of the current contact layers of the stacked first electrode of the stack cell 120.
For example, the current contact layers of the stacked first electrode of the stack cell 120 may have portions extending outwardly, and the extended portions may be combined to form one current collector tab.
The current collector 170 of the second electrode may be disposed perpendicular to the current collector 150 of the first electrode. In other words, the current collector 170 of the second electrode may be provided at a position where the current collector 150 of the first electrode is rotated by 90° counterclockwise. The current collector 170 of the second electrode may include a third current collector tab 170A and a fourth current collector tab 170B. The third current collector tab 170A and the fourth current collector tab 170B are spaced apart from each other. The third current collector tab 170A may be connected to a portion of the current collector layer of the stacked second electrode of the stack cell 120, and the fourth current collector tab 170B may be connected to the rest of the current collector layer of the stacked second electrode of the stack cell 120. In an embodiment, the third and fourth current collector tabs 170A and 170B may be combined into one current collector tab. That is, the current collector 170 of the second electrode may include only one current collector tab connected to all of the current contact layers of the stacked second electrode of the stack cell 120.
One of the current collector 150 of the first electrode and the current collector 170 of the second electrode may contact the upper current collector 180 (also referred to herein as a first current collector) corresponding to the uppermost layer of the stack cell 120, and the other may contact the lower current collector 182 (also referred to herein as a second current collector) (of
One of the upper current collector 180 and the lower current collector 182 may be connected (or in contact) with the current collector 150 of the first electrode, and the other may be connected (or in contact) with the current collector 170 of the second electrode. In an embodiment, the upper current collector 180 may be connected to the positive electrode side, and the lower current collector 182 may be connected to the negative electrode side.
The current collector 150 of the first electrode and the current collector 170 of the second electrode may be provided to be symmetrical to each other.
A separator position tap 160 is provided on an arc between the current collector 150 of the first electrode and the current collector 170 of the second electrode. The separator position tab 160 is positioned between the edge boundary of the stack cell 120 and the case 190. The separator position tab 160 contacts the stack cell 120 and is spaced apart from the case 190. When the unit cells of the stack cell 120 are stacked, the separator position tab 160 may include a member for correctly aligning the position of the unit cells. The separator position tab 160 may include a combination of a portion (tab) in which a portion of the separator is extended. In the process of forming the stack cell 120, separators may be stacked and the extended portions of the separators may vertically and accurately overlap each other.
Each of the plurality of positive and negative electrode layers included in the stack cell 120 may also have an extended tab, and may be stacked in the same alignment method as the alignment method when the separator is stacked using the tab.
The first and second insulating jigs 130 and 140 may be spaced apart from each other and may be provided to be symmetrical to each other. The first and second insulating jigs 130 and 140 may be provided at the same position in the y-axis direction. The first and second insulating jigs 130 and 140 may be fixing members for fixing the remaining stacks except for the upper and lower current collectors 180 and 182 from among a plurality of stacks forming the stack cell 120.
The top layer of the stack cell 120 may be an upper current collector 180. The upper current collector 180 may cover the remaining regions of the stack cell 120 except for portions covered by the first and second insulating jigs 130 and 140 from among the regions viewed from the plan view of the stack cell 120. The upper current collector 180 includes first and second grooves 130G and 140G. The first groove 130G is a groove for accommodating the first insulating jig 130. The second groove 140G is a groove for accommodating the second insulating jig 140.
Referring to
A plurality of unit cells 2201 are stacked between the first insulating layer 220A and the second insulating layer 220B. The plurality of unit cells 2C1 are vertically stacked on the second insulating layer 220B toward the first insulating layer 220A. The number of unit cells 2C1 stacked between the first and second insulating layers 220A and 220B may be several to hundreds, but is not limited thereto. For example, about 5 to 100 unit cells 2C1 may be stacked between the first and second insulating layers (220A and 220B), but the number of unit cells 2C1 stacked between the first and second insulating layers 220A and 220B is not limited thereto.
A first electrode layer (first active material layer) 230 and a first current collector layer 230a are arranged between the first insulating layer 220A and the first separator 250 below the first insulating layer 220A. The first electrode layer 230 and the first current collector layer 230a are sequentially stacked on the separator 250. In an embodiment, the first insulating layer 220A and the first separator 250 below the first insulating layer 220A may directly contact each other without including the first electrode layer 230 and the first current collector layer 230a therebetween.
The first current collector layer 230b and the first electrode layer 230 exist between the second insulating layer 220B and the first separator 250 thereon. The first current collector layer 230b and the first electrode layer 230 are sequentially stacked on the second insulating layer 220B.
The unit cell 22C1 is formed on the first separator 250 on the second insulating layer 220B. The unit cell 2C1 includes a second electrode layer (second active material layer) 240, a separator 250, and a first electrode layer (first active material layer) 230 that are sequentially stacked. One of the first and second electrode layers 230 and 240 may be a positive electrode layer, and the other may be a negative electrode layer. In an embodiment, horizontal lengths (or diameters) of the first and second electrode layers 230 and 240 may be the same as or different from each other. For example, the length of the electrode layer used as the positive electrode layer may be longer than the length used as the negative electrode layer or vice versa.
A ratio, e.g., percentage, of the electrode layer having a relatively small area of the first and second electrode layers 230 and 240 of the unit cell 2C1, which is occupied in the inner bottom area of the case 190 may be 80 % or greater to less than 100 %, or 90 % or greater to less than 100 %. The first electrode layer 230 may include the first current collector layer 230a. In an embodiment, the first electrode layer 230 may include a first active material layer coated on one or both surfaces of the first current collector layer 230a. In the stack cell 120, the first current collector layer 230a belonging to the upper layer may have a portion P1 extending outside the first electrode layer 230, that is, a protruding portion (tab). The first current collector layer 230b belonging to the lower layer of the stack cell 120 may also have an extended portion (not shown in the cross section of
The extended portion P1 of each unit cell 2C1 in the upper layer is connected to the first current collector tab 150A. The first current collector tab 150A is a combination of the extended portion P1 of each unit cell 2C1 belonging to the upper layer, and the first current collector tab 150A and the extended portion P1 of each unit cell 2C1 may include the same material, and may be viewed as, e.g., considered, a continuous material layer.
The upper current collector 180 may extend downward, e.g., in a direction towards the lower current collector 182, by a given length along a side surface of the stack cell 120. The first current collector tab 150A may be covered by a portion 180A extending downward from the upper current collector 180, e.g., extending in a direction towards the lower current collector 182. The first current collector tab 150A may be in direct contact with the extended portion 180A of the upper current collector 180. In an embodiment, the first current collector tab 150A and the extended portion 180A may be electrically bonded. Such electrical bonding may be formed by ultrasonic welding or spot welding.
The second electrode layer 240 includes a second current collector layer 240a. In an embodiment, the second electrode layer 240 may include a second active material layer coated on one or both surfaces of the second current collector layer 240a. Although not shown in
In the first and second electrode layers 230 and 240, the first and second current collector layers 230a and 240a may have various shapes or forms of arrangement, which will be described later.
The separator 250 prevents direct contact between the first and second electrode layers 230 and 240. The length of the separator 250 in the transverse direction perpendicular to the stacking direction of the separator 250, e.g., the stacking direction of the stack cell 120, is greater than the lengths of the first and second electrode layers 230 and 240 in the transverse direction perpendicular to the stacking direction of the first and second electrode layers 230 and 240, e.g., the stacking direction of the stack cell 120. The separator 250 may have a portion extended out of, e.g., extending further than, the first and second electrode layers 230 and 240 in both lateral directions, e.g., the separator 250 may have a portion protruding farther than the edges of the first and second electrode layers 230 and 240 in both lateral directions.
Referring to
At least a portion of the second current collector tab 150B may be covered with the portion 180A extending below the upper current collector 180. In an embodiment, the upper end or a predetermined portion below from the upper end of the second current collector tab 150B may be bonded to the extended portion 180A of the upper current collector 180 in the electrical bonding manner.
Referring to
Hereinafter, a portion of the stack cells 120 of
Although not shown in
The arrangement, contact, and bonding relationship between the first current collector layer 230a, the first and second current collector tabs 150A and 150B, and the portion 180A extended below the upper current collector 180 may apply to the arrangement, contact, and bonding between the second current collector layer 240a of the unit cell 2401, the third and fourth current collector tabs 170A and 170B, and the lower current collector 182.
Comparing 4A and
The extended portions P1 and P2 protruding in a direction perpendicular to the flat inclined surface shown on the righthand side of
Referring to
The first and second current collector tabs 150A and 150B are horizontally spaced apart from each other. The first and second current collector tabs 150A and 150B are vertically at different heights. In an embodiment, the first and second current collector tabs 150A and 150B may be at the same height by adjusting the number of extended portions P1 and P2, respectively provided in the first current collector layers 230a and 230b connected to the first and second current collector tabs 150A and 150B, or changing the vertical stacking method of the first current collector layers 230a and 230b.
Referring to
The lower current collector 182 includes the portion 182A extending upward. The extended portion 182A covers the third and fourth current collector tabs 170A and 170B. The third current collector tab 170A may be completely covered with the extended portion 182A, and the fourth current collector tab 170B may be covered with the partially extended portion 182A. In an embodiment, the fourth current collector tab 170B may also be completely covered by the extended portion 182A. The extended portion 182A is spaced apart from the upper current collector 180.
In
Each of the current collectors 150 and 170 of the first and second electrodes of the stack cell 120 may include two or more current collector tabs.
The eight current collector layers 7C1-7C8 may be in contact with the first electrode layer 230 of the unit cell 2C1, or may be in contact with the second electrode layer 240 of the unit cell 2C1.
As shown in
Current may flow from the cell stack CS1 to the upper and lower current collectors 180 and 182 through eight paths, and electrical resistance may be lower than when current flows through one path. In other words, electrical conductivity may be increased.
In
As shown in
Referring to
Referring to
Referring to
Current generated in the cell stack CS1 of
As shown in
Referring to
Portions of the first and second jigs 130 and 140 are arranged on the upper surface of the cell stack CS1, and the first and second jigs 130 and 140 are spaced apart from each other. The thicknesses of the first and second jigs 130 and 140 may be equal to each other. The entire upper surface of the cell stack CS1 between the first and second jigs 130 and 140 is covered with the upper current collector 180. The upper current collector 180 is filled between the first and second jigs 130 and 140. The thickness t1 of the upper current collector 180 may be the same as the thicknesses of the first and second jigs 130 and 140. In an embodiment, the thickness t1 of the upper current collector 180 may not be the same as the thicknesses of the first and second jigs 130 and 140. The first and second jigs 130 and 140 and the upper current collector 180 may form the same plane on the upper surface of the cell stack CS1. In other words, the upper current collector 180 may be provided and there may not be a step between the first and second jigs 130 and 140 and the upper surface of the cell stack CS1.
When pressure is applied to the upper surface of the cell stack CS1 as a step between the first and second jigs 130 and 140 and the upper surface of the cell stack CS1 disappears, the pressure may not be concentrated on a specific region of the upper surface, but may be uniformly applied to the entire upper surface.
A step may be present between the first and second jigs 130 and 140 and the cell stack CS1, and a problem caused by applying relatively large pressure to regions corresponding to the first and second jigs 130 and 140 compared to other regions of the upper surface of the cell stack CS1 may be resolved.
Referring to
Referring to
Referring to
In an embodiment, the upper and lower current collectors 180 and 182 may not be a single layer. For example, as shown in
The upper and lower current collectors 180 and 182 may include a first horizontal portion CP1, which is a conductive plate contacting the cell stack CS1, and a second horizontal portion CP2, which is a conductive plate contacting the inside of the lid or cover of the case 190 of the cell coin type cell 100, and an inclined portion CP3 connecting the first and second horizontal portions CP1 and CP2. The first horizontal portion CP1 may include a portion electrically bonded to the current collector 150 of the first electrode of the cell stack CS1.
In an embodiment, a portion of the first horizontal portion CP1 bonded to the current collector 150 of the first electrode may be split by the number of side surfaces provided with the current collector tap belonging to the current collector tab 150 of the first electrode of the stack cell CS1 and may be bonded, on a one-to-one basis, to the current collector tab provided on each side. For example, as similar to
In an embodiment, two current collector tabs may be provided on one side surface of the stack cell CS1, and a portion corresponding to the one side surface of the first horizontal portion CP1 may be bonded to both the two current collector tabs, and may be split into two so as to be bonded to the two current collector tabs on a one-to-one basis. The first and second horizontal portions CP1 and CP2 and the inclined portion CP3 may include the same material and may include a contiguous body or continuous single body.
Referring to
An electrolyte or an electrolytic solution is supplied to the stack cell 120 before the stack cell 120 is filled in the case 190, and except for the current collectors 150 and 170 of the first and second electrodes, the side surface of the stack cell 120 supplied with the electrolyte may be sealed and the electrolyte may not leak.
Referring to
In a coin type cell 100 of
In
Referring to
Referring to
Referring to
Referring to
A third current collector tab 1370A exists between the third straight line section SP3 and the case 1390 to the left of the separator position tab 1360. The third current collector tab 1370A is in contact with the stack cell 1320 and is spaced apart from the case 1390. A fourth current collector tab 1370B exists between the fourth straight line section SP4 and the case 1390. The fourth current collector tab 1370B is in contact with the stack cell 1320 and is spaced apart from the case 1390. The third current collector tab 1370A may correspond to the third current collector tab 170A of the coin type cell 100 of
With reference to the coin type cell 100 of
For example,
Referring to
The second current collector layer 1340a includes a third tab 40T3 extending in the third direction 23D3 and a fourth tab 40T4 extending in the fourth direction 23D4. The lengths of the third and fourth tabs 40T3 and 40T4 may be the same or different from each other. In the stack cell 1320, the third and fourth tabs 40T3 and 40T4 are exposed (protruded) through the side surfaces of the third and fourth straight line sections SP3 and SP4.
The first to fourth tabs 22T1, 22T2, 23T3, and 23T4 may extend in the same directions as the first to fourth directions 22D1, 22D2, 23D3, and 23D4, respectively, and the description related to the angles between the first to fourth directions 22D1, 22D2, 23D3, and 23D4 may be equally applicable to the angles between the first to fourth tabs 22T1, 22T2, 23T3, and 23T4.
The remaining portion 40D excluding the third and fourth tabs 40T3 and 40T4 of the second current collector layer 1340a may be expressed, e.g., described, as a body or a main body. Accordingly, the second current collector layer 1340a may be expressed, e.g., described, as including the body 40D and two tabs 40T3 and 40T4 extending from the body in different directions from each other. It may be seen that the two tabs 40T3 and 40T4 are extended, e.g., extend, from the body 40D by a length given in the third and fourth directions 23D3 and 23D4. Accordingly, there may be no physical boundary between the body 40D and the third and fourth tabs 40T3 and 40T3. In other words, the body 40D and the third and fourth tabs 40T3 and 40T4 may be a contiguous body or continuous single body.
In an embodiment, in
With reference to
Accordingly, for example, the stack cell 1320 may include 10 unit cells, the first tab 30T1 of the first current collector layer 1330a of the first to fifth unit cells (or the first, third, fifth, seventh and ninth unit cells) may be exposed on a flat side surface indicated by the first straight line section SP1, and the exposed first tab 30T1 may be combined, e.g., into one, (or bonded) to become a first current collector tab 1350A. The second tab 30T2 of the first current collector layer 1330a of the sixth to tenth unit cells (or the second, fourth, sixth, eighth, and tenth unit cells) may be exposed on a flat side surface indicated by the second straight line section SP2, and the exposed second tab 30T2 may be combined, e.g., into one, (or bonded) to become a second current collector tab 1350B. This stacking method of the first current collector layer 1330a may also be applied to stacking of the second current collector layer 1340a.
The first current collector layer 1330a may include both two tabs 30T1 and 30T2, as illustrated in
A portion of the upper current collector 1380 bonded to the current collector 1350 of the first electrode may be split into first and second bonding portions 80T1 and 80T2, as shown in
The first bonding portion 80T1 of the upper current collector 1380 may be bonded to the first current collector tab 1350A, and the second bonding portion 80T2 may be bonded to the second current collector tab 1350B. The third bonding portion 80T3 of the lower current collector 1382 may be bonded to the third current collector tab 1370A, and the fourth bonding portion 80T4 may be bonded to the fourth current collector tab 1370B.
A plurality of unit cells stacked vertically to the stack cell 1320 may be connected to the upper and lower current collectors 1380 and 1382 through a plurality of bonds. In other words, the plurality of unit cells included in the stack cell 1320 may be connected to the upper and lower current collectors 1380, 1382 with a plurality of paths, and the electrical resistance may be lowered. Electrical conductivity between the plurality of unit cells and the upper and lower current collectors 1380 and 1382 may be increased.
Referring to
Next, Table 1 summarizes the cell characteristics of the coin type cell 100 of
In Table 1, the term “length” represents the total length measured on the plane with respect to the portions cut from the coin type cell of
Referring to Table 1, although the coin type cell 2600 of
The coin type cell in accordance with the aforementioned embodiment may be a non-coin type cell, and for example, the outer shape viewed in plan views of the coin type cell 100 of
The coin type cell according to an embodiment is a secondary battery and may be applied to, e.g., used in, various devices using a battery as a power source. The device may include an electronic device.
In an embodiment, the coin type cell 100 of
Referring to
Reference numeral 92 indicates a switch (operation button) that turns on and off the operation of the earbud. The switch 92 may include a touch sensor and operate in a touch manner.
The earbud 90 is a wireless earphone and may be an AirPod.
In an embodiment, as illustrated in
One end of the cable 102 is connected to the earbud 90. A jack 104 is attached to the other end of the cable 102. The jack 104 may be inserted into an insertion hole provided in the device. The earbud 90 has a groove 98 for connecting the cable 102 at a portion where one end of the cable 102 of the body 12 is connected. The cable 102 may be permanently connected to the body 12 through the groove 98. In an embodiment, one end of the cable 102 may be provided with a jack like, e.g., similar to, the other end and fitted into the groove 98. In the latter case, the cable 102 may be separated from the earbud 90 and the device. When the cable 102 is not desired, for example, when outdoors, the earbud 90 may be used as a wireless earbud that does not use the cable 102. When indoors, the earbuds 90 may be used in a wired manner using the cable 102, and the battery may wait, e.g., remain, in a charged state.
The above-described earbud shows only one of the paired two earbuds, for example, only a user’s left earbud. The configuration of the user’s right ear earbud may be the same as that of the left earbud.
In the earbuds 90 of
Referring to
Referring to
The provided secondary battery comprises a primary current collector connected to a cell stack including a plurality of stacked unit cells, and a secondary current collector connected to the outside of the secondary battery. The primary current collector is provided to have a plurality of bonds so as to have a plurality of current paths between the positive electrode side of the cell stack and the secondary current collector and between the negative electrode side of the cell stack and the secondary current collector. Accordingly, electrical resistance between the cell stack and the secondary current collector is lowered, and electrical conductivity between the cell stack and the secondary current collector may be increased.
In addition, the secondary current collectors provided at an upper portion and a lower portion of the cell stack have a groove capable of accommodating fixing jigs provided at an upper portion and a lower portion of the cell stack. The secondary current collector may have a thickness corresponding to a step caused by the presence of the jig, and a problem caused by the step may be resolved.
In addition, the cell stack is designed to have a structure optimized for the space inside the battery case. Accordingly, the ratio of the cell stack occupied in the internal space of the battery case may be increased, and energy density may be increased.
When the provided secondary battery is used, high efficiency can be achieved and the number of charging and discharging can be reduced, for example, due to high energy density, which may result in a long life of the battery.
It should be understood that embodiments described herein should be considered in a descriptive sense only and not for purposes of limitation. Descriptions of features or aspects within each embodiment should typically be considered as available for other similar features or aspects in other embodiments. While one or more embodiments have been described with reference to the figures, it will be understood by those of ordinary skill in the art that various changes in form and details may be made therein without departing from the spirit and scope as defined by the following claims.
Number | Date | Country | Kind |
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10-2022-0003634 | Jan 2022 | KR | national |