Wound-type electrode assembly and secondary battery including the same

By designing overlapping parts of separators in the wound electrode assembly, using multi-layer overlap and controlling the friction coefficient, the deformation and short circuit problems caused by shrinkage/expansion of the electrode assembly during charging and discharging are solved, and the stability and life of the battery are improved.

CN118435418BActive Publication Date: 2025-10-03LG ENERGY SOLUTION LTD
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Patent Information

Application Number
CN202380013306.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Priority Date
2023-08-11
Filing Date
2023-08-18
Publication Date
2025-10-03
Estimated Expiration
2043-08-18

AI Technical Summary

Technical Problem

In cylindrical batteries, shrinkage/expansion of the wound-type electrode assembly leads to separator damage and internal short circuits, particularly at the contact between the negative electrode and the positive electrode, causing heat generation and fire.

Method used

A wound electrode assembly is designed in which the overlapping portion of the separators is arranged by overlapping three or more layers of separators. By controlling the bending structure and friction coefficient of the separators, the electrode sliding is suppressed, and an overlapping structure is formed in the core portion of the electrode assembly to prevent deformation and internal short circuit.

Benefits of technology

It effectively prevents deformation of the electrode assembly and damage to the separator, improves battery stability and life characteristics, prevents internal short circuits between the positive and negative electrodes, and enhances battery safety and performance.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides a wound electrode assembly and a secondary battery including the wound electrode assembly. In the wound electrode assembly, a first separator, a negative electrode, a second separator and a positive electrode are stacked and wound in sequence. The positive electrode has a first surface in the direction of the winding axis of the wound electrode assembly and a second surface opposite to the first surface. The core portion of the electrode assembly includes a separator overlapping portion located between the positive electrode and the negative electrode facing the first surface of the positive electrode. The separator overlapping portion includes separators that are arranged in an overlapping manner and overlap in three or more layers. The wound electrode assembly according to the present invention includes a separator overlapping portion, which can prevent the deformation of the electrode assembly caused by the contraction / expansion of the electrode from causing damage to the negative electrode and the separator. In addition, even when the separator is damaged, the separator overlapping portion can prevent an internal short circuit between the positive electrode and the negative electrode to improve battery stability and life characteristics.
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Description

Technical Field

[0001] The present invention relates to a wound electrode assembly and a secondary battery including the same, and more particularly, to a wound electrode assembly including a separator overlap portion and a cylindrical secondary battery including the same. This application claims priority to and the benefit of Korean Patent Application No. 10-2022-0165808, filed in the Korean Intellectual Property Office on December 1, 2022, the entire contents of which are incorporated herein by reference. Background Art

[0002] For cylindrical batteries, a wound electrode assembly is manufactured by winding a long electrode of a specified width into a roll. In a cylindrical battery manufactured by inserting such a wound electrode assembly into a battery case, the contraction / expansion of the electrodes repeatedly occurs during charging and discharging. In particular, when the degree of contraction / expansion of the electrode assembly is increased by the tabs located in the core of the wound electrode assembly or the silicon-based active material added to the negative electrode, the pressure acting on the core portion of the electrode assembly increases significantly.

[0003] With the recent increase in low-resistance / high-capacity designs, wound-type electrode assemblies often include multiple tabs or incorporate silicon-based active materials. Consequently, the likelihood of deformation of the electrode assembly located in the core portion due to contraction / expansion of the electrode assembly increases. In particular, when the separator between the negative and positive electrodes is damaged, the negative and positive electrodes come into direct contact, causing heat generation and fire due to internal short circuits.

[0004] In order to solve the problems of separator damage and internal short circuit caused by deformation of the electrode assembly, it is necessary to develop a technology that can protect the negative electrode and the separator in the corresponding areas and suppress the occurrence of the internal short circuit. Summary of the Invention

[0005] Technical issues

[0006] The present invention has been made in an effort to provide a wound-type electrode assembly having a changed design and a secondary battery including the same.

[0007] However, problems to be solved by the present invention are not limited to the above-mentioned problems, and other problems not mentioned will be clearly understood by those skilled in the art from the following description.

[0008] Technical Solution

[0009] An exemplary embodiment of the present invention provides a wound electrode assembly in which a first separator, a negative electrode, a second separator, and a positive electrode are sequentially stacked and wound, wherein the positive electrode has a first surface in the direction of a winding axis of the wound electrode assembly and a second surface opposite to the first surface, wherein a core portion of the electrode assembly includes a separator overlapping portion located between the positive electrode and the negative electrode facing the first surface of the positive electrode, and wherein the separator overlapping portion includes separators that are arranged in an overlapping manner and overlap in three or more layers.

[0010] Another exemplary embodiment of the present invention provides a secondary battery including: the above-mentioned wound-type electrode assembly; and a battery case for accommodating the electrode assembly.

[0011] Beneficial effects

[0012] The wound electrode assembly according to an exemplary embodiment of the present invention includes a separator overlap portion. In this overlap portion, the separator's curved structure at the core portion and the friction coefficient between the joints are controlled, thereby suppressing slippage of the electrodes during battery charging and discharging. This prevents deformation of the electrode assembly due to electrode contraction / expansion from damaging the negative electrode and separator. Furthermore, even in the event of separator damage, the separator overlap portion prevents internal short circuits between the positive and negative electrodes, thereby improving battery stability and lifespan.

[0013] The effects of the present invention are not limited to the aforementioned effects, and effects not mentioned will be clearly understood by those skilled in the art from this specification and the accompanying drawings. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] Figure 1 and Figure 2 A wound type electrode assembly including a separator overlapping portion according to an exemplary embodiment of the present invention is illustrated.

[0015] Figure 3 A separator overlapping portion of a wound type electrode assembly according to an exemplary embodiment of the present invention is schematically illustrated.

[0016] Figure 4 are CT images showing the results of short-term cycle stability evaluation of the secondary batteries according to Example 1 and Comparative Example 1.

[0017] Figure 5 A separator overlapping portion of a wound type electrode assembly according to an exemplary embodiment of the present invention is schematically illustrated.

[0018] Figure 6 are CT images showing the results of short-term cycle stability evaluation of the secondary batteries according to Examples 1 to 4.

[0019] Figure 7 are CT images showing the results of long-term cycle stability evaluation of the secondary batteries according to Example 1 and Comparative Example 1.

[0020] Figure 8 is a graph showing the results of long-term cycle stability evaluation of secondary batteries according to Example 1 and Comparative Example 1.

[0021] Figure 9 A method for evaluating whether a separator at a core portion of a wound-type electrode assembly according to an exemplary embodiment of the present invention has been damaged is shown.

[0022] Description of Reference Numerals

[0023] 100: negative electrode

[0024] 101: Negative electrode current collector

[0025] 102, 103: Negative electrode active material layer

[0026] 110: Longitudinal end portion of the negative electrode

[0027] 200, 200': First separator

[0028] 210: Longitudinal end portion of the first partition

[0029] 201, 201': first separator base layer

[0030] 202, 202': first separator coating layer

[0031] 300: Positive

[0032] 301: Positive electrode current collector

[0033] 302, 303: positive electrode active material layer

[0034] 310: Longitudinal end portion of the positive electrode

[0035] 400, 400': Second separator

[0036] 410: Longitudinal end portion of the second partition

[0037] 401, 401': second separator base layer

[0038] 402, 402': second separator coating layer

[0039] S: Overlapping portion of separator

[0040] S1: First joint

[0041] S2: Second joint

[0042] L, L': The distance between the longitudinal end portion of the overlapping portion of the separator and the longitudinal end portion of the positive electrode

[0043] The interval distance

[0044] E1: First extension line

[0045] E2: Second extension line DETAILED DESCRIPTION

[0046] Throughout the specification, when a part “contains,” “includes,” or “has” a constituent element, unless otherwise specifically described, this does not mean excluding another constituent element but means that another constituent element may further be included.

[0047] Throughout the specification, when an element is referred to as being “on” another element, the element can be in direct contact with the other element, or intervening elements may also be present.

[0048] An exemplary embodiment of the present invention provides a wound electrode assembly in which a first separator, a negative electrode, a second separator, and a positive electrode are sequentially stacked and wound, wherein the positive electrode has a first surface in the direction of a winding axis of the wound electrode assembly and a second surface opposite to the first surface, wherein a core portion of the electrode assembly includes a separator overlapping portion located between the positive electrode and the negative electrode facing the first surface of the positive electrode, and wherein the separator overlapping portion includes separators that are arranged in an overlapping manner and overlap in three or more layers.

[0049] The wound electrode assembly according to an exemplary embodiment of the present invention includes a separator overlap portion, thereby suppressing the sliding of the electrodes during battery charging and discharging, thereby preventing the deformation of the electrode assembly due to the contraction / expansion of the electrodes from damaging the negative electrode and separator. In addition, even when the separator is damaged, the separator overlap portion can prevent internal short circuits between the positive and negative electrodes, thereby improving battery stability and life characteristics. Here, the "core portion" is an area including a hollow portion located on the winding axis of the electrode assembly and a portion of the laminated structure of the wound first separator / negative electrode / second separator / positive electrode, and can refer to an area within two turns of the positive electrode from one end portion of the positive electrode located in the longitudinal direction at the innermost side of the electrode assembly. In addition, "one turn" can refer to the length required to wind an electrode or separator included in the electrode assembly 360° from a reference point, and this length can be determined based on the outer diameter of the winding core used to wind the electrode assembly, the thickness of the electrode or separator, and the number of turns of the electrode or separator positioned on the inner side. For example, one turn of the positive electrode may refer to a length required to wind the positive electrode 360° from a longitudinal end portion of the positive electrode in a direction in which the wound-type electrode assembly is wound.

[0050] Figure 1 and Figure 2 A wound electrode assembly including a separator overlap portion according to an exemplary embodiment of the present invention is shown. Specifically, Figure 1 A wound type electrode assembly including a separator overlap portion according to an exemplary embodiment of the present invention is shown, and Figure 2 yes Figure 1 An enlarged view of part A of FIG.

[0051] According to an exemplary embodiment of the present invention, at the core portion of the electrode assembly, the first separator, the negative electrode, and the second separator may extend longer than the longitudinal end portion of the positive electrode and may be further wound. Specifically, referring to Figure 1 and Figure 2 , the first separator 200, the negative electrode 100, and the second separator 400 can extend longer than the longitudinal end portion 310 of the positive electrode and can be further wound. That is, the first separator, the negative electrode, and the second separator are wound, and the first separator, the negative electrode, and the second separator can then be wound together with the positive electrode. For example, after the first separator, the negative electrode, and the second separator are wound around the winding core one or more turns, the first separator, the negative electrode, and the second separator can be wound together with the positive electrode. That is, at the core portion of the wound electrode assembly, the longitudinal end portion 210 of the first separator, the longitudinal end portion 110 of the negative electrode, and the longitudinal end portion 410 of the second separator can be positioned inward relative to the longitudinal end portion 310 of the positive electrode. In other words, the length and width of the negative electrode can be greater than the length and width of the positive electrode, and the length and width of the first separator and the second separator positioned on one surface and the opposite surface of the negative electrode can also be greater than the length and width of the positive electrode. When the first separator, the negative electrode, and the second separator extend longer than the longitudinal end portion of the positive electrode and are further wound, lithium ions can be more easily transferred from the positive electrode to the negative electrode during the chemical reaction of the lithium-ion battery. When the length or width of the negative electrode is formed larger, the area of ​​the negative electrode for receiving lithium ions increases, thereby preventing a decrease in charge / discharge efficiency and improving battery stability and life characteristics.

[0052] Figure 3 A separator overlapping portion of a wound type electrode assembly according to an exemplary embodiment of the present invention is schematically illustrated.

[0053] According to an exemplary embodiment of the present invention, the core portion of the electrode assembly may include a separator overlap portion located between the positive electrode and the negative electrode facing the first surface of the positive electrode, and the separator overlap portion includes separators arranged in an overlapping manner and overlapped in three or more layers. Specifically, referring to Figures 1 to 3The core portion of the electrode assembly includes a separator overlap portion S located between the positive electrode 300 and the negative electrode 100 facing the first surface of the positive electrode, and the separator overlap portion S may refer to a portion of a region in which the overlapping separators overlap in three or more layers relative to the longitudinal end portion 310 of the positive electrode. Here, the separator overlap portion S may refer to a region up to the end portion of the region in which the overlapping separators overlap in three or more layers, that is, a region up to the longitudinal end portion of the separator overlap portion, and a region having the same length in the direction of the core portion of the electrode assembly relative to the longitudinal end portion 310 of the positive electrode. Specifically, the separator overlapping portion S may refer to an area within the range from the longitudinal end portion of the separator overlapping portion S to the following point: at this point, the length L' relative to the longitudinal end portion 310 of the positive electrode in the direction of the core portion of the electrode assembly is the same as the spacing distance L between the longitudinal end portion of the separator overlapping portion and the longitudinal end portion of the positive electrode, that is, an area with a length L+L'=L+L=2L from the longitudinal end portion of the separator overlapping portion S.

[0054] According to an exemplary embodiment of the present invention, the separator overlap portion may be formed by overlapping and arranging a first separator and a second separator extending from a longitudinal end portion of the negative electrode at a core portion of the electrode assembly. Specifically, referring to Figures 1 to 3, the separator overlap portion S can be formed by overlapping and arranging the first separator 200' and the second separator 400' extending from the longitudinal end portion 110 of the negative electrode at the core portion of the electrode assembly, and the first separator 200 and the second separator 400 may include an area extending from the longitudinal end portion 110 of the negative electrode. That is, the first separator 200 and the second separator 400 may extend longer than the longitudinal end portion 110 of the negative electrode and may be further wound. In other words, the first separator 200 and the second separator 400 are wound to a predetermined length, and then the first separator 200 and the second separator 400 may be wound together with the negative electrode 100. That is, the first separator 200' and the second separator 400' extending from the longitudinal end portion 110 of the negative electrode may be a portion of the first separator 200 and the second separator 400 that are wound earlier than the negative electrode 100, and may be bent, overlapped, and arranged to form the separator overlap portion S. That is, the separator overlapping portion can be formed by a curved structure extending integrally from the first separator and the second separator, without providing a separate auxiliary separator. Thus, the separators constituting the separator overlapping portion can be controlled to overlap in three or more layers by a simpler structure. In addition, when the separator overlapping portion is formed by overlapping and arranging the first separator and the second separator extending from the longitudinal end portion of the negative electrode, the deformation of the electrode assembly caused by the contraction / expansion of the electrode can be prevented from causing damage to the negative electrode and the separator. In addition, even when the separator is damaged, the separator overlapping portion can prevent an internal short circuit between the positive electrode and the negative electrode to improve battery stability and life characteristics.

[0055] According to an exemplary embodiment of the present invention, the first separator and the second separator may extend from the longitudinal end portion of the negative electrode at the core portion of the electrode assembly, may be bent together in a direction opposite to the direction of the winding axis facing the negative electrode, and may overlap and be arranged between the positive electrode and the second separator facing the first surface of the positive electrode. Specifically, referring to Figure 1 and Figure 2 The first separator 200' and the second separator 400' extending from the longitudinal end portion 110 of the negative electrode can be bent together in a direction opposite to the direction of the winding axis facing the negative electrode, that is, in a direction opposite to the direction toward the longitudinal end portion 310 of the positive electrode, and can be arranged to overlap to form a separator overlapping portion S located between the positive electrode 300 and the negative electrode 100 facing the first surface of the positive electrode. As a result, the facing direction of the separators constituting the separator overlapping portion can be more easily controlled, while allowing the separators constituting the separator overlapping portion to overlap in three or more layers with a simpler bending structure.

[0056] According to an exemplary embodiment of the present invention, the separator overlap portion may include a first joint portion where the second separator and the second separator are in direct contact with each other, and a second joint portion where the second separator and the first separator are in direct contact with each other. Figure 3 , the separator overlapping portion S may include separators that are arranged in an overlapping manner and overlap in three or more layers, may include one or more of each of the first separators 200 and 200' and the second separators 400 and 400', and may include a first joint S1 where the second separator 400 and the second separator 400' are in direct contact with each other and a second joint S2 where the second separator 400' and the first separator 200' are in direct contact with each other. In other words, the separator overlapping portion may include an overlapping structure having a plurality of separators, such as an overlapping structure of the first separator and the second separator, rather than an overlapping structure having a single separator, and may include joints where the separators are in contact with each other at each location. Since the separator overlapping portion includes a plurality of joints, the facing direction of the separator and the friction coefficient of each joint may be easily controlled by a simpler bending structure.

[0057] According to an exemplary embodiment of the present invention, the first engaging portion and the second engaging portion may each have a friction coefficient of 0.4 or greater. Figure 3 , the friction coefficients of the first joint S1 and the second joint S2 may be 0.42 or greater, 0.44 or greater, or 0.46 or greater, respectively. In other words, the separator overlapping portion includes an overlapping structure having multiple separators, such as an overlapping structure of a first separator and a second separator, rather than an overlapping structure having a single separator, and includes multiple joints in which the separators contact each other at each location, and in this case, the friction coefficients of the multiple joints can each be controlled to exceed a specific range. When the friction coefficients of the first joint and the second joint meet the above ranges, the positive electrode can be suppressed from sliding during battery charging and discharging by the first separator and the second separator formed integrally with the separator overlapping portion, and the deformation of the electrode assembly caused by the contraction / expansion of the electrode can be prevented from causing damage to the negative electrode and the separator. Here, the friction coefficient (μ) may refer to the static friction coefficient measured according to the ASTM D 1894 standard, which can be measured by a dry method and can have a larger value when measured by a wet method by immersing the sample in distilled water or an electrolyte solution.

[0058] According to an exemplary embodiment of the present invention, the friction coefficient of the first engaging portion may be 0.6 or greater, and the friction coefficient of the second engaging portion may be 0.4 or greater. Figure 3, the friction coefficients of the first joint S1 and the second joint S2 may be different from each other depending on the types and facing directions of the first separators 200 and 200' and the second separators 400 and 400' facing each other. More specifically, the friction coefficient of the first joint S1 may be 0.62 or greater, 0.64 or greater, or 0.66 or greater, and the friction coefficient of the second joint S2 may be 0.42 or greater, 0.44 or greater, or 0.46 or greater. When the friction coefficient between the joints of the separators included in the separator overlapping portion is controlled within the above range, the sliding of the electrodes during charging and discharging of the battery can be suppressed to prevent the deformation of the electrode assembly due to the contraction / expansion of the electrodes from causing damage to the negative electrode and the separator. In addition, even when the separator is damaged, the separator overlapping portion can prevent internal short circuits between the positive and negative electrodes to improve battery stability and life characteristics.

[0059] According to an exemplary embodiment of the present invention, a wound electrode assembly may include a plurality of separators. For example, the wound electrode assembly may have a structure in which a first separator / negative electrode / second separator / positive electrode are stacked in sequence. Separator 200 and separator 400 are used to separate the negative electrode 100 and the positive electrode 300, and provide a path for the movement of lithium ions, wherein any separator can be used as the separator without particular limitation, as long as the separator is commonly used in secondary batteries, and in particular, a separator having a high moisture retention capacity for electrolytes and low resistance to the movement of electrolyte ions can be preferably used. Specifically, a porous polymer film can be used, for example, a porous polymer film made of a polyolefin-based polymer, such as an ethylene homopolymer, a propylene homopolymer, an ethylene / butene copolymer, an ethylene / hexene copolymer, and an ethylene / methacrylate copolymer, or a laminated structure having two or more layers thereof. In addition, a typical porous non-woven fabric can be used, for example, a non-woven fabric formed of high melting point glass fiber, polyethylene terephthalate fiber, etc. In addition, the separator may generally have a thickness of 10 μm or more and 20 μm or less. A separator may be used in which the above-mentioned separator material is used as a base layer and a slurry containing a ceramic component or a polymer material to ensure heat resistance or mechanical strength is applied to the base layer. A separator having a single-layer or multi-layer structure may be selectively used.

[0060] Figure 5 Schematically illustrates a separator overlap portion of a wound-type electrode assembly according to an exemplary embodiment of the present invention. Specifically, Figure 5 (a) schematically illustrates a separator overlap portion of a wound-type electrode assembly including a first separator and a second separator, each of which has a coating layer on both surfaces, and Figure 5(b) schematically illustrates a separator overlapping portion of a wound type electrode assembly including a first separator having no coating layer and a second separator.

[0061] According to an exemplary embodiment of the present invention, each of the first and second separators may include a coating layer provided on at least one surface thereof. Figure 3 and Figure 5 (a), the first separators 200 and 200' and the second separators 400 and 400' may include coating layers 202, 202', 402 and 402' respectively provided on at least one surface thereof, and the base layers 201, 201', 401 and 401' may have a friction coefficient within a specific range by controlling the composition, content and particle size of the coating layer. Specifically, the friction coefficient between the coating layers of the separators and the friction coefficient between the base layers may be greater than the friction coefficient between the coating layers and the base layers. In addition, the friction coefficient can be measured by a dry method, but when immersed in distilled water or an electrolyte solution, that is, when measured by a wet method, there may be a more significant difference.

[0062] In the case of including a coating layer provided on at least one surface of each of the first separator and the second separator, by controlling the facing direction of the coating layer provided on at least one surface of each of the first separator and the second separator, the friction coefficient between the joints of the separators included in the overlapping portion of the separators is controlled within a specific range, so that sliding of the electrodes during charging and discharging of the battery can be suppressed, and deformation of the electrode assembly due to shrinkage / expansion of the electrodes is prevented from causing damage to the negative electrode and the separator.

[0063] According to an exemplary embodiment of the present invention, each of the first separator and the second separator may include a coating layer provided on at least one surface thereof, and the coating layer may include an inorganic component, a binder component, and a lithium salt. When the separator includes the components, although the binder for improving adhesion to the electrode and the inorganic component for improving the mechanical strength of the separator are included, the elution of the lithium salt contained in the coating layer does not cause an increase in internal resistance, thereby achieving excellent battery stability.

[0064] Furthermore, since the electrolyte solution impregnation level of the electrodes facing the separator can be increased, advantageous performance in terms of longer life can be achieved. Specifically, the coating layer can contain an inorganic component, and compared to separators made of simple polymer materials, the coating layer containing an inorganic component has advantages in terms of thermal shrinkage. Therefore, separators containing an inorganic component can have better high-temperature safety.

[0065] Specifically, the lithium salt may be substantially the same as the lithium salt contained in the electrolyte solution of the lithium secondary battery, and may be, for example, selected from the group consisting of LiCl, LiBr, LiI, LiClO4, LiBF4, LiB 10 Cl 10 , one or two or more of the group consisting of LiPF6, LiCF3SO3, LiCF3CO2, LiAsF6, LiSbF6, LiAlCl4, CH3SO3Li, CF3SO3Li, (CF3SO2)2NLi, lithium chloroborane, lower aliphatic carboxylate lithium, and lithium tetraphenylborate.

[0066] The inorganic component is not particularly limited as long as it is within the operating voltage range of the battery (for example, based on Li / Li + The 0V to 5V of the positive electrode collector) does not cause oxidation and / or reduction reaction, that is, does not cause electrochemical reaction with the positive electrode collector or the negative electrode collector and does not damage the conductivity, and can be, for example, selected from BaTiO3, Pb(Zr,Ti)O3 (PZT), Pb 1-x La x Zr 1-y Ti y O3(PLZT), Pb(Mg3Nb 2 / 3 )O3 - One or two or more of the group consisting of PbTiO3 (PMN-PT), hafnium oxide (HfO2), SrTiO3, SnO2, CeO2, MgO, NiO, CaO, ZnO, ZrO2, Y2O3, Al2O3, and TiO2.

[0067] The binder is not particularly limited as long as it is not easily dissolved by the electrolyte solution and exhibits binding strength with the electrode stacked on the separator and binding strength between the inorganic component in the mixed coating layer and the lithium salt. For example, the binder may be one selected from the group consisting of polyvinylidene fluoride (PVdF); polyvinylidene fluoride-co-hexafluoropropylene; polyvinylidene fluoride-co-trichloroethylene; polyvinylidene fluoride chlorotrifluoroethylene (PVdF-CTFE); polymethyl methacrylate; polyacrylonitrile; polyvinyl pyrrolidone; polyvinyl acetate; polyethylene-vinyl acetate copolymer; polyethylene oxide; cellulose acetate; cellulose acetate butyrate; cellulose acetate propionate; cyanoethyl pullulan; cyanoethyl polyvinyl alcohol; cyanoethyl cellulose; cyanoethyl sucrose; pullulan; carboxymethyl cellulose; acrylonitrile-styrene-butadiene copolymer; and polyimide, and preferably may be PVdF or PVdF-CTFE.

[0068] According to an exemplary embodiment of the present invention, the first separator and the second separator may each include a coating layer provided on at least one surface thereof, and the friction coefficient of the surface of the first separator and the second separator provided with the coating layer may be greater than the friction coefficient of the surface of the first separator and the second separator not provided with the coating layer. Specifically, referring to Figure 3 , the first separators 200 and 200' and the second separators 400 and 400' may have coating layers 202, 202', 402 and 402' provided on one surface, respectively. In addition, the surfaces of the first separator and the second separator provided with the coating layer may have a greater coefficient of friction than the surfaces of the first separator and the second separator not provided with the coating layer. That is, the coating layer may increase the friction coefficient of the joint when provided on the separator. By controlling the facing direction of the coating layer provided on one surface of each of the first separator and the second separator, the friction coefficient between the joints of the separators included in the overlapping portion of the separators is controlled within a specific range, so that the sliding of the electrodes during charging and discharging of the battery can be suppressed, and the deformation of the electrode assembly due to the shrinkage / expansion of the electrodes is prevented from causing damage to the negative electrode and the separator.

[0069] According to an exemplary embodiment of the present invention, each of the first separator and the second separator may include a coating layer provided on one surface thereof. Figure 3 The first separators 200 and 200' and the second separators 400 and 400' may respectively include base layers 201, 201', 401 and 401' and coating layers 202, 202', 402 and 402' provided on one surface thereof, and may each have a friction coefficient within a specific range by controlling the composition, content and particle size of the coating layer.

[0070] In the case of a coating layer provided on one surface of each of the first separator and the second separator, by controlling the facing direction of the coating layer provided on one surface of each of the first separator and the second separator, the friction coefficient between the joints of the separators included in the overlapping portion of the separators is controlled within a specific range, so that sliding of the electrodes during charging and discharging of the battery can be suppressed, and deformation of the electrode assembly due to shrinkage / expansion of the electrodes is prevented from causing damage to the negative electrode and the separator.

[0071] According to an exemplary embodiment of the present invention, the first separator and the second separator may each include a coating layer provided on one surface thereof, and the first junction may be a junction where the coating layer of the second separator and the coating layer of the second separator directly contact each other. Specifically, referring to Figure 3, the first separators 200 and 200' and the second separators 400 and 400' may have coating layers 202, 202', 402 and 402' provided on one surface thereof, respectively, and the first joint (S1) may be a joint where the coating layer 402 of the second separator and the coating layer 402' of the second separator are in direct contact with each other. When the coating layer of the second separator and the coating layer of the second separator are in direct contact with each other, the friction coefficient between the coating layers of the separators may be greater than the friction coefficient between the base layer and the base layer or the friction coefficient between the coating layer and the base layer, and the friction coefficient of the first joint may have a larger value. When the coating layer of the second separator and the coating layer of the second separator are in direct contact at the first joint, the friction coefficient between the joints of the separators included in the overlapping portion of the separators increases, so that the sliding of the electrodes during charging and discharging of the battery can be suppressed, and thus the deformation of the electrode assembly due to the shrinkage / expansion of the electrodes is prevented from causing damage to the negative electrode and the separator.

[0072] According to an exemplary embodiment of the present invention, the first separator and the second separator may each include a coating layer provided on one surface thereof, and the second junction may be a junction where the surface of the second separator not provided with the coating layer and the surface of the first separator not provided with the coating layer are in direct contact with each other. Specifically, referring to Figure 3 The first separators 200 and 200' and the second separators 400 and 400' may have coating layers 202, 202', 402, and 402' provided on one surface thereof, respectively, and the second joint (S2) may be a joint where a surface of the second separator not provided with the coating layer, i.e., the base layer 401' of the second separator, and a surface of the first separator not provided with the coating layer, i.e., the base layer 201' of the first separator, are in direct contact with each other. When the surface of the second separator not provided with the coating layer and the surface of the first separator not provided with the coating layer are in direct contact with each other, the friction coefficient between the base layers of the separators may be greater than the friction coefficient between the coating layers, and the friction coefficient of the second joint may have a greater value. When the surface of the second separator not provided with the coating layer and the surface of the first separator not provided with the coating layer are in direct contact with each other at the second joint, the friction coefficient between the joints of the separators included in the overlapping portion of the separators is increased, so that the sliding of the electrodes during battery charging and discharging can be suppressed, and thus deformation of the electrode assembly due to contraction / expansion of the electrodes is prevented from causing damage to the negative electrode and the separator.

[0073] According to an exemplary embodiment of the present invention, the first joint portion may be a joint portion where the second separator facing the first surface of the positive electrode and the second separator extending from the longitudinal end portion of the negative electrode at the core portion of the electrode assembly directly contact each other. Specifically, referring to Figures 1 to 3, the second separator 400' extending from the longitudinal end portion 110 of the negative electrode can overlap and be arranged to form a separator overlapping portion S located between the positive electrode 300 and the negative electrode 100 facing the first surface of the positive electrode. In this case, since the second separator 400 is located between the positive electrode 300 and the negative electrode 100 facing the first surface of the positive electrode, the extended second separator 400' can be in direct contact with the second separator 400 located between the positive electrode 300 and the negative electrode 100. That is, a first joint S1 can be formed at which the second separator 400 and the second separator 400' extending from the longitudinal end portion 110 of the negative electrode at the core portion of the electrode assembly are in direct contact with each other. As a result, the facing direction of the separators constituting the separator overlapping portion and the friction force at the joint can be more easily controlled, while allowing the separators constituting the separator overlapping portion to overlap in three or more layers through a simpler bending structure.

[0074] According to an exemplary embodiment of the present invention, the second junction may be a junction where a first separator extending from a longitudinal end portion of the negative electrode at the core portion of the electrode assembly and a second separator extending from a longitudinal end portion of the negative electrode at the core portion of the electrode assembly directly contact each other. Specifically, referring to Figures 1 to 3 , the first separator 200' extending from the longitudinal end portion 110 of the negative electrode and the second separator 400' extending from the longitudinal end portion of the negative electrode can overlap and be arranged to form a separator overlapping portion S located between the positive electrode 300 and the negative electrode 100 facing the first surface of the positive electrode. In this case, a second joint S2 can be formed at which the first separator 200' extending from the longitudinal end portion 110 of the negative electrode and the second separator 400' extending from the longitudinal end portion 110 of the negative electrode are in direct contact with each other. As a result, the facing direction of the separators constituting the separator overlapping portion and the friction force at the joint can be more easily controlled, while allowing the separators constituting the separator overlapping portion to overlap in three or more layers with a simpler bending structure.

[0075] According to an exemplary embodiment of the present invention, the length of the separator overlapping portion in the longitudinal direction may be 30% or more of 100% of the circumference of the electrode assembly. Specifically, the length of the separator overlapping portion in the longitudinal direction may be 40% or more, or 50% or more, of 100% of the circumference of the electrode assembly, or may be 1 / 3 or more, or 1 / 2 or more of the inner circumferential surface of the core portion of the electrode assembly.

[0076] Here, the circumference of the electrode assembly may refer to the circumference of the inner circumferential surface of the electrode assembly, and the "circumference of the inner circumferential surface" may refer to the circumference of a virtual circle having a maximum value of the distance from the winding axis of the electrode assembly to the innermost layer in contact with the hollow portion of the electrode assembly as a radius. For example, the circumference of the inner circumferential surface of the electrode assembly may be approximately 10 mm, but is not limited thereto.

[0077] In addition, refer to Figure 3 , the length of the separator overlap portion in the longitudinal direction may refer to a length of L+L'=L+L=2L. That is, a first separator extending from a longitudinal end portion of the negative electrode at the core portion of the electrode assembly and a second separator extending from a longitudinal end portion of the negative electrode at the core portion of the electrode assembly may be arranged to be more than 1 / 6 turn or more, or 1 / 4 turn or more, from the longitudinal end portion of the positive electrode between the positive electrode and the negative electrode facing the first surface of the positive electrode, and in this case, the length of the separator overlap portion in the longitudinal direction may be 1 / 3 turn or more, or 1 / 2 turn or more. When the length range of the separator overlap portion in the longitudinal direction is satisfied, the friction between the joints of the separators included in the separator overlap portion can suppress sliding of the electrodes during battery charging and discharging, thereby fully preventing the deformation of the electrode assembly due to the contraction / expansion of the electrodes from damaging the negative electrode and the separator.

[0078] According to an exemplary embodiment of the present invention, the spacing distance between the longitudinal end portion of the separator overlap portion and the longitudinal end portion of the positive electrode may be 3 mm or longer. Figure 3 , a spacing distance L between a longitudinal end portion of the overlapping portion of the separator and a longitudinal end portion of the positive electrode may be 4 mm or longer, 5 mm or longer, or 6 mm or longer.

[0079] That is, the first separator 200' extending from the longitudinal end portion 110 of the negative electrode at the core portion of the electrode assembly and the second separator 400' extending from the longitudinal end portion 110 of the negative electrode at the core portion of the electrode assembly can be arranged to be more than 3 mm or longer from the longitudinal end portion 310 of the positive electrode between the positive electrode 300 and the negative electrode 100 facing the first surface of the positive electrode.

[0080] When the separator overlap portion meets the aforementioned longitudinal length range, the separator overlap portion can be positioned between the positive electrode and the negative electrode facing the first surface of the positive electrode, even if there are process errors in the placement of the first and second separators. Furthermore, the friction between the separator joints included in the separator overlap portion can suppress slippage of the electrodes during battery charging and discharging, thereby effectively preventing damage to the negative electrode and separator due to deformation of the electrode assembly caused by contraction / expansion of the electrodes.

[0081] According to an exemplary embodiment of the present invention, the positive electrode may include a positive electrode current collector and a positive electrode active material layer disposed on the positive electrode current collector. Figure 3 , the positive electrode 300 may include a positive electrode current collector 301 and positive electrode active material layers 302 and 303 formed on one surface or both surfaces of the positive electrode current collector 301 and including a positive electrode active material. In other words, the positive electrode active material layer is formed on the positive electrode coating portion of the positive electrode current collector, and the surface where the positive electrode active material layer is not provided may be referred to as a positive electrode uncoated portion.

[0082] According to an exemplary embodiment of the present invention, the positive electrode current collector may include a positive electrode coated portion coated with a positive electrode active material and a positive electrode uncoated portion not coated with the positive electrode active material, and may include a tab located on the positive electrode uncoated portion. Specifically, the positive electrode current collector may include a positive electrode uncoated portion and a positive electrode tab disposed on the positive electrode uncoated portion.

[0083] According to an exemplary embodiment of the present invention, the electrode assembly may include a positive electrode, a separator, and a negative electrode stacked and wound, and the positive electrode may include a positive electrode collector and a positive electrode active material layer, the positive electrode active material layer being provided on at least one surface of the positive electrode collector and having a longitudinal end portion at the same position as the positive electrode collector. Specifically, referring to Figure 3 The electrode assembly may include a stacked and wound positive electrode 300, separators 200 and 400, and a negative electrode 100, and the positive electrode 300 may include a positive electrode collector 301 and positive electrode active material layers 302 and 303, the positive electrode active material layers 302 and 303 being provided on at least one surface of the positive electrode collector 301 and each having a longitudinal end portion 310 at the same position as the positive electrode collector 301. In other words, one end portion 310 of the positive electrode in the longitudinal direction may have a free edge form. Thus, the area of ​​unnecessary uncoated portions on the positive electrode collector may be reduced to ensure economic efficiency, and the slitting process may be performed after the active material layer is formed on the electrode, so that the roll-to-roll process including the slitting process and the winding process may be performed more efficiently. Here, the description of "the same position" means that the end portions in the longitudinal direction are the same, and may include a case where the end portions are formed at substantially the same position due to process errors that may occur in the slitting process, etc.

[0084] According to an exemplary embodiment of the present invention, the positive electrode current collector is not particularly limited, as long as the positive electrode current collector has conductivity and does not cause chemical changes in the battery. Specifically, for example, stainless steel, aluminum, nickel, titanium, sintered carbon, aluminum or stainless steel whose surfaces are treated with carbon, nickel, titanium, silver, etc., etc. can be used as the positive electrode current collector. In other words, the positive electrode current collector can be provided in the form of surface-treated stainless steel, aluminum foil, etc.

[0085] In addition, the positive electrode current collector may generally have a thickness of 3 μm to 50 μm, and the surface of the current collector may be formed with microscopic irregularities to enhance the adhesion of the positive electrode active material. For example, the positive electrode current collector may be used in various forms such as a film, a sheet, a foil, a net, a porous body, a foam body, and a non-woven fabric body.

[0086] According to an exemplary embodiment of the present invention, the positive electrode active material may be a commonly used positive electrode active material. Specifically, the positive electrode active material may be a layered compound, such as lithium cobalt oxide (LiCoO2) and lithium nickel oxide (LiNiO2), or a compound substituted by one or more transition metals; lithium iron oxide, such as LiFe3O4; lithium manganese oxide, such as Li 1+x Mn 2-x O4 (0≤x≤0.33), LiMnO3, LiMn2O3 and LiMnO2; lithium copper oxide (Li2CuO2); vanadium oxides such as LiV3O8, V2O5 and Cu2V2O7; 1-y M y Nickel-type lithium nickel oxide represented by O2 (wherein M is at least one selected from the group consisting of Co, Mn, Al, Cu, Fe, Mg, B and Ga, and satisfies 0.01≤y≤0.3); 2-z M z A lithium manganese composite oxide represented by LiMnO2 (wherein M is at least one selected from the group consisting of Co, Ni, Fe, Cr, Zn, and Ta, and satisfies 0.01≤z≤0.1) or Li2Mn3MO8 (wherein M is at least one selected from the group consisting of Fe, Co, Ni, Cu, and Zn); LiMn2O4, in which a portion of Li in the chemical formula is substituted by an alkaline earth metal ion or the like, but is not limited thereto. The positive electrode may be lithium metal.

[0087] According to an exemplary embodiment of the present invention, the positive electrode active material layer may further include a positive electrode conductive material and a positive electrode binder. The positive electrode conductive material is used to impart conductivity to the electrode and can be used without particular limitation as long as it does not cause chemical changes in the constituted battery and has electronic conductivity. Specific examples of positive electrode conductive materials may include: graphite, such as natural graphite or artificial graphite; carbon-based materials, such as carbon black, acetylene black, Ketjen black, channel black, furnace black, lamp black, thermal black, and carbon fiber; metal powder or metal fiber, such as copper, nickel, aluminum, and silver; conductive whiskers, such as zinc oxide and potassium titanate; conductive metal oxides, such as titanium oxide; or conductive polymers, such as polyphenylene derivatives, etc., and any one of them or a mixture of two or more of them can be used.

[0088] In addition, the positive electrode binder is used to improve the adhesion between the particles of the positive electrode active material and the adhesion between the positive electrode active material and the positive electrode current collector. Specific examples may include polyvinylidene fluoride (PVDF), vinylidene fluoride-hexafluoropropylene copolymer (PVDF-co-HFP), polyvinyl alcohol, polyacrylonitrile, carboxymethyl cellulose (CMC), starch, hydroxypropyl cellulose, regenerated cellulose, polyvinyl pyrrolidone, tetrafluoroethylene, polyethylene, polypropylene, ethylene-propylene-diene monomer (EPDM), sulfonated-EPDM, styrene-butadiene rubber (SBR), fluororubber or various copolymers thereof, and any one of them or a mixture of two or more thereof may be used.

[0089] According to an exemplary embodiment of the present invention, the negative electrode may include a negative electrode current collector and a negative electrode active material layer disposed on the negative electrode current collector. Figure 3 , the negative electrode 100 may include a negative electrode current collector 101 and negative electrode active material layers 102 and 103 formed on one surface or both surfaces of the negative electrode current collector 101 and including a negative electrode active material. In other words, the negative electrode active material layer is formed on the negative electrode coating portion of the negative electrode current collector, and the surface where the negative electrode active material layer is not provided may be referred to as a negative electrode uncoated portion.

[0090] According to an exemplary embodiment of the present invention, the negative electrode current collector may include a negative electrode coated portion having a negative electrode active material layer formed therein and a negative electrode uncoated portion having no negative electrode active material layer formed therein, and may include a tab positioned on the negative electrode uncoated portion. Specifically, the negative electrode current collector may include the negative electrode uncoated portion and a negative electrode tab positioned on the negative electrode uncoated portion. Thus, the manufactured electrode assembly may include one or more negative electrode tabs.

[0091] According to an exemplary embodiment of the present invention, the negative electrode active material layer may include a negative electrode active material including one or more selected from the group consisting of silicon-based materials and carbon-based materials. In addition, the negative electrode active material layer may further include a negative electrode conductive material and a negative electrode binder. For the negative electrode active material, the negative electrode conductive material, and the negative electrode binder, materials used in the art may be used without limitation.

[0092] According to an exemplary embodiment of the present invention, the negative electrode current collector is not particularly limited, as long as it has conductivity that does not cause chemical changes in the battery. For example, copper, stainless steel, aluminum, nickel, titanium, sintered carbon, aluminum or stainless steel each surface-treated with carbon, nickel, titanium, silver, etc., can be used as the negative electrode current collector. Specifically, transition metals that adsorb carbon well, such as copper and nickel, can be used for the negative electrode current collector. The thickness of the negative electrode current collector can be 6 μm or more and 80 μm or less. However, the thickness of the negative electrode current collector is not limited thereto.

[0093] According to an exemplary embodiment of the present invention, the negative electrode binder may include at least one selected from the group consisting of polyvinylidene fluoride-hexafluoropropylene copolymer (PVDF-co-HFP), polyvinylidene fluoride, polyacrylonitrile, polymethyl methacrylate, polyvinyl alcohol, carboxymethyl cellulose (CMC), starch, hydroxypropyl cellulose, regenerated cellulose, polyvinyl pyrrolidone, tetrafluoroethylene, polyethylene, polypropylene, polyacrylic acid, ethylene-propylene-diene monomer (EPDM), sulfonated EPDM, styrene-butadiene rubber (SBR), fluororubber, polyacrylic acid, and the above materials in which hydrogen is replaced by Li, Na, Ca, etc., and various copolymers thereof may also be included.

[0094] According to an exemplary embodiment of the present invention, the negative electrode conductive material is not particularly limited as long as it has conductivity in the battery without causing chemical changes, and for example, graphite such as natural graphite or artificial graphite; carbon black such as acetylene black, Ketjen black, channel black, furnace black, lamp black and thermal black; conductive fibers such as carbon fibers and metal fibers; conductive tubes such as carbon nanotubes; metal powders such as fluorocarbons, aluminum and nickel powders; conductive whiskers such as zinc oxide and potassium titanate; conductive metal oxides such as titanium oxide; conductive materials such as polyphenylene derivatives, etc. can be used.

[0095] The exemplary embodiment of the present invention provides a secondary battery including the above-mentioned wound electrode assembly and a battery case for accommodating the electrode assembly. Specifically, the secondary battery may include the electrode assembly according to the above-mentioned exemplary embodiment and a battery case for accommodating the electrode assembly.

[0096] The secondary battery according to the present invention includes a separator overlapping portion, in which the friction coefficient between the bending structure of the separator of the core portion and the joint is controlled, so that even when the electrode assembly is deformed due to the contraction / expansion of the electrodes during battery charging and discharging, the internal short circuit between the positive electrode and the negative electrode can be prevented to improve the battery stability and life characteristics.

[0097] According to an exemplary embodiment of the present invention, the battery case may have a cylindrical shape. Specifically, depending on the application, the battery case may have a cylindrical, prismatic, or pouch shape. However, a battery case having a cylindrical shape may be more suitable for accommodating a wound electrode assembly. When the battery case has a cylindrical shape, the shape of the secondary battery including the wound electrode assembly and the battery case for accommodating the electrode assembly may have a cylindrical shape.

[0098] According to an exemplary embodiment of the present invention, the battery case may include an electrolyte. Specifically, the electrolyte may include an organic liquid electrolyte, an inorganic liquid electrolyte, a solid polymer electrolyte, a gel-type polymer electrolyte, a solid inorganic electrolyte, or a molten inorganic electrolyte that can be used to manufacture a lithium secondary battery, but is not limited thereto. Specifically, the electrolyte may include a non-aqueous organic solvent and a metal salt.

[0099] According to an exemplary embodiment of the present invention, as the non-aqueous organic solvent, for example, an aprotic organic solvent such as N-methyl-2-pyrrolidone, acrylic acid ester, ethylene carbonate, butylene carbonate, dimethyl carbonate, diethyl carbonate, γ-butyl lactone, 1,2-dimethoxyethane, tetrahydrofuran, 2-methyltetrahydrofuran, dimethyl sulfoxide, 1,3-dioxolane, formamide, dimethylformamide, dioxolane, acetonitrile, nitromethane, methyl formate, methyl acetate, triester phosphate, trimethoxymethane, dioxolane derivatives, sulfolane, methyl sulfolane, 1,3-dimethyl-2-imidazolidinone, propylene carbonate derivatives, tetrahydrofuran derivatives, ethyl ether, methyl propionate or ethyl propionate can be used.

[0100] According to an exemplary embodiment of the present invention, a lithium salt may be used as the metal salt, and the lithium salt is a material easily soluble in a non-aqueous electrolyte solution, wherein, for example, one or more substances selected from the group consisting of the following may be used as anions of the lithium salt: F - 、Cl - , I - 、NO3 - 、N(CN) 2- 、BF4 - 、ClO4 - PF6 - 、(CF3)2PF4 - 、(CF3)3PF3 - 、(CF3)4PF2 - 、(CF3)5PF - 、(CF3)6P - CF3SO3 - CF3CF2SO3 - 、(CF3SO2)2N - 、(FSO2)2N - CF3CF2(CF3)2CO - 、(CF3SO2)2CH - 、(SF5)3C - 、(CF3SO2)3C - CF3(CF2)7SO3 - CF3CO2 - 、CH3CO2 - 、SCN- and (CF3CF2SO2)2N - .

[0101] According to an exemplary embodiment of the present invention, in order to improve the life characteristics of the battery, suppress the decrease in battery capacity, increase the discharge capacity of the battery, etc., in addition to the above-mentioned electrolyte components, the electrolyte may further include one or more additives, for example, a halogenated alkylene carbonate compound, such as diethyl difluorocarbonate, pyridine, triethyl phosphite, triethanolamine, cyclic ether, ethylenediamine, n-glyme, hexaphosphoric acid triamide, nitrobenzene derivatives, sulfur, quinone imine dye, N-substituted oxazolidinone, N,N-substituted imidazolidine, ethylene glycol dialkyl ether, ammonium salt, pyrrole, 2-methoxyethanol or aluminum trichloride, etc.

[0102] Hereinafter, examples will be described in detail to specifically describe the present invention. However, examples according to the present invention can be modified in many different forms, and the scope of the present invention should not be interpreted as being limited to the following examples. The examples of this specification are provided to more completely explain the present invention to those skilled in the art.

[0103] Example

[0104] Example 1

[0105] Preparation of electrode assembly

[0106] A positive electrode with a thickness of 154 μm was prepared by preparing an Al foil with a thickness of 15 μm and a length of 63.9 mm in the width direction as a positive electrode current collector, and coating a positive electrode active material slurry including an NMCA (Ni-Mn-Co-Al) composite with a Ni content of 92% or more as a positive electrode active material and CNTs as a conductive material on the positive electrode current collector and drying it to form a positive electrode active material layer.

[0107] Next, a negative electrode with a thickness of 187 μm was prepared by preparing a copper foil with a thickness of 8 μm and a length of 65.1 mm in the width direction as a negative electrode current collector, and coating a negative electrode active material slurry containing 50 parts by weight of artificial graphite and natural graphite as negative electrode active materials on the negative electrode current collector and drying to form a negative electrode active material layer.

[0108] On the other hand, two separators were prepared as a first separator and a second separator, each of which had a coating layer including Al2O3 as an inorganic component, a PVdF-based binder as a binder component, and a lithium salt, and the coating layer was formed on one surface of a sheet-like polyethylene base layer.

[0109] Before winding the wound electrode assembly, the base layers of the first and second separators overlapped to face each other, and the first and second separators were provided with extensions corresponding to approximately three turns of the wound core in the direction opposite to the winding direction. In this case, a core having an outer peripheral surface circumference of approximately 10 mm was used as the wound core.

[0110] Then, starting from the longitudinal end portions of the first and second separators, the points corresponding to the three turns of the wound core are folded back in the winding direction to start winding, and the negative electrode and the positive electrode are sequentially introduced to prepare a wound electrode assembly. In this case, the separator overlap portion is provided by inserting the extension of the first and second separators between one surface of the positive electrode in the direction of the winding axis and the second separator located on one surface of the negative electrode, and the core portion of the wound electrode assembly is formed to have a shape such as Figure 1 and Figure 2 The structure shown. In this case, the spacing distance (L) between the longitudinal end portion of the separator overlap portion and the longitudinal end portion of the positive electrode is 3 mm, and the length of the separator overlap portion in the longitudinal direction (L+L'=2L) is controlled to 6 mm. The circumference of the inner peripheral surface of the prepared wound electrode assembly is about 10 mm.

[0111] Preparation of secondary batteries

[0112] A secondary battery was prepared by inserting a wound electrode assembly into a cylindrical battery case, injecting an electrolyte solution in which ethylene carbonate (EC), dimethyl carbonate (DMC), and ethyl methyl carbonate (EMC) were mixed in a weight ratio of 4:9:3 and LiPF6 was dissolved to 15 wt %, and sealing the cylindrical battery case with a cap assembly.

[0113] Example 2

[0114] A wound electrode assembly and a secondary battery were prepared in the same manner as in Example 1, except that two separators were used as the first separator and the second separator: the two separators each had a coating layer including Al2O3 as an inorganic component, a PVdF-based binder as a binder component, and a lithium salt, and the coating layers were formed on both surfaces of the sheet-like polyethylene base layer.

[0115] Example 3

[0116] A wound-type electrode assembly and a secondary battery were prepared in the same manner as in Example 1, except that two separators without coating layers formed on both surfaces of the sheet-like polyethylene base layer were used as the first separator and the second separator.

[0117] Example 4

[0118] A wound electrode assembly and a secondary battery were prepared in the same manner as in Example 1, except that the spacing distance (L) between the longitudinal end portion of the overlapping portion of the separator and the longitudinal end portion of the positive electrode was 1.5 mm, and the length of the overlapping portion of the separator in the longitudinal direction (L+L'=2L) was controlled to 3 mm.

[0119] Comparative Example 1

[0120] A wound-type electrode assembly and a secondary battery were prepared in the same manner as in Example 1, except that the separator overlapping portion was not provided.

[0121] Experimental Example

[0122] Experimental Example 1 – Friction Coefficient Evaluation

[0123] The friction coefficient (μ) between the coating layer and the coating layer, between the coating layer and the base layer, and between the base layer and the base layer of the first separator and the second separator was measured according to ASTM D 1894. In this case, after measuring the friction coefficient by a dry method, the same sample was immersed in an electrolyte solution for 60 minutes, and then the friction coefficient was measured again by a wet method, and the results are shown in Table 1 below.

[0124] Table 1

[0125]

[0126]

[0127] With reference to Table 1, it is confirmed that the friction coefficient between the coating layer and the coating layer of the first separator and the second separator has a greater value than the friction coefficient between the base layer and the base layer or between the coating layer and the base layer. In addition, it is confirmed that the friction coefficient measured in the wet state has a greater value than the friction coefficient measured in the dry state. Specifically, it is confirmed that the friction coefficient between the base layer and the base layer has a relatively low value compared to the friction coefficient between the coating layer and the base layer, but in the wet state of the internal environment of the secondary battery to be manufactured, the friction coefficient between the base layer and the base layer has a larger value. It can be seen that when immersed in distilled water or an electrolyte solution, the friction coefficient between the coating layer and the coating layer of the first separator and the second separator and the friction coefficient between the base layer and the base layer have a greater value than the friction coefficient between the coating layer and the base layer. In addition, it can be seen that by controlling the facing direction of the coating layer provided on one surface of each of the first separator and the second separator, the friction coefficient between the joints of the separators included in the overlapping portion of the separators can be controlled within a specific range.

[0128] Experimental Example 2 – Core Impact Evaluation

[0129] Short-term cyclic stability evaluation

[0130] The secondary batteries prepared in Examples 1 to 4 and Comparative Example 1 were subjected to 2 cycles of 0.2C charge and 0.2C discharge at 4.2V to 2.5V, respectively, to prepare activated secondary batteries. Thereafter, each of the activated secondary batteries was subjected to 20 cycles at 4.3V to 2.5V, 1C / 1C, and 25°C. Then, for short-term cycle stability evaluation, computed tomography (CT) was performed on the core portion of the prepared secondary battery to examine the core impact. The images are shown in FIG. Figure 4 and Figure 6 middle.

[0131] Long-term cycling stability evaluation

[0132] The secondary batteries prepared in Example 1 and Comparative Example 1 were subjected to 2 cycles of 0.2C charge and 0.2C discharge at 4.2V to 2.5V, respectively, to prepare activated secondary batteries. Thereafter, each of the activated secondary batteries was subjected to 200 cycles at 4.25V (0.3C) to 2.85V (0.5C) at 55°C. Then, for long-term cycle stability evaluation, computed tomography (CT) was performed on the core portion to examine core impact. The images are shown in FIG. Figure 7 In addition, the energy density, capacity retention rate and coulombic efficiency according to the cycle progress were measured and shown in the following Tables 2 and Figure 8 middle.

[0133] Table 2

[0134]

[0135] Core impact assessment

[0136] The secondary batteries of Example 1 and Comparative Example 1 were evaluated by the following method as to whether core shock occurred.

[0137] Figure 9 The method for evaluating whether core impact occurs is schematically shown. Specifically, Figure 9 (a) schematically shows a method for evaluating whether core impact occurs when deformation occurs in the negative electrode, and Figure 9 (b) schematically shows a method for evaluating whether core impact occurs when no deformation occurs in the negative electrode.

[0138] 1) On the first surface of the positive electrode 300 , a first extended line E1 is drawn by extending a straight line connecting the longitudinal end portion 310 of the positive electrode and a point spaced 5 mm from the end portion.

[0139] 2-1) When the negative electrode is deformed

[0140] At the core portion of the wound electrode assembly, on the surface of the first surface of the negative electrode 100 facing the positive electrode, a second extended line E2 is drawn by extending a straight line connecting two points where the curvature direction changes within a spacing distance of 5 mm from the longitudinal end portion 310 of the positive electrode.

[0141] 2-2) When the negative electrode is not deformed

[0142] At the core portion of the wound type electrode assembly, on the surface of the negative electrode 100 facing the first surface of the positive electrode, a second extended line E2 was drawn by extending a straight line connecting two points spaced 5 mm apart from the longitudinal end portion 310 of the positive electrode.

[0143] 3) When the angle from the first extension line E1 to the second extension line E2 exceeds 25° in the counterclockwise direction relative to the intersection of the first extension line E1 and the second extension line E2, it is evaluated that core impact has occurred.

[0144] On the other hand, in the case of acquiring an unknown secondary battery (unknown battery), the above-mentioned method for evaluating whether a core impact has occurred can be applied in the following manner: evaluate whether a core impact has occurred at the time of initial acquisition, re-evaluate whether a core impact has occurred every 250 cycles, and compare and analyze the results with the core impact conditions of the secondary battery according to an exemplary embodiment of the present invention.

[0145] Figure 4 are CT images showing the results of short-term cycle stability evaluation of the secondary batteries according to Example 1 and Comparative Example 1, and Figure 7 are CT images showing the results of long-term cycle stability evaluation of the secondary batteries according to Example 1 and Comparative Example 1.

[0146] Reference Figure 4 and Figure 7 , it was confirmed that core shock did not occur in both the short-term cycle stability evaluation and the long-term cycle stability evaluation of the secondary battery prepared in Example 1, but core shock occurred in both the short-term cycle stability evaluation and the long-term cycle stability evaluation of the secondary battery prepared in Comparative Example 1. Specifically, with respect to the secondary battery prepared in Comparative Example 1, it was confirmed that core shock did not occur in the secondary battery before activation, but core shock occurred in some parts of the secondary battery after activation. In addition, it was confirmed that after 20 cycles as short-term cycles and 200 cycles as long-term cycles, the frequency and extent of damage to the negative electrode and the separator by the longitudinal end portion of the positive electrode, that is, the core shock caused by the shrinkage / expansion of the electrode assembly, increased significantly.

[0147] Figure 6are CT images showing the results of short-term cycle stability evaluation of the secondary batteries according to Examples 1 to 4.

[0148] Reference Figure 6 , it was confirmed that all the secondary batteries prepared in Examples 1 to 4 did not experience core shock after activation. However, in the case of Example 3, in which the first and second separators were not provided with a coating layer, it was confirmed that slight bending of the negative electrode facing the first surface of the positive electrode occurred after accelerated cycling. In the case of Example 4, in which the separator overlap portion was less than 6 mm, slight bending of the negative electrode facing the first surface of the positive electrode occurred after activation, and core shock occurred after accelerated cycling.

[0149] As can be seen from this, when a coating layer is provided on at least one surface of each of the first and second separators, a higher friction coefficient can be achieved compared to a case where the separator overlap portion does not include a coating layer, i.e., the base layer and the base layer are in contact with each other at the first and second joints. This, in turn, suppresses slippage of the electrodes, thereby preventing damage to the negative electrode and separator even during contraction / expansion of the electrodes. Furthermore, it can be seen that the aforementioned effect of preventing damage to the negative electrode and separator is even more excellent when the length of the separator overlap portion is controlled to exceed a specific range.

[0150] Figure 8 is a graph showing the results of long-term cycle stability evaluation of the secondary batteries according to Example 1 and Comparative Example 1. Specifically, Figure 8 FIG. (a) is a graph showing capacity retention rates according to cycle progress of the secondary batteries according to Example 1 and Comparative Example 1, and Figure 8 FIG. 1( b ) is a graph showing coulombic efficiency over the cycle progress of the secondary batteries according to Example 1 and Comparative Example 1. FIG.

[0151] Refer to Table 2 and Figure 8 , it was confirmed that although the secondary battery according to Example 1 was provided with a separator overlap portion for improving core impact, it showed an initial energy density and capacity retention rate similar to those of the comparative example in which the separator overlap portion was not provided. On the other hand, it was confirmed that in the case of the secondary battery according to Comparative Example 1, the capacity retention rate decreased after the initial 50 cycles, that is, when long-term cycling was performed. Specifically, it was confirmed that after 50 cycles, the coulombic efficiency was reversed compared to the secondary battery according to Example 1, and the lifespan was reduced due to internal short circuits caused by a large fluctuation width.

[0152] It can be seen from this that in the case of the secondary battery according to Example 1, even when a separator overlapping portion is provided, no significant decrease in the initial energy density and capacity retention rate occurs, but the battery stability and life characteristics are more excellent compared to the secondary battery according to Comparative Example 1 in which no separator overlapping portion is provided.

[0153] That is, it can be seen that the wound electrode assembly according to an exemplary embodiment of the present invention includes a separator overlap portion, which has separators overlapped and arranged in a manner of three or more layers at specific positions, thereby suppressing the sliding of the electrodes during battery charging and discharging to prevent the deformation of the electrode assembly caused by the contraction / expansion of the electrodes from causing damage to the negative electrode and the separator. In addition, it can be seen that even when the separator is damaged, the separator overlap portion can prevent the internal short circuit between the positive electrode and the negative electrode to improve the battery stability and life characteristics. In addition, it can be seen that the above-mentioned effect can be further improved when the bending structure of the core portion separator, the friction coefficient between the joints, and the length range of the separator overlap portion are controlled.

[0154] The foregoing detailed description is intended to illustrate and explain the present invention. Furthermore, the foregoing description is merely intended to illustrate and describe preferred embodiments of the present invention, and as described above, the present invention can be used in various other combinations, variations, and environments, and can be changed and modified within the scope of the inventive concept disclosed in this specification, within the scope equivalent to the above disclosure, and / or within the scope of the skill or knowledge in the art. Therefore, the foregoing detailed description of the present invention is not intended to limit the present invention to the disclosed embodiments. Furthermore, the appended claims should be interpreted to also include other embodiments.

Claims

1. A wound-type electrode assembly in which a first separator, a negative electrode, a second separator, and a positive electrode are sequentially stacked and wound, in, The positive electrode has a first surface in the direction of the winding axis of the wound electrode assembly and a second surface opposite to the first surface. wherein the core portion of the electrode assembly includes a separator overlapping portion between the positive electrode and the negative electrode facing the first surface of the positive electrode, wherein the overlapping portion of the separators comprises separators arranged in an overlapping manner and stacked in three or more layers, The overlapping portion of the separators includes a first joint portion and a second joint portion, wherein the second separators are in direct contact with each other at the first joint portion and the second separators are in direct contact with each other at the second joint portion, and Wherein, the first engaging portion and the second engaging portion each have a friction coefficient of 0.4 or greater.

2. The wound electrode assembly according to claim 1, wherein: At the core portion of the electrode assembly, the first separator, the negative electrode, and the second separator extend longer than a longitudinal end portion of the positive electrode and are further wound.

3. The wound electrode assembly according to claim 1, wherein: In the separator overlapping portion, the first separator and the second separator extending from a longitudinal end portion of the negative electrode at a core portion of the electrode assembly are overlapped and arranged.

4. The wound electrode assembly according to claim 1, wherein: The first separator and the second separator: extending from a longitudinal end portion of the negative electrode at the core portion of the electrode assembly, are bent together in a direction opposite to the direction of the winding axis facing the negative electrode, and The second separator overlaps and is arranged between the positive electrode and the first surface facing the positive electrode.

5. The wound electrode assembly according to claim 1, wherein The friction coefficient of the first engaging portion is 0.6 or greater, and Wherein, the friction coefficient of the second engaging portion is 0.4 or greater.

6. The wound electrode assembly according to claim 1, wherein: The first separator and the second separator each include a coating layer provided on at least one surface thereof, and wherein a friction coefficient of a surface of each of the first and second separators on which the coating layer is provided is greater than a friction coefficient of a surface of each of the first and second separators on which the coating layer is not provided.

7. The wound electrode assembly according to claim 1, wherein: The first separator and the second separator each include a coating layer provided on at least one surface thereof, and Wherein, the coating layer comprises an inorganic component, a binder component and a lithium salt.

8. The wound electrode assembly according to claim 1, wherein The first separator and the second separator each include a coating layer provided on one surface thereof, and The first joint portion is a joint portion where the coating layer of the second separator directly contacts the coating layer of the second separator.

9. The wound electrode assembly according to claim 1, wherein: The first separator and the second separator each include a coating layer provided on one surface thereof, and The second joint portion is a joint portion where a surface of the second separator not provided with the coating layer and a surface of the first separator not provided with the coating layer are in direct contact with each other.

10. The wound electrode assembly according to claim 1, wherein The first joint portion is a joint portion where a second separator facing the first surface of the positive electrode and a second separator extending from a longitudinal end portion of the negative electrode at the core portion of the electrode assembly directly contact each other.

11. The wound electrode assembly according to claim 1, wherein The second joint is a joint where a first separator extending from a longitudinal end portion of the negative electrode at the core portion of the electrode assembly and a second separator extending from the longitudinal end portion of the negative electrode at the core portion of the electrode assembly directly contact each other.

12. The wound electrode assembly according to claim 1, wherein A length of the separator overlapping portion in a longitudinal direction is 30% or more of 100% of a circumference of the electrode assembly.

13. The wound electrode assembly according to claim 1, wherein A spacing distance between a longitudinal end portion of the separator overlapped portion and a longitudinal end portion of the positive electrode is 3 mm or more.

14. A secondary battery comprising: The wound electrode assembly according to any one of claims 1 to 13; as well as A battery case for accommodating the electrode assembly.

15. The secondary battery according to claim 14, wherein The battery case has a cylindrical shape.

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