Activation method for lithium secondary batteries
The method optimizes lithium secondary battery activation by sequencing initial charging, degassing, and aging processes to efficiently remove gas and stabilize the SEI film, addressing gas trapping issues in stack-and-fold type assemblies and maintaining battery performance.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-08-21
- Publication Date
- 2026-03-04
AI Technical Summary
Conventional activation methods for lithium secondary batteries, particularly those with stack-and-fold type electrode assemblies, fail to efficiently remove internal gas generated during the activation process, leading to battery deformation, lithium deposition, and reduced performance due to trapped gas and inability to apply pressure during initial charging.
A method involving sequential processes: initial charging to form an SEI film, followed by degassing to remove gas, and aging to stabilize the film, without pressurizing the battery, optimized for stack-and-fold type electrode assemblies.
Minimizes lithium deposition risk and maintains capacity and life characteristics by effectively discharging internal gas after initial charging, suitable for batteries that cannot be pressurized during initial charging.
Smart Images

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Abstract
Description
[Technical Field]
[0001] This application claims the benefit of priority based on Korean Patent Application No. 10-2022-0105424, filed August 23, 2022, and Korean Patent Application No. 10-2023-0107553, filed August 17, 2023.
[0002] The present invention relates to a method for activating a lithium secondary battery. [Background technology]
[0003] In general, with the depletion of fossil fuels causing rising energy prices and increasing concerns about environmental pollution, the demand for environmentally friendly alternative energy sources has become an essential factor for future life. As a result, research into various power generation technologies, such as nuclear, solar, wind, and tidal power, is ongoing, and there is also great interest in power storage devices to use the energy produced in this way more efficiently.
[0004] In particular, with the increasing technological development and demand for mobile devices, the demand for batteries as an energy source is rapidly increasing, and accordingly, much research is being conducted on batteries that can meet various demands.
[0005] Typically, in terms of battery shape, there is a high demand for prismatic secondary batteries and pouch-type secondary batteries that are thin and can be applied to products such as mobile phones, and in terms of materials, there is a high demand for lithium secondary batteries such as lithium ion batteries and lithium ion polymer batteries that have advantages such as high energy density, discharge voltage, and output stability.
[0006] Secondary batteries can also be classified according to the structure of the electrode assembly, which is a stacked structure of positive electrodes, negative electrodes, and a separator interposed between the positive and negative electrodes. Representative examples include a jelly-roll (wound) electrode assembly in which long sheet-like positive and negative electrodes are wound with a separator interposed therebetween, and a stacked (laminate) electrode assembly in which a number of positive and negative electrodes cut to a predetermined size are stacked in order with a separator interposed therebetween. Recently, to solve the problems of the jelly-roll and stacked electrode assemblies, a stack-and-folded electrode assembly has been developed as an electrode assembly with an advanced structure that is a hybrid of the jelly-roll and stacked types. The stacked and folded electrode assembly has a structure in which unit cells, each of which has a predetermined number of positive and negative electrodes stacked with a separator interposed therebetween, are positioned on a separator film and then wound in order.
[0007] Due to their characteristics, secondary batteries require an activation process during the first cycle to activate the positive electrode active material and form a stable surface film (SEI, Solid Electrolyte Interface) on the negative electrode. Conventionally, secondary batteries have typically undergone an initial charging process to charge the battery to a predetermined voltage range, an aging process to stabilize the SEI film formed during the initial charging, and a degassing process in that order. The degassing process is a process in which the large amount of gas generated inside the secondary battery during the activation process is discharged to the outside of the secondary battery.
[0008] If the gas generated inside the battery cell during the activation process is not efficiently removed, the gas occupies a certain amount of space inside the battery cell, causing the center of the battery case to swell and lead to battery deformation, and the internal gas creates uncharged areas, which adversely affect battery performance such as lithium deposition, capacity, and output, as well as battery life.
[0009] In particular, due to the structural characteristics of the stack-and-fold type electrode assembly, internal gas generated during the activation process is trapped in the folded portion of the separator, resulting in insufficient gas discharge during the conventional activation process.
[0010] In addition, in a conventional activation process, a secondary battery is charged to a predetermined voltage range during initial charging to form an SEI film on the negative electrode, and the SEI film is uniformly formed during initial charging. This involves charging the secondary battery in a pressure jig to prevent gas generated during initial charging from being trapped within the electrode assembly. This so-called zig formation is typically performed. This zig formation is known to reduce the risk of lithium deposition. However, depending on the specifications of the secondary battery, zig formation, in which the battery is pressurized during initial charging, may not be possible. Therefore, there is a need for technological development of an activation method that can reduce the risk of lithium deposition when zig formation is not performed. Summary of the Invention [Problem to be solved by the invention]
[0011] The present invention provides an activation method that reduces the risk of lithium deposition in a lithium secondary battery to which a stack-and-fold type electrode assembly is applied and / or a lithium secondary battery in which pressure cannot be applied during initial charging of the activation process, and has an excellent effect of removing gas generated during the activation process. [Means for solving the problem]
[0012] The method for activating a lithium secondary battery according to the present invention includes: (a) a process for preparing a spare lithium secondary battery in which an electrode assembly including a positive electrode, a negative electrode, and a separator is housed in a battery case together with an electrolyte; (b) an initial charging process for charging the spare lithium secondary battery until a predetermined voltage is reached; (c) a degassing process for removing gas generated in the initial charging process from inside the spare lithium secondary battery and sealing it; and (d) an aging process for aging the spare lithium secondary battery, wherein the processes (a) to (d) are performed sequentially.
[0013] In one embodiment of the present invention, the electrode assembly may be a stack-and-fold type electrode assembly.
[0014] In one embodiment of the present invention, the stack-and-fold type electrode assembly may have a structure in which a plurality of unit electrode assemblies, each having electrodes and a separator layered alternately, are arranged on a first surface of a folding separator sheet and then folded one by one to form a stack of the plurality of unit electrode assemblies.
[0015] In one embodiment of the present invention, the initial charging process may not include a process of pressurizing the lithium secondary battery.
[0016] In one embodiment of the present invention, the end-of-charge voltage of the initial charging process can be set within the range of 30% to 80% (SOC 30% to SOC 80%) of the secondary battery design capacity, preferably within the range of 60% to 80% (SOC 60% to SOC 80%).
[0017] In an embodiment of the present invention, the spare lithium secondary battery may have an outer periphery sealed by heat sealing in a state where an electrode assembly is housed in a battery case including a resin layer and a metal layer.
[0018] In one embodiment of the present invention, the aging process may include (d-1) a high-temperature aging process of aging the spare lithium secondary battery at a temperature ranging from 50 to 80 degrees Celsius for 10 to 40 hours.
[0019] In one embodiment of the present invention, the aging process may further include (d-2) a room temperature aging process of aging the spare lithium secondary battery at a temperature range of 18 to 27 degrees Celsius for 24 to 80 hours.
[0020] In one embodiment of the present invention, after the aging process, (e) a charge-discharge process of charging and discharging the spare lithium secondary battery may be further included.
[0021] In one embodiment of the present invention, the method may further include, after the initial charging step, (f) rolling the spare lithium secondary battery.
[0022] In one embodiment of the present invention, the spare lithium secondary battery can be roll-pressed at a linear pressure of 1 kgf / mm to 10 kgf / mm.
[0023] In one embodiment of the present invention, the roll pressing step may be performed before the degassing step.
[0024] In one embodiment of the present invention, in the roll-pressing process, the spare lithium secondary battery may be roll-pressed in a direction parallel to a first direction, which is a direction in which electrode leads are drawn out.
[0025] In one embodiment of the present invention, the degassing process may be performed once.
[0026] In one embodiment of the present invention, the process of preparing the spare lithium secondary battery may include a pre-aging process of aging the spare lithium secondary battery for 12 to 48 hours to allow the electrolyte to be impregnated into the electrode assembly. [Effects of the Invention]
[0027] When jig pressure cannot be applied during initial charging due to battery specifications or when applied to a stack-and-fold type electrode assembly, the risk of lithium deposition is minimized without reducing capacity and life characteristics compared to conventional activation methods. It also has excellent gas discharge effects by removing internal gas immediately after the initial charging process, which is the process where the amount of gas generated is the largest during the activation process. [Brief explanation of the drawings]
[0028] [Figure 1] 1 is a flowchart of a method for activating a lithium secondary battery according to an embodiment of the present invention. [Figure 2] 1 is a schematic diagram of a lithium secondary battery to which the activation method of the present invention is applied. [Figure 3] 1 is a flowchart of a method for activating a lithium secondary battery according to an embodiment of the present invention. [Figure 4] 4 is a flowchart of a method for activating a lithium secondary battery according to another embodiment of the present invention. [Figure 5] FIG. 1 is a perspective view of a pressure roller that may be used in the roll pressing process of the present invention. [Figure 6] FIG. 2 is a top view of a pressure roller that may be used in the roll pressing process of the present invention. [Figure 7] FIG. 1 is a schematic diagram of a stack-and-fold type electrode assembly. [Figure 8] 1 is a diagram schematically illustrating a pressurizing method in a roll pressing process according to the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0029] Hereinafter, preferred embodiments of the present invention will be described in detail with reference to the accompanying drawings. Before that, the terms and words used in the specification and claims should not be interpreted as being limited to their ordinary or dictionary meanings, but should be interpreted as meanings and concepts that are consistent with the technical idea of the present invention, based on the principle that the inventor can appropriately define the concepts of the terms to best describe his own invention.
[0030] Therefore, the embodiments described in this specification and the configurations illustrated in the drawings are merely the most preferred embodiments of the present invention and do not represent the entire technical idea of the present invention, so it can be understood that there are various equivalents and modifications that can replace them at the time of this application.
[0031] 1 is a flowchart of a method for activating a lithium secondary battery according to one embodiment of the present invention. Referring to FIG. 1, the method for activating a lithium secondary battery according to the present invention includes: (a) a process for preparing a spare lithium secondary battery in which an electrode assembly including a positive electrode, a negative electrode, and a separator is housed in a battery case together with an electrolyte; (b) an initial charging process for charging the spare lithium secondary battery until a predetermined voltage is reached; (c) a degassing process for removing gas generated in the spare lithium secondary battery during the initial charging process and sealing the battery; and (d) an aging process for aging the spare lithium secondary battery, wherein the steps (a) to (d) are performed sequentially.
[0032] Conventional activation methods typically involve sequentially performing an initial charging process in which a spare lithium secondary battery is charged to a predetermined voltage, an aging process in which the spare lithium secondary battery is aged, and a degassing process in which gas is removed from the spare lithium secondary battery and the battery is sealed. When a spare lithium secondary battery undergoes the initial charging process, an SEI film is formed on the surface of the negative electrode, and in order to stabilize the SEI film thus formed, it is considered advantageous to perform the aging process immediately after the initial charging process. However, because gas is generated during a series of activation processes, including the aging process performed after the initial charging process, it has been conventional technical practice to perform the degassing process after the aging process or after the activation process is interrupted.
[0033] The inventors of the present invention noticed that the amount of gas generated is greatest during the initial charging process among the multiple-step activation processes of a secondary battery, and therefore changed the order of the degassing process to after the initial charging process. As a result, not only is there no deterioration in the long-term cycle performance of the battery due to unstable SEI film formation, which was a concern when the degassing process was performed before the aging process, but it was also found that degassing can be performed before the electrolyte wetting adhesion between the separator and the electrode is generated, resulting in a more excellent gas discharging effect, which led to the present invention.
[0034] The activation method of the present invention is effective in preventing lithium deposition and improving capacity and life characteristics, particularly when applied to a lithium secondary battery employing a stack-and-fold type electrode assembly in which internal gas is not sufficiently discharged using conventional activation methods, or to a lithium secondary battery model in which pressure cannot be applied to the battery during initial charging.
[0035] 7 is a side view of a stack-and-folding electrode assembly to which the activation method of the present invention is applied. Referring to FIG. 7, a stack-and-folding electrode assembly E according to one embodiment may have a structure in which a plurality of unit electrode assemblies 10 (10A-10E), each having electrodes 11, 13 and a separator 12 stacked alternately, are placed on a first surface 21 of a folding separator sheet 20 and then folded one by one to form a stack of a plurality of unit electrode assemblies 10. Because the ends of the electrodes 11, 13 and the separator 12 constituting the stack-and-folding electrode assembly E are wrapped by the folding separator sheet 20, this structure is less favorable for gas discharge than a stack-type electrode assembly. Here, a stack-type electrode assembly may be an electrode assembly in which electrodes and separators are alternately stacked without the wrapping separator sheet.
[0036] The lithium secondary battery to which the activation method of the present invention is applied will be described below.
[0037] The lithium secondary battery of the present invention may be one in which an electrode assembly is housed in a battery case including a resin layer and a metal layer, and the outer periphery of the battery case is sealed by heat sealing.
[0038] The materials of the positive electrode, negative electrode, and separator included in the electrode assembly are not particularly limited, and any positive electrode, negative electrode, and separator known in the art may be used without particular limitation.
[0039] For example, the negative electrode may be formed by coating a negative electrode current collector made of copper, nickel, aluminum, or an alloy containing at least one of these with a negative electrode active material such as lithium metal, a lithium alloy, carbon, petroleum coke, activated carbon, graphite, a silicone compound, a tin compound, a titanium compound, or an alloy thereof.
[0040] The positive electrode may be formed by coating a positive electrode current collector made of, for example, aluminum, nickel, copper, or an alloy containing at least one of these with a positive electrode active material such as lithium manganese oxide, lithium cobalt oxide, lithium nickel oxide, lithium iron phosphate, or a compound or mixture containing at least one of these.
[0041] The electrode active material may be coated on both sides of the current collector, or may be coated on only one side of the current collector to form a non-coated area. The thicknesses of the positive and negative electrodes are not particularly limited. That is, the thicknesses may be determined in consideration of the intended use, such as prioritizing output or energy or ionic conductivity.
[0042] The separator may be a conventional porous polymer film, such as a porous polymer film made of a polyolefin polymer such as ethylene homopolymer, propylene homopolymer, ethylene / butene copolymer, ethylene / hexene copolymer, or ethylene / methacrylate copolymer, either alone or in a laminate, or a conventional porous nonwoven fabric, such as a nonwoven fabric made of high-melting-point glass fiber or polyethylene terephthalate fiber, but is not limited thereto. The separator can be applied to a battery by winding, lamination, stacking, or folding of the separator and electrodes.
[0043] The electrolytic solution may contain a lithium salt as an electrolyte and an organic solvent.
[0044] The lithium salt may be any one that is commonly used in electrolytes for lithium secondary batteries without limitation. + X - It can be expressed as:
[0045] The anion of such a lithium salt is not particularly limited, but may be F - , Cl - , Br - , 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 - Examples include:
[0046] The organic solvent may be any organic solvent commonly used in electrolytes for lithium secondary batteries without limitation, and typically, any one selected from the group consisting of propylene carbonate (PC), ethylene carbonate (EC), diethyl carbonate (DEC), dimethyl carbonate (DMC), ethyl methyl carbonate (EMC), methyl propyl carbonate, dipropyl carbonate, dimethyl sulfoxide, acetonitrile, dimethoxyethane, diethoxyethane, vinylene carbonate, sulfolane, gamma-butyrolactone, propylene sulfite, and tetrahydrofuran, or a mixture of two or more thereof, may be used.
[0047] Hereinafter, a method for activating a lithium secondary battery according to an embodiment of the present invention will be described in more detail.
[0048] (a) Preparation process for spare lithium secondary batteries (a) The spare lithium secondary battery preparation process may be a process of manufacturing a spare lithium secondary battery by housing an electrode assembly including a positive electrode, a negative electrode, and a separator together with an electrolyte solution in a battery case. The spare lithium secondary battery manufactured by the above preparation process may have an electrode assembly housed in a battery case including a resin layer and a metal layer, and the outer periphery of the electrode assembly housing portion sealed by heat sealing.
[0049] Specifically, as shown in FIG. 2, the spare lithium secondary battery may include an electrode assembly (not shown), electrode tabs (not shown) provided on the electrode assembly, electrode leads 111, 112 connected to the electrode tabs, and a battery case 120 that houses the electrode assembly.
[0050] The electrode assembly may have a stacked or stack-and-folded structure in which a positive electrode and a negative electrode are sequentially stacked with a separator interposed therebetween. The electrode tabs may include a positive electrode tab provided on the positive electrode of the electrode assembly and a negative electrode tab provided on the negative electrode, and the electrode leads may include a positive electrode lead 111 connected to the positive electrode and a negative electrode lead 112 connected to the negative electrode tab.
[0051] Here, the electrode tab and the electrode lead are electrically connected by being joined by welding, and the electrode leads 111 and 112 are drawn out to the outside of the battery case 120 and are partially exposed. Insulating films (not shown) may be attached to portions of the upper and lower surfaces of the electrode leads 111 and 112 to ensure sealing and electrical insulation with the battery case.
[0052] The battery case 120 may include a case body having a recessed receiving portion in which an electrode assembly can be seated, and a cover integrally connected to the case body and sealing the receiving portion. That is, the battery case may be configured such that an electrode assembly and an electrolyte are received in the receiving portion of the case body, and then the case body and the cover are tightly attached to each other and edges of the case body and the cover are sealed.
[0053] Meanwhile, the battery case 120 may have an aluminum laminate structure of a resin outer layer / a metal layer with barrier properties / a heat-melt resin sealant layer, and thus, by applying heat and pressure to both sides and the upper end of the cover and the body that are in contact with each other, the resin sealant layers may be fused together to form a sealed excess portion.
[0054] Meanwhile, at the top end, the same resin sealant layer of the upper and lower battery cases is in direct contact with each other, allowing for uniform sealing by fusion. Meanwhile, since the electrode leads 111, 112 protrude from the both sides, heat fusion may be performed with an insulating film interposed between the battery case and the electrode leads 111, 112 to improve sealing performance, taking into account the thickness of the electrode leads 111, 112 and the heterogeneity of the material of the battery case 120.
[0055] In one specific example, the (a) spare lithium secondary battery preparation process may include a pre-aging process of aging the spare lithium secondary battery for 12 to 48 hours to allow the electrolyte to be impregnated into the electrode assembly.
[0056] In order for the electrode reaction to proceed during initial charging after the electrode assembly and electrolyte are placed in the battery case, the electrolyte must be sufficiently impregnated into the positive electrode, negative electrode, and separator that make up the electrode assembly in advance. If the initial charging process is performed without the electrolyte being impregnated, uncharged areas may occur, which may prevent the SEI film from forming uniformly, resulting in a decrease in battery performance.
[0057] The pre-aging process may involve aging the lithium secondary battery for 12 to 48 hours at a temperature range of 18 to 27 degrees Celsius, which may be 18 to 27 degrees Celsius, preferably 19 to 26 degrees Celsius, and more preferably 20 to 25 degrees Celsius. The time for carrying out the pre-aging process may be 12 to 48 hours, and preferably 18 to 36 hours.
[0058] The pre-aging process may include a high-temperature pre-aging process to improve the efficiency of electrolyte impregnation. Such a high-temperature pre-aging process may be a process of aging a spare lithium secondary battery at a temperature of 40 to 55 degrees Celsius for 12 to 24 hours.
[0059] In the pre-aging process, when such a high-temperature pre-aging process is performed, the impregnation of the electrolyte is improved, the SEI film can be formed more uniformly during the initial charging process, and the occurrence of uncharged regions can be reduced, thereby preventing the risk of lithium deposition.
[0060] (b) Initial charging process The initial charging process according to an embodiment of the present invention may be a process of charging the spare lithium secondary battery prepared as described above until it reaches a predetermined voltage.
[0061] Lithium secondary batteries are activated by initial charging during the manufacturing process. During this initial charging, lithium ions released from the positive electrode move to and are inserted into the negative electrode, forming a solid electrolyte interface (SEI) film on the surface of the negative electrode.
[0062] Once formed, the SEI film acts as an ion tunnel, allowing only lithium ions to pass through. This ion tunnel effect solvates the lithium ions, preventing large organic solvent molecules, such as lithium salts, EC, DMC, or DEC, which move with the lithium ions in the electrolyte, from intercalating with the graphite anode and disrupting the anode structure. Once the SEI film is formed, the lithium ions no longer react with the graphite anode or other materials. The charge consumed in the formation of the SEI film is irreversible, meaning it does not reversibly react during discharge. Therefore, further electrolyte decomposition does not occur, and the amount of lithium ions in the electrolyte is reversibly maintained, allowing for stable charge and discharge.
[0063] In conclusion, once the SEI film is formed, the amount of lithium ions can be reversibly maintained, and the life characteristics of the battery are also improved.
[0064] Among the activation processes, the initial charging process is the process in which the most gas is generated due to the reaction between the positive electrode, the negative electrode, and the electrolyte. Since the activation method according to the present invention performs a degassing process after the initial charging process, it is preferable to induce maximum gas generation through the initial charging process.
[0065] In one specific example, the end-of-charge voltage during the initial charge process may be set within a range of 30% (SOC 30%) to 80% (SOC 80%) of the lithium secondary battery capacity (SOC 100%), or within a range of 40% to 80% SOC, 50% to 80% SOC, 60% to 80% SOC, or 60% to 75% SOC. Setting the end-of-charge voltage within the above SOC range during the initial charge process is preferred because it can maximize gas generation during the initial charge process while minimizing the collapse or instability of the SEI film formed during the initial charge during the degassing process.
[0066] Specifically, when the positive electrode contains a lithium nickel cobalt manganese oxide (NCM)-based positive electrode active material, the end-of-charge voltage may be preferably 3.4V to 4.1V, and more preferably 3.5V to 4.0V.
[0067] The charging conditions for the initial charging process may be those known in the art. Specifically, the charging method may be a constant current charging method until the end-of-charge voltage is reached. The charging rate (c-rate) may be 0.01 C to 2 C, 0.1 C to 1.5 C, or 0.2 C to 1 C, but is not limited thereto and may be suitably changed depending on the material properties of the positive and negative electrodes.
[0068] The initial charging process may be carried out at a temperature of 18°C to 28°C, specifically 19°C to 27°C, and more specifically 20°C to 26°C.
[0069] In one embodiment, the initial charging process may not include a process of pressurizing the lithium secondary battery.
[0070] In the case of a pouch-type battery, the battery case is flexible, and the initial charging process can be performed while the battery is pressurized. For example, the pouch-type battery can be initially charged while being pressurized using a pressure jig configured to apply surface pressure, and this pressure process can prevent the trapping of gas during the charging process.
[0071] However, it is not suitable to charge cylindrical or prismatic batteries while pressurizing the secondary battery during the initial charge process. This is because the battery cases of cylindrical or prismatic batteries have a harder outer shape than the battery cases of pouch-type batteries, and pressurizing them can cause damage to the battery. Therefore, cylindrical or prismatic batteries cannot undergo a pressurization process during the initial charge due to their characteristics. Therefore, cylindrical or prismatic batteries are more likely to trap gas generated during the initial charge inside the electrode assembly compared to pouch-type batteries manufactured by performing the initial charge process under pressure. Performing the degassing process between the initial charge process and the aging process according to the present invention can effectively remove internal gas, making the activation method of the present invention useful for activating cylindrical or prismatic batteries.
[0072] (c) Degassing process A degassing process according to one embodiment of the present invention may include a process of removing gas from an initially charged spare lithium secondary battery and sealing it. The present invention performs the degassing process on an initially charged spare lithium secondary battery before performing an aging process. A significant amount of gas generated during a series of activation processes is generated during the initial charging process. If a high-temperature aging process were performed without performing a degassing process, the electrodes and separator would adhere to each other, and the gas generated during the initial charging process would be trapped between them. To prevent this, the activation method according to the present invention performs a degassing process after the initial charging process, more specifically, before the high-temperature aging process.
[0073] In the activation method of the present invention, the degassing process is a process for discharging gas generated inside the battery during the activation process to the outside of the battery, and a single degassing process during the activation process can sufficiently remove the internal gas, meaning that an additional degassing process does not need to be performed after the aging process described below.
[0074] This degassing process may employ various degassing techniques known at the time of filing of the present invention. For example, the degassing process may be performed by cutting open a portion of the gas pocket portion GP of the spare lithium secondary battery shown in FIG. 2, discharging gas from inside the secondary battery to the outside of the secondary battery through the cut portion, and then resealing the cut portion. However, since such degassing techniques are widely known to those skilled in the art, further detailed description thereof will be omitted.
[0075] (d) Aging process The aging process according to an embodiment of the present invention may be a process of aging a spare lithium secondary battery to stabilize the SEI film formed through the initial charging process.
[0076] In one specific example, the aging process may include (d-1) a high-temperature aging process in which the spare lithium secondary battery is aged for 10 to 40 hours at a temperature ranging from 50 to 80° C. The high-temperature aging process has the effect of further accelerating the stabilization of the SEI film formed during the initial charging process.
[0077] The temperature range of the high-temperature aging process may be 50 to 80 degrees Celsius, preferably 55 to 80 degrees Celsius, and more preferably 60 to 75 degrees Celsius. The aging time of the high-temperature aging process may be 10 to 40 hours, 12 to 36 hours, or 18 to 30 hours.
[0078] If the set temperature during high-temperature aging is too high or the time period during the high-temperature aging process is too long, the durability of the SEI coating may be reduced, which is undesirable. Conversely, if the set temperature during high-temperature aging is too low or the time period during the high-temperature aging process is too short, the life characteristics of the lithium secondary battery may be reduced.
[0079] In one specific example, the aging process may further include (d-2) a room temperature aging process of aging the spare lithium secondary battery at a temperature range of 18 to 27 degrees Celsius for 24 to 80 hours.
[0080] The temperature range for the room temperature aging process may be 18 to 27 degrees Celsius, preferably 19 to 26 degrees Celsius, and more preferably 20 to 25 degrees Celsius. The aging time for the room temperature aging process may be 24 to 80 hours, preferably 30 to 72 hours, and more preferably 16 to 60 hours.
[0081] If the room temperature aging process is performed at an excessively low temperature outside the above range or for an excessively short time, the spare lithium secondary battery may not be sufficiently activated, resulting in a decrease in electrical performance. Conversely, if the room temperature aging process is performed at an excessively high temperature or for an excessively long time, swelling may occur or the durability of the SEI film may decrease.
[0082] On the other hand, the order of the high-temperature aging process and the room-temperature aging process is not particularly limited, but it is more preferable to perform the room-temperature aging process after the high-temperature aging process in terms of stabilizing the SEI film.
[0083] 3 is a flowchart of a method for activating a lithium secondary battery according to one embodiment of the present invention. Referring to FIG. 3, the method for activating a lithium secondary battery according to one embodiment of the present invention may further include, after the (d) aging process, (e) a charge-discharge process of charging and discharging a spare lithium secondary battery. In one specific example, the charge-discharge process may be a full-discharge and full-charge process of fully discharging the spare lithium secondary battery to near SOC 0 and then charging the discharged secondary battery to 95% or more of its design capacity (SOC 95%). The full-discharge and full-charge processes may be performed once or repeatedly two or more times.
[0084] In one specific example, the method for activating a secondary battery according to the present invention may further include an additional aging process after the (e) additional charge / discharge process. The additional aging process may be performed at room temperature or at a high temperature to stabilize the secondary battery, and may be performed for 1 to 21 days. The additional aging process may include a monitoring (OCV tracking) process that includes measuring the open circuit voltage (OCV) of the battery at regular time intervals to identify low-voltage defective batteries in which the voltage drops beyond the self-discharge of the battery.
[0085] 4 is a flowchart of a method for activating a lithium secondary battery according to another embodiment of the present invention. Referring to FIG. 4, the method for activating a lithium secondary battery according to another embodiment of the present invention may further include, after the initial charging step, (f) a step of roll-pressing the spare lithium secondary battery.
[0086] Among the activation processes of a lithium secondary battery, the initial charging process (b) is the process that generates the most gas. Therefore, if a roll pressing process is performed after the initial charging process, gas present at interfaces between the electrodes of the electrode assembly and the separator, for example, may be removed by physical force. In addition, roll pressing can apply pressure to the battery directionally from one side to the other, so internal gas present in the electrode assembly can be pushed out in the direction of the roll pressing and moved to the outside of the electrode assembly. Here, the outside of the electrode assembly may be the space between the electrode assembly and the battery case.
[0087] Therefore, the roll pressing process can minimize the trapping of gas generated during the initial charging process inside the electrode assembly, and can maximize the amount of gas discharged from inside the secondary battery.
[0088] 5 and 6 illustrate an embodiment of a pressure roller for performing the roll pressing process. Referring to these drawings, the roll pressing process of the present invention can be performed by pressing a spare lithium secondary battery 100 while passing the battery between opposing upper and lower pressure rollers 1a and 1b.
[0089] Roll pressing using such a pressure roller can induce a linear pressure on the spare lithium secondary battery, and in one specific example, the roll pressing process can pressurize the spare lithium secondary battery with a linear pressure of 1 kgf / mm to 10 kgf / mm (9.8 N / mm to 98 N / mm), preferably 2 kgf / mm to 9 kgf / mm (20 N / mm to 88 N / mm), and more preferably 2.5 kgf / mm to 7.5 kgf / mm (25 N / mm to 74 N / mm).
[0090] The roll pressing process may be performed once or 2 to 5 times. The number of times of roll pressing may be suitably determined depending on the thickness of the lithium secondary battery, the material properties of the battery, etc.
[0091] 8 is a diagram schematically illustrating the roll pressing process of the present invention. Referring to FIG. 8, the roll pressing direction in one embodiment may be a direction parallel to a first direction (y-axis direction) that is the direction in which the electrode leads 111 and 112 are drawn out. However, this is not limited thereto, and roll pressing may be performed in a direction parallel to a second direction (x-axis direction) that is perpendicular to the direction in which the electrode leads 111 and 112 are drawn out, or roll pressing may be performed in a direction parallel to the first direction and then in a direction parallel to the second direction.
[0092] When roll pressing in a direction parallel to the first direction, in order to enhance the gas removal effect, roll pressing may be performed first from one side to the other side in the first direction, and then from the other side to one side in the first direction, as shown in FIG. 8.
[0093] Meanwhile, when a stack-and-fold type electrode assembly is housed inside the spare lithium secondary battery, it is preferable to roll-press the spare lithium secondary battery in a direction parallel to the first direction, which is the direction in which the electrode leads are drawn out.
[0094] 7 and 8, the folding separator sheet 20 constituting the stack-and-fold type electrode assembly E encases the unit electrode assemblies 10A to 10E, but not the edge portions from which the electrode leads are drawn. That is, the electrode leads are drawn in a first direction (y-axis direction), and the folding separator sheet 20 encases the electrode surfaces in a second direction (x-axis direction). If the roll pressing direction were parallel to the second direction, internal gas could accumulate in the surplus space between the edge of the electrode assembly and the folding portion of the folding separator sheet 20. Therefore, to prevent gas generated during the initial charging process from accumulating in the folding portion of the folding separator sheet 20, it is preferable that the roll pressing direction be parallel to the electrode lead drawing direction.
[0095] The roll pressing process can be performed at any stage after the initial charging process, and is preferably performed before the degassing process, because the roll pressing process allows the gas inside the electrode assembly to be pushed out of the electrode assembly, and then the degassing process is performed, thereby maximizing the amount of gas inside the battery to be discharged outside the battery.
[0096] When applied to a lithium secondary battery in which jig pressure cannot be applied during initial charging due to battery specifications or which includes a stack-and-fold type electrode assembly, the activation method and manufacturing method of the present invention minimize the risk of lithium deposition without reducing capacity and life characteristics compared to conventional activation methods, and have an excellent gas discharge effect by removing internal gas immediately after the initial charging process, which generates the most gas during the activation process.
[0097] The present invention will be described in more detail below with reference to examples, etc. However, the configurations described in the examples in this specification are merely examples of the present invention and do not represent all of the technical ideas of the present invention, so it should be understood that there may be various equivalents and modifications that can replace them at the time of filing this application.
[0098] <Preparation Example 1: Preparation of spare lithium secondary battery including stack-and-fold type electrode assembly> LiNi as the positive electrode active material 0.8 Co 0.1 Mn 0.1 A positive electrode mixture layer slurry was prepared by weighing 95.9 parts by weight of O2, 1.6 parts by weight of PVDF as a binder, and 2.5 parts by weight of carbon black as a conductive material in an N-methylpyrrolidone (NMP) solvent. The mixture layer slurry was applied to an aluminum foil, dried, and then rolled to form a positive electrode having a positive electrode mixture layer (average thickness: 130 μm).
[0099] A negative electrode mixture layer slurry was prepared by mixing 85 parts by weight of natural graphite as a carbon-based active material, 5 parts by weight of SiO (silicon oxide) as a silicone-based active material, 6 parts by weight of carbon black as a conductive material, and 4 parts by weight of PVDF as a binder in an N-methylpyrrolidone solvent. The slurry was then applied to copper foil to prepare a negative electrode having a negative electrode mixture layer (average thickness: 180 μm).
[0100] A stack-and-fold type electrode assembly was fabricated by interposing a separator (approximately 16 μm thick) made of porous polyethylene (PE) film between each of the fabricated positive and negative electrodes. The electrode assembly was placed inside a pouch-type battery case made of aluminum laminate sheet, and electrolyte was poured into the case. This was then left at room temperature for three days (pre-aging) to allow the electrolyte to fully penetrate the case, thereby fabricating a preliminary lithium secondary battery. The electrolyte was prepared by dissolving 1 M LiPF6 in an organic solvent containing ethylene carbonate (EC) and ethyl methyl carbonate (EMC) in a 3:7 (volume ratio) mixture.
[0101] Example 1 A spare lithium secondary battery of the above manufacturing example was prepared and initially charged to an SOC of 30%, after which a portion of the pouch-type battery case was opened to release the gas inside the battery and the opened portion was resealed to perform a degassing process. The battery was then subjected to high-temperature aging at 60°C for 24 hours and room-temperature aging at 23°C for 72 hours, followed by a first discharge to an SOC of 0. The battery was then charged to an SOC of 100 and discharged to an SOC of 0 two more times to complete the activation process.
[0102] <Example 2> A spare lithium secondary battery of the above manufacturing example was prepared and initially charged to an SOC of 30%. The spare lithium secondary battery was then roll-pressed with a linear pressure of 3 kgf / mm using the pressure roller shown in FIG. 5. A portion of the pouch-type battery case was then opened to release the gas inside the battery, and the opened portion was resealed to perform a degassing process. The battery was then subjected to high-temperature aging at 60°C for 24 hours and room-temperature aging at 23°C for 72 hours, followed by a first discharge to an SOC of 0. The battery was then charged to an SOC of 100 and discharged to an SOC of 0 two more times to complete the activation process.
[0103] Example 3 The activation process was carried out in the same manner as in Example 1, except that the end-of-charge voltage during the initial charge was set to SOC 60%.
[0104] <Comparative Example> A spare lithium secondary battery of the above manufacturing example was prepared and initially charged to an SOC of 30%, followed by high-temperature aging at 60°C for 24 hours and room-temperature aging at 23°C for 72 hours. The pouch-type battery case was then partially opened to remove the gas inside the battery, and a degassing process was performed in which the battery was resealed after being discharged to the outside. The battery was then first discharged to an SOC of 0. The process of charging to an SOC of 100 and discharging to an SOC of 0 was then repeated two more times to complete the activation process.
[0105] <Experimental Example 1: Evaluation of room temperature cycle characteristics> Each lithium secondary battery prepared in the above Examples and Comparative Examples was charged to 4.35 V at a rate of 0.8 C at a temperature of 25°C, then subjected to constant current / constant voltage charging with a 0.05 C cutoff, and then discharged to 3.0 V at a rate of 0.5 C. This cycle was repeated 100 times. The capacity retention rate was calculated from the measured discharge capacity using the following formula, and the results are shown in Table 1.
[0106] [Mathematical formula] Capacity retention rate (%) = (discharge capacity after 100 cycles) x 100 / (discharge capacity at the first cycle)
[0107] <Experimental Example 2: Observation of lithium deposition> Each lithium secondary battery prepared in the above Examples and Comparative Examples was charged to 4.35 V at a 0.8 C rate, then subjected to constant current / constant voltage charging with a 0.05 C cutoff, and discharged to 3.0 V at 0.5 C. This cycle was repeated 300 times. The batteries were then disassembled to observe whether or not lithium deposition had occurred. The results are shown in Table 1.
[0108] <Experimental Example 3: Evaluation of gas generation amount> Each lithium secondary battery manufactured in the above Examples and Comparative Examples was charged to 4.35 V at a rate of 0.8 C at a temperature of 25°C, then subjected to constant current / constant voltage charging with a 0.05 C cutoff, and then discharged to 3.0 V at a rate of 0.5 C. This cycle was repeated 10 times, and the amount of gas generated after discharge was measured and the results are shown in Table 1. Table 1 below shows the relative amount of gas generated, assuming the amount of gas generated in Example 1 to be 100.
[0109] [Table 1]
[0110] Referring to Table 1 above, it was found that the lithium secondary batteries manufactured according to the examples of the present invention did not exhibit lithium precipitation, had excellent capacity retention, and generated less gas than the lithium secondary batteries of the comparative examples.
[0111] Therefore, in a lithium secondary battery including a stack-and-fold type electrode assembly, it can be seen that an activation method in which a degassing process is performed after an initial charge has a more advantageous effect on gas discharge than an activation method in which a degassing process is performed after an aging process. [Explanation of symbols]
[0112] 100: Lithium secondary battery 111, 112: Electrode leads 120: Battery case GP: Gas pocket 1: Pressure roller 1a: Upper pressure roller, 1b: Lower pressure roller E: Stack and fold type electrode assembly 10A to 10E: Unit electrode assembly 11: Positive electrode 12: Separation membrane 20: Separation membrane sheet for folding
Claims
1. (a) preparing a spare lithium secondary battery having a structure in which an electrode assembly including a positive electrode, a negative electrode, and a separator is housed in a battery case together with an electrolyte; (b) an initial charging step of charging the spare lithium secondary battery until it reaches a predetermined voltage; (c) a degassing process for removing gas generated in the spare lithium secondary battery during the initial charging process and sealing the spare lithium secondary battery; (d) an aging process for aging the spare lithium secondary battery; The steps (a) to (d) are carried out sequentially, the electrode assembly is a stack-and-fold type electrode assembly, After the initial charging step, (f) a step of roll-pressing the spare lithium secondary battery is further included; In the roll pressing process, the spare lithium secondary battery is roll pressed in a direction parallel to a first direction, which is a direction in which electrode leads are drawn out, The roll pressing is first performed from one side to the other side in the first direction, and then from the other side to one side in the first direction. A method for activating a lithium secondary battery.
2. The stack-and-fold type electrode assembly is 2. The method of activating a lithium secondary battery according to claim 1, wherein a plurality of unit electrode assemblies, each having electrodes and a separator layered alternately, are arranged on a first surface of a folding separator sheet and folded one by one to form a stack of the plurality of unit electrode assemblies.
3. 2. The method of activating a lithium secondary battery according to claim 1, wherein the initial charging step does not include a step of pressurizing the lithium secondary battery.
4. 2. The method for activating a lithium secondary battery according to claim 1, wherein the end-of-charge voltage of the initial charging process is set within a range of 30% to 80% (SOC 30% to SOC 80%) of the secondary battery's design capacity.
5. 2. The method for activating a lithium secondary battery according to claim 1, wherein the initial charging step sets an end-of-charge voltage within a range of 60% to 80% (SOC 60% to SOC 80%) of the secondary battery's design capacity.
6. The aging process includes: (d-1) a high-temperature aging process of aging the spare lithium secondary battery at a temperature in the range of 50 to 80 degrees Celsius for 10 to 40 hours.
7. The aging process includes: The method for activating a lithium secondary battery according to claim 6, further comprising (d-2) a room temperature aging process of aging the spare lithium secondary battery at a temperature ranging from 18 to 27 degrees Celsius for 24 to 80 hours.
8. 2. The method for activating a lithium secondary battery according to claim 1, further comprising, after the aging process, (e) a charge-discharge process of charging and discharging the spare lithium secondary battery.
9. 2. The method for activating a lithium secondary battery according to claim 1, wherein in the roll pressing step, the spare lithium secondary battery is roll pressed at a linear pressure of 1 kgf / mm to 10 kgf / mm (9.8 N / mm to 98 N / mm).
10. 2. The method of claim 1, wherein the roll pressing step is performed before the degassing step.
11. 2. The method for activating a lithium secondary battery according to claim 1, wherein the degassing process is performed once.
12. 2. The method of activating a lithium secondary battery according to claim 1, wherein the step of preparing the spare lithium secondary battery includes a pre-aging step of aging the spare lithium secondary battery for 12 to 48 hours to allow the electrolyte to be impregnated into the electrode assembly.
13. A method for producing a lithium secondary battery, comprising the method for activating a lithium secondary battery according to claim 1 .
Citation Information
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