Electrode, lithium battery including same, and method of manufacturing same
By introducing through holes into the electrode active layer of the lithium battery and combining it with the current collector and intermediate layer of the electrode, the problem of uneven material distribution in the existing lithium battery under high load conditions is solved, and better circulation and high-rate characteristics are achieved, and suitable for wearable devices and other applications.
Patent Information
- Application Number
- JP2023014553
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-02-03
- Filing Date
- 2023-02-02
- Publication Date
- 2025-05-12
- Estimated Expiration
- 2043-02-02
AI Technical Summary
Under high load conditions, the uneven material distribution of the electrodes of existing lithium batteries leads to an increase in density, degradation in performance, and it is difficult to prevent deterioration of battery performance.
An electrode containing an electrode active layer through the hole is designed, penetrated into the intermediate layer through the hole, and combined with the electrode current collector and the intermediate layer to form a uniform material distribution, improving the circulation and high-rate characteristics of the lithium battery.
The loop characteristics and high-rate characteristics of lithium batteries are improved through hole design, preventing battery performance degradation, and improving battery flexibility. It is suitable for wearable devices and other applications.
Smart Images

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Abstract
Description
[Technical field]
[0001] The present invention relates to an electrode, a lithium battery employing the same, and a method for manufacturing the same. [Background technology]
[0002] In order to meet the trend of miniaturization and high performance of various devices, it is becoming increasingly important to make lithium batteries not only smaller and lighter, but also to have higher energy density, i.e., high-capacity lithium batteries.
[0003] In addition, with the emergence of various wearable devices, lithium batteries have become increasingly important due to their increased flexibility.
[0004] In order to realize a lithium battery suitable for the above applications, flexible electrodes with high loading capacity have been investigated.
[0005] In electrodes with high loading, the distribution of constituents within the electrode becomes non-uniform and the density increases near the electrode surface, thus degrading the performance of lithium batteries employing such electrodes.
[0006] There is a need for electrodes that can prevent the performance degradation of lithium batteries. Summary of the Invention [Problem to be solved by the invention]
[0007] The problem to be solved by the present invention is to provide a new electrode that prevents deterioration of battery performance by including through-holes in an electrode active material layer.
[0008] Another object of the present invention is to provide a new electrode that has a uniform distribution of components within the electrode, thereby preventing deterioration of battery performance.
[0009] Another problem to be solved by the present invention is to provide a lithium battery including the electrode.
[0010] Still another object of the present invention is to provide a method for producing the electrode. [Means for solving the problem]
[0011] According to one aspect, the present invention provides a method for manufacturing a semiconductor device comprising the steps of: providing a semiconductor device having a plurality of through-holes, an electrode active material layer including an electrode active material and a binder; an electrode current collector disposed on one side of the electrode active material layer or between both sides of the electrode active material layer; and an interlayer disposed between the electrode active material layer and the electrode current collector, the electrode active material layer being a free-standing film; An electrode is provided, wherein the electrode active material layer includes through holes extending to the intermediate layer.
[0012] According to another aspect, there is provided a lithium battery comprising: a positive electrode; a negative electrode; and an electrolyte disposed between the positive electrode and the negative electrode; wherein at least one of the positive electrode and the negative electrode is an electrode according to the above.
[0013] According to yet another aspect, there is provided a method for manufacturing an electrode, the method including: dry-mixing an electrode active material, a dry conductive material, and a dry binder to prepare a dry mixture; rolling or extruding the dry mixture to prepare a free-standing film; introducing a plurality of through-holes into the free-standing film; providing an electrode current collector and disposing an intermediate layer on one or both sides of the electrode current collector; and providing the free-standing film on one or both sides of the electrode current collector and disposing an electrode active material layer thereon. Effect of the Invention
[0014] According to one aspect, the electrode active material layer includes through-holes, which improves the cycle characteristics of a lithium battery employing such an electrode.
[0015] Also, having a uniform distribution of constituents within the electrode improves the high rate performance of lithium batteries employing such electrodes. [Brief description of the drawings]
[0016] [Figure 1A] FIG. 2 is a side view of an electrode according to an illustrative embodiment; [Figure 1B] FIG. 2 is a side view of an electrode according to an illustrative embodiment; [Figure 2A] FIG. 1 is a side view of a conventional electrode. [Figure 2B] FIG. 1 is a side view of a conventional electrode. [Figure 3A] FIG. 2 is a side view of an electrode according to an illustrative embodiment; [Figure 3B] FIG. 2 is a side view of an electrode according to an illustrative embodiment; [Figure 4] FIG. 2 is a schematic diagram of an electrode according to an illustrative embodiment; [Diagram 5] FIG. 2 is a schematic diagram of an electrode according to an illustrative embodiment; [Figure 6A] FIG. 2 is a side view of an electrode according to an illustrative embodiment; [Figure 6B] FIG. 2 is a side view of an electrode according to an illustrative embodiment; [Figure 7] FIG. 2 is a schematic diagram of an electrode according to an illustrative embodiment; [Figure 8] FIG. 2 is a schematic diagram of an electrode according to an illustrative embodiment; [Figure 9A] FIG. 2 is a plan view of an electrode according to an illustrative embodiment; [Figure 9B] FIG. 2 is a plan view of an electrode according to an illustrative embodiment; [Figure 9C] FIG. 2 is a plan view of an electrode according to an illustrative embodiment; [Figure 9D] FIG. 2 is a plan view of an electrode according to an illustrative embodiment; [Figure 9E] FIG. 2 is a plan view of an electrode according to an illustrative embodiment; [Figure 9F] FIG. 2 is a plan view of an electrode according to an illustrative embodiment; [Figure 10] FIG. 2 is a side view of an electrode assembly according to an illustrative embodiment; [Figure 11] FIG. 2 is a side view of an electrode assembly according to an illustrative embodiment; [Figure 12]FIG. 2 is a front view of an electrode assembly according to an illustrative embodiment; [Figure 13] 1 is a schematic diagram of a lithium battery according to an embodiment. [Figure 14] 1 is a schematic diagram of a lithium battery according to an embodiment. [Figure 15] 1 is a schematic diagram of a lithium battery according to an embodiment. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0017] The present inventive concept described below can be modified in various ways and can have various embodiments, and specific embodiments are illustrated in the drawings and described in detail in the detailed description. However, this is not intended to limit the present inventive concept to a specific embodiment, and it should be understood that the present inventive concept includes any modifications, equivalents, or alternatives that fall within the technical scope of the present inventive concept.
[0018] The terms used below are merely used to describe specific embodiments and are not intended to limit the present invention. Singular expressions include plural expressions unless the context clearly indicates otherwise. In the following, terms such as "include" or "have" indicate the presence of a feature, number, step, operation, component, part, ingredient, material, or combination thereof described in the specification, and should be understood not to preclude the presence or additional possibility of one or more other features, numbers, steps, operations, components, parts, ingredients, materials, or combinations thereof. In the following, " / " can be interpreted as "and" or "or" depending on the situation.
[0019] In the drawings, thicknesses are exaggerated or reduced to clearly depict multiple layers and regions. Similar parts throughout the specification are given the same reference numerals. Throughout the specification, when a part such as a layer, film, region, plate, etc. is described as being "on" or "above" another part, this does not only include the case where it is directly on top of the other part, but also the case where there is another part in between. Throughout the specification, terms such as first, second, etc. may be used to describe various components, but the components should not be limited by the terms. Terms are used only to distinguish one component from another.
[0020] As used herein, "dry" refers to a state in which there is no intentional contact with a solvent such as a process solvent, or a state in which there is no intentional solvent. For example, a dry conductive material refers to a conductive material that is not intentionally in contact with a solvent or that does not intentionally contain a solvent. For example, a dry binder refers to a binder that is not intentionally in contact with a solvent or that does not intentionally contain a solvent. For example, a binder that is not mixed with a solvent and is in a liquid state at room temperature is a dry binder.
[0021] In this specification, the length of the electrode, the thickness of the electrode, the diameter of the through hole, the depth of the through hole, and the area of the through hole respectively refer to the average length, the average thickness, the average diameter, the average depth, and the average area. The average value is, for example, the arithmetic average value of values measured at multiple points. The length of the electrode, the thickness of the electrode, the diameter of the through hole, the depth of the through hole, and the area of the through hole may each be measured using a micrometer, a scanning electron microscope image, or an optical microscope image.
[0022] In this specification, the "particle size" of a particle refers to the average diameter when the particle is spherical, and refers to the average major axis length when the particle is non-spherical. The particle size of a particle can be measured using a particle size analyzer (PSA). The "particle size" of a particle is, for example, the average particle size. The average particle size is, for example, the median particle size D50. The median particle size D50 is, for example, the particle size corresponding to the 50% cumulative volume calculated from the particle side having a small particle size in the particle size distribution measured by a laser diffraction method.
[0023] Hereinafter, an electrode according to an example embodiment, a lithium battery including the same, and a method for manufacturing the same will be described in more detail.
[0024] According to an embodiment, the electrode includes an electrode active material layer including an electrode active material and a binder, and including a plurality of through-holes; an electrode current collector disposed on one side of the electrode active material layer or between both sides of the electrode active material layer; and an interlayer disposed between the electrode active material layer and the electrode current collector, wherein the electrode active material layer is a free-standing film, and the electrode active material layer includes through-holes extending to the interlayer.
[0025] For example, an intermediate layer having adhesive force is disposed between the electrode active material layer and the electrode current collector, so that the electrode active material layer and the electrode current collector can be laminated without strong pressure during the electrode manufacturing process. Therefore, the electrode current collector can have a uniform surface. As a result, during the charge and discharge process of the lithium battery, local side reactions due to imbalance in current density between the electrode active material layer and the electrode current collector depending on the position of the electrode current collector can be prevented. Meanwhile, in the conventional electrode, the electrode active material layer and the electrode current collector are rolled with strong pressure in order to obtain a high binding force between the electrode active material layer and the electrode current collector. Therefore, the electrode current collector has an uneven surface. As a result, during the charge and discharge process of the lithium battery, local side reactions due to imbalance in current density between the electrode active material layer and the electrode current collector depending on the position of the electrode current collector can be increased.
[0026] In addition, the electrode active material layer includes a plurality of through holes, thereby improving the high-rate characteristics of the lithium battery. For example, the electrolyte is disposed in the plurality of through holes, thereby increasing the contact area between the electrode and the electrolyte, and reducing the conduction distance of lithium ions in the electrode active material layer. For example, the plurality of through holes act as ion conduction channels in the electrode. Therefore, the plurality of through holes can effectively suppress an increase in internal resistance and a decrease in high-rate characteristics due to an imbalance in electrode reactions on the electrode surface and inside the electrode. In particular, a high-density battery including an electrode and / or a laminate thereof having an increased thickness of the electrode active material layer can effectively prevent a decrease in cycle characteristics at a high current density. As a result, the internal resistance of a lithium battery employing an electrode including a plurality of through holes can be reduced, thereby preventing a decrease in high-rate characteristics. In addition, the electrode active material layer includes a plurality of through holes, thereby improving the flexibility of the electrode. Therefore, a lithium battery including an electrode with improved flexibility can be more suitably used in applications in which the shape changes, such as wearable devices.
[0027] In addition, since the through holes extend to the intermediate layer, imbalance in current density between the outermost surface of the electrode active material layer and the inside of the electrode active material layer adjacent to the electrode current collector can be prevented. Therefore, local side reactions due to the imbalance in current density can be prevented, and partial deterioration of the electrode active material layer and the resulting deterioration of the electrode can be prevented. As a result, the life characteristics of a lithium battery can be improved by adopting an electrode having a plurality of through holes extending to the intermediate layer.
[0028] In the electrode according to the present disclosure, the electrode current collector may form the bottom of the through-hole, and the electrode current collector may block one end of the through-hole. Since the bottom of the through-hole is formed by the electrode current collector, it is different from a conventional electrode in which the bottom of the through-hole is formed by an electrode active material layer. Since the bottom of the through-hole is formed by the electrode current collector, ion conduction can be easily performed to the electrode active material layer adjacent to the electrode current collector.
[0029] In conventional electrodes, through-holes are formed on the electrode by drilling, and therefore burrs may be formed at the ends of the through-holes or a part of the electrode current collector may be depressed during the through-hole formation process. Therefore, defects may be formed between the electrode active material layer adjacent to the through-holes and the electrode current collector, and non-uniform current density may be generated through such defects. As a result, deterioration of the electrode may progress, and the life characteristics of a lithium battery using such an electrode may be reduced.
[0030] Meanwhile, the electrode current collector included in the electrode according to the present disclosure is substantially free of defects extending or induced from the through-holes because such defects are prevented. For example, the electrode current collector does not include burrs or dents extending from the through-holes. Therefore, the life characteristics of a lithium battery using such an electrode can be improved. The electrode according to the present disclosure is manufactured, for example, by laminating the electrode current collector and the electrode active material layer including the through-holes after forming through-holes in the electrode active material layer. Therefore, it is possible to prevent the formation of defects in the electrode current collector that occurs in the process of introducing through-holes into the electrode active material layer of the above-mentioned conventional electrode.
[0031] Since the electrode active material layer is a self-standing film, the electrode active material layer can maintain a film shape without a support, for example. Therefore, the electrode active material layer can be prepared as a separate self-standing film and then disposed on an electrode current collector.
[0032] In the electrode according to the present disclosure, an intermediate layer is disposed between the through hole and the electrode current collector, and the intermediate layer can separate the through hole and the electrode current collector. By disposing the intermediate layer between one end of the through hole and the electrode current collector, direct contact between the electrolyte and the electrode current collector can be blocked. Therefore, side reactions such as decomposition of the electrolyte on the surface of the electrode current collector can be prevented. Therefore, the charge and discharge characteristics of a lithium battery including such an electrode can be further improved.
[0033] In the electrode according to the present disclosure, the diameter of one end of the through-hole in contact with the intermediate layer or the electrode current collector is larger than the diameter of the other end of the through-hole exposed on the surface of the electrode active material layer. Since the diameter of one end of the through-hole in contact with the intermediate layer or the electrode current collector is larger than the diameter of the other end of the through-hole exposed on the surface of the electrode active material layer, the electrolyte and the electrode active material layer have a larger contact area inside the electrode active material layer, and thus the imbalance of the current density between the surface of the electrode active material layer and the inside of the electrode active material layer can be effectively prevented. Therefore, the charge and discharge characteristics of a lithium battery using such an electrode can be further improved. The diameter d of one end of the through-hole in contact with the intermediate layer or the electrode current collector is b and the diameter d of the other end of the through hole exposed on the surface of the electrode active material layer. a The ratio of d a :d b is also a 1:1 excess. For example, d a :d b The diameter d of one end of the through hole in contact with the intermediate layer or the electrode current collector is 1:1.01 to 2, 1:1.01 to 1.5, or 1:1.01 to 1.1. b and the diameter d of the other end of the through hole exposed on the surface of the electrode active material layer. a The ratio can be measured through a scanning electron microscope on the cross section of the electrode.
[0034] The material constituting the electrode current collector can be any material that does not react with lithium, that is, that does not form an alloy or compound with lithium and has electrical conductivity. The metal substrate is, for example, a metal or an alloy. The metal substrate is, for example, indium (In), copper (Cu), magnesium (Mg), stainless steel, titanium (Ti), iron (Fe), cobalt (Co), nickel (Ni), zinc (Zn), aluminum (Al), germanium (Ge), lithium (Li), or an alloy thereof. The electrode current collector can have a form selected from, for example, a sheet, a foil, a film, a plate, a porous body, a mesoporous body, a through-hole-containing body, a polygonal ring body, a mesh body, a foam body, and a nonwoven fabric body, but is not necessarily limited to such a form, and any form used in the technical field can be used.
[0035] The electrode current collector has a reduced thickness compared to the electrode current collector included in the conventional electrode. Thus, the electrode according to the present disclosure is distinguished from the conventional electrode including a thick film current collector, for example, by including a thin film current collector. By adopting a thin film current collector having a reduced thickness in the electrode according to an embodiment, the thickness of the electrode active material layer is relatively increased in the electrode including the thin film current collector. As a result, the energy density of the lithium battery using such an electrode is increased. The thickness of the electrode current collector including the metal substrate and the intermediate layer is, for example, less than 15 μm, 14.5 μm or less, or 14 μm or less. The thickness of the electrode current collector is, for example, 0.1 μm to less than 15 μm, 1 μm to 14.5 μm, 2 μm to 14 μm, 3 μm to 14 μm, 5 μm to 14 μm, or 10 μm to 14 μm.
[0036] The interlayer is disposed, for example, directly on one or both sides of the electrode current collector. Therefore, no other layer is disposed between the electrode current collector and the interlayer. By disposing the interlayer directly on one or both sides of the electrode current collector, the bonding strength between the electrode current collector and the electrode active material layer can be further improved.
[0037] The thickness of the intermediate layer is, for example, 30% or less of the thickness of the electrode current collector. The thickness of the intermediate layer is, for example, 0.01 to 30%, 0.1 to 30%, 0.5 to 30%, 1 to 25%, 1 to 20%, 1 to 15%, 1 to 10%, 1 to 5%, or 1 to 3% of the thickness of the electrode current collector. The thickness of the intermediate layer is, for example, 10 nm to 5 μm, 50 nm to 5 μm, 200 nm to 4 μm, 500 nm to 3 μm, 500 nm to 2 μm, 500 nm to 1.5 μm, or 700 nm to 1.3 μm. When the intermediate layer has a thickness in such a range, the bonding strength between the electrode current collector and the electrode active material layer is further improved, and an increase in the interface resistance can be suppressed.
[0038] The intermediate layer includes, for example, a binder. When the intermediate layer includes a binder, the bonding strength between the electrode current collector and the electrode active material layer can be further improved. The binder included in the intermediate layer is, for example, a conductive binder or a non-conductive binder.
[0039] The conductive binder may be, for example, an ionically conductive binder and / or an electronically conductive binder. A binder having both ion conductivity and electronic conductivity may be classified as either an ionically conductive binder or an electronically conductive binder.
[0040] Examples of the ion-conductive binder include polystyrene sulfonate (PSS), polyvinylidene fluoride-hexafluoropropylene (PVDF-HFP), polyvinyl fluoride (PVF), polyvinylidene fluoride (PVDF), poly(methylmethacrylate) (PMMA), and polyethylene oxide (PEO). oxide), polyethylene glycol (PEG), polyacrylonitrile (PAN), polytetrafluoroethylene (PTFE), polyethylenedioxythiophene (PEDOT), polypyrrole (PPY), polyacrylonitrile (PAN), polyaniline, and polyacetylene. The ion conductive binder may include a polar functional group. Examples of ion conductive binders that include a polar functional group include Nafion, Aquivion, Flemion, Gore, Aciplex, Morgane ADP, sulfonated poly(ether ether ketone), SPEEK, sulfonated poly(arylene ether ketone ketone sulfone), SPAEKKS, sulfonated poly(aryl ether ketone, SPAEK), poly[bis(benzimidazobenzisoquinolinones)] (SPBIBI), poly(styrene sulfonate) (PSS), lithium 9,10-diphenylanthracene-2-sulfonate (DPASLi) +) The electronically conductive binder is, for example, polyacetylene, polythiophene, polypyrrole, poly(p-phenylene), poly(phenylenevinylene), poly(phenylenesulfide), polyaniline, etc. The intermediate layer is also, for example, a conductive layer including a conductive polymer.
[0041] The binder contained in the intermediate layer may be selected from, for example, the binders contained in the electrode active material layer. The intermediate layer contains the same binder as the electrode active material layer. The binder contained in the intermediate layer is, for example, a fluorine-based binder. The fluorine-based binder contained in the intermediate layer is, for example, polyvinylidene fluoride (PVDF). The intermediate layer is, for example, disposed on the electrode current collector in a dry or wet manner. The intermediate layer is also, for example, a binding layer containing a binder.
[0042] The intermediate layer may further include, for example, a carbon-based conductive material. The carbon-based conductive material included in the intermediate layer may be selected from the carbon-based conductive materials included in the electrode active material layer. The intermediate layer may include the same carbon-based conductive material as the electrode active material layer. Since the intermediate layer includes a carbon-based conductive material, the intermediate layer may also be, for example, a conductive layer. The intermediate layer may also be, for example, a conductive layer including a binder and a carbon-based conductive material.
[0043] The intermediate layer may be disposed on the electrode current collector in a dry manner, for example, by deposition, such as CVD, PVD, etc. The intermediate layer may be disposed on the electrode current collector in a wet manner, for example, by spin coating, dip coating, etc. The intermediate layer may be disposed on the electrode current collector, for example, by depositing a carbon-based conductive material on the electrode current collector by deposition. A dry-coated intermediate layer is made of a carbon-based conductive material and does not include a binder. Alternatively, the intermediate layer may be disposed on the electrode current collector, for example, by coating a composition including a carbon-based conductive material, a binder, and a solvent on the electrode current collector surface and drying it. The intermediate layer may be a single layer structure or a multilayer structure including multiple layers.
[0044] One surface of the electrode active material layer included in the electrode according to the present disclosure includes, for example, a first opening in which a plurality of through holes are arranged. For example, the surface area of the first opening is, for example, 99% or less, 90% or less, 50% or less, 40% or less, 30% or less, 20% or less, or even 10% or less of the total area of one surface of the electrode active material layer. The surface area of the first opening is, for example, 0.1% to 99%, 0.1% to 90%, 0.1% to 50%, 0.1% to 20%, 0.1% to 10%, 0.2% to 15%, 0.2% to 10%, or 0.2% to 5% of the total area of one surface of the electrode active material layer. When the surface area of the first opening occupied by the through holes has a value within such a range, the cycle characteristics of the lithium battery can be further improved. The surface area of the first opening is the area of the surface of the electrode active material layer occupied by the through holes.
[0045] The surface area (area A) of the first opening where the through holes are arranged on one side of the electrode active material layer is smaller than the remaining surface area (area B) of the electrode active material layer excluding the surface area of the first opening. For example, the area A is, for example, 99% or less, 90% or less, 50% or less, 40% or less, 30% or less, 20% or less, or 10% or less of the area B. The area A is, for example, 0.1% to 99%, 0.1% to 90%, 0.1% to 50%, 0.1% to 20%, 0.5% to 10%, 0.5% to 15%, 0.5% to 10%, or 0.5% to 5% of the area B. When the area of the first opening occupied by the through holes has a value within such a range, the cycle characteristics of the lithium battery can be further improved.
[0046] The average diameter d1 of the plurality of through holes is, for example, 0.1 μm to 20 μm, or 0.1 μm to 10 μm. When the plurality of through holes has an average diameter in such a range, the cycle characteristics of a lithium battery employing an electrode including the plurality of through holes can be further improved.
[0047] The ratio d1 / T1 of the average diameter d1 of the plurality of through holes to the thickness T1 of the electrode active material layer is also 0.001 to 0.2, or 0.001 to 0.1. When the ratio d1 / T1 of the average diameter d1 of the plurality of through holes to the thickness T1 of the electrode active material layer has a value in such a range, the cycle characteristics of a lithium battery employing an electrode including a plurality of through holes can be further improved.
[0048] The through-holes included in the electrode may be, for example, regularly arranged at regular intervals in the electrode active material layer. By regularly arranging the through-holes in the electrode active material layer, a regular current density distribution may be maintained in the electrode. Therefore, local deterioration of the electrode active material layer due to irregular current distribution may be prevented, and as a result, deterioration of the cycle characteristics of the lithium battery may be prevented.
[0049] The through holes included in the electrode may be, for example, periodically arranged at regular intervals in the electrode active material layer. By periodically arranging the through holes in the electrode active material layer, a periodic current density distribution may be maintained in the electrode. Therefore, local deterioration of the electrode active material layer due to a non-periodic current density distribution may be prevented, and as a result, deterioration of the cycle characteristics of the lithium battery may be prevented.
[0050] The through-holes in the electrode may be arranged two-dimensionally or three-dimensionally to have a lattice structure, for example. The cycle characteristics of a lithium battery including such an electrode may be further improved by arranging the through-holes two-dimensionally or three-dimensionally to have a lattice structure in the electrode active material layer included in the electrode.
[0051] The entrance of the through hole included in the electrode may have one or more shapes selected from, for example, a circle, an ellipse, a triangle, a square, a pentagon, a hexagon, an alphabet shape, or a doughnut shape, but is not necessarily limited to such shapes, and any shape used in the art to form a through hole is possible. The alphabet shape has one or more shapes selected from, for example, an A type or a Z type. The alphabet shape has one or more shapes selected from, for example, an X type, an H type, a T type, an L type, etc. The entrance of the through hole has, for example, a polyhedral shape. The shape of the through hole can be determined from a scanning electron microscope image or an optical microscope image of the electrode surface.
[0052] The through-holes in the electrode may be disposed through the electrode active material layer so as to form an angle of, for example, 60° to 120°, 70° to 110°, or 80° to 100° with one or both surfaces of the electrode active material layer. By disposing the through-holes at such an angle, the cycle characteristics of the lithium battery may be further improved.
[0053] The cross section of the electrode may, for example, have an alternately aligned structure in the second region between the electrode active material layers and the through-holes. The cross section of the electrode may have an alternately aligned structure between the electrode active material layers and the through-holes, which may further improve the cycle characteristics of a lithium battery including such an electrode.
[0054] The binder contained in the electrode active material layer is, for example, a dry binder. The dry binder is, for example, a binder that is not impregnated, dissolved, or dispersed in a solvent. The dry binder is, for example, a binder that includes a solvent or is not in contact with a solvent.
[0055] The dry binder is, for example, a fibrillized binder. The fibrillized binder serves as a matrix that supports and binds the electrode active material and other components contained in the electrode active material layer. The fibrillized binder can be confirmed to have a fibrous shape, for example, in a scanning electron microscope image of the electrode cross section. The fibrillized binder has an aspect ratio of, for example, 10 or more, 20 or more, 50 or more, or 100 or more.
[0056] The dry binder may be, for example, polytetrafluoroethylene (PTFE), polyvinylidene fluoride-hexapropylene (PVDF-HFP) copolymer, polyvinylidene fluoride (PVDF), polyvinyl alcohol, polyacrylonitrile, carboxymethyl cellulose (CMC), starch, hydroxypropyl cellulose, cellulose, polyvinylpyrrolidone, polyethylene, polypropylene, ethylene-propylene-diene polymer (EPDM), sulfonated-EPDM, styrene butadiene rubber (SBR), fluororubber, or a copolymer thereof, but is not necessarily limited thereto, and any binder used in the manufacture of dry electrodes may be used. The dry binder particularly includes a fluorine-based binder. The fluorine-based binder may be, for example, polytetrafluoroethylene (PTFE), polyvinylidene fluoride-hexapropylene (PVDF-HFP) copolymer, or polyvinylidene fluoride (PVDF).
[0057] The content of the dry binder in the electrode active material layer is, for example, 1 wt% to 10 wt%, or 1 wt% to 5 wt%, based on the total weight of the electrode active material layer. When the electrode active material layer contains a dry binder in such a range, the binding strength of the electrode is improved, and the electrode can maintain a high energy density.
[0058] The electrode active material layer further includes, for example, a conductive material. The conductive material is, for example, a dry conductive material. The dry conductive material is, for example, a conductive material that is not impregnated, dissolved, or dispersed in a solvent. The dry conductive material is, for example, a conductive material that includes a solvent or is not in contact with a solvent. The dry conductive material includes, for example, a carbon-based conductive material. The carbon-based conductive material includes, but is not limited to, carbon black, graphite particles, natural graphite, artificial graphite, acetylene black, ketjen black, carbon fiber, carbon nanotubes, and the like, and any material that is used as a carbon-based conductive material in the technical field can be used.
[0059] The content of the dry conductive material in the electrode active material layer is, for example, 1 to 10 wt %, or 1 to 5 wt %, based on the total weight of the electrode active material layer. When the electrode active material layer contains the dry conductive material in such a range, the conductivity of the electrode is improved, and the high energy density of the electrode can be maintained.
[0060] Since the electrode active material layer is prepared in a dry manner, it does not contain any intentionally added process solvent. For example, it does not contain any residual processing solvent. Although a small amount of solvent may remain unintentionally in the electrode active material layer, such a solvent is not an intentionally added process solvent. Therefore, the electrode active material layer is distinguished from a wet electrode active material layer prepared by mixing components with a process solvent and then removing some or all of the process solvent by drying.
[0061] In the electrode, in the electrode active material layer included in the first region, when measured by SAICAS (surface and interfacial measuring analysis system), a vertical relative binding strength (F) depending on a depth from a first point that is 5% apart from the surface of the electrode active material layer in the direction of the electrode current collector to a second point that is 5% apart from the surface of the electrode current collector with respect to the entire thickness of the electrode active material layer is VR , Vertical Relative Force) is 300% or less. The vertical relative binding force change rate is, for example, 10 to 300%, 10 to 250%, 10 to 200%, 10 to 150%, or 10 to 100%. The second point 5% away from the surface of the electrode collector in the electrode active material layer direction corresponds to, for example, a point 95% away from the surface of the electrode active material layer in the electrode current collector direction with respect to the entire thickness of the electrode active material layer. The vertical relative binding force is calculated from the following Equation 1. For the SAICAS measurement method, see, for example, Evaluation Example 2.
[0062] [Formula 1] Vertical relative adhesive force (F V , Vertical Relative Force) change rate = [(Maximum value of vertical relative adhesive force (F VR1)-Minimum value of vertical relative adhesive force (F VR1 )) / Minimum value of vertical relative adhesive force (F VR1 )] x 100
[0063] In the electrode, the rate of change in the relative binding strength in the vertical direction is 300% or less when measured by SAICAS (surface and interfacial measuring analysis system), so that the uniformity of distribution of components in the electrode can be improved. In addition, since side reactions and an increase in internal resistance due to non-uniform distribution of components in the electrode active material layer are suppressed, the plasticity of the electrode reaction can be improved. Even in the case of an electrode having a high loading, the cycle characteristics of the lithium battery can be improved. In addition, since the electrode includes an intermediate layer, the binding strength between the electrode active material layer and the electrode current collector is further improved, and the internal resistance of the electrode is reduced. Therefore, the cycle characteristics of a lithium battery using such an electrode can be improved.
[0064] In the electrode, in the electrode active material layer included in the first region, a first horizontal direction binding strength (F) at a first point separated by 10% from the surface of the electrode active material layer in the electrode current collector direction with respect to the entire depth from the surface of the electrode active material layer to the surface of the electrode current collector during SAICAS measurement is H1 A second horizontal force (F , Horizontal Force) at a second point 10% apart from the surface of the electrode collector in the electrode active material layer direction (e.g., in the depth direction) H2 The ratio of the horizontal adhesive force (Horizontal Force) is 50% or more. The ratio of the horizontal adhesive force is, for example, 50 to 100%, 60 to 100%, 70 to 100%, 80 to 100%, or 90 to 100%. The second point 10% apart from the surface of the electrode collector in the direction of the electrode active material layer corresponds to, for example, a point 90% apart from the surface of the electrode active material layer in the direction of the electrode collector with respect to the total thickness of the electrode active material layer. The ratio of the horizontal adhesive force is expressed, for example, by the following Equation 2. For the SAICAS measurement method, see, for example, Evaluation Example 3.
[0065] [Formula 2] Horizontal adhesion ratio = [Second horizontal adhesion (FH2 ) / First horizontal adhesion force (F H1 )] x 100
[0066] The horizontal adhesion ratio is 50% or more when measured by SAICAS, which further improves the uniformity of the distribution of the components within the electrode. The horizontal adhesion ratio of the electrode in this range further improves the cycle characteristics of lithium batteries using such electrodes.
[0067] The electrode is, for example, a positive electrode. The positive electrode includes a positive electrode active material layer, and the positive electrode active material layer includes a positive electrode active material.
[0068] The positive electrode active material contained in the positive electrode active material layer may be any lithium metal oxide that is commonly used in the art without any limitations.
[0069] The positive electrode active material is, for example, one or more of composite oxides of lithium and metals selected from cobalt, manganese, nickel, and combinations thereof. Specific examples thereof include Li a A 1-b B b D 2 (wherein 0.90≦a≦1, and 0≦b≦0.5); Li a E 1-b B b O 2-c D c (wherein, 0.90≦a≦1, 0≦b≦0.5, 0≦c≦0.05); LiE 2-b B b O 4-c D c (wherein, 0≦b≦0.5, 0≦c≦0.05); Li a Ni 1-b-c Co b B c D α (wherein, 0.90≦a≦1, 0≦b≦0.5, 0≦c≦0.05, and 0<α≦2); Li a Ni 1-b-c Co b B c O 2-α Fα (wherein, 0.90≦a≦1, 0≦b≦0.5, 0≦c≦0.05, and 0<α<2); Li a Ni 1-b-c Co b B c O 2-α F 2 (wherein, 0.90≦a≦1, 0≦b≦0.5, 0≦c≦0.05, and 0<α<2); Li a Ni 1-b-c Mn b B c D α (wherein, 0.90≦a≦1, 0≦b≦0.5, 0≦c≦0.05, and 0<α≦2); Li a Ni 1-b-c Mn b B c O 2-α F α (wherein, 0.90≦a≦1, 0≦b≦0.5, 0≦c≦0.05, and 0<α<2); Li a Ni 1-b-c Mn b B c O 2-α F 2 (wherein, 0.90≦a≦1, 0≦b≦0.5, 0≦c≦0.05, and 0<α<2); Li a Ni b E c G d O 2 (wherein, 0.90≦a≦1, 0≦b≦0.9, 0≦c≦0.5, 0.001≦d≦0.1); Li a Ni b Co c Mn d G e O 2 (wherein, 0.90≦a≦1, 0≦b≦0.9, 0≦c≦0.5, 0≦d≦0.5, 0.001≦e≦0.1); Li a NiG b O 2 (wherein, 0.90≦a≦1, 0.001≦b≦0.1); Li a CoG b O 2 (wherein, 0.90≦a≦1, 0.001≦b≦0.1); Lia MnG b O 2 (wherein, 0.90≦a≦1, 0.001≦b≦0.1); Li a Mn 2 G b O 4 (wherein, 0.90≦a≦1, 0.001≦b≦0.1); QO 2 ;QS 2 ;LiQS 2 ;V 2 O 5 ;LiV 2 O 5 ;LiIO 2 ;LiNiVO 4 Li (3-f) J 2 (PO 4 ) 3 (0≦f≦2);Li (3-f) Fe 2 (PO 4 ) 3 (0≦f≦2); LiFePO 4 A compound represented by any one of the chemical formulas above can be used.
[0070] In the chemical formula representing the above-mentioned compound, A is Ni, Co, Mn, or a combination thereof; B is Al, Ni, Co, Mn, Cr, Fe, Mg, Sr, V, rare earth elements, or a combination thereof; D is O, F, S, P, or a combination thereof; E is Co, Mn, or a combination thereof; F is F, S, P, or a combination thereof; G is Al, Cr, Mn, Fe, Mg, La, Ce, Sr, V, or a combination thereof; Q is Ti, Mo, Mn, or a combination thereof; I is Cr, V, Fe, Sc, Y, or a combination thereof; and J is V, Cr, Mn, Co, Ni, Cu, or a combination thereof.
[0071] It is also possible to use a compound with a coating layer added to the surface of the above-described compound, and it is also possible to use a mixture of the above-described compound and a compound with a coating layer added. The coating layer added to the surface of the above-described compound contains, for example, a coating element compound such as an oxide of the coating element, a hydroxide, an oxyhydroxide of the coating element, an oxycarbonate of the coating element, or a hydroxycarbonate of the coating element. The compound forming such a coating layer is amorphous or crystalline. The coating elements contained in the coating layer are Mg, Al, Co, K, Na, Ca, Si, Ti, V, Sn, Ge, Ga, B, As, Zr, or a mixture thereof. The method for forming the coating layer is selected within a range that does not adversely affect the physical properties of the positive electrode active material. The coating method is, for example, a spray coating method, a dipping method, etc. Since specific coating methods are well understood by those skilled in the art, detailed descriptions are omitted.
[0072] The content of the positive electrode active material contained in the positive electrode active material layer is, for example, 80 to 98 wt% or 90 to 98 wt% with respect to the total weight of the positive electrode active material layer.
[0073] The positive electrode active material is, for example, a composite positive electrode active material.
[0074] The composite positive electrode active material includes, for example, a core containing a lithium transition metal oxide; and a shell disposed along the surface of the core; the shell has the chemical formula M a O b (0 < a ≤ 3, 0 < b < 4, if a is 1, 2, or 3, b is not an integer) of one or more first metal oxides; and graphene, the first metal oxide is disposed within the graphene matrix, the M is one or more metals selected from Groups 2 to 13, 15, and 16 of the Periodic Table of the Elements, the lithium transition metal oxide contains nickel, and the nickel content is 80 mol% or more with respect to the total number of moles of transition metals. A shell containing the first metal oxide and graphene is disposed on the core of the composite positive electrode active material.
[0075] Conventional graphene has difficulty in forming a uniform coating on the core due to aggregation. On the other hand, the composite positive electrode active material uses a composite containing a plurality of first metal oxides arranged in a graphene matrix, thereby preventing the aggregation of graphene and forming a uniform shell on the core. Therefore, by effectively blocking contact between the core and the electrolyte, side reactions caused by contact between the core and the electrolyte are prevented. In addition, the reduction of nickel ions (Ni 3+ ->Ni 2+ ) and cation mixing are suppressed, thereby suppressing the generation of a resistance layer such as a NiO phase. In addition, the elution of nickel ions is also suppressed. Since the shell containing graphene has flexibility, it easily accepts the volume change of the composite positive electrode active material during charging and discharging, thereby suppressing the occurrence of cracks inside the composite positive electrode active material. Since graphene has high conductivity, the interface resistance between the composite positive electrode active material and the electrolyte is reduced. Therefore, despite the introduction of the shell containing graphene, the internal resistance of the lithium battery is maintained or reduced. In addition, since the first metal oxide has voltage resistance, it is possible to prevent the deterioration of the lithium transition metal oxide contained in the core during charging and discharging at high voltage. As a result, the cycle characteristics and high temperature stability of the lithium battery containing the composite positive electrode active material are improved. The shell contains, for example, one type of first metal oxide or two or more different first metal oxides. In addition, the lithium transition metal oxide in the composite positive electrode active material has a high nickel content of 80 mol% or more relative to the total transition metal mole number, and a shell including the first metal oxide and graphene is disposed on the core, thereby simultaneously providing high discharge capacity and cycle characteristics. Therefore, the composite positive electrode active material having a high nickel content of 80 mol% or more provides improved capacity compared to a composite positive electrode active material having a relatively low nickel content, while still providing excellent life characteristics. The metal contained in the first metal oxide may be, for example, one or more selected from Al, Nb, Mg, Sc, Ti, Zr, V, W, Mn, Fe, Co, Pd, Cu, Ag, Zn, Sb, and Se.
[0076] The first metal oxide is, for example, Al 2 O z (0 < z < 3), NbO x (0 < x < 2.5), MgO x (0 < x < 1), Sc 2 O z (0 < z < 3), TiO y (0 < y < 2), ZrO y (0 < y < 2), V 2 O z (0 < z < 3), WO y (0 < y < 2), MnO y (0 < y < 2), Fe 2 O z (0 < z < 3), Co 3 O w (0 < w < 4), PdO x (0 < x < 1), CuO x (0 < x < 1), AgO x (0 < x < 1), ZnO x (0 < x < 1), Sb 2 O z (0 < z < 3), and also one or more selected from SeO y (0 < y < 2). By arranging such a first metal oxide in the graphene matrix, the uniformity of the shell disposed on the core is improved, and the withstand voltage property of the composite positive electrode active material is further improved. For example, the shell contains Al 2 O x (0 < x < 3) as the first metal oxide. The shell may further contain one or more second metal oxides represented by the chemical formula M a O c (0 < a ≤ 3, 0 < c ≤ 4, when a is 1, 2, or 3, c is an integer). The M is one or more metals selected from Groups 2 to 13, Group 15, and Group 16 of the periodic table of elements. For example, the second metal oxide contains the same metal as the first metal oxide, and c / a, which is the ratio of c to a of the second metal oxide, has a value larger than b / a, which is the ratio of b to a of the first metal oxide. For example, c / a > b / a. The second metal oxide is, for example, Al 2 O 3 , NbO, NbO 2 , Nb2 O 5 , MgO, Sc 2 O 3 , TiO 2 , ZrO 2 , V 2 O 3 , WO 2 , MnO 2 , Fe 2 O 3 , Co 3 O 4 , PdO, CuO, AgO, ZnO, Sb 2 O 3 , and SeO 2 is selected from among them. The first metal oxide is the reduction product of the second metal oxide. By reducing part or all of the second metal oxide, the first metal oxide is obtained. Therefore, the first metal oxide has a lower oxygen content and a higher metal oxidation number compared to the second metal oxide. For example, the shell is the first metal oxide Al 2 O x (0 < x < 3) and the second metal oxide Al 2 O 3In the composite positive electrode active material, for example, the graphene contained in the shell and the transition metal of the lithium transition metal oxide contained in the core are chemically bound through a chemical bond. The carbon atom (C) of the graphene contained in the shell and the transition metal (Me) of the lithium transition metal oxide are chemically bound through a CO-Me bond (for example, a CO-Ni bond) via an oxygen atom. The graphene contained in the shell and the lithium transition metal oxide contained in the core are chemically bound through a chemical bond, so that the core and the shell are composited. Therefore, it is distinguished from a simple physical mixture of graphene and lithium transition metal oxide. In addition, the first metal oxide contained in the shell and the graphene are also chemically bound through a chemical bond. Here, the chemical bond is, for example, a covalent bond or an ionic bond. The covalent bond is, for example, a bond including at least one of an ester group, an ether group, a carbonyl group, an amide group, a carboxylic anhydride group, and an acid anhydride group. The ionic bond is, for example, a bond including a carboxylate ion, an ammonium ion, an acyl cation group, or the like. The thickness of the shell is, for example, 1 nm to 5 μm, 1 nm to 1 μm, 1 nm to 500 nm, 1 nm to 200 nm, 1 nm to 100 nm, 1 nm to 90 nm, 1 nm to 80 nm, 1 nm to 70 nm, 1 nm to 60 nm, 1 nm to 50 nm, 1 nm to 40 nm, 1 nm to 30 nm, 1 nm to 20 nm, or 1 nm to 10 nm. When the shell has a thickness in such a range, an increase in the internal resistance of the lithium battery containing the composite positive electrode active material is suppressed.
[0077] The content of the complex contained in the composite positive electrode active material is 3 wt% or less, 2 wt% or less, 1 wt% or less, 0.5 wt% or less, or 0.2 wt% or less of the total weight of the composite positive electrode active material. The content of the complex is 0.01 wt% to 3 wt%, 0.01 wt% to 1 wt%, 0.01 wt% to 0.7 wt%, 0.01 wt% to 0.6 wt%, 0.01 wt% to 0.5 wt%, 0.01 wt% to 0.2 wt%, 0.01 wt% to 0.1 wt%, or 0.03 wt% to 0.07 wt% of the total weight of the composite positive electrode active material. When the composite positive electrode active material contains a complex in such a range, the cycle characteristics of a lithium battery including the composite positive electrode active material are further improved. The particle size of one or more of the first metal oxide and the second metal oxide contained in the composite may be 1 nm to 1 μm, 1 nm to 500 nm, 1 nm to 200 nm, 1 nm to 100 nm, 1 nm to 70 nm, 1 nm to 50 nm, 1 nm to 30 nm, 3 nm to 30 nm, 3 nm to 25 nm, 5 nm to 25 nm, 5 nm to 20 nm, or 7 nm to 20 nm. The first metal oxide and / or the second metal oxide may have such a nano-range particle size, so that they can be more uniformly distributed in the graphene matrix of the composite. Thus, such a composite may be uniformly coated on the core without aggregation to form a shell. Furthermore, the first metal oxide and / or the second metal oxide may have such a particle size range, so that they may be more uniformly arranged on the core. Thus, the first metal oxide and / or the second metal oxide may be uniformly arranged on the core, so that the withstand voltage characteristics may be more effectively exhibited. The particle size of the first metal oxide and / or the second metal oxide is, for example, an average particle size. The average particle size of the first metal oxide and the second metal oxide is measured, for example, using a measuring device of the laser diffraction method or the dynamic light scattering method. The average particle size is measured, for example, using a laser scattering particle size distribution meter (e.g., HORIBA LA-920), and is the median diameter (D50) value when 50% is accumulated from the elementary particle side in volume conversion.
[0078] The core of the composite positive electrode active material may include, for example, a lithium transition metal oxide represented by the following formula 1:
[0079] [Chemical formula 1] Li a Ni x Co y M z O 2-b A b
[0080] In the chemical formula 1, 1.0 ≦ a ≦ 1.2, 0 ≦ b ≦ 0.2, 0.8 ≦ x < 1, 0 < y ≦ 0.3, 0 < z ≦ 0.3, and x + y + z = 1, M is one or more selected from the group consisting of manganese (Mn), niobium (Nb), vanadium (V), magnesium (Mg), gallium (Ga), silicon (Si), tungsten (W), molybdenum (Mo), iron (Fe), chromium (Cr), copper (Cu), zinc (Zn), titanium (Ti), aluminum (Al), and boron (B), and A is F, S, Cl, Br, or a combination thereof.
[0081] The core included in the composite cathode active material contains, for example, a lithium transition metal oxide represented by the following chemical formulas 2 to 4:
[0082] [Chemical formula 2] LiNi x Co y Mn z O 2
[0083] [Chemical formula 3] LiNi x Co y Al z O 2
[0084] In the above formula, 0.8 ≦ x ≦ 0.95, 0 < y ≦ 0.2, 0 < z ≦ 0.2, and x + y + z = 1.
[0085] [Chemical formula 4] LiNi x Co y Al v Mn w O 2
[0086] In the above formula, 0.8 ≦ x ≦ 0.95, 0 < y ≦ 0.2, 0 < v ≦ 0.2, 0 < w ≦ 0.2, and x + y + v + w = 1.
[0087] The core included in the composite positive electrode active material contains, for example, a lithium transition metal oxide represented by the following Chemical Formula 5:
[0088] [Chemical Formula 5] Li a Ni x M z O 2-b A b
[0089] In Chemical Formula 5, 1.0 ≦ a ≦ 1.2, 0 ≦ b ≦ 0.2, 0.8 ≦ x < 1, 0 < z ≦ 0.2, and x + z = 1. M is one or more selected from the group consisting of manganese (Mn), niobium (Nb), vanadium (V), magnesium (Mg), gallium (Ga), silicon (Si), tungsten (W), molybdenum (Mo), iron (Fe), chromium (Cr), copper (Cu), zinc (Zn), titanium (Ti), aluminum (Al), and boron (B). A is F, S, Cl, Br, or a combination thereof. In Chemical Formula 5, for example, 1.0 ≦ a ≦ 1.2, 0 ≦ b ≦ 0.2, 0.8 ≦ x ≦ 0.95, 0.05 ≦ z ≦ 0.2, and x + z = 1.
[0090] The electrode is, for example, a negative electrode. The negative electrode includes a negative electrode active material layer, and the negative electrode active material layer contains a negative electrode active material.
[0091] The negative electrode active material can be any material that is used as the negative electrode active material of a lithium battery in the relevant technical field. For example, it includes one or more selected from the group consisting of lithium metal, metals alloyable with lithium, transition metal oxides, non-transition metal oxides, and carbon-based materials. Metals alloyable with lithium include, for example, Si, Sn, Al, Ge, Pb, Bi, Sb, Si-Y alloys (where Y is an alkali metal, alkaline earth metal, Group 13 element, Group 14 element, transition metal, rare earth element, or a combined element thereof, and not Si), Sn-Y alloys (where Y is an alkali metal, alkaline earth metal, Group 13 element, Group 14 element, transition metal, rare earth element, or a combined element thereof, and not Sn), etc. The element Y is, for example, Mg, Ca, Sr, Ba, Ra, Sc, Y, Ti, Zr, Hf, Rf, V, Nb, Ta, Db, Cr, Mo, W, Sg, Tc, Re, Bh, Fe, Pb, Ru, Os, Hs, Rh, Ir, Pd, Pt, Cu, Ag, Au, Zn, Cd, B, Al, Ga, Sn, In, Ti, Ge, P, As, Sb, Bi, S, Se, Te, Po, or a combination thereof. Transition metal oxides include, for example, lithium titanate oxide, vanadium oxide, lithium vanadate oxide, etc. Non-transition metal oxides include, for example, SnO 2 , SiO x (0 < x < 2), etc. Carbon-based materials are, for example, crystalline carbon, amorphous carbon, or a mixture thereof. Crystalline carbon is, for example, graphite such as amorphous, plate-like, flaky, spherical, or fibrous natural graphite or artificial graphite. Amorphous carbon is, for example, soft carbon (low-temperature calcined carbon) or hard carbon, mesophase pitch carbide, calcined coke, etc.
[0092] The content of the negative electrode active material contained in the negative electrode active material layer is, for example, 80 to 98 wt %, or 90 to 98 wt %, based on the total weight of the negative electrode active material layer. In one embodiment of the present invention, the electrode current collector may include, for example, a base film and a metal layer disposed on one or both sides of the base film. The base film may include, for example, a polymer. The polymer may be, for example, a thermoplastic polymer. The polymer may include, for example, polyethylene terephthalate (PET), polyethylene (PE), polypropylene (PP), polybutylene terephthalate (PBT), polyimide (PI), or a combination thereof. By including a thermoplastic polymer in the base film, the base film liquefies upon short circuit, and a sudden increase in current can be suppressed. The base film may be, for example, an insulator. The metal layer may include, for example, indium (In), copper (Cu), magnesium (Mg), stainless steel, titanium (Ti), iron (Fe), cobalt (Co), nickel (Ni), zinc (Zn), aluminum (Al), germanium (Ge), lithium (Li), or alloys thereof. The metal layer may function as an electrochemical fuse and may be cut off upon overcurrent to perform a short circuit prevention function. The limit current and maximum current of the metal layer may be adjusted by adjusting the thickness of the metal layer. The metal layer may be plated or evaporated onto the base film. A thinner metal layer reduces the limit current and / or maximum current of the electrode current collector, improving the stability of the lithium battery during a short circuit. A lead tab may be added to the metal layer for external connection. The lead tab may be welded to the metal layer or the metal layer / base film laminate by ultrasonic welding, laser welding, spot welding, etc. The metal layer may be electrically connected to the lead tab while the base film and / or metal layer are at least partially melted during welding. To make the weld between the metal layer and the lead tab stronger, a metal chip can be added between the metal layer and the lead tab. The metal chip can be a flake of the same material as the metal of the metal layer. The metal chip can be, for example, a metal foil or a metal mesh. Examples of metal pieces include aluminum foil, copper foil, and SUS foil.The lead tab can be welded to the metal chip / metal layer stack or metal chip / metal layer / base film stack by placing the metal chip on the metal layer and then welding the lead tab. During welding, the metal layer or metal layer / metal chip stack can be electrically connected to the lead tab while the base film, metal layer, and / or metal chip are at least partially melted. The metal chip and / or lead tab may be added to a portion on the metal layer. The thickness of the base film can be, for example, 1 to 50 μm, 1.5 to 50 μm, 1.5 to 40 μm, or 1 to 30 μm. When the base film has a thickness within this range, the weight of the electrode assembly can be more effectively reduced. The melting point of the base film can be, for example, 100 to 300° C., 100 to 250° C. or less, or 100 to 200° C. Since the base film has a melting point within this range, the base film can be melted and easily bonded to the lead tab in the process of welding the lead tab. In order to improve the adhesion between the base film and the metal layer, the base film may be subjected to a surface treatment such as a corona treatment. The thickness of the metal layer may be, for example, 0.01 to 3 μm, 0.1 to 3 μm, 0.1 to 2 μm, or 0.1 to 0.1 μm. When the metal layer has a thickness within this range, the stability of the electrode assembly can be ensured while maintaining electrical conductivity. The thickness of the metal tip may be, for example, 2 to 10 μm, 2 to 7 μm, or 4 to 6 μm. When the metal tip has a thickness within this range, the connection between the metal layer and the lead tab can be more easily performed. When the electrode current collector has such a structure, the weight of the electrode can be reduced, and as a result, the energy density of the lithium battery can be improved. In one embodiment of the present invention, the electrode current collector may include, for example, a cathode current collector and / or an anode current collector.
[0093] 1A , an electrode 300 according to the present disclosure includes an electrode active material layer 100 including an electrode active material and a binder, and including a plurality of through-holes TH; an electrode current collector 200 disposed between both surfaces 100A, 100B of the electrode active material layer 100; and interlayers 250, 250a, 250b disposed between the electrode active material layer 100 and the electrode current collector 200, wherein the electrode active material layer 100 is a free-standing film, and the electrode active material layer 100 includes through-holes TH extending to the interlayer 250.
[0094] The electrode active material layer 100 includes a plurality of through-holes TH having a diameter d1. In the electrode 300 according to FIG. 1A, the thickness T1 of the electrode active material layer 100 included in the electrode 300 is the sum of the thicknesses Ta and Tb of the electrode active material layers 100a and 100b respectively disposed on both sides of the electrode current collector 200. The depth of the through-holes TH is, for example, substantially the same as the thickness T1 of the electrode active material layer 100.
[0095] The electrode active material layer 100 includes a plurality of through-holes TH, and an electrolyte, i.e., lithium ions, are transferred to the inside of the electrode active material layer 100 through the plurality of through-holes. Therefore, the electrode active material layer 100 is a region including an ion-conducting channel. Therefore, the electrode 300 including a plurality of through-holes is an electrode equipped with an ion-conducting channel.
[0096] 1B, an electrode 300 according to the present disclosure includes an electrode active material layer 100 including an electrode active material and a binder, and including a plurality of through-holes TH; an electrode current collector 200 disposed on one side 100A of the electrode active material layer 100; and an interlayer 250 disposed between the electrode active material layer 100 and the electrode current collector 200, wherein the electrode active material layer 100 is a free-standing film, and the electrode active material layer 100 includes through-holes TH extending to the interlayer 250.
[0097] The electrode active material layer 100 includes a plurality of through-holes TH having a given diameter d1. In the electrode 300 according to FIG. 1B, the electrode 300 includes an electrode active material layer 100 having a given thickness T1. The depth of the through-holes TH is, for example, substantially the same as the thickness T1 of the electrode active material layer 100.
[0098] The electrode active material layer 100 includes a plurality of through-holes TH, and an electrolyte, i.e., lithium ions, are transferred to the inside of the electrode active material layer 100 through the plurality of through-holes. Therefore, the electrode active material layer 100 is a region including an ion-conducting channel. Therefore, the electrode 300 including a plurality of through-holes is an electrode equipped with an ion-conducting channel.
[0099] 2A and 2B, the conventional electrode 300 includes an electrode active material layer 100 including an electrode active material and a binder and including a plurality of through-holes TH; and an electrode collector 200 disposed between both sides 100A, 100B of the electrode active material layer 100 or on one side 100A. The electrode active material layer 100 is disposed on the electrode collector 200 in the form of an electrode slurry, and is not a free-standing film. The electrode active material layer 100 includes through-holes TH extending to the intermediate layer 250, but includes defects DT such as burrs and dents extending from one end of the through-holes during the process of forming the through-holes. The conventional electrode 300 includes such defects, and thus the electrode may be deteriorated due to local side reactions between the electrolyte (not shown) and the electrode active material layer 100 or between the electrolyte (not shown) and the electrode collector 200 due to such defects. Therefore, the cycle characteristics, such as the life characteristics, of a battery employing such a conventional electrode 300 may be degraded.
[0100] 3A and 3B, an electrode 300 according to the present disclosure includes an electrode active material layer 100 including an electrode active material and a binder, and including a plurality of through-holes TH; an electrode current collector 200 disposed between both surfaces 100A and 100B of the electrode active material layer 100; and interlayers 250, 250a, and 250b disposed between the electrode active material layer 100 and the electrode current collector 200, in which the electrode active material layer 100 is a free-standing film, the electrode active material layer 100 includes through-holes TH extending to the interlayer 250, and a diameter d of one end of the through-holes TH in contact with the interlayer 250 is 1. b The diameter d of the other end of the through hole TH exposed on the surface of the electrode active material layer 100 is a The diameter d of one end of the through hole TH that contacts the intermediate layer 250 is even larger than the b The diameter d of the other end of the through hole TH exposed on the surface of the electrode active material layer 100 is a As a result, the electrode active material layer 100 has a larger contact area with the electrolyte (not shown) inside the electrode active material layer 100, and therefore, imbalance in current density between the surface of the electrode active material layer and the inside of the electrode active material layer can be effectively prevented. b and d a The ratio of d a :d b is also a 1:1 excess. For example, d a :d b can also be 1:1.01~2, 1:1.01~1.5, or 1:1.01~1.1.
[0101] 4, in the electrode 300 according to the present disclosure, the electrode active material layer 100 includes an electrode active material layer 100 including an electrode active material and a binder; and an electrode current collector 200 disposed between both sides 100A, 100B of the electrode active material layer 100; and the electrode active material layer 100 includes a plurality of through-holes TH. The electrode active material layer 100 includes a plurality of through-holes TH having a given diameter d1. The thickness T1 of the electrode active material layer 100 included in the electrode 300 is the sum of thicknesses Ta, Tb of the electrode active material layers 100a, 100b disposed on both sides of the electrode current collector 200, respectively. The cross section of FIG. 4 corresponds to FIG. 1A.
[0102] 5, in the electrode 300 according to the present disclosure, the electrode active material layer 100 includes a first surface S1 and a second surface S2 opposing the first surface, a first side surface SS1 connected to longitudinal ends of the first surface S1 and the second surface S2 and a second side surface SS2 facing the first side surface, a third side surface SS3 connected to widthwise ends of the first surface S1 and the second surface S2 and a fourth side surface SS4 facing the third side surface. The electrode active material layer 100 includes a plurality of through-holes TH having a diameter d1. The thickness T1 of the electrode active material layer 100 included in the electrode 300 is the sum of thicknesses Ta and Tb of the electrode active material layers 100a and 100b disposed on both sides of the electrode current collector 200, respectively.
[0103] 5, the electrode active material layer 100 has a first area A1 defined by a first longitudinal distance L1 and a first widthwise distance W1, the electrode current collector 200 is disposed between a first surface S1 and a second surface S2, and the electrode current collector 200 has a second area A2 defined by a second longitudinal distance L2 and the second widthwise distance W2, and the second area A2 of the electrode current collector 200 is substantially equal to the first area A1 of the electrode active material layer 100. For example, the second area A2 of the electrode current collector 200 is 100% of the first area A1 of the electrode active material layer 100.
[0104] 5, the electrode current collector 200 further includes a tap TB extending to the outside of the electrode active material layer 100 through at least two selected sides from among a first side surface SS1, a second side surface SS2, a third side surface SS3, and a fourth side surface SS4. For example, the tap TB extends to the outside of the electrode active material layer 100 through the first side surface SS1 and / or the second side surface SS2. Alternatively, the tap TB extends to the outside of the electrode active material layer 100 through the third side surface SS3 and / or the fourth side surface SS4. Since the tap TB extends to the outside of the electrode active material layer 100 through one side surface or two opposing sides, short-circuiting due to adjacent taps TB may be prevented.
[0105] In the electrode according to the present disclosure, for example, an electrode current collector may be disposed only on a portion of one side of the electrode active material layer or only on a portion between both sides. By disposing an electrode current collector on a portion of one side of the electrode active material layer or only on a portion between both sides, the volume occupied by the electrode current collector in the electrode is reduced. Thus, the energy density of a lithium battery including an electrode having such a reduced electrode current collector volume is improved. Thus, a lithium battery providing improved output can be provided.
[0106] The electrode may include a first domain including an electrode active material layer and an electrode current collector disposed on or between one side of the electrode active material layer, and a second domain including the electrode active material layer and on or between one side of the electrode active material layer where the electrode current collector is free, and the first domain and the second domain include a plurality of through holes.
[0107] The second region on one side or between both sides of the electrode active material layer, where the electrode current collector is free, includes a plurality of through holes, which increases the flexibility of the electrode and further improves the high rate characteristics of the lithium battery.The high rate characteristics of the lithium battery can be further improved by additionally disposing through holes in the first domain including the electrode current collector disposed on one side or between both sides of the electrode active material layer.
[0108] An electrode in which an electrode current collector is disposed on only a portion of one surface of an electrode active material layer or only a portion between both surfaces is also, for example, a stretchable electrode. A stretchable electrode can be stretched in one or more directions selected from the longitudinal direction and the width direction of the stretchable electrode. A stretchable electrode can be stretched, for example, by 5% or more, 10% or more, 15% or more, 20% or more, 30% or more, 40% or more, or 50% or more in the longitudinal direction of the electrode. A stretchable electrode can be stretched, for example, by 5% to 100%, 10% to 100%, 15% to 100%, 20% to 100%, 30% to 100%, 40% to 100%, or 50% to 100% in the longitudinal direction of the electrode. The stretchable electrode can be stretched, for example, by 5% or more, 10% or more, 15% or more, 20% or more, 30% or more, 40% or more, or 50% or more in the width direction of the electrode. The stretchable electrode can be stretched, for example, by 5% to 100%, 10% to 100%, 15% to 100%, 20% to 100%, 30% to 100%, 40% to 100%, or 50% to 100% in the width direction of the electrode. The stretchable electrode does not develop cracks or the like even after stretching, and recovers to its initial length, and does not develop cracks or the like even if such a cycle is repeated multiple times. The stretchable electrode includes an electrode current collector only in the first region and does not include an electrode current collector in the second region, so that the second region can be easily stretched. In addition, since the electrode current collector is disposed only on a portion of the electrode, even if a plurality of electrodes are stacked and then wound or folded, detachment of the electrode active material layer and the electrode current collector is minimized, and various types of lithium batteries can be easily implemented.
[0109] 6A, the electrode 300 according to the present disclosure includes an electrode active material layer 100 including an electrode active material and a binder; and an electrode current collector 200 disposed between both sides 100A and 100B of the electrode active material layer 100; and the electrode active material layer 100 includes a plurality of through-holes TH. The first region D1 includes the electrode active material layer 100 and includes the electrode current collector 200 disposed between both sides 100A and 100B of the electrode active material layer 100. That is, the first region D1 includes the electrode current collector 200 and the electrode active material layer 100 disposed on both sides of the electrode current collector in the electrode thickness direction. The second region D2 includes the electrode active material layer 100 and does not include the electrode current collector 200 disposed between both sides of the electrode active material layer 100. That is, the second region D2 is the remaining electrode active material layer region excluding the first region D1. In FIG. 6A, the division of the first region D1 and the second region D2 is, for example, made of a virtual dotted line arranged along the electrode thickness direction. The first region D1 and the second region D2 include a plurality of through-holes TH having an arbitrary diameter d1. The first region D1 and the second region D2 included in the electrode 300 have substantially the same thickness T1. The first region D1 and the second region D2 include a plurality of through-holes, and an electrolyte, i.e., lithium ions, are transmitted through the plurality of through-holes. Therefore, the first region D1 and the second region D2 are regions including an ion-conducting channel. Therefore, the electrode 300 including the first region D1 and the second region D2 is an electrode with an ion-conducting channel.
[0110] 6B, the electrode 300 according to the present disclosure includes an electrode active material layer 100 including an electrode active material and a binder; and an electrode current collector 200 disposed on a portion of one surface 100A of the electrode active material layer 100; and the electrode active material layer 100 includes a plurality of through-holes TH. The first region D1 includes the electrode active material layer 100 and includes the electrode current collector 200 disposed on one surface 100A of the electrode active material layer 100. That is, the first region D1 includes the electrode current collector 200 and the electrode active material layer 100 disposed on one surface of the electrode current collector in the electrode thickness direction. The second region D2 includes the electrode active material layer 100 and does not include the electrode current collector 200 disposed on one surface of the electrode active material layer 100. That is, the second region D2 is the remaining electrode active material layer region excluding the first region D1. In Fig. 6B, the division of the first region D1 and the second region D2 is, for example, made of imaginary dotted lines arranged along the electrode thickness direction. The first region D1 and the second region D2 include a plurality of through-holes TH having an arbitrary diameter d1. The first region D1 and the second region D2 included in the electrode 300 have substantially the same thickness T1.
[0111] 7, in the electrode 300 according to the present disclosure, the electrode active material layer 100 includes an electrode active material layer 100 including an electrode active material and a binder; and an electrode current collector 200 disposed between both sides of the electrode active material layer 100; and the electrode active material layer 100 includes a plurality of through-holes TH. The first region D1 includes the electrode active material layer 100 and includes the electrode current collector 200 disposed between both sides of the electrode active material layer 100. That is, the first region D1 includes the electrode current collector 200 and the electrode active material layer 100 disposed on both sides of the electrode current collector in the electrode thickness direction. The second region D2 includes the electrode active material layer 100 and does not include the electrode current collector 200 disposed between both sides of the electrode active material layer 100. That is, the second region D2 is the remaining electrode active material layer region excluding the first region D1. The first region D1 and the second region D2 include a plurality of through-holes TH having a diameter d1. The first region D1 and the second region D2 of the electrode 300 have substantially the same thickness T1. The cross section of FIG. 7 corresponds to FIG. 6A.
[0112] 8, in the electrode 300 according to the present disclosure, the electrode active material layer 100 includes a first surface S1 and a second surface S2 opposing the first surface, a first side SS1 connected to longitudinal ends of the first surface S1 and the second surface S2, a second side SS2 facing the first side, a third side SS3 connected to widthwise ends of the first surface S1 and the second surface S2, and a fourth side SS4 facing the third side. The first region D1 is defined by the first surface S1, the second surface S2, the third side SS3, and the fourth side SS4, and includes the electrode current collector 200 disposed between the first surface S1 and the second surface S2. The second region D2 is defined by the first surface S1, the second surface S2, the third side SS3, and the fourth side SS4, and is a region in which the electrode current collector 200 is free between the first surface S1 and the second surface S2. The first region D1 and the second region D2 include a plurality of through-holes TH each having a diameter d1. The first region D1 and the second region D2 of the electrode 300 have substantially the same thickness T1.
[0113] 8, the electrode active material layer 100 has a first area A1 defined by a first longitudinal distance L1 and a first widthwise distance W1, the electrode current collector 200 is disposed between a first surface S1 and a second surface S2, the electrode current collector 200 has a second area A2 defined by a second longitudinal distance L2 and the second widthwise distance W2, and the second area A2 of the electrode current collector 200 is 90% or less of the first area A1 of the electrode active material layer 100. For example, the second area A2 of the electrode current collector 200 is 1 to 90%, 5 to 80%, 10 to 70%, 10 to 60%, 10 to 50%, 10 to 40%, 10 to 30%, or 10 to 20% of the first area A1 of the electrode active material layer 100. In the electrode 300, the area of the electrode current collector 200 is smaller than that of the electrode active material layer 100, so that the energy density of a lithium battery employing such an electrode 300 is further improved.
[0114] 8, the second longitudinal distance L2 of the electrode current collector 200 is 90% or less, 80% or less, 70% or less, 60% or less, 50% or less, 40% or less, 30% or less, or 20% or less of the first longitudinal distance L1 of the electrode active material layer 100. For example, the second longitudinal distance L2 of the electrode current collector 200 is 1 to 90%, 5 to 80%, 10 to 70%, 10 to 60%, 10 to 50%, 10 to 40%, 10 to 30%, or 10 to 20% of the first longitudinal distance L1 of the electrode active material layer 100. Differently from there, the second widthwise distance W2 of the electrode current collector 200 is 100% or less, 90% or less, 80% or less, 70% or less, 60% or less, 50% or less, 40% or less, 30% or less, or 20% or less of the first widthwise distance W1 of the electrode active material layer 100. For example, the second widthwise distance W2 of the electrode current collector 200 is 1 to 100%, 5 to 90%, 10 to 80%, 10 to 70%, 10 to 60%, 10 to 50%, 10 to 40%, 10 to 30%, or 10 to 20% of the first widthwise distance W1 of the electrode active material layer 100. For example, the second longitudinal distance L2 of the electrode current collector 200 is 90% or less, or 50% of the first longitudinal distance L1 of the electrode active material layer 100, and the second widthwise distance W2 of the electrode current collector 200 is 90% or less, or 50% or less of the first widthwise distance W1 of the electrode active material layer 100. When the electrode current collector 200 has such a size, the energy density of a lithium battery employing such an electrode 300 is further improved.
[0115] 8, the electrode current collector 200 is exposed on three or less of the first side surface SS1, the second side surface SS2, the third side surface SS3, and the fourth side surface SS4 of the electrode active material layer 100. Since the electrode current collector 200 has a smaller area than the electrode active material layer 100, it is exposed on some of the sides of the electrode active material layer 100, for example, three, two, or one side. As the number of sides of the electrode active material layer 100 to which the electrode current collector 200 is exposed decreases, the possibility of a short circuit occurring through the side surface of the electrode active material layer 100 decreases, and the stability of a lithium battery using such an electrode 300 is improved.
[0116] 8, the electrode current collector 200 further includes a tap TB extending to the outside of the electrode active material layer 100 through at least two selected sides from among a first side surface SS1, a second side surface SS2, a third side surface SS3, and a fourth side surface SS4. For example, the tap TB extends to the outside of the electrode active material layer 100 through the first side surface SS1 and / or the second side surface SS2. Alternatively, the tap TB extends to the outside of the electrode active material layer 100 through the third side surface SS3 and / or the fourth side surface SS4. Since the tap TB extends to the outside of the electrode active material layer 100 through one side surface or two opposing sides, short-circuiting due to adjacent taps TB may be prevented.
[0117] 9A to 9F, in the electrode 300 according to the present disclosure, the electrode current collector 200 disposed in a portion between both sides of the electrode active material layer 100 may have various shapes and be disposed in various positions within the electrode active material layer 100. In FIG. 9A to 9F, the region in which the electrode current collector 200 is disposed in the electrode active material layer 100 defined by the first side SS1, the second side SS2, the third side SS3, and the fourth side SS4 corresponds to the first region, and the region in which the electrode current collector 200 is not disposed corresponds to the second region. The electrode active material layer 100 includes a plurality of through-holes TH having a diameter d1. The first region D1 is a region including the electrode active material layer 100 and the electrode current collector 200 disposed on one side or between both sides of the electrode active material layer 100. That is, the first region D1 is a region including the electrode current collector 200 and the electrode active material layer 100 disposed on one side or both sides of the electrode current collector in the electrode thickness direction. The second region D2 is a region that includes the electrode active material layer 100 and does not include the electrode current collector 200 disposed on one side or between both sides of the electrode active material layer 100. In other words, the second region D2 is the remaining electrode active material layer region excluding the first region D1.
[0118] 9A, the electrode current collector 200 is disposed in a portion of the electrode active material layer 100 defined by a first side surface SS1, a second side surface SS2, a third side surface SS3, and a fourth side surface SS4. The electrode current collector 200 includes a tab TB exposed on the first side surface SS1 of the electrode active material layer 100 and extending to the outside of the electrode active material layer 100 through the first side surface SS1. The width direction distance W of the tab T is 100% of the second width direction distance W2 of the electrode current collector 200.
[0119] 9B, the electrode current collector 200 is disposed in a portion of the electrode active material layer 100 defined by a first side surface SS1, a second side surface SS2, a third side surface SS3, and a fourth side surface SS4. The electrode current collector 200 includes a tap TB exposed on the first side surface SS1, the second side surface SS2, and the third side surface SS3 of the electrode active material layer 100 and extending to the outside of the electrode active material layer 100 through the first side surface SS1. A second longitudinal distance L2 of the electrode current collector 200 is 100% of a first longitudinal distance L1 of the electrode active material layer 100. A second widthwise distance W2 of the electrode current collector 200 is less than 100% of a first widthwise distance W1 of the electrode active material layer 100.
[0120] 9C, the electrode current collector 200 is disposed in a portion of the electrode active material layer 100 defined by a first side surface SS1, a second side surface SS2, a third side surface SS3, and a fourth side surface SS4. The electrode current collector 200 includes a tap TB exposed on the first side surface SS1, the second side surface SS2, and the fourth side surface SS4 of the electrode active material layer 100 and extending to the outside of the electrode active material layer 100 through the first side surface SS1.
[0121] 9D, the electrode current collector 200 is disposed in a portion of the electrode active material layer 100 defined by a first side surface SS1, a second side surface SS2, a third side surface SS3, and a fourth side surface SS4. The electrode current collector 200 includes a tab TB exposed on the first side surface SS1 of the electrode active material layer 100 and extending to the outside of the electrode active material layer 100 through the first side surface SS1. The width direction distance W of the tab T is less than 100% of the second width direction distance W2 of the electrode current collector 200.
[0122] 9E and 9F, the electrode current collectors 200 are disposed in a portion of the electrode active material layer 100 defined by a first side surface SS1, a second side surface SS2, a third side surface SS3, and a fourth side surface SS4. The electrode active material layer 100 includes a plurality of electrode current collectors 200 disposed at intervals along the length or width direction. The electrode current collectors 200 are, for example, spaced apart at equal intervals or at different intervals. The electrode current collectors 200 form an angle of 45° or less, 40° or less, 30° or less, 25° or less, 20° or less, 15° or less, 10° or less, or 5° or less with one or more surfaces of the electrode active material layer 100, for example, the first surface S1 and the second surface S2. For example, the electrode current collectors 200 form an angle of 0° with one surface of the electrode active material layer 100, i.e., are disposed parallel to one surface of the electrode active material layer 100. The multiple electrode current collectors 200 are disposed, for example, between the first surface S1 and the second surface S2 of the electrode active material layer 100.
[0123] A lithium battery according to another embodiment includes a positive electrode; a negative electrode; and an electrolyte disposed between the positive electrode and the negative electrode, at least one of the positive electrode and the negative electrode being the above-described electrode.
[0124] A lithium battery including an electrode according to the present disclosure provides improved cycle characteristics, such as improved high rate characteristics and improved life characteristics, by employing an electrode in which defects are prevented on the electrode current collector surface and the electrode active material layer includes through-holes.
[0125] 10 to 12, the lithium battery 1000 includes a positive electrode 300a, a negative electrode 300b, and an electrolyte 400 disposed between the positive electrode 300a and the negative electrode 300b, where at least one of the positive electrode 300a and the negative electrode 300b is the above-mentioned electrode. The lithium battery 1000 includes an electrode assembly 500. The electrode active material layers 100, 100a, 100b included in the positive electrode 300a and / or the negative electrode 300b include a plurality of through-holes TH having a diameter d1.
[0126] 10, the electrode assembly 500 includes a plurality of positive electrodes 300a stacked in the thickness direction, a plurality of negative electrodes 300b disposed between the plurality of positive electrodes 300a, and a plurality of electrolytes 400 disposed between the plurality of positive electrodes 300a and the plurality of negative electrodes 300b. The positive electrode 300a includes a positive electrode current collector 200a, and the positive electrode current collector 200a includes a positive electrode tap Ta extending to the outside of the positive electrode active material layer 100a through one side SS5 of the electrode assembly 500, and the negative electrode 300b includes a negative electrode current collector 200b, and the negative electrode current collector 200b includes a negative electrode tap Tb extending to the outside of the negative electrode active material layer 100b through the other side SS6 opposing the one side SS5 of the electrode assembly 500. The lithium battery 1000 includes the electrode assembly 500. Since the positive electrode tap Ta and the negative electrode tap Tb are disposed on opposite sides of each other, the possibility of a short circuit between them is reduced.
[0127] 11, the electrode assembly 500 includes a plurality of positive electrodes 300a stacked in the thickness direction, a plurality of negative electrodes 300b disposed between the plurality of positive electrodes 300a, and a plurality of electrolytes 400 disposed between the plurality of positive electrodes 300a and the plurality of negative electrodes 300b. The positive electrode 300a includes a positive electrode current collector 200a, and the positive electrode current collector 200a includes a positive electrode tap Ta extending to the outside of the positive electrode active material layer 100a through one side surface SS5 of the electrode assembly 500, and the negative electrode 300b includes a negative electrode current collector 200b, and the negative electrode current collector 200b includes a negative electrode tap Tb extending to the outside of the negative electrode active material layer 100b through the same one side surface SS5 of the electrode assembly 500. The lithium battery 1000 includes the electrode assembly 500.
[0128] 12, a plurality of positive electrode tabs Ta are arranged at regular intervals in the thickness direction on one side SS5, and a plurality of negative electrode tabs Tb are arranged at regular intervals in the thickness direction. The plurality of positive electrode tabs Ta are arranged adjacent to one widthwise side SS7 of the electrode assembly 500, and the plurality of negative electrode tabs Tb are arranged adjacent to the other widthwise side SS8 of the electrode assembly 500. FIG 12 is a front view of one side SS5 of FIG 11. A lithium battery 1000 includes an electrode assembly 500.
[0129] The positive electrode tab Ta and the negative electrode tab Tb are disposed on the same side, but are spaced apart from each other in the width direction, reducing the possibility of a short circuit between them.
[0130] Although not shown in the drawings, the electrode assembly includes a plurality of positive electrodes stacked in the thickness direction; a plurality of negative electrodes respectively disposed between the plurality of positive electrodes; and a plurality of electrolytes respectively disposed between the plurality of positive electrodes and the negative electrodes. In this case, one or more positive electrodes and / or negative electrodes having a plurality of through holes are disposed between positive electrodes and / or negative electrodes not having a plurality of through holes, so that the positive electrodes and / or negative electrodes having a plurality of through holes function as a kind of ion conductive layer or ion conductive channel, thereby further improving cycle characteristics such as high rate characteristics of a lithium battery including the electrode assembly.
[0131] The lithium battery 1000 is, for example, a lithium ion battery, a lithium solid-state battery, or a lithium air battery.
[0132] According to another embodiment, a method for manufacturing an electrode is provided.
[0133] A method for manufacturing an electrode according to the present disclosure includes the steps of dry-mixing an electrode active material, a dry conductive material, and a dry binder to prepare a mixture; rolling or extruding the dry mixture to prepare a free-standing film; introducing a plurality of through-holes into the free-standing film; providing an electrode current collector and disposing an intermediate layer on one or both sides of the electrode current collector; and providing the free-standing film on one or both sides of the electrode current collector and disposing an electrode active material layer thereon.
[0134] The electrode manufactured by such a manufacturing method has improved uniformity of the binding force distribution in the electrode, thereby improving the performance of a lithium battery using such an electrode. Also, the electrode manufactured by such a manufacturing method has an electrode active material layer containing a plurality of through holes, thereby improving the cycle characteristics of a lithium battery using such an electrode.
[0135] First, the electrode active material, the dry conductive material, and the dry binder are dry-mixed to prepare a dry mixture. Dry mixing means mixing without a process solvent. The process solvent is, for example, a solvent used in the preparation of an electrode slurry. The process solvent is, for example, water, NMP, etc., but is not limited thereto, and is not particularly limited as long as it is a process solvent used in the preparation of an electrode slurry. The dry mixing may be performed at a temperature of, for example, 25 to 65°C using a stirrer. The dry mixing may be performed at a rotation speed of, for example, 10 to 10,000 rpm, or 100 to 10,000 rpm using a stirrer. The dry mixing may be performed for, for example, 1 to 200 minutes, or 1 to 150 minutes using a stirrer.
[0136] The dry mixing may be performed, for example, one or more times. First, the electrode active material, the dry conductive material, and the dry binder may be primarily dry mixed to prepare a first mixture. The primary dry mixing may be performed, for example, at a temperature of 25 to 65° C. and a rotation speed of 2000 rpm or less for a time period of 15 minutes or less. The primary dry mixing may be performed, for example, at a temperature of 25 to 65° C. and a rotation speed of 500 to 2000 rpm for a time period of 5 to 15 minutes. The electrode active material, the dry conductive material, and the dry binder may be uniformly mixed by the primary dry mixing. Then, the electrode active material, the dry conductive material, and the dry binder may be secondarily dry mixed to prepare a second mixture. The secondary dry mixing may be performed, for example, at a temperature of 25 to 65° C. and a rotation speed of 4000 rpm or more for a time period of 10 minutes or more. The secondary dry mixing may be carried out, for example, at a temperature of 25 to 65° C. and a rotation speed of 4000 to 9000 rpm for 10 to 60 minutes. A dry mixture containing a fibrillated dry binder is obtained by the secondary dry mixing.
[0137] The agitator is, for example, a kneader. The agitator includes, for example, a chamber; one or more rotating shafts disposed inside the chamber and rotating; and a blade rotatably coupled to the rotating shaft and disposed in the longitudinal direction of the rotating shaft. The blade may be, for example, one or more selected from a ribbon blade, a sigma blade, a jet (Z) blade, a dispersion blade, and a screw blade. By including the blade, the electrode active material, the dry conductive material, and the dry binder can be effectively mixed without a solvent to produce a dough-like mixture.
[0138] Examples of the dry conductive material include carbon black, graphite particles, natural graphite, artificial graphite, acetylene black, ketjen black, carbon fibers, carbon nanotubes, metal powders or metal fibers or metal tubes such as copper, nickel, aluminum, and silver, and conductive polymers such as polyphenylene derivatives, but are not limited thereto. Any material used as a conductive material in the art can be used. The conductive material is, for example, a carbon-based conductive material. For more specific details regarding the dry conductive material, please refer to the electrode section described above.
[0139] Examples of the dry binder include vinylidene fluoride / hexafluoropropylene copolymer, polyvinylidene fluoride, polyacrylonitrile, polymethyl methacrylate, polytetrafluoroethylene (PTFE), a mixture of the above-mentioned polymers, styrene butadiene rubber polymers, etc., and examples of the solvent include, but are not limited to, N-methylpyrrolidone (NMP), acetone, water, etc., and any solvent that can be used in the art can be used. For more specific details regarding the dry binder, please refer to the electrode section described above.
[0140] A plasticizer or pore former may further be added to the dry mixture to form pores within the electrode plate.
[0141] The contents of the electrode active material, dry conductive material, and dry binder used in preparing the dry mixture are as described above in the electrode section.
[0142] The positive electrode uses a positive electrode active material as an electrode active material. The positive electrode active material is described in the electrode section above. The negative electrode uses a negative electrode active material as an electrode active material. The negative electrode active material is described in the electrode section above.
[0143] The resulting dry mixture is then rolled or extruded to prepare a self-standing film.
[0144] The produced mixture can be, for example, put into an extrusion device and extruded into a sheet. The pressure during extrusion is, for example, 4 MPa to 100 MPa, or 10 MPa to 90 MPa. The obtained mixture is also in a sheet form. The thickness and shape of the free-standing film can be selected depending on the required charge / discharge characteristics, shape, etc. of the battery.
[0145] Next, a plurality of through holes are introduced into the free-standing film.
[0146] The through-holes may be uniformly formed throughout the free-standing film as shown in Figures 4 and 5. The method of introducing the through-holes may be, but is not limited to, laser drilling, punching, a roller with an uneven surface, etc., and any method and / or device for introducing through-holes in the art may be used. The diameter of the through-holes, the distance between the through-holes (pitch), etc. may be selected depending on the required charge / discharge characteristics and shape of the battery.
[0147] An electrode current collector is then provided and an interlayer is disposed on one or both sides of the electrode current collector.
[0148] The electrode current collector includes an interlayer disposed on one or both sides of the electrode current collector. For details of the interlayer, see the electrode portion described above.
[0149] The material of the electrode current collector is the same as that of the electrode current collector described above. The positive electrode current collector is, for example, an aluminum foil. The negative electrode current collector is, for example, a copper foil.
[0150] The intermediate layer is coated on one or both sides of the electrode current collector by dry or wet coating, and the specific coating method is referred to the above-mentioned electrode current collector part including the intermediate layer.
[0151] Next, the free-standing film is provided on one or both sides of the electrode current collector, and an electrode active material layer is disposed thereon.
[0152] A free-standing film is disposed on one or both sides of an electrode current collector, and laminated to produce an electrode including an electrode active material layer disposed on one or both sides of the electrode current collector. An intermediate layer is disposed on one or both sides of the electrode active material layer, and since the intermediate layer contains a binder, it can have adhesive strength, so that lamination of the electrode current collector and the free-standing film can be easily performed with low pressure.
[0153] The lamination may be performed, for example, by rolling. The rolling may be, for example, a roll press, a plate press, or the like, but is not necessarily limited thereto. The pressure during rolling is 50% or less, 10% or less, or 1% or less of the pressure applied during the wet electrode manufacturing. The pressure during rolling is, for example, 0.01 to 10.0 ton / cm, or 0.1 to 10.0 ton / cm. If the pressure during rolling is excessively increased, cracks may occur in the thin-film electrode current collector. If the pressure during rolling is excessively low, the bonding strength between the electrode current collector and the electrode active material layer is low.
[0154] The lithium battery is manufactured, for example, by the following exemplary method, but is not necessarily limited to such a method and may differ depending on the required conditions.
[0155] First, one or both of the positive electrode and the negative electrode are manufactured by the above-mentioned electrode manufacturing method. Alternatively, when one of the positive electrode and the negative electrode is manufactured by the above-mentioned electrode manufacturing method, the other electrode may be manufactured by a wet manufacturing method. For example, the other electrode may be manufactured by manufacturing an electrode slurry including an electrode active material, a conductive material, a binder, and a solvent, coating the electrode slurry on an electrode current collector, and drying the electrode slurry. The conductive material and binder included in the electrode manufactured by the wet method may be selected from the conductive material and binder used in the above-mentioned dry electrode manufacturing method.
[0156] Next, a separator to be inserted between the positive electrode and the negative electrode is prepared.
[0157] The separator may be any separator that is generally used in lithium batteries. For example, a separator that has low resistance to ion movement of the electrolyte and has excellent electrolyte moisture-absorbing ability is used. The separator is, for example, selected from glass fiber, polyester, Teflon (registered trademark), polyethylene, polypropylene, polyvinylidene fluoride, polytetrafluoroethylene (PTFE), or a combination thereof, and is in the form of a nonwoven or woven fabric. For example, a rollable separator such as polyethylene or polypropylene is used for a lithium ion battery, and a separator with excellent organic electrolyte impregnation ability is used for a lithium ion polymer battery.
[0158] The separator is manufactured by the following exemplary method, but is not necessarily limited to such method, and may be adjusted according to the required conditions.
[0159] First, a separator composition is prepared by mixing a polymer resin, a filler, and a solvent. The separator composition is directly coated on the top of an electrode and dried to form a separator. Alternatively, the separator composition is cast on a support and dried, and the separator film is peeled off from the support and laminated on the top of an electrode to form a separator.
[0160] The polymer used in the manufacture of the separator is not particularly limited, and any polymer that is used as a binder for electrode plates can be used, such as vinylidene fluoride / hexafluoropropylene copolymer, polyvinylidene fluoride (PVDF), polyacrylonitrile, polymethyl methacrylate, or a mixture thereof.
[0161] The electrolyte is then prepared.
[0162] The electrolyte is, for example, an organic electrolyte solution, which is produced by dissolving a lithium salt in an organic solvent, for example.
[0163] The organic solvent can be any organic solvent used in the art. The organic solvent can be, for example, propylene carbonate, ethylene carbonate, fluoroethylene carbonate, butylene carbonate, dimethyl carbonate, diethyl carbonate, methyl ethyl carbonate, methyl propyl carbonate, ethyl propyl carbonate, methyl isopropyl carbonate, dipropyl carbonate, dibutyl carbonate, benzonitrile, acetonitrile, tetrahydrofuran, 2-methyltetrahydrofuran, γ-butyrolactone, dioxolane, 4-methyldioxolane, N,N-dimethylformamide, dimethylacetamide, dimethylsulfoxide, dioxane, 1,2-dimethoxyethane, sulfolane, dichloroethane, chlorobenzene, nitrobenzene, diethylene glycol, dimethyl ether, or a mixture thereof.
[0164] Any lithium salt may be used as long as it is used as a lithium salt in the art. For example, LiPF 6 , LiBF 4 , LiSbF 6 , LiAsF 6 , LiClO 4 , LiCF 3 SO 3 , Li(CF 3 SO 2) 2 N, LiC 4 F 9 SO 3 , LiAlO 2 , LiAlCl 4 , LiN(C x F 2x+1 SO 2 )(CyF 2y+1 SO 2 ) (where x and y are natural numbers), LiCl, LiI, or a mixture thereof.
[0165] Meanwhile, the electrolyte is a solid electrolyte. The solid electrolyte is, for example, boron oxide, lithium oxynitride, etc., but is not limited thereto, and any solid electrolyte used as a solid electrolyte in the art can be used. The solid electrolyte is formed on the negative electrode by, for example, a method such as sputtering, or a separate solid electrolyte sheet is laminated on the negative electrode. The solid electrolyte is, for example, an oxide-based solid electrolyte or a sulfide-based solid electrolyte.
[0166] 13, a lithium battery 1 according to an embodiment includes a positive electrode 3, a negative electrode 2, and a separator 4. The positive electrode 3, the negative electrode 2, and the separator 4 are wound or folded to form a battery structure 7. The formed battery structure 7 is housed in a battery case 5. An organic electrolyte is injected into the battery case 5, and the battery case 5 is sealed with a cap assembly 6 to complete the lithium battery 1. The battery case 5 has a cylindrical shape, but is not necessarily limited to such a shape and may have, for example, a rectangular shape, a thin film shape, etc.
[0167] Referring to FIG. 14, a lithium battery 1a according to an embodiment includes a positive electrode 3a, a negative electrode 2a, and a separator 4a. The separator 4a is disposed between the positive electrode 3a and the negative electrode 2a, and the positive electrode 3a, the negative electrode 2a, and the separator 4a are wound or folded to form a battery structure 7a. The formed battery structure 7a is housed in a battery case 5a. The battery structure 7a includes an electrode tab 8a that serves as an electrical path for inducing a current formed in the battery structure 7a to the outside. An organic electrolyte is injected into the battery case 5a and sealed to complete the lithium battery 1a. The battery case 5a is rectangular, but is not necessarily limited to such a shape and may be, for example, cylindrical or thin.
[0168] Referring to FIG. 15, a lithium battery 1b according to an embodiment includes a positive electrode 3b, a negative electrode 2b, and a separator 4b. The separator 4b is disposed between the positive electrode 3b and the negative electrode 2b to form a battery structure. The battery structure 7b is stacked in a bi-cell structure and then housed in a battery case 5b. The battery structure 7b includes an electrode tab 8b that serves as an electrical path for conducting a current generated in the battery structure 7b to the outside. An organic electrolyte is injected into the battery case 5b and sealed to complete the lithium battery 1b. The battery case 5b is rectangular, but is not necessarily limited to such a shape and may be, for example, cylindrical or thin film.
[0169] The pouch-type lithium battery corresponds to the lithium batteries of FIGS. 14 and 15, in which a pouch is used as a battery case. The pouch-type lithium battery includes one or more battery structures. A separator is disposed between a positive electrode and a negative electrode to form a battery structure. The battery structures are stacked in a bi-cell structure, impregnated with an organic electrolyte, and housed and sealed in a pouch to complete the pouch-type lithium battery. For example, although not shown, the above-mentioned positive electrode, negative electrode, and separator are simply stacked and housed in a pouch in the form of an electrode assembly, or wound into a jelly-roll-like electrode assembly or folded and housed in a pouch. Then, an organic electrolyte is injected into the pouch and sealed to complete the lithium battery.
[0170] Lithium batteries have excellent life characteristics and high rate characteristics, and are therefore used, for example, in electric vehicles (EVs), hybrid vehicles such as plug-in hybrid electric vehicles (PHEVs), and fields requiring large amounts of power storage, such as electric bicycles and power tools.
[0171] A plurality of lithium batteries are stacked to form a battery module, and the plurality of battery modules form a battery pack. Such a battery pack can be used in all devices requiring high capacity and high output, such as notebook computers, smartphones, and electric vehicles. The battery module includes, for example, a plurality of batteries and a frame that holds them. The battery pack includes, for example, a plurality of battery modules and bus bars that connect the batteries. The battery module and / or the battery pack may further include a cooling device. The plurality of battery packs are regulated by a battery management system. The battery management system includes a battery pack and a battery control device connected to the battery pack.
[0172] The present invention will be described in more detail with reference to the following examples and comparative examples. However, the examples are merely for the purpose of illustrating the present invention and are not intended to limit the scope of the present invention.
[0173] (Manufacture of lithium batteries (halfcell)) Example 1: Dry positive electrode, full current collector arrangement, multiple through holes, through hole area 1%, through hole diameter 1 μm (Production of positive electrodes) LiNi 0.91 Co 0.05 Al 0.04 O 2 A positive electrode active material (hereinafter referred to as NCA91), a carbon conductive material (Denka Black), and polytetrafluoroethylene (PTFE) were charged into a blade mixer in a weight ratio of 93:4:3, and then primary dry-mixed at 25°C and 1000 rpm for 10 minutes to prepare a first mixture in which the active material, conductive material, and binder were uniformly mixed.
[0174] Then, in order to promote fiberization of the binder, the first mixture was mixed again at 25°C and 5000 rpm for 20 minutes to prepare a second mixture. No separate solvent was used in the preparation of the first and second mixtures.
[0175] The prepared second mixture was put into an extruder and extruded to prepare a sheet-shaped positive electrode active material layer self-standing film under a pressure of 50 MPa.
[0176] A plurality of through holes were formed in the positive electrode active material layer free-standing film using a laser puncher, the through holes being regularly and periodically spaced apart from each other at regular intervals.
[0177] The through-holes had a diameter of 1 μm and a circular shape, and were formed in the vertical direction to the surface of the positive electrode active material layer free-standing film.
[0178] The ratio of the area occupied by the through holes to the entire area of one surface of the positive electrode active material layer was 1%.
[0179] A positive electrode current collector was prepared in which a carbon layer was disposed as an interlayer on both sides of a 12 μm thick aluminum thin film.
[0180] The carbon layer was prepared by coating a composition containing a carbon conductive material (Denka black) and polyvinylidene fluoride (PVDF) on an aluminum thin film and then drying it. The carbon layer disposed on one side of the aluminum thin film had a thickness of about 1 μm.
[0181] A first positive electrode active material layer free-standing film was disposed, a positive electrode current collector was disposed on the first positive electrode active material layer free-standing film, and a second positive electrode active material layer free-standing film was disposed on the other side of the positive electrode current collector to prepare a laminate having a positive electrode active material layer / carbon layer / aluminum / carbon layer / positive electrode active material layer structure. The width and length of the positive electrode current collector were the same as those of the positive electrode active material layer free-standing film.
[0182] The prepared laminate was rolled to produce a dry positive electrode with a uniform thickness. The pressure during rolling was 3.0 ton / cm. The thickness of the dry positive electrode was 200 μm. The thickness of the dry positive electrode was measured using a scanning electron microscope for the cross section of the dry positive electrode.
[0183] When a cross section of the manufactured positive electrode was observed using a scanning electron microscope, the surface of the positive electrode current collector adjacent to the bottom of the through-hole was flat, and no depressions or burrs were observed.
[0184] An intermediate layer was disposed on the bottom surface of the through-hole, and the intermediate layer separated the through-hole from the positive electrode current collector.
[0185] The ratio d1 / T1 of the diameter d1 of the through-hole to the thickness T1 of the electrode active material layer was 0.01.
[0186] (Coin cell manufacturing) The positive electrode prepared above was used, lithium metal was used as the counter electrode, and a PTFE separator and 1.3M LiPF 6 A coin cell was fabricated using a solution of ethylene carbonate (EC) + ethyl methyl carbonate (EMC) + dimethyl carbonate (DMC) (volume ratio 3:4:3) as the electrolyte.
[0187] Example 2: Dry positive electrode, full current collector arrangement, multiple through holes, through hole area 5%, through hole diameter 1 μm (Production of positive electrodes) A positive electrode was manufactured in the same manner as in Example 1, except that the ratio of the area occupied by the through holes to the total area of one side of the positive electrode active material layer was increased to 5%.
[0188] (Coin cell manufacturing) A coin cell was manufactured in the same manner as in Example 1, except that the prepared positive electrode was used.
[0189] Example 3: Dry positive electrode, full current collector arrangement, multiple through holes, through hole area 0.2%, through hole diameter 1 μm (Production of positive electrodes) A positive electrode was manufactured in the same manner as in Example 1, except that the ratio of the area of the through holes to the total area of one side of the positive electrode active material layer was reduced to 0.2%.
[0190] (Coin cell manufacturing) A coin cell was manufactured in the same manner as in Example 1, except that the prepared positive electrode was used.
[0191] Example 4: Dry positive electrode, full current collector arrangement, multiple through holes, through hole area 1%, through hole diameter 10 μm (Production of positive electrodes) Except for increasing the diameter of the through-hole to 10 μm, an illuminated electrode was manufactured in the same manner as in Example 1. The ratio d1 / T1 of the diameter d1 of the through-hole to the thickness T1 of the electrode active material layer was 0.1.
[0192] (Coin cell manufacturing) A coin cell was manufactured in the same manner as in Example 1, except that the prepared positive electrode was used.
[0193] Example 5: Dry positive electrode, full current collector arrangement, multiple through holes, through hole area 1%, through hole diameter 0.1 μm (Production of positive electrodes) Except for reducing the diameter of the through-hole to 0.1 μm, an electrochemical electrode was manufactured in the same manner as in Example 1. The ratio d1 / T1 of the diameter d1 of the through-hole to the thickness T1 of the electrode active material layer was 0.001.
[0194] (Coin cell manufacturing) A coin cell was manufactured in the same manner as in Example 1, except that the prepared positive electrode was used.
[0195] Example 6: Dry positive electrode, partial current collector arrangement, multiple through holes, through hole area 1%, through hole diameter 1 μm (Production of positive electrodes) An electrode was manufactured in the same manner as in Example 1, except that a positive electrode current collector having the same width as the free-standing film of the positive electrode active material layer and a length that is ¼ of the length of the free-standing film of the positive electrode active material layer was used.
[0196] The prepared dry positive electrode has a cross-sectional structure as shown in Fig. 1A. The prepared dry positive electrode has a structure including a first region D1 in which a positive electrode current collector is disposed between both sides of a positive electrode active material layer, and a second region D2 in which a positive electrode current collector is not disposed between both sides of a positive electrode active material layer. A plurality of through holes are disposed in both the first region D1 and the second region D2.
[0197] (Coin cell manufacturing) A coin cell was manufactured in the same manner as in Example 1, except that the prepared positive electrode was used.
[0198] Comparative Example 1: Wet positive electrode, full current collector arrangement, multiple through holes, through hole area 1%, through hole diameter 1 μm (Production of positive electrodes) LiNi 0.91 Co 0.05 Al 0.04 O 2 A mixture of a positive electrode active material, a carbon conductive material (Denka Black), and polyvinylidene fluoride (PVdF) in a weight ratio of 92:4:4 was mixed with N-methylpyrrolidone (NMP) in an agate mortar to prepare a slurry.
[0199] The slurry was bar coated on one entire surface of an aluminum current collector having a thickness of 15 μm, dried at room temperature, and then dried again under vacuum at 120° C. to form a first positive electrode active material layer.
[0200] Next, a second positive electrode active material layer was formed on the other surface of the aluminum current collector in the same manner to prepare a laminate. The laminate was rolled to prepare a positive electrode. The pressure during rolling was 4.0 ton / cm.
[0201] A plurality of through holes were formed on both sides of the fabricated positive electrode, the through holes being regularly and periodically spaced apart from each other using a laser puncher.
[0202] The through-holes had a diameter of 1 μm and a circular shape, and were formed in the vertical direction to the surface of the positive electrode active material layer free-standing film.
[0203] The ratio of the area occupied by the through holes to the total area of one surface of the positive electrode active material layer was 1%. The depth of the through holes was the same as the thickness of the positive electrode active material layer.
[0204] When the cross section of the manufactured positive electrode was measured using a scanning electron microscope, it was found that a part of the surface of the positive electrode current collector adjacent to the bottom of the through hole was depressed by the laser during the through hole formation process, resulting in the generation of burrs.
[0205] The produced positive electrode has a cross-sectional structure shown in FIG. 2A.
[0206] (Coin cell manufacturing) A coin cell was manufactured in the same manner as in Example 1, except that the prepared positive electrode was used.
[0207] Comparative Example 2: Wet positive electrode, all current collectors in place, no through holes (free) (Production of positive electrodes) An electrode was prepared in the same manner as in Comparative Example 1, except that the step of forming through-holes in the positive electrode active material layer was omitted.
[0208] (Coin cell manufacturing) A coin cell was manufactured in the same manner as in Example 1, except that the prepared positive electrode was used.
[0209] Comparative Example 3: Dry positive electrode, all current collectors in place, no through holes (free) (Production of positive electrodes) A dry positive electrode was prepared in the same manner as in Example 1, except that the step of forming through-holes in the positive electrode active material layer was omitted.
[0210] (Coin cell manufacturing) A coin cell was manufactured in the same manner as in Example 1, except that the prepared positive electrode was used.
[0211] Comparative Example 4: Dry positive electrode, all current collectors in place, no intermediate layer (free) A dry positive electrode was prepared in the same manner as in Example 1, except that a 12 μm thick aluminum thin film without a carbon layer was used as a positive current collector.
[0212] In the manufactured positive electrode, a part of the positive electrode active material layer was peeled off from the positive electrode current collector, so that it was impossible to manufacture a coin cell.
[0213] Evaluation Example 1: Evaluation of the vertical adhesion strength of the positive electrode active material layer (I) Using SAICAS (SAICAS EN-EX, Daipla Wintes, JAPAN), the binding properties of the positive electrode active material layers included in the positive electrodes prepared in Examples 1 to 6 and Comparative Examples 1 to 4 were analyzed.
[0214] The binding property analysis was performed on the first region where the positive electrode current collector was disposed between both sides of the positive electrode active material layer. The binding property analysis for the positive electrodes prepared in Examples 1 to 6 and Comparative Example 1 was performed on the region without through holes.
[0215] A constant speed analysis was performed using a 1mm wide diamond blade with a clearance angle of 10°, a rake angle of 20°, a shear angle of 45°, a horizontal velocity of 4μm / s, and a vertical velocity of 0.4μm / s to measure the vertical adhesion force (F V , Vertical Force) was measured.
[0216] First, a first constant-rate analysis was performed from a first position on the surface of the positive active material layer included in the first region to the surface of the positive current collector, and the positive active material layer was removed by moving the blade horizontally along the surface of the positive current collector. Then, a second constant-rate analysis was performed under the same conditions as the first constant-rate analysis at a position 10 μm back from the first position. The data measured in the second constant-rate analysis was used.
[0217] The vertical adhesive strength of the positive active material layer was measured, and the measured data was normalized to the adhesive strength graph area to obtain the vertical relative adhesive strength (F VR , Vertical Relative Force) was derived.
[0218] The vertical adhesive strength of the positive electrode active material layer was measured from a first point 5% away from the surface of the positive electrode active material layer to a second point 5% away from the surface of the electrode current collector with respect to the total thickness of the positive electrode active material layer. That is, data near the surface of the positive electrode active material layer and near the surface of the electrode current collector were excluded to prevent measurement errors.
[0219] The vertical relative adhesive strength (F VR , Vertical Relative Force) data, the vertical adhesive force (F VR The rate of change in the vertical relative force (VRF) was calculated. Some of the results are shown in Table 1 below.
[0220] [Formula 1] Vertical relative adhesive force (F VR , Vertical Relative Force) change rate = [(Maximum vertical relative force - Minimum vertical relative force) / Minimum vertical relative force] x 100
[0221] [Table 1]
[0222] As shown in Table 1, the rate of change in the vertical relative binding strength of the positive electrode active material layer included in the positive electrode of Example 1 was 300% or less.
[0223] Therefore, it was confirmed that the positive electrode active material layer had uniform binding strength and composition distribution regardless of the position in the thickness direction.
[0224] On the other hand, the rate of change in the vertical adhesive strength of the positive electrode active material layer contained in the positive electrode of Comparative Example 2 exceeded 300%.
[0225] Therefore, it was confirmed that the positive electrode active material layer had a binding strength and composition distribution that significantly changed depending on the position in the thickness direction.
[0226] Evaluation Example 2: Evaluation of the horizontal adhesion strength of the positive electrode active material layer (II) The binding properties of the positive electrode active material layers included in the positive electrodes prepared in Examples 1 to 6 and Comparative Examples 1 to 4 were analyzed using SAICAS (SAICAS EN-EX, Daipla Wintes, JAPAN).
[0227] The binding property analysis was performed on the first region where the positive electrode current collector was disposed between both sides of the positive electrode active material layer. The binding property analysis for the positive electrodes prepared in Examples 1 to 6 and Comparative Example 1 was performed on the region without through holes.
[0228] A constant speed analysis was performed using a 1mm wide diamond blade with a clearance angle of 10°, a rake angle of 20°, a shear angle of 45°, a horizontal velocity of 4μm / s, and a vertical velocity of 0.4μm / s to measure the horizontal adhesion force (F H , Horizontal Force) were measured.
[0229] First, a first constant-rate analysis was performed from a first position on the surface of the positive active material layer included in the first region to the surface of the positive current collector, and the positive active material layer was removed by moving the blade horizontally along the surface of the positive current collector. Then, a second constant-rate analysis was performed under the same conditions as the first constant-rate analysis at a position 10 μm back from the first position. The data measured in the second constant-rate analysis was used.
[0230] A first horizontal adhesive strength (F) at a first point 10% away from the surface of the positive electrode active material layer with respect to the entire thickness of the positive electrode active material layer H1 , Horizontal Force) and a second horizontal adhesion force (F H2 , Horizontal Force) were measured.
[0231] Some of the horizontal adhesion evaluation results are shown in Table 2 below. The ratio of the horizontal adhesion at the first point to the second point is defined by the following Equation 2.
[0232] [Formula 2] Ratio of horizontal adhesion force between the first and second points (%) = [F H2 / F H1 ] x 100
[0233] [Table 2]
[0234] As shown in Table 2, the positive electrode active material layer of Example 1 had a higher horizontal adhesive strength than the positive electrode active material layer of Comparative Example 2.
[0235] Therefore, it was confirmed that the positive electrode active material layer of Example 1 had a more uniform binding strength and composition distribution than the positive electrode active material layer of Comparative Example 2.
[0236] Evaluation example 3: Extendibility evaluation The positive electrodes prepared in Example 6 and Comparative Examples 1 to 3 were evaluated for extensibility using a universal test machine.
[0237] After fixing both ends of the positive electrode in the longitudinal direction, the positive electrode was stretched in the longitudinal direction by a distance equivalent to 10% of the positive electrode length, and then contracted to the initial length to determine the stretchability of the positive electrode.
[0238] The positive electrode produced in Example 6 did not have any cracks after stretching and shrinking, and it was therefore confirmed that the positive electrode of Example 6 was a stretchable positive electrode.
[0239] In the positive electrodes prepared in Comparative Examples 1 to 3, cracks occurred in the positive electrode current collector during the stretching process, and thus cracks occurred in the positive electrodes. Therefore, the positive electrodes prepared in Comparative Examples 1 to 3 could not be stretched.
[0240] Evaluation example 4: Room temperature charge / discharge characteristic evaluation The lithium batteries prepared in Examples 1 to 6 and Comparative Examples 1 to 4 were charged at a constant current of 0.1 C rate at 25° C. until the voltage reached 4.4 V (vs. Li), and then cut-off at a current of 0.05 C rate while maintaining 4.4 V in constant voltage mode. Then, they were discharged at a constant current of 0.1 C rate until the voltage reached 2.8 V (vs. Li) during discharge (formation cycle).
[0241] The lithium battery that had undergone the chemical cycle was charged at a constant current of 0.5C rate at 25°C until the voltage reached 4.4V (vs. Li). It was then discharged at a constant current of 0.5C rate until the voltage reached 2.8V (vs. Li) during discharge. This cycle was repeated under the same conditions up to the 100th cycle (100 times).
[0242] In all charge / discharge cycles, a 10-minute rest period was allowed after each charge / discharge cycle. Some of the results of the room temperature charge / discharge experiments are shown in Table 3 below. th The capacity retention rate during cycling is defined by the following formula 1.
[0243] [Formula 1] Capacity maintenance rate [%]=[100 th Discharge capacity in cycles / 1 st Discharge capacity in cycles x 100
[0244] [Table 3]
[0245] As shown in Table 3, the lithium batteries of Examples 1 to 6 had improved room temperature life characteristics compared to the lithium batteries of Comparative Examples 1 to 3.
[0246] Specifically, the lithium batteries of Examples 1 to 6, which employ positive electrodes having through-holes, have improved room temperature life characteristics compared to the lithium batteries of Comparative Examples 2 and 3, which do not have through-holes.
[0247] The lithium batteries of Examples 1 to 6, which used a dry positive electrode having a through-hole without burrs, had improved room temperature life characteristics compared to the lithium battery of Comparative Example 1, which used a wet positive electrode having a through-hole with burrs.
[0248] Evaluation example 5: Room temperature high rate characteristic evaluation The lithium batteries prepared in Examples 1 to 6 and Comparative Examples 1 to 4 were charged at a constant current of 0.1 C rate at 25° C. until the voltage reached 4.4 V (vs. Li), and then cut off at a current of 0.05 C rate while maintaining 4.4 V in constant voltage mode. Then, they were discharged at a constant current of 0.1 C rate until the voltage reached 2.8 V (vs. Li) during discharge (formation cycle).
[0249] The lithium battery that had undergone the chemical cycle was charged at a constant current of 0.2 C rate at 25°C until the voltage reached 4.4 V (vs. Li). It was then discharged at a constant current of 0.2 C rate until the voltage reached 2.8 V (vs. Li) (1 st cycle).
[0250] The lithium battery that had undergone the chemical cycle was charged at a constant current of 0.2 C rate at 25°C until the voltage reached 4.4 V (vs. Li). It was then discharged at a constant current of 0.33 C rate until the voltage reached 2.8 V (vs. Li) (2 nd cycle).
[0251] The lithium battery that had undergone the chemical cycle was charged at a constant current of 0.2 C rate at 25°C until the voltage reached 4.4 V (vs. Li). It was then discharged at a constant current of 0.5 C rate until the voltage reached 2.8 V (vs. Li) (3 rd cycle).
[0252] The lithium battery that had undergone the chemical cycle was charged at a constant current of 0.2 C rate at 25°C until the voltage reached 4.4 V (vs. Li). It was then discharged at a constant current of 1.0 C rate until the voltage reached 2.8 V (vs. Li) (4th cycle).
[0253] The lithium battery that had undergone the chemical cycle was charged at a constant current of 0.2 C rate at 25°C until the voltage reached 4.4 V (vs. Li). It was then discharged at a constant current of 2.0 C rate until the voltage reached 2.8 V (vs. Li) (5 th cycle).
[0254] The lithium battery that had undergone the chemical cycle was charged at a constant current of 0.2 C rate at 25°C until the voltage reached 4.4 V (vs. Li). It was then discharged at a constant current of 3.0 C rate until the voltage reached 2.8 V (vs. Li) (6 th cycle).
[0255] In all charge / discharge cycles, a 10-minute rest period was allowed after each charge / discharge cycle. Some of the results of the room temperature charge / discharge experiments are shown in Table 4 below. The high rate characteristic is defined by the following Equation 2.
[0256] [Formula 2] High rate characteristic [%] = [5 th Discharge capacity in cycles / 1 st Discharge capacity in cycles x 100
[0257] [Table 4]
[0258] As shown in Table 4, the lithium batteries of Examples 1 to 6 had improved high rate characteristics compared to the lithium batteries of Comparative Examples 1 to 3.
[0259] Specifically, the lithium batteries of Examples 1 to 6, which employ positive electrodes containing through-holes, have improved high-rate characteristics compared to the lithium batteries of Comparative Examples 2 and 3, which do not contain through-holes.
[0260] The lithium batteries of Examples 1 to 6, which used dry positive electrodes having through-holes without burrs, had improved high-rate characteristics compared to the lithium battery of Comparative Example 1, which used a wet positive electrode having through-holes with burrs. [Explanation of symbols]
[0261] 1, 1000 lithium battery 2 negative electrode 3 Positive electrode 4. Separator 5 Battery case 6 Cap Assembly 7 Battery structure 8 Electrode tab 100, 100a, 100b electrode active material layer 200 Electrode current collector 250, 250a, 250b middle tier 300 electrodes 300a positive electrode 300b negative electrode 400 electrolytes 500 electrode assembly
Claims
1. an electrode active material layer including an electrode active material and a binder and including a plurality of through-holes; an electrode current collector disposed on one side of the electrode active material layer or between both sides of the electrode active material layer; an interlayer disposed between the electrode active material layer and the electrode current collector; The electrode active material layer is a free-standing film, the electrode active material layer includes a through hole extending to the intermediate layer, The electrode, wherein the electrode active material layer further comprises a conductive material, the conductive material being a dry conductive material, the dry conductive material comprising a carbon-based conductive material.
2. The electrode of claim 1 , wherein the electrode current collector forms a bottom of a through hole, the electrode current collector blocking one end of the through hole.
3. 10. The electrode of claim 1, wherein the electrode current collector is free of burrs or depressions extending from the through holes.
4. The electrode of claim 1 , wherein the intermediate layer is disposed between the through hole and the electrode current collector, the intermediate layer separating the through hole and the electrode current collector.
5. The electrode according to claim 1 , wherein a diameter of one end of the through hole contacting the intermediate layer or the electrode current collector is larger than a diameter of the other end of the through hole exposed to a surface of the electrode active material layer.
6. 10. The electrode of claim 1, wherein the intermediate layer comprises a binder, the binder comprising a selected one or more of a conductive binder and a non-conductive binder, the binder comprising a fluorine-based binder.
7. The electrode of claim 6 , wherein the intermediate layer further comprises a carbon-based conductive material.
8. one surface of the electrode active material layer includes a first opening in which the plurality of through holes are arranged, and a surface area of the first opening is 99% or less of an entire area of the one surface of the electrode active material layer; 2. The electrode according to claim 1, wherein a ratio d1 / T1 of an average diameter d1 of the plurality of through holes to a thickness T1 of the electrode active material layer is 0.001 to 0.
1.
9. 10. The electrode of claim 1, wherein the binder is a dry binder, the dry binder comprises a fibrilized binder, and the dry binder comprises a fluorine-based binder.
10. the electrode current collector is disposed on a portion of one surface of the electrode active material layer or between both surfaces of the electrode active material layer, a first domain including the electrode active material layer and an electrode current collector disposed on one side or between both sides of the electrode active material layer; a second region including the electrode active material layer, the second region being free of an electrode current collector on one side or between both sides of the electrode active material layer; the first region and the second region include a plurality of through holes; the electrode active material layer includes a first surface and a second surface opposing the first surface; a first side surface connected to longitudinal ends of the first surface and the second surface, and a second side surface opposite the first side surface; a third side surface connected to a widthwise end of the first surface and the second surface, and a fourth side surface facing the third side surface; the first region is defined by the first surface, the second surface, a third side, and a fourth side, and includes the electrode current collector disposed between the first surface and the second surface; 2. The electrode of claim 1, wherein the second region is defined by the first surface, the second surface, a third side, and a fourth side, the second region being an area free of the electrode current collector between the first and second surfaces.
11. the electrode active material layer has a first area defined by a first distance in a longitudinal direction and a first distance in a width direction of the electrode active material layer; the electrode current collector has a second area defined by a second longitudinal distance and a second widthwise distance of the electrode current collector; 11. The electrode of claim 10, wherein the second area of the electrode current collector is less than or equal to 100% of the first area of the electrode active material layer.
12. a second longitudinal distance of the electrode current collector is 100% or less of a first longitudinal distance of the electrode active material layer; a second widthwise distance of the electrode current collector is 100% or less of a first widthwise distance of the electrode active material layer; 11. The electrode of claim 10, wherein a second longitudinal distance of the electrode current collector is 100% or less of a first longitudinal distance of the electrode active material layer, and a second widthwise distance of the electrode current collector is 100% or less of a first widthwise distance of the electrode active material layer.
13. The electrode current collector includes a base film and a metal layer disposed on one or both sides of the base film, the base film comprises a polymer, the polymer comprising polyethylene terephthalate (PET), polyethylene (PE), polypropylene (PP), polybutylene terephthalate (PBT), polyimide (PI), or a combination thereof; 10. The electrode of claim 1, wherein the metal layer comprises indium (In), copper (Cu), magnesium (Mg), stainless steel, titanium (Ti), iron (Fe), cobalt (Co), nickel (Ni), zinc (Zn), aluminum (Al), germanium (Ge), lithium (Li), or an alloy thereof.
14. A positive electrode and A negative electrode; an electrolyte disposed between the positive electrode and the negative electrode; A lithium battery, wherein at least one of the positive electrode and the negative electrode is the electrode according to any one of claims 1 to 13.
15. dry mixing an electrode active material, a dry conductive material, and a dry binder to prepare a dry mixture; rolling or extruding the dry mixture to provide a free-standing film; introducing a plurality of through-holes into the free-standing film; providing an electrode current collector and disposing an intermediate layer on one or both sides of the electrode current collector; providing the free-standing membrane on the intermediate layer and disposing an electrode active material layer on the free-standing membrane.
Citation Information
Patent Citations
Electrochemical device
JP2011159642A