Lithium secondary battery

By employing a single-particle type lithium nickel-based oxide as the cathode and a Si-C composite as the anode in lithium secondary batteries, with a focus on balancing irreversible capacities, the batteries achieve improved energy density and lifespan.

WO2025135790A1PCT designated stage expired Publication Date: 2025-06-26LG ENERGY SOLUTION LTD
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Patent Information

Application Number
PCT/KR2024/020626
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2023-12-22
Filing Date
2024-12-18
Publication Date
2025-06-26

AI Technical Summary

Technical Problem

Lithium secondary batteries face challenges in achieving high energy density and long lifespan due to the degradation of nickel-rich cathode materials and silicon-based anode materials, which result in increased irreversible capacity and reduced life characteristics.

Method used

The use of a single-particle type lithium nickel-based oxide with a medium particle size as the cathode active material, combined with a Si-C composite as the anode active material, where the irreversible capacity of the anode is designed to be smaller than that of the cathode, thereby minimizing negative electrode volume expansion and improving lifespan.

Benefits of technology

This configuration enhances the energy density and lifespan of lithium secondary batteries by reducing the irreversible capacity of the anode, minimizing negative electrode degradation, and allowing for higher nickel content in the cathode without structural collapse.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to a lithium secondary battery having high energy density and excellent lifespan characteristics. The lithium secondary battery according to the present invention comprises: a positive electrode including a single particle-type positive electrode active material having a D50 of 5.5μm-8μm; a negative electrode including a first negative electrode active material including a Si-C composite; and an electrolyte, wherein the irreversible capacity per unit area of the negative electrode is smaller than the irreversible capacity per unit area of the positive electrode.
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Description

lithium secondary battery

[0001] This application claims the benefit of priority from Korean Patent Application No. 10-2023-0190458, filed December 22, 2023, the entire contents of which are incorporated herein by reference.

[0002] The present invention relates to a lithium secondary battery including an all-solid-state lithium secondary battery, and more particularly, to a lithium secondary battery having excellent energy density and lifespan characteristics.

[0003] Lithium secondary batteries generally consist of a positive electrode, a negative electrode, a separator, and an electrolyte, wherein the positive electrode and the negative electrode include an active material capable of intercalating and deintercalating lithium ions. An all-solid-state lithium secondary battery includes a positive electrode, a negative electrode, and a solid electrolyte, wherein the negative electrode includes an active material capable of intercalating and deintercalating lithium ions.

[0004] With the recent surge in the electric vehicle market, demand is growing for batteries with superior rapid charging performance and high energy density. Consequently, efforts are increasing to apply high-nickel lithium nickel oxides, which offer superior capacity characteristics, as cathode active materials, and Si-based anode active materials, which offer superior rapid charging performance and capacity characteristics.

[0005] However, when the nickel content in the positive electrode active material increases, the capacity characteristics are improved, but when charge and discharge are repeated, the highly reactive Ni +4 There is a problem that a large amount of ions are generated, causing structural collapse of the positive electrode active material, which increases the rate of deterioration of the positive electrode active material and reduces the life characteristics.

[0006] In addition, Si-based negative electrode active materials have a large irreversible capacity, which reduces negative electrode efficiency, and a large volume change occurs during the charge / discharge process. Consequently, negative electrode degradation occurs quickly during charge / discharge, which reduces life characteristics.

[0007] Therefore, there is a need to develop a lithium secondary battery that has excellent lifespan characteristics while achieving high energy density.

[0008] The present invention is intended to solve the above-mentioned problems, and to provide a lithium secondary battery having high energy density and excellent life characteristics by applying a medium-sized single-particle positive electrode active material and a negative electrode active material including a Si-C composite, and designing the irreversible capacity of the negative electrode to be smaller than that of the positive electrode.

[0009] According to one embodiment, the present invention, D 50 A lithium secondary battery is provided, comprising: a positive electrode including a single-particle positive electrode active material having a particle size of 5.5 μm to 8 μm; a negative electrode including a first negative electrode active material including a Si-C composite; and an electrolyte, wherein the irreversible capacity per unit area of ​​the negative electrode is lower than the irreversible capacity per unit area of ​​the positive electrode. At this time, the ratio of the irreversible capacity per unit area of ​​the positive electrode to the irreversible capacity per unit area of ​​the negative electrode may be greater than 1, preferably 1.01 to 1.25, and more preferably 1.01 to 1.2.

[0010] Meanwhile, the single particle type positive electrode active material may include a lithium nickel-based oxide containing Ni in an amount of 88 mol% or more, preferably 90 mol% or more, and the lithium nickel-based oxide may be, for example, represented by the following [Chemical Formula 1].

[0011] [Chemical Formula 1]

[0012] Li 1+x [Ni a Co b M 1 c M 2 d ]O2

[0013] In the above [chemical formula 1], M 1 is at least one selected from Mn and Al, and M 2It contains at least one selected from the group consisting of Zr, Y, B, W, Mg, Ce, Hf, Ta, La, Ti, Sr, Ba, F, P and S, and -0.2≤x≤0.2, 0.88≤a<1, 0 <b<0.12, 0<c<0.12, 0≤d≤0.05이다.

[0014] Meanwhile, the anode may have a porosity of 16% to 24%, preferably 16% to 23%, and more preferably 17% to 23%.

[0015] The total thickness of the above anode may be 90 µm to 120 µm, preferably 90 µm to 110 µm, and more preferably 95 µm to 105 µm.

[0016] The above anode may have an efficiency of less than 90%, preferably greater than or equal to 87% and less than 90%, more preferably between 87% and 89%.

[0017] The above positive electrode discharge capacity may be 200 mAh / g to 400 mAh / g, 200 mAh / g to 300 mAh / g, 210 mAh / g to 300 mAh / g, or 210 mAh / g to 250 mAh / g.

[0018] Meanwhile, the negative electrode may further include a graphite-based negative electrode active material as a second negative electrode active material. At this time, the weight ratio of the first negative electrode active material to the second negative electrode active material may be 2:98 to 20:80, preferably 2:98 to 15:85, and more preferably 5:95 to 15:85.

[0019] The cathode may have a porosity of 20% to 30%, preferably 22% to 29%, and more preferably 23% to 28%.

[0020] The above cathode may have a total thickness of 80 µm to 130 µm, preferably 90 µm to 120 µm, and more preferably 95 µm to 120 µm.

[0021] The cathode may have an efficiency of 90% or more, preferably 90% to 94%, more preferably 90% to 93%.

[0022] The above cathode discharge capacity may be 400 mAh / g to 600 mAh / g, preferably 400 mAh / g to 550 mAh / g, and more preferably 450 mAh / g to 550 mAh / g.

[0023] The lithium secondary battery according to the present invention may have an N / P ratio of 105 or more, preferably 106 to 110, and more preferably 106.5 to 108.

[0024] Meanwhile, the lithium secondary battery may include at least one unit cell composed of one negative electrode, one positive electrode, and two separators, and the thickness of the unit cell may be 220 µm to 240 µm, 225 µm to 240 µm, or 230 µm to 240 µm. In addition, the capacity per unit volume of the unit cell may be 270 mAh / cm. 3 Ideally, 270 mAh / cm 3 330mAh / cm 3 , more preferably 290mAh / cm 3 Up to 320mAh / cm 3 It could be.

[0025] The lithium secondary battery according to the present invention includes a cathode active material including a single-particle lithium nickel-based oxide having a relatively large average particle diameter compared to the conventional one, and an anode active material including a Si-C composite. In the case of a single-particle cathode active material, since the resistance increases as the particle diameter increases, as in the present invention, D 50When this large single-particle type positive electrode active material is applied, the positive electrode resistance increases, thereby increasing the irreversible capacity of the positive electrode. Meanwhile, the Si-C composite has a smaller irreversible capacity than silicon oxide, which has been conventionally used as a Si-based negative electrode active material. That is, the lithium secondary battery of the present invention is designed to increase the positive electrode resistance to increase the irreversible capacity of the positive electrode, and to apply a negative electrode active material with a small irreversible capacity so that the irreversible capacity of the negative electrode is smaller than that of the positive electrode, unlike a conventional general lithium secondary battery. In this way, when the negative electrode irreversible capacity is smaller than the positive electrode irreversible capacity, the use of the low-potential region that causes negative electrode volume expansion during charge and discharge is minimized, and accordingly, the negative electrode volume expansion is minimized, thereby improving the deterioration of life characteristics due to negative electrode degradation.

[0026] Meanwhile, the Si-C composite used as the negative active material in the present invention exhibits superior capacity characteristics compared to silicon oxide. Therefore, its application can achieve a higher energy density than conventional methods.

[0027] Meanwhile, when a single-particle cathode active material with a large average particle size, such as that of the present invention, is applied, rapid degradation of the cathode active material due to increased nickel content can be suppressed. Therefore, the present invention can apply a high-nickel cathode active material with a nickel content of 88 mol% or higher, thereby realizing a high energy density.

[0028] Figure 1 is a scanning electron microscope photograph of a single-particle positive electrode active material.

[0029] Figure 2 is a scanning electron microscope photograph of a pseudo-single particle positive electrode active material.

[0030] Figure 3 is a scanning electron microscope photograph of a secondary particle-type positive electrode active material.

[0031] Terms or words used in this specification and the scope of the claims should not be interpreted as limited to their usual or dictionary meanings, but should be interpreted as meanings and concepts that conform to the technical idea of ​​the present invention, based on the principle that the inventor can appropriately define the concept of the term to explain his or her own invention in the best way.

[0032] In the present invention, "single particle type" means a particle composed of 30 or fewer nodules, and is a concept that includes a single particle composed of one nodule and a pseudo-single particle which is a composite of 2 to 30 nodules. Fig. 1 shows a scanning electron microscope image of a positive electrode active material in the form of a single particle. Fig. 2 shows a scanning electron microscope image of a positive electrode active material in the form of a pseudo-single particle.

[0033] The above “nodule” is a sub-particle unit that constitutes a single particle and a pseudo-single particle, and may be a single crystal without a crystalline grain boundary, or a polycrystal with no apparent grain boundary when observed under a magnification of 5,000 to 20,000 times using a scanning electron microscope.

[0034] In the present invention, "secondary particle" refers to a particle formed by agglomeration of a plurality of primary particles, for example, tens to hundreds of primary particles. Specifically, the secondary particle may be an aggregate of 31 or more, 50 or more, 70 or more, or 100 or more primary particles. Figure 3 illustrates a scanning electron microscope image of a secondary particle-type positive electrode active material.

[0035] In the present invention, “particle” is a concept including any one or all of a single particle, a pseudo-single particle, a primary particle, a nodule, and a secondary particle.

[0036] In the present invention, the average particle diameter (D) of the nodules or primary particles mean) means the arithmetic mean value calculated after measuring the particle size of nodules or primary particles observed in scanning electron microscope images.

[0037] In the present invention, "D 50 " refers to the particle size corresponding to 50% of the volume cumulative particle size distribution of the target powder, and can be measured using the laser diffraction method. For example, after dispersing the target powder in a dispersion medium, it can be measured by introducing it into a commercially available laser diffraction particle size measuring device (e.g., Microtrac MT 3000), irradiating it with ultrasonic waves of about 28 kHz at an output of 60 W, obtaining a volume cumulative particle size distribution graph, and then calculating the particle size corresponding to 50% of the volume cumulative amount.

[0038] In the present invention, “irreversible capacity” means the difference between the charge capacity and the discharge capacity, and the irreversible capacity of the negative electrode and the irreversible capacity of the positive electrode can be measured according to the following methods, respectively.

[0039] <Method for measuring cathode irreversible capacity>

[0040] A single-sided negative electrode having a negative electrode composite layer formed on one side of the negative electrode current collector is prepared. If the negative electrode to be measured is a double-sided negative electrode having a negative electrode composite layer formed on both sides of the negative electrode current collector, the negative electrode composite layer formed on one side is washed and removed to prepare a single-sided negative electrode. After fabricating a negative coin half-cell using the single-sided negative electrode prepared as described above and a lithium metal electrode as a counter electrode, the cell is charged to 5 mV in 0.1 C, CC-CV mode (0.005 C cut-off), and then discharged to 1 V in 0.1 C, CC mode to measure the charge capacity and discharge capacity, and the difference between the measured charge capacity and discharge capacity can be calculated as the irreversible capacity. In addition, the irreversible capacity can be calculated per unit area by dividing the irreversible capacity by the negative electrode area. The time point for measuring the irreversible capacity is not particularly limited. The irreversible capacity of the negative electrode can be measured, for example, using an negative electrode obtained by disassembling a battery.

[0041] <Method for measuring bipolar irreversible capacity>

[0042] A single-sided positive electrode having a positive electrode composite layer formed on one side of a positive electrode current collector is prepared. If the positive electrode to be measured is a double-sided positive electrode having a positive electrode composite layer formed on both sides of the positive electrode current collector, the positive electrode composite layer formed on one side is washed and removed to prepare a single-sided positive electrode. After fabricating a positive electrode coin half-cell using the single-sided positive electrode prepared as described above and a lithium metal electrode as a counter electrode, the positive electrode is charged to 4.25 V to 4.4 V in 0.1 C, CC-CV mode (0.05 C cut-off), and then discharged to 3 V in 0.1 C, CC mode to measure the charge capacity and discharge capacity, and the difference between the measured charge capacity and discharge capacity can be calculated as the irreversible capacity. In addition, the irreversible capacity can be calculated per unit area by dividing the irreversible capacity by the positive electrode area. The time point for measuring the irreversible capacity is not particularly limited. The irreversible capacity of the positive electrode can be measured, for example, using a positive electrode obtained by disassembling a battery.

[0043] At this time, the end-of-charge voltage may vary depending on the type of the positive electrode active material. For example, if the positive electrode active material is a secondary particle-type NCM with a Ni content of 80 mol% or more, the end-of-charge voltage may be 4.25 V to 4.3 V, and if the positive electrode active material is a single particle-type NCM with a Ni content of 70 mol% or less, the end-of-charge voltage may be 4.3 V to 4.4 V.

[0044] In the present invention, “porosity (%)” can be calculated as (1-electrode density / electrode true density) × 100. The electrode density can be measured by measuring the electrode weight and volume, and then dividing the electrode weight by the electrode volume, and the electrode true density can be measured using a Gas Pycnometer. A Gas Pycnometer is a device that can measure density by placing a measurement sample of known weight in a sample chamber and injecting helium or nitrogen gas to find out the volume occupied by the sample excluding pores. Specifically, the volume of the sample can be measured from the pressure change between the sample chamber into which the sample is placed and a reference chamber of known volume, and then the density value of the sample can be calculated by applying the ideal gas equation of state (PV=nRT).

[0045] In the present invention, “efficiency” means the ratio of discharge capacity to charge capacity.

[0046]

[0047] Hereinafter, the present invention will be described in more detail.

[0048] The inventors of the present invention have conducted repeated research to develop a lithium secondary battery with excellent life characteristics while implementing high energy density, and as a result, D 50The present invention was completed by finding that when a lithium secondary battery is manufactured by applying a single-particle type positive electrode active material of 5.5㎛ to 8㎛ and a negative electrode active material including a Si-C composite, and the irreversible capacity per unit area of ​​the negative electrode is smaller than the irreversible capacity per unit area of ​​the positive electrode, excellent energy density, life characteristics, and rapid charging performance can all be realized.

[0049] Specifically, the lithium secondary battery according to the present invention, D 50 A battery comprising: a positive electrode including a single-particle positive electrode active material having a particle size of 5.5 μm to 8 μm; a negative electrode including a first negative electrode active material including a Si-C composite; and an electrolyte, wherein the irreversible capacity per unit area of ​​the negative electrode is lower than the irreversible capacity per unit area of ​​the positive electrode. At this time, the ratio of the irreversible capacity per unit area of ​​the positive electrode to the irreversible capacity per unit area of ​​the negative electrode may be greater than 1, preferably 1.01 to 1.25, and more preferably 1.01 to 1.2.

[0050] Since Si-based negative electrode active materials have a large irreversible capacity, conventional lithium secondary batteries using Si-based negative electrode active materials generally have a larger irreversible capacity of the negative electrode than that of the positive electrode. On the other hand, when the negative electrode irreversible capacity is larger than the positive electrode irreversible capacity, the operating voltage range is limited to a range excluding the irreversible capacity of the negative electrode, resulting in a loss of the positive electrode reversible capacity, which reduces the capacity, and the low potential region of the negative electrode where the volume expansion of the Si-based negative electrode active material rapidly occurs is used, which has the problem of deteriorating the life characteristics.

[0051] In order to solve this problem, the present invention uses a positive electrode active material that is different from the conventional one. 50 A lithium secondary battery was designed using this large single particle type positive electrode active material and a Si-C composite as the negative electrode active material so that the irreversible capacity per unit area of ​​the positive electrode is greater than the irreversible capacity per unit area of ​​the negative electrode.

[0052] Single particle type positive electrode active material has higher resistance than the secondary particles commonly used in the past because the interparticle interfaces that serve as the migration paths of lithium ions are small, and the resistance increases further as the particle size increases. Therefore, D 50 When this large single-particle type positive electrode active material is applied, the positive electrode efficiency decreases and the irreversible capacity increases due to increased resistance. Specifically, the positive electrode according to the present invention can have an efficiency of less than 90%, preferably 87% or more but less than 90%, and more preferably 87% to 89%.

[0053] Meanwhile, since the Si-C composite has a lower irreversible capacity than the silicon oxide-based negative electrode active material that has been mainly used in the past, when it is applied, the efficiency of the negative electrode increases and the irreversible capacity decreases compared to the past. Specifically, the negative electrode according to the present invention can have an efficiency of 90% or more, preferably 90% to 94%, and more preferably 90% to 93%.

[0054] Therefore, D 50 When this large single-particle type positive electrode active material and the negative electrode active material including the Si-C composite are applied, unlike conventional lithium secondary batteries, a lithium secondary battery can be manufactured in which the irreversible capacity per unit area of ​​the positive electrode is greater than the irreversible capacity per unit area of ​​the negative electrode. In this way, when the irreversible capacity per unit area of ​​the positive electrode is greater than the irreversible capacity per unit area of ​​the negative electrode, the operating voltage range is limited to a range excluding the irreversible capacity of the positive electrode, so that capacity loss of the positive electrode does not occur, and the use of the low-potential region of the negative electrode where the volume expansion of the Si-based negative electrode active material rapidly occurs is excluded, so that the reduction in lifespan due to the volume expansion of the negative electrode can be effectively prevented.

[0055]

[0056] Hereinafter, each component of the lithium secondary battery according to the present invention will be described in more detail.

[0057]

[0058] anode

[0059] The anode according to the present invention is D 50 This includes a single particle type positive electrode active material of 5.5㎛ to 8㎛, and may further include a positive electrode conductive material and a positive electrode binder as needed. Specifically, the positive electrode includes a positive electrode current collector, a positive electrode composite layer formed on at least one surface of the positive electrode current collector, and the positive electrode composite layer is D 50 It includes a single particle type positive electrode active material of 5.5㎛ to 8㎛, a positive electrode conductive material, and a positive electrode binder.

[0060] The single-particle type positive electrode active material may include 30 or fewer nodules, preferably 1 to 25, and more preferably 1 to 15. The single-particle type positive electrode active material has a small number of nodules constituting the particle, and thus the interface within the particle is small, resulting in a small contact area with the electrolyte. Therefore, compared to the secondary particle type positive electrode active material in which 40 to several hundred primary particles are aggregated, which has been commonly used in the past, the side reaction with the electrolyte is small, and accordingly, the amount of gas generated is also significantly less. Therefore, when the single-particle type positive electrode active material is applied, excellent life characteristics can be obtained. In addition, when the single-particle type positive electrode active material is applied, the mobility of lithium ions is low and the resistance is high, so when the single-particle type positive electrode active material is applied, the efficiency of the positive electrode is reduced, and accordingly, the irreversible capacity of the positive electrode can be made larger than the irreversible capacity of the negative electrode.

[0061] Meanwhile, in the present invention, the single particle type positive electrode active material D 50- A positive electrode active material having a particle size of 5.5 μm to 8 μm, preferably 5.5 μm to 7.5 μm, and more preferably 6 μm to 7 μm is used. D of the single particle type positive electrode active material 50 When this above range is satisfied, the anode resistance increases further, making the irreversible capacity of the anode greater than that of the cathode.

[0062] Meanwhile, in the single-particle type positive electrode active material according to the present invention, the nodules may have an average particle diameter of 0.8 µm to 4.0 µm, preferably 0.8 µm to 3 µm, and more preferably 1.0 µm to 3.0 µm. When the average particle diameter of the nodules satisfies the above range, particle breakage is minimized during electrode manufacturing, and an increase in resistance can be more effectively suppressed. At this time, the average particle diameter of the nodules refers to a value obtained by measuring the particle diameters of nodules observed in SEM images obtained by analyzing the positive electrode active material powder with a scanning electron microscope, and then calculating the arithmetic mean value of the measured values.

[0063] Meanwhile, the single particle type positive electrode active material may include a lithium nickel-based oxide containing Ni in an amount of 88 mol% or more, preferably 90 mol% or more.

[0064] The above lithium nickel-based oxide may be, for example, represented by the following [chemical formula 1].

[0065] [Chemical Formula 1]

[0066] Li 1+x [Ni a Co b M 1 c M 2 d ]O2

[0067] In the above [chemical formula 1], M 1 is at least one selected from Mn and Al, and may preferably be Mn or a combination of Mn and Al from the viewpoint of durability.

[0068] Above M 2 It may include at least one selected from the group consisting of Zr, Y, B, W, Mg, Ce, Hf, Ta, La, Ti, Sr, Ba, F, P, and S.

[0069] The above 1+x represents the atomic fraction of lithium in the lithium nickel-based oxide, and may be -0.2≤x≤0.2, -0.1≤x≤0.1, or 0≤x≤0.1.

[0070] The above a represents the atomic fraction of nickel among the metal elements excluding lithium in the lithium nickel-based oxide, and may be 0.88≤a<1, 0.9≤a<1, or 0.9≤a≤0.97. When the atomic fraction of nickel satisfies the above range, high energy density can be achieved.

[0071] The above b represents the atomic fraction of cobalt among the metal elements excluding lithium in the lithium nickel oxide, 0 <b<0.12, 0.01≤b<0.12 또는 0.01≤b≤0.10일 수 있다.

[0072] The above c is M among the metal elements excluding lithium in the lithium nickel oxide. 1 It represents the atomic fraction of an element, 0 <c<0.12, 0.01≤c<0.12 또는 0.01≤c≤0.10일 수 있다.

[0073] The above d is M among the metal elements excluding lithium in the lithium nickel oxide. 2 It represents the atomic fraction of an element, and can be 0≤d≤0.05, 0≤d≤0.03, or 0≤d≤0.02.

[0074] More preferably, the lithium nickel-based oxide may be, for example, represented by the following [Chemical Formula 1-1].

[0075] [Chemical Formula 1-1]

[0076] Li 1+x [Ni a Co b Mn c1 Al c2 M 2 d ]O2

[0077] In the above [chemical formula 1-1], M 1 , M2, x, a, b, d are the same as defined in [Chemical Formula 1], and 0 <c1≤0.115, 0.01≤c1≤c1≤0.10 또는 0.01≤c1≤0.10이고, 0<c2≤0.05, 0.005≤c1<0.03 또는 0.01≤c1≤0.03일 수 있다.

[0078] When the lithium nickel-based oxide simultaneously contains Mn and Al as in the above [Chemical Formula 1-1], the particle structure stability of the positive electrode active material can be further improved. However, if the Al content is too high, the capacity characteristics may deteriorate, so it is preferable that the contents of Mn and Al satisfy the above range.

[0079] The above lithium nickel-based oxide may be, for example, represented by the following [Chemical Formula 1-2].

[0080] [Chemical Formula 1-2]

[0081] Li 1+x [Ni a Co b Mn c1 Al c2 ]O2

[0082] In the above chemical formula 1-2, 0≤x≤0.1, 0.9≤a≤0.97, 0.01≤b≤0.10, 0.01≤c1≤0.10, 0.01≤c1≤0.10.

[0083] Meanwhile, the positive electrode active material according to the present invention may further include a coating layer on the surface of the lithium nickel-based oxide. The coating layer may include one or more coating elements selected from the group consisting of Co, Al, W, Ti, Mg, Zr, Y, Ba, Ca, Sr, Ta, Nb, P, B, and Mo. Preferably, the coating layer may contain Co, and more preferably, it may include Co and Al.

[0084] Meanwhile, the positive electrode active material may be included in an amount of 93 wt% to 99 wt%, preferably 95 wt% to 98 wt%, and more preferably 95 wt% to 97 wt%, based on the total weight of the positive electrode composite layer, i.e., the total amount of the positive electrode active material, the positive electrode conductive material, and the positive electrode binder. When the content of the positive electrode active material satisfies the above range, a high energy density can be realized.

[0085]

[0086] Meanwhile, the positive electrode conductive material is used to provide conductivity to the electrode, and can be used without special restrictions as long as it does not cause chemical changes in the battery to be formed and has electronic conductivity. Specific examples include graphite such as natural graphite or artificial graphite; carbon-based materials such as carbon black, acetylene black, Ketjen black, channel black, furnace black, lamp black, thermal black, and carbon fiber; metal powders or metal fibers such as copper, nickel, aluminum, and silver; conductive tubes such as carbon nanotubes; conductive whiskers such as zinc oxide or potassium titanate; conductive metal oxides such as titanium oxide; or conductive polymers such as polyphenylene derivatives, and the like. One of these may be used alone or a mixture of two or more may be used. The positive electrode conductive material may be included in an amount of 0.1 to 15 wt% based on the total weight of the positive electrode composite layer.

[0087] The above positive electrode binder serves to improve the adhesion between positive electrode active material particles and the adhesion between the positive electrode active material and the current collector. Specific examples include polyvinylidene fluoride (PVDF), polyvinylidene fluoride-hexafluoropropylene copolymer (PVDF-co-HFP), polyvinylalcohol, polyacrylonitrile, polymethyl methacrylate, carboxymethyl cellulose (CMC), starch, hydroxypropyl cellulose, regenerated cellulose, polyvinylpyrrolidone, polytetrafluoroethylene, polyethylene, polypropylene, ethylene-propylene-diene polymer (EPDM), sulfonated-EPDM, styrene butadiene rubber (SBR), fluoroelastomer, polyacrylic acid, and polymers in which hydrogens of these are substituted with Li, Na, or Ca, or various copolymers thereof, and one of these may be used alone or a mixture of two or more thereof. The above binder may be included in an amount of 0.1 to 15 wt% based on the total weight of the positive electrode composite layer.

[0088] The above positive electrode can be manufactured according to a conventional positive electrode manufacturing method. Specifically, the positive electrode according to the present invention can be manufactured by preparing a positive electrode active material, optionally dissolving or dispersing a positive electrode binder, a positive electrode conductive material, and a dispersant in a solvent as needed to prepare a positive electrode slurry composition, then applying the positive electrode slurry onto a positive electrode current collector and then drying and rolling, or casting the positive electrode slurry composition onto a separate support and then peeling the film from the support and laminating the obtained film onto a positive electrode current collector.

[0089] In another aspect, the above anode may be manufactured through a method of manufacturing an anode that does not use a solvent, such as a dry method.

[0090] At this time, the positive electrode current collector may include a highly conductive metal, and is not particularly limited as long as the positive electrode composite layer is easily adhered to it, but is not reactive in the voltage range of the battery. The positive electrode current collector may be, for example, stainless steel, aluminum, nickel, titanium, calcined carbon, or aluminum or stainless steel surface-treated with carbon, nickel, titanium, silver, etc. In addition, the positive electrode current collector may typically have a thickness of 3 to 500 μm, and fine unevenness may be formed on the surface of the current collector to increase the adhesive strength of the positive electrode active material. For example, it may be used in various forms such as a film, a sheet, a foil, a net, a porous body, a foam, a non-woven fabric, etc.

[0091] As the solvent of the positive electrode slurry, general solvents used in the art for manufacturing positive electrode slurry, such as dimethyl sulfoxide (DMSO), isopropyl alcohol, N-methylpyrrolidone (NMP), dimethyl formamide (DMF), acetone, water, or a mixture thereof, may be used. The amount of the solvent used is sufficient to dissolve or disperse the positive electrode active material, conductive material, binder, and dispersant in consideration of the coating thickness and manufacturing yield of the slurry, and to have a viscosity that can exhibit excellent thickness uniformity when applied thereafter for manufacturing the positive electrode.

[0092]

[0093] Meanwhile, the positive electrode according to the present invention may have a porosity of 16% to 24%, preferably 16% to 23%, and more preferably 16% to 22%. When the positive electrode porosity satisfies the above range, excellent energy density can be achieved. If the positive electrode porosity is too large, the energy density decreases, and if the positive electrode porosity is too small, the electrolyte impregnation property may decrease, which may lower lithium ion mobility.

[0094] Additionally, the total thickness of the anode may be 90 µm to 120 µm, preferably 90 µm to 110 µm, and more preferably 95 µm to 105 µm. When the anode thickness satisfies the above range, excellent capacity characteristics per unit volume are exhibited.

[0095] In addition, the anode may have an efficiency of less than 90%, preferably 87% or more and less than 90%, and more preferably 87% to 89%. When the anode efficiency is 90% or more, the anode irreversible capacity becomes smaller than the cathode irreversible capacity, resulting in a loss of anode capacity in the operating voltage range, and making it difficult to obtain the life improvement effect due to the exclusion of the cathode low potential region.

[0096] Meanwhile, the positive electrode according to the present invention may have a discharge capacity of 200 mAh / g to 400 mAh / g, preferably 200 mAh / g to 300 mAh / g, and more preferably 210 mAh / g to 300 mAh / g. In this case, the capacity is a discharge capacity measured by charging and discharging a coin-half cell manufactured using the positive electrode according to the present invention and a lithium metal electrode as counter electrodes in a voltage range of 3 V to 4.4 V at 0.1 C. When the positive electrode capacity satisfies the above range, the collapse of the positive electrode structure can be minimized, thereby ensuring durability.

[0097]

[0098] cathode

[0099] The negative electrode according to the present invention comprises a first negative electrode active material comprising a Si-C composite, and may further comprise a negative electrode conductive material and a negative electrode binder, if necessary. Specifically, the negative electrode comprises a negative electrode current collector, a negative electrode composite layer formed on at least one surface of the negative electrode current collector, and the negative electrode composite layer comprises a first negative electrode active material comprising a Si-C composite.

[0100] Si-C composites are materials with a composite structure in which silicon particles are distributed within a carbon matrix. Compared to SiOx, which was mainly used as a Si-based negative electrode active material in the past, they have lower irreversible capacity, superior conductivity, and less volume change during charge and discharge. Therefore, when using Si-C composites, the negative electrode irreversible capacity is reduced, making it possible to manufacture a negative electrode with a lower irreversible capacity than the positive electrode, and improving capacity characteristics and cycle life characteristics.

[0101] Preferably, the Si-C composite may have a grain size of 20 nm or less, preferably 1 nm to 20 nm, and more preferably 1 nm to 18 nm. When the grain size of the Si-C composite satisfies the above range, the cell resistance characteristics and life characteristics are excellently improved.

[0102] In addition, the Si-C composite is D 50 This may be 1 ㎛ to 15 ㎛, preferably 2 ㎛ to 10 ㎛, more preferably 3 ㎛ to 10 ㎛. In addition, the Si-C composite may be D 10 This may be 5㎛ or less, preferably 1 to 5㎛, and D 90 This may be 6 µm to 20 µm, preferably 6 µm to 15 µm. When the particle size distribution of the Si-C composite satisfies the above range, the negative electrode density increases, thereby realizing high energy density.

[0103]

[0104] Meanwhile, the negative electrode may further include a graphite-based negative electrode active material as a second negative electrode active material. The graphite-based negative electrode active material may be, for example, artificial graphite, natural graphite, or a combination thereof, and preferably, a mixture of artificial graphite and natural graphite.

[0105] When the second negative electrode active material is a mixture of artificial graphite and natural graphite, the weight ratio of the artificial graphite to natural graphite may be 99:1 to 60:40, preferably 90:10 to 60:40, and more preferably 90:10 to 70:30. When the mixing ratio of artificial graphite and natural graphite satisfies the above range, both the life characteristics and the rapid charging performance are excellent.

[0106] Meanwhile, the weight ratio of the first negative electrode active material to the second negative electrode active material may be 2:98 to 20:80, 2:98 to 15:85, 5:95 to 15:85, or 5:95 to 10:90. When the weight ratio of the first negative electrode active material to the second negative electrode active material satisfies the above range, both the capacity characteristics and the life characteristics are excellent.

[0107] The above negative electrode active material may be included in an amount of 80 to 99 wt%, preferably 85 to 99 wt%, and more preferably 90 to 99 wt%, based on the total weight of the negative electrode composite layer.

[0108] Meanwhile, the negative electrode conductive material is used to provide conductivity to the negative electrode, and can be used without any special restrictions as long as it is used as a conductive material for a lithium secondary battery. Specific examples of the negative electrode conductive material include carbon-based materials such as carbon black, acetylene black, Ketjen black, channel black, furnace black, lamp black, summer black, carbon fiber, and carbon nanotube; metal powders or metal fibers such as copper, nickel, aluminum, and silver; conductive whiskers such as zinc oxide and potassium titanate; conductive metal oxides such as titanium oxide; or conductive polymers such as polyphenylene derivatives, and one of these may be used alone or a mixture of two or more thereof. Preferably, carbon black, acetylene black, Ketjen black, channel black, furnace black, lamp black, summer black, carbon fiber, carbon nanotube, or a combination thereof may be used as the negative electrode conductive material, and in terms of improving conductivity, it is more preferable to use a dot-shaped conductive material and a linear conductive material together. At this time, the dot-shaped conductive material is a material having a particle shape and having a dot-shaped contact form with the negative electrode active material, for example, carbon black, acetylene black, Ketjen black, channel black, furnace black, lamp black, summer black, etc., and the linear conductive material is a material having a line-shaped contact form with the negative electrode active material, for example, carbon fiber, carbon nanotube, etc.

[0109] The above-mentioned negative electrode conductive material may be included in an amount of typically 1 to 20 wt%, preferably 0.1 to 10 wt%, and more preferably 0.1 to 1 wt%, based on the total weight of the negative electrode composite layer.

[0110] Next, the negative electrode binder plays a role in improving the adhesion between negative electrode active material particles and the adhesive strength between the negative electrode active material and the negative electrode current collector, and any material used as a negative electrode binder for a lithium secondary battery can be used without any special restrictions. Specific examples of the negative electrode binder include polyvinylidene fluoride (PVDF), vinylidene fluoride-hexafluoropropylene copolymer (PVDF-co-HFP), polyvinyl alcohol, polyacrylonitrile, carboxymethylcellulose (CMC), starch, hydroxypropylcellulose, regenerated cellulose, polyvinylpyrrolidone, polytetrafluoroethylene, polyethylene, polypropylene, ethylene-propylene-diene monomer rubber (EPDM rubber), sulfonated-EPDM, styrene-butadiene rubber (SBR), fluororubber, or various copolymers thereof, and one of these may be used alone or a mixture of two or more thereof may be used.

[0111] The above negative electrode binder may be included in an amount of 1 to 20 wt%, preferably 1 to 10 wt%, and more preferably 1 to 3 wt%, based on the total weight of the negative electrode composite layer.

[0112] The above negative electrode can be manufactured according to a conventional negative electrode manufacturing method. Specifically, the negative electrode according to the present invention can be manufactured by preparing a negative electrode active material, optionally dissolving or dispersing a negative electrode binder, a negative electrode conductive material, and a dispersant in a solvent as needed to prepare a negative electrode slurry composition, then applying the negative electrode slurry onto a negative electrode current collector and then drying and rolling, or casting the negative electrode slurry composition onto a separate support and then peeling the film from the support and laminating the obtained film onto a negative electrode current collector.

[0113] In another aspect, the cathode may be manufactured through a cathode manufacturing method that does not use a solvent, such as a dry method.

[0114]

[0115] At this time, as the negative electrode collector, negative electrode collectors generally used in the relevant technical field can be used, and for example, copper, stainless steel, aluminum, nickel, titanium, calcined carbon, copper or stainless steel surface-treated with carbon, nickel, titanium, silver, etc., aluminum-cadmium alloy, etc. can be used. The negative electrode collector can typically have a thickness of 3 ㎛ to 500 ㎛, and like the positive electrode collector, fine unevenness can be formed on the surface of the collector to strengthen the bonding strength of the negative electrode active material. For example, it can be used in various forms such as a film, a sheet, a foil, a net, a porous body, a foam, a non-woven fabric, etc.

[0116] As the solvent of the negative electrode slurry, general solvents used in the art for manufacturing negative electrode slurry, such as dimethyl sulfoxide (DMSO), isopropyl alcohol, N-methylpyrrolidone (NMP), dimethyl formamide (DMF), acetone, water, or a mixture thereof, can be used. The amount of the solvent used is sufficient to dissolve or disperse the negative electrode active material, conductive material, binder, and dispersant in consideration of the coating thickness and manufacturing yield of the slurry, and to have a viscosity that can exhibit excellent thickness uniformity when applied thereafter for manufacturing the negative electrode.

[0117]

[0118] Meanwhile, the cathode according to the present invention may have a porosity of 20% to 30%, preferably 22% to 29%, and more preferably 23% to 28%. When the cathode porosity satisfies the above range, the cathode density increases, so that the desired capacity characteristics can be achieved even when the cathode thickness is formed thinner than before.

[0119] The above cathode may have a total thickness of 80 μm to 130 μm, preferably 90 μm to 120 μm, and more preferably 95 μm to 120 μm. When the cathode thickness satisfies the above range, the reaction uniformity of the Si-C composite can be improved, and the rapid charging performance can be improved.

[0120]

[0121] Meanwhile, the cathode may have an efficiency of 90% or more, preferably 90% to 94%, and more preferably 90% to 93%. When the cathode efficiency satisfies the above range, the cathode irreversible capacity becomes smaller than the anode irreversible capacity, and accordingly, the use of the cathode low-potential region where cathode expansion occurs rapidly in the operating voltage range is reduced, thereby obtaining the effect of improving the life characteristics.

[0122] The discharge capacity of the above-mentioned negative electrode may be 400 mAh / g to 600 mAh / g, 400 mAh / g to 550 mAh / g, 400 mAh / g to 500 mAh / g, 450 mAh / g to 550 mAh / g, or 450 mAh / g to 500 mAh / g. At this time, the discharge capacity is a discharge capacity measured by charging and discharging a coin-half cell manufactured using the negative electrode according to the present invention and the lithium metal electrode as counter electrodes at 0.1 C in a voltage range of 0.005 V to 1 V. When the negative electrode discharge capacity satisfies the above range, the capacity per unit volume of the unit cell is 270 mAh / cm 3 Above, 280mAh / cm 3 or more than 290mAh / cm 3 It can be implemented as above.

[0123]

[0124] electrolyte

[0125] The electrolyte used in the present invention may include various electrolytes that can be used in lithium secondary batteries, such as organic liquid electrolytes, inorganic liquid electrolytes, solid polymer electrolytes, gel-type polymer electrolytes, solid inorganic electrolytes, and molten inorganic electrolytes, and the type thereof is not particularly limited.

[0126] Specifically, the electrolyte may include an organic solvent and a lithium salt.

[0127] The organic solvent may be used without any particular limitation as long as it can serve as a medium through which ions involved in the electrochemical reaction of the battery can move. Specifically, the organic solvent may include ester solvents such as methyl acetate, ethyl acetate, γ-butyrolactone, and ε-caprolactone; ether solvents such as dibutyl ether or tetrahydrofuran; ketone solvents such as cyclohexanone; aromatic hydrocarbon solvents such as benzene and fluorobenzene; Carbonate solvents such as dimethylcarbonate (DMC), diethylcarbonate (DEC), methylethylcarbonate (MEC), ethylmethylcarbonate (EMC), ethylene carbonate (EC), and propylene carbonate (PC); alcohol solvents such as ethyl alcohol and isopropyl alcohol; nitriles such as R-CN (wherein R is a C2 to C20 linear, branched, or cyclic hydrocarbon group, and may include a double-bonded aromatic ring or an ether bond); amides such as dimethylformamide; dioxolanes such as 1,3-dioxolane; or sulfolanes can be used. Among these, a carbonate solvent is preferable, and a mixture of a cyclic carbonate (e.g., ethylene carbonate or propylene carbonate, etc.) having high ionic conductivity and high dielectric constant that can improve the charge / discharge performance of the battery and a linear carbonate compound having low viscosity (e.g., ethyl methyl carbonate, dimethyl carbonate, or diethyl carbonate, etc.) is more preferable.

[0128] Among the above organic solvents, a gas-free organic solvent may be preferred. Those skilled in the art will understand that a gas-free solvent refers to a solvent designed to eliminate gas-generating sites in its structure. For example, to form a gas-free solvent, the solvent can be heated under pressure for a long period of time to remove dissolved gases.

[0129] The lithium salt may be used without any particular limitation as long as it is a compound capable of providing lithium ions used in a lithium secondary battery. Specifically, the lithium salt may be LiPF6, LiClO4, LiAsF6, LiBF4, LiSbF6, LiAl04, LiAlCl4, LiCF3SO3, LiC4F9SO3, LiN(C2F5SO3)2, LiN(C2F5SO2)2, LiN(CF3SO2)2, LiCl, LiI, LiB(C2O4)2, or a combination thereof. It is preferable that the concentration of the lithium salt be used within the range of 0.1 to 5.0M, 0.1 to 4.0M, 0.1 to 3.0M, 0.1 to 2.0M, or 0.1 to 1.0M. When the concentration of the lithium salt is within the above range, the electrolyte may have appropriate conductivity and viscosity, thereby exhibiting excellent electrolyte performance, and lithium ions may move effectively.

[0130] Meanwhile, in addition to the above components, the electrolyte may further include additives for the purpose of improving the life characteristics of the battery, suppressing battery capacity decrease, and improving the discharge capacity of the battery. For example, the electrolyte may include at least one additive selected from the group consisting of cyclic carbonate compounds, halogen-substituted carbonate compounds, sultone compounds, sulfate compounds, phosphate compounds, borate compounds, nitrile compounds, benzene compounds, amine compounds, silane compounds, and lithium salt compounds.

[0131] Examples of the above cyclic carbonate compounds include vinylene carbonate (VC) or vinylethylene carbonate.

[0132] An example of the above halogen-substituted carbonate compound is fluoroethylene carbonate (FEC).

[0133] Examples of the above sultone compounds include at least one compound selected from the group consisting of 1,3-propane sultone (PS), 1,4-butane sultone, ethene sultone, 1,3-propene sultone (PRS), 1,4-butene sultone, and 1-methyl-1,3-propene sultone.

[0134] Examples of the above sulfate compounds include ethylene sulfate (Esa), trimethylene sulfate (TMS), or methyl trimethylene sulfate (MTMS).

[0135] Examples of the above phosphate compound include at least one compound selected from the group consisting of lithium difluoro(bisoxalato)phosphate, lithium difluorophosphate, tetramethyl trimethyl silyl phosphate, trimethyl silyl phosphite, tris(2,2,2-trifluoroethyl)phosphate, and tris(trifluoroethyl) phosphite.

[0136] Examples of the above borate compounds include tetraphenylborate, lithium oxalyldifluoroborate (LiODFB), and lithium bisoxalatoborate (LiB(C2O4)2, LiBOB).

[0137] Examples of the nitrile compound include at least one compound selected from the group consisting of succinonitrile, adiponitrile, acetonitrile, propionitrile, butyronitrile, valeronitrile, caprylonitrile, heptanenitrile, cyclopentane carbonitrile, cyclohexane carbonitrile, 2-fluorobenzonitrile, 4-fluorobenzonitrile, difluorobenzonitrile, trifluorobenzonitrile, phenylacetonitrile, 2-fluorophenylacetonitrile, and 4-fluorophenylacetonitrile.

[0138] An example of the benzene compound may include fluorobenzene, an example of the amine compound may include triethanolamine or ethylenediamine, and an example of the silane compound may include tetravinylsilane.

[0139] The above lithium salt compound is a compound different from the lithium salt included in the non-aqueous electrolyte, and may include lithium difluorophosphate (LiDFP), LiPO2F2, or LiBF4.

[0140] The additive may be included in an amount of 0.1 to 10 wt%, 0.1 to 9 wt%, 0.1 to 8 wt%, 0.1 to 7 wt%, 0.1 to 6 wt%, 0.1 to 5 wt%, 0.1 to 4 wt%, or 0.1 to 3 wt% based on the total weight of the electrolyte.

[0141]

[0142] membrane

[0143] The above separator separates the negative electrode and the positive electrode and provides a passage for lithium ions. Any separator commonly used in lithium secondary batteries can be used without any particular restrictions. Specifically, the separator may be a porous polymer film, for example, a porous polymer film made of a polyolefin polymer such as an ethylene homopolymer, a propylene homopolymer, an ethylene / butene copolymer, an ethylene / hexene copolymer, and an ethylene / methacrylate copolymer, or a laminated structure of two or more layers thereof. In addition, a conventional porous nonwoven fabric, for example, a nonwoven fabric made of high-melting-point glass fiber, polyethylene terephthalate fiber, etc. may also be used. In addition, a coated separator containing a ceramic component or a polymer material may be used to secure heat resistance or mechanical strength.

[0144] In one aspect, the separation membrane may have a thickness of 15 μm or less, 14 μm or less, 13 μm or less, 12 μm or less, 11 μm or less, 10 μm or less, 9 μm or less, 8 μm or less, 7 μm or less, 6 μm or less, or 5 μm or less.

[0145] In one aspect, the separator may include a ceramic coating on one or both sides to provide improved safety.

[0146] In one aspect, a solid electrolyte layer may be used instead of or in combination with the separator. The solid electrolyte may include a solid electrolyte, be composed of a solid electrolyte, or be composed primarily of a solid electrolyte or a combination of a solid electrolyte and a liquid electrolyte.

[0147] Meanwhile, the lithium secondary battery may include one or more unit cells each comprising one negative electrode, one positive electrode, and two separators. The lithium secondary battery according to the present invention may include one unit cell, or may include two or more unit cells. When multiple unit cells are included, a high energy density can be achieved.

[0148] Meanwhile, the total thickness of the unit cell may be 220 µm to 240 µm, preferably 225 µm to 240 µm, more preferably 230 µm to 240 µm, or 235 µm to 240 µm. When the unit cell thickness satisfies the above range, the capacity per unit cell volume is 270 mAh / cm. 3 Above, 280 mAh / cm 3 or 290mAh / cm 3 This allows for the production of batteries with high energy density, as they can be implemented at higher levels.

[0149]

[0150] The lithium secondary battery according to the present invention configured as described above has excellent capacity characteristics, life characteristics, and rapid charging performance.

[0151] Specifically, the lithium secondary battery according to the present invention has a capacity of the unit cell per unit volume of 270 mAh / cm 3 Above, 280 mAh / cm 3 or 290mAh / cm 3 It can be more than 270mAh / cm, preferably 3 Up to 350mAh / cm 3 , 280 mAh / cm 3 330mAh / cm 3 , or 290mAh / cm 3 Up to 320mAh / cm 3 It has high capacity characteristics.

[0152] In addition, the lithium secondary battery according to the present invention has excellent life characteristics, with a capacity retention rate of 85% or more after 500 charge / discharge cycles at room temperature.

[0153] In addition, the lithium secondary battery according to the present invention has excellent rapid charging performance with a lithium precipitation point of 45% or more SOC during 3C charging.

[0154]

[0155] The lithium secondary battery according to the present invention as described above can be used to manufacture a battery pack. The battery pack includes an assembly of lithium secondary batteries according to the present invention electrically connected and a pack housing that accommodates the assembly. The pack housing can include a bus bar for electrically connecting the lithium secondary batteries, a cooling unit, an external terminal, etc. The battery pack can be mounted on a vehicle. The vehicle can be, for example, an electric vehicle, a hybrid vehicle, or a plug-in hybrid vehicle. The vehicle includes a four-wheel vehicle or a two-wheel vehicle. In particular, the lithium secondary battery according to the present invention has a high energy density and excellent rapid charging performance, and thus can be usefully used as a battery for an electric vehicle.

[0156] Hereinafter, the present invention will be described in more detail through specific examples. However, the following examples are provided solely to aid understanding of the present invention and are not intended to limit the scope of the present invention to these examples.

[0157]

[0158] Example 1

[0159] <Cathode manufacturing>

[0160] Positive electrode active material: Positive electrode conductive material: PVDF binder were mixed in a weight ratio of 97:1.2:1.4 in N-methylpyrrolidone to prepare a positive electrode slurry. At this time, D was used as the positive electrode active material. 50 =6㎛ single particle Li[Ni 0.93 Co 0.05 Mn 0.01 Al 0.01 ]O2 was used, and carbon nanotubes were used as the anode conductive material.

[0161] The above cathode slurry was applied to both sides of an aluminum current collector sheet having a thickness of 12 ㎛, dried, and then rolled to obtain a total cathode thickness of 102.0 ㎛, a cathode porosity of 18%, and a cathode loading of 3.5 mAh / cm. 2 A human anode was manufactured.

[0162]

[0163] <Cathode Manufacturing>

[0164] Negative active material: Negative conductive material: Styrene-butadiene rubber (SBR): Carboxymethyl cellulose (CMC) were mixed in water at a weight ratio of 96.6:0.5:1.8:1.1 to prepare a negative electrode slurry. At this time, the negative electrode active material was a mixture of Si-C composite (capacity 1800 mAh / g, efficiency 85%): artificial graphite: natural graphite at a weight ratio of 7:74.4:18.6, and the negative electrode conductive material was a mixture of Super C and single-walled carbon nanotubes.

[0165] The above negative electrode slurry was applied to both sides of a copper current collector sheet having a thickness of 6 ㎛, dried, and rolled to obtain a total negative electrode thickness of 110.5 ㎛, a negative electrode porosity of 25%, and a negative electrode loading of 3.731 mAh / cm 2 A human negative electrode was manufactured.

[0166]

[0167] <Lithium secondary battery manufacturing>

[0168] The positive and negative electrodes and two separators manufactured as described above were stacked in the order of positive electrode / separator / negative electrode / separator to manufacture a unit cell, and 29 of the unit cells were stacked to manufacture an electrode assembly. Then, the electrode assembly was inserted into a battery case, and an electrolyte was injected to manufacture a lithium secondary battery.

[0169]

[0170] Example 2

[0171] A lithium secondary battery was manufactured in the same manner as Example 1, except that the negative electrode was manufactured by mixing Si-C composite: artificial graphite: natural graphite in a weight ratio of 10:72:18 as the negative active material and having a total thickness of 101.8 μm.

[0172]

[0173] Example 3

[0174] A lithium secondary battery was manufactured in the same manner as in Example 1, except that a Si-C composite having a capacity of 1800 mAh / g and an efficiency of 82.4% was used.

[0175]

[0176] Example 4

[0177] A lithium secondary battery was manufactured in the same manner as in Example 1, except that the positive electrode was manufactured so that the total thickness of the positive electrode was 105.4 μm and the positive electrode porosity was 21%.

[0178]

[0179] Example 5

[0180] A lithium secondary battery was manufactured in the same manner as in Example 1, except that the positive electrode was manufactured so that the total thickness of the positive electrode was 107.8 μm and the positive electrode porosity was 23%.

[0181]

[0182] Comparative Example 1

[0183] A lithium secondary battery was manufactured in the same manner as Example 1, except that the negative electrode was manufactured by mixing SiO (capacity 1295 mAh / g, efficiency: 78.7%): artificial graphite: natural graphite in a weight ratio of 7:74.4:18.6 as the negative active material, and the total thickness of the negative electrode was 118.6 ㎛.

[0184]

[0185] Comparative Example 2

[0186] D as a cathode active material 50 =4㎛ single particle Li[Ni 0.86 Co 0.08 Mn 0.06]O2 was used, and the positive electrode was manufactured so that the total thickness of the positive electrode was 109.0㎛ and the positive electrode porosity was 23%, and the negative electrode was manufactured so that the total thickness of the negative electrode was 109.4㎛ by mixing SiO (capacity 1295mAh / g, efficiency: 78.7%): artificial graphite: natural graphite in a weight ratio of 11:71.2:17.8 as the negative active material, and a lithium secondary battery was manufactured in the same manner as in Example 1, except that the negative electrode was manufactured so that the total thickness of the negative electrode was 109.4㎛.

[0187]

[0188] Comparative Example 3

[0189] D as a cathode active material 50 =4㎛ single particle Li[Ni 0.86 Co 0.08 Mn 0.06 ]O2 was used, and the total thickness of the positive electrode was manufactured to be 109.0㎛ and the positive electrode porosity was 23%, and the negative electrode was manufactured by mixing SiO (capacity 1295mAh / g, efficiency: 78.7%): artificial graphite: natural graphite in a weight ratio of 4:76.8:19.2 as the negative active material, and the total thickness of the negative electrode was manufactured to be 126.7㎛, except that a lithium secondary battery was manufactured in the same manner as in Example 1.

[0190]

[0191] Comparative Example 4

[0192] When manufacturing the negative electrode, a Si-C composite: artificial graphite: natural graphite was mixed in a weight ratio of 10:72:18 as the negative electrode active material, and the total thickness of the negative electrode was 103.7㎛, the negative electrode porosity was 25%, and the negative electrode discharge loading was 3.801mAh / cm. 2 A lithium secondary battery was manufactured in the same manner as in Example 1, except that the negative electrode was manufactured to be .

[0193]

[0194] Comparative Example 5

[0195] D as a cathode active material 50 =4㎛ single particle Li[Ni0.93 Co 0.05 Mn 0.01 Al 0.01 ]O2 was used, and a positive electrode was manufactured so that the total thickness of the positive electrode was 100.7 ㎛ and the positive electrode porosity was 18%, and a negative electrode was manufactured so that the total thickness of the negative electrode was 110.2 ㎛. A lithium secondary battery was manufactured in the same manner as in Example 1.

[0196] The composition and N / P ratio of lithium secondary batteries of examples and comparative examples are described in Table 1 below. Here, the N / P ratio represents the discharge capacity of the negative electrode per unit area / discharge capacity of the positive electrode per unit area.

[0197]

[0198] Anode N / P ratio Ni mol% Anode active material D 50 (㎛)Porosity (%)Thickness (㎛)Si Type / Content (wt%)Porosity (%)Thickness (㎛)Example 193618102Si-C / 725110.5106.6Example 293618102Si-C / 1025101.8106.6Example 393618102Si-C / 725110.5106.6Example 493621105.4Si-C / 725110.5106.6Example 593623107.8Si-C / 725110.5106.6Comparative Example 193618105.4SiO / 725118.6106.6Comparative Example 286423109SiO / 1125109.4106.6Comparative Example 386423109SiO / 425126.7106.6Comparative Example 493618102Si-C / 1025103.7108.6Comparative Example 593418100.7Si-C / 725110.2106.6

[0199] Experimental Example 1

[0200] The capacity and efficiency of the positive and negative electrodes manufactured by the examples and comparative examples were measured as follows.

[0201] <Method for measuring positive electrode properties>

[0202] In each of the positive electrodes manufactured by the above examples and comparative examples, the positive electrode composite layer formed on one side of the positive electrode current collector was washed and removed to manufacture a single-sided positive electrode. A separator was interposed between the single-sided positive electrode and the lithium counter electrode, and an electrolyte was injected to manufacture a positive electrode coin half cell. The positive electrode coin half cell was charged to 4.30 V at 0.1 C, CC-CV mode (0.05 C cut-off), and then discharged to 3 V at 0.1 C, CC mode to measure the charge capacity and discharge capacity. From the measured charge capacity and discharge capacity, the positive electrode efficiency (positive electrode discharge capacity / positive electrode charge capacity × 100) and the irreversible capacity per unit area of ​​the positive electrode ((positive electrode charge capacity - positive electrode discharge capacity) / positive electrode area) were calculated. At this time, the positive electrode area is a value calculated as the product of the horizontal length (unit: cm) and the vertical length (unit: cm) of the positive electrode composite layer.

[0203]

[0204] <Method for measuring cathode properties>

[0205] In each of the negative electrodes manufactured by the above examples and comparative examples, the negative electrode composite layer formed on one surface of the negative electrode current collector was washed and removed to manufacture a single-sided negative electrode. A separator was interposed between the single-sided negative electrode and the lithium counter electrode, and an electrolyte was injected to manufacture a negative electrode coin half-cell. The negative electrode-coated half-cell was charged to 5 mV in 0.1 C, CC-CV mode (0.005 C cut-off), and then discharged to 1 V in 0.1 C, CC mode to measure the charge capacity and discharge capacity. From the measured charge capacity and discharge capacity, the negative electrode efficiency (negative electrode discharge capacity / negative electrode charge capacity × 100) and the irreversible capacity per unit area of ​​the negative electrode ((negative electrode charge capacity - negative electrode discharge capacity) / negative electrode area) were calculated. At this time, the negative electrode area can be obtained by multiplying the horizontal length (unit: cm) and the vertical length (unit: cm) of the negative electrode composite layer.

[0206]

[0207] In addition, the ratio of irreversible capacity per unit area of ​​the anode to the irreversible capacity per unit area of ​​the cathode, RIC (Ratio of Irreversible Capacity), was calculated according to the following equation.

[0208] The measurement results are shown in Table 2 below.

[0209] Anode discharge capacity (mAh / g) Anode efficiency (%) Irreversible capacity per unit area of ​​anode (mAh / cm) 2 )Cathode discharge capacity (mAh / g)Cathode efficiency (%)Irreversible capacity per unit area of ​​cathode (mAh / cm 2 )RIC Example 1216890.43345490.70.3801.137 Example 2216890.433498900.4121.049 Example 3216890.43345490.10.4171.038 Example 421688.50.45545490.70.3801.196 Example 5216890.43345490.70.3801.137 Comparative Example 1216890.43342788.10.4350.994 Comparative Example 220889.70.40245786.50.5060.794 Comparative Example 320889.70.40238490.60.3761.069Comparative example 4216890.433498900.4350.994Comparative example 5219910.34645490.70.3800.910

[0210] Experimental Example 2

[0211] The composite layer formed on one side of the current collector in each of the positive and negative electrodes manufactured by the above examples and comparative examples was washed and removed to manufacture a single-sided positive electrode and a single-sided negative electrode.

[0212] Then, the cross-sectional positive electrode, cross-sectional negative electrode, and separator were laminated in the order of cross-sectional positive electrode / separator / cross-sectional negative electrode / separator to manufacture an electrode assembly, and the electrode assembly was inserted into a battery case and an electrolyte was injected to manufacture a monocell.

[0213] Each monocell manufactured as described above was charged and discharged at 0.1C in a voltage range of 2.5 V to 4.25 V to measure the cell capacity, and the unit cell capacity per unit volume was measured by substituting it into the following equation.

[0214] Unit cell capacity per unit volume (mAh / cm) 3 ) = (Measured monocell capacity × 2) / ({Anode area × (2 × thickness of the positive electrode composite layer of the cross-sectional positive electrode + thickness of the positive electrode current collector + 2 × thickness of the negative electrode composite layer of the cross-sectional negative electrode + thickness of the negative electrode current collector + 2 × thickness of the separator)}

[0215] The measurement results are shown in Table 3 below.

[0216]

[0217] Experimental Example 3

[0218] The monocell manufactured in the above Experimental Example 2 was charged and discharged at 3C in the voltage range of 2.5 V to 4.25 V, and the SOC at the point of lithium deposition was measured. The measurement results are shown in Table 3 below.

[0219]

[0220] Experimental Example 4

[0221] Each lithium secondary battery manufactured by the examples and comparative examples was charged and discharged at 0.33C at room temperature in the voltage range of 2.5 V to 4.25 V for 500 cycles, with one cycle being considered as charging and discharging, and then the capacity retention rate was measured. The measurement results are shown in [Table 3] below.

[0222] Unit cell capacity per unit volume (mAh / cm) 3 )Lithium deposition SOC500 cycle capacity retention rateExample 1296.05090.3Example 2307.35387.5Example 3296.04989.1Example 4291.84890.2Example 5288.94688.7Comparative example 1282.04280.2Comparative example 2280.24573.2Comparative example 3269.53988.6Comparative example 4304.55181.6Comparative example 5295.14677.5

[0223] As described in Table 3 above, D50 The lithium secondary batteries of Examples 1 to 5, which include a single-particle type positive electrode active material of 5.5 μm to 8 μm and a first negative electrode active material including a Si-C composite, and in which the irreversible capacity per unit area of ​​the positive electrode is greater than the irreversible capacity per unit area of ​​the negative electrode, have a unit cell capacity per unit volume of 260 mAhg / cm 3 As such, the capacity characteristics are excellent, and the life characteristics are also excellent, with a capacity retention rate of over 85% after 500 cycles. In addition, lithium precipitation occurred after 45% of SOC during high-rate (3C) charge / discharge, indicating excellent rapid charging performance.

[0224] In contrast, in the case of the lithium secondary battery of Comparative Example 1, which applied silicon oxide instead of the Si-C composite as the negative electrode active material, the irreversible capacity per unit area of ​​the negative electrode was greater than the irreversible capacity per unit area of ​​the positive electrode, and the capacity characteristics, life characteristics, and rapid charging performance were inferior to those of Examples 1 to 5, and lithium precipitation occurred at SOC below 45%.

[0225] Meanwhile, D 50 In the case of the lithium secondary batteries of Comparative Examples 2 and 3 including the positive electrode active material and the negative electrode active material of silicon oxide having a small particle size of 5 ㎛ or less, the capacity characteristics, life characteristics, and rapid charging performance were inferior to those of Examples 1 to 5. In particular, in the case of Comparative Example 3, lithium precipitation occurred at a significantly lower SOC than those of Examples 1 to 5. In addition, D 50 In the case of the lithium secondary battery of Comparative Example 4, in which the irreversible capacity of the negative electrode is greater than the irreversible capacity of the positive electrode, even though it includes a single-particle positive electrode active material of 5.5 ㎛ to 8 ㎛ and a first negative electrode active material including a Si-C composite, it can be confirmed that the life characteristics are lowered compared to Examples 1 to 5.

[0226] This shows that each of the following configurations (1) to (3) is important for achieving improved performance.

[0227] (1) D 50This single particle type positive electrode active material of 5.5㎛ to 8㎛

[0228] (2) First negative electrode active material including a Si-C composite

[0229] (3) The irreversible capacity of the cathode shall be less than the irreversible capacity of the anode.

[0230] In addition, even if a Si-C composite is used as a negative electrode active material, D 50 In the case of Comparative Example 5 using a single particle type positive electrode active material with a particle size of less than 5.5㎛, D 50 It can be confirmed that the life characteristics are significantly reduced compared to Examples 1 to 5 using single-particle positive electrode active materials of 5.5㎛ to 8㎛.

Claims

1. D 50 A cathode comprising a single particle type cathode active material having a size of 5.5 μm to 8 μm; A negative electrode comprising a first negative electrode active material including a Si-C composite; and Contains electrolytes, A lithium secondary battery, wherein the irreversible capacity per unit area of ​​the negative electrode is smaller than the irreversible capacity per unit area of ​​the positive electrode.

2. In paragraph 1, A lithium secondary battery, wherein the ratio of the irreversible capacity per unit area of ​​the positive electrode to the irreversible capacity per unit area of ​​the negative electrode is 1.01 or more.

3. In paragraph 1, A lithium secondary battery, wherein the single particle type positive electrode active material comprises a lithium nickel-based oxide containing 88 mol% or more of nickel among all metals excluding lithium.

4. In paragraph 3, A lithium secondary battery, wherein the lithium nickel-based oxide is represented by the following [chemical formula 1]. [Chemical Formula 1] Li 1+x [Ni a Co b M 1 c M 2 d ]O2 In the above [chemical formula 1], M 1 is at least one selected from Mn and Al, and M 2 It contains at least one selected from the group consisting of Zr, Y, B, W, Mg, Ce, Hf, Ta, La, Ti, Sr, Ba, F, P and S, and -0.2≤x≤0.2, 0.88≤a<1, 0 <b<0.12, 0<c<0.12, 0≤d≤0.05임.

5. In paragraph 1, A lithium secondary battery having a porosity of the positive electrode of 16% to 24%.

6. In paragraph 1, The above positive electrode is a lithium secondary battery having a total thickness of 90㎛ to 120㎛.

7. In paragraph 1, The above cathode is a lithium secondary battery having an efficiency of less than 90%.

8. In paragraph 1, A lithium secondary battery having a discharge capacity of the positive electrode of 200 mAh / g to 400 mAh / g.

9. In paragraph 1, The above negative electrode further includes a graphite-based negative electrode active material as a second negative electrode active material, A lithium secondary battery, wherein the weight ratio of the first negative electrode active material to the second negative electrode active material is 2:98 to 20:

80.

10. In paragraph 1, A lithium secondary battery, wherein the negative electrode has a porosity of 20% to 30%.

11. In paragraph 1, A lithium secondary battery, wherein the negative electrode has a total thickness of 80 ㎛ to 130 ㎛.

12. In paragraph 1, The above negative electrode is a lithium secondary battery having an efficiency of 90% or more.

13. In paragraph 1, A lithium secondary battery having a cathode discharge capacity of 400 mAh / g to 600 mAh / g.

14. In paragraph 1, The above lithium secondary battery includes a unit cell composed of one negative electrode, one positive electrode, and two separators, A lithium secondary battery, wherein the thickness of the unit cell is 220 μm to 240 μm.

15. In paragraph 14, The capacity per unit volume of the above unit cell is 270 mAh / cm 3 Ideal lithium secondary battery.

16. In paragraph 1, A lithium secondary battery, wherein the ratio of the irreversible capacity per unit area of ​​the positive electrode to the irreversible capacity per unit area of ​​the negative electrode is 1.01 to 1.

25.

17. In paragraph 1, A lithium secondary battery, wherein the ratio of the irreversible capacity per unit area of ​​the positive electrode to the irreversible capacity per unit area of ​​the negative electrode is 1.04 to 1.

20.

18. In paragraph 9, A lithium secondary battery, wherein the weight ratio of the first negative electrode active material to the second negative electrode active material is 5:95 to 15:

85.

19. In paragraph 1, A lithium secondary battery, wherein the positive electrode has an efficiency of less than 90% and the negative electrode has an efficiency of 90% or more.

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