WO2023059072A1 - 리튬 이차 전지 - Google Patents
리튬 이차 전지 Download PDFInfo
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- WO2023059072A1 WO2023059072A1 PCT/KR2022/015008 KR2022015008W WO2023059072A1 WO 2023059072 A1 WO2023059072 A1 WO 2023059072A1 KR 2022015008 W KR2022015008 W KR 2022015008W WO 2023059072 A1 WO2023059072 A1 WO 2023059072A1
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M10/00—Secondary cells; Manufacture thereof
- H01M10/05—Accumulators with non-aqueous electrolyte
- H01M10/052—Li-accumulators
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M10/00—Secondary cells; Manufacture thereof
- H01M10/05—Accumulators with non-aqueous electrolyte
- H01M10/052—Li-accumulators
- H01M10/0525—Rocking-chair batteries, i.e. batteries with lithium insertion or intercalation in both electrodes; Lithium-ion batteries
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M10/00—Secondary cells; Manufacture thereof
- H01M10/42—Methods or arrangements for servicing or maintenance of secondary cells or secondary half-cells
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M4/00—Electrodes
- H01M4/02—Electrodes composed of, or comprising, active material
- H01M4/04—Processes of manufacture in general
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M4/00—Electrodes
- H01M4/02—Electrodes composed of, or comprising, active material
- H01M4/13—Electrodes for accumulators with non-aqueous electrolyte, e.g. for lithium-accumulators; Processes of manufacture thereof
- H01M4/134—Electrodes based on metals, Si or alloys
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M4/00—Electrodes
- H01M4/02—Electrodes composed of, or comprising, active material
- H01M4/13—Electrodes for accumulators with non-aqueous electrolyte, e.g. for lithium-accumulators; Processes of manufacture thereof
- H01M4/139—Processes of manufacture
- H01M4/1395—Processes of manufacture of electrodes based on metals, Si or alloys
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M4/00—Electrodes
- H01M4/02—Electrodes composed of, or comprising, active material
- H01M4/36—Selection of substances as active materials, active masses, active liquids
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M4/00—Electrodes
- H01M4/02—Electrodes composed of, or comprising, active material
- H01M4/36—Selection of substances as active materials, active masses, active liquids
- H01M4/38—Selection of substances as active materials, active masses, active liquids of elements or alloys
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M4/00—Electrodes
- H01M4/02—Electrodes composed of, or comprising, active material
- H01M4/36—Selection of substances as active materials, active masses, active liquids
- H01M4/38—Selection of substances as active materials, active masses, active liquids of elements or alloys
- H01M4/386—Silicon or alloys based on silicon
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M4/00—Electrodes
- H01M4/02—Electrodes composed of, or comprising, active material
- H01M4/36—Selection of substances as active materials, active masses, active liquids
- H01M4/48—Selection of substances as active materials, active masses, active liquids of inorganic oxides or hydroxides
- H01M4/50—Selection of substances as active materials, active masses, active liquids of inorganic oxides or hydroxides of manganese
- H01M4/505—Selection of substances as active materials, active masses, active liquids of inorganic oxides or hydroxides of manganese of mixed oxides or hydroxides containing manganese for inserting or intercalating light metals, e.g. LiMn2O4 or LiMn2OxFy
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M4/00—Electrodes
- H01M4/02—Electrodes composed of, or comprising, active material
- H01M4/36—Selection of substances as active materials, active masses, active liquids
- H01M4/48—Selection of substances as active materials, active masses, active liquids of inorganic oxides or hydroxides
- H01M4/52—Selection of substances as active materials, active masses, active liquids of inorganic oxides or hydroxides of nickel, cobalt or iron
- H01M4/525—Selection of substances as active materials, active masses, active liquids of inorganic oxides or hydroxides of nickel, cobalt or iron of mixed oxides or hydroxides containing iron, cobalt or nickel for inserting or intercalating light metals, e.g. LiNiO2, LiCoO2 or LiCoOxFy
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M4/00—Electrodes
- H01M4/02—Electrodes composed of, or comprising, active material
- H01M2004/026—Electrodes composed of, or comprising, active material characterised by the polarity
- H01M2004/027—Negative electrodes
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M10/00—Secondary cells; Manufacture thereof
- H01M10/42—Methods or arrangements for servicing or maintenance of secondary cells or secondary half-cells
- H01M2010/4292—Aspects relating to capacity ratio of electrodes/electrolyte or anode/cathode
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E60/00—Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
- Y02E60/10—Energy storage using batteries
Definitions
- the present invention relates to a lithium secondary battery, and more particularly, to a lithium secondary battery using silicon (Si) particles as an anode active material.
- lithium secondary batteries are in the spotlight as an energy source for electric vehicles.
- a lithium secondary battery generally forms an electrode assembly by interposing a separator between a positive electrode including a positive electrode active material made of a transition metal oxide containing lithium and a negative electrode including a negative electrode active material capable of storing lithium ions, and the electrode It is manufactured by inserting the assembly into a battery case, injecting a non-aqueous electrolyte serving as a medium for delivering lithium ions, and then sealing the assembly.
- the non-aqueous electrolyte is generally composed of a lithium salt and an organic solvent capable of dissolving the lithium salt.
- a carbon-based material such as natural graphite or artificial graphite has been mainly used as an anode active material of a lithium secondary battery.
- the carbon-based negative electrode active material has a small capacity and a slow reaction rate with lithium, secondary batteries using the carbon-based negative electrode active material have limitations in realizing high capacity and rapid charging performance.
- the present invention is to solve the above problems, and to provide a lithium secondary battery having excellent lifespan characteristics while implementing high capacity characteristics by applying high silicon (Si) particles as an anode active material.
- a negative electrode comprising a negative electrode active material; a positive electrode including a positive electrode active material; a separator interposed between the cathode and anode; and an electrolyte, wherein the negative electrode active material includes silicon particles, a Si charge depth represented by the following formula (1) is 30% to 60%, and a Si discharge depth represented by the following formula (2) is 10% or more.
- a lithium secondary battery is provided.
- Si filling depth (%) ⁇ (anode loading amount + total lithiation capacity of cathode)/cathode loading amount ⁇ ⁇ 100
- the positive loading amount is the capacity per unit area of the positive electrode (unit: mAh/cm 2 )
- the negative loading amount is the capacity per unit area of the negative electrode (unit: mAh/cm 2 )
- the prelithiation capacity of the negative electrode is Capacity per unit area of lithium (Li) inserted into the negative electrode by prelithiation (unit: mAh/cm 2 ).
- Si discharge depth (%) ⁇ (anode loading amount + total lithiation capacity of cathode - discharge loading amount) / cathode loading amount ⁇ ⁇ 100
- the positive electrode loading is the capacity per unit area of the positive electrode (unit: mAh/cm 2 )
- the negative electrode loading is the capacity per unit area of the negative electrode (unit: mAh/cm 2 )
- the prelithiation capacity of the negative electrode is The capacity per unit area of lithium (Li) inserted into the negative electrode by prelithiation (unit: mAh/cm 2 )
- the discharge loading amount is the discharge capacity of the secondary battery at the discharge cut-off voltage as the positive electrode area value divided by
- the lithium secondary battery according to the present invention is designed such that the Si charge depth and the Si discharge depth satisfy a specific range, and exhibits excellent lifespan characteristics despite the use of Si particles as an anode active material.
- Si particles have excellent reactivity with lithium and capacity characteristics compared to carbon-based negative electrode active materials and/or SiOx-based negative electrode active materials, the lithium secondary battery of the present invention to which they are applied can realize excellent capacity characteristics and fast charging performance. can That is, the lithium secondary battery according to the present invention exhibits excellent capacity characteristics, lifespan characteristics, and rapid charging performance.
- the lithium secondary battery according to the present invention may use, for example, a lithium nickel-based oxide having a Ni content of 60 mol% or more as a cathode active material, and in particular, when the Ni content is 80 mol% or more, the capacity characteristics are further improved. can make it
- primary particle means a particle unit in which grain boundaries do not exist in appearance when observed under a 5000-fold to 20000-fold field of view using a scanning electron microscope.
- Average particle diameter of primary particles means an arithmetic average value calculated after measuring the particle diameters of primary particles observed in a scanning electron microscope image.
- second particles are particles formed by aggregation of a plurality of primary particles.
- average particle diameter D 50 means a particle size based on 50% of a volume cumulative particle size distribution of particle powder to be measured (eg, positive electrode active material powder, negative electrode active material powder, etc.).
- the average particle diameter D50 may be measured using a laser diffraction method. For example, after dispersing the powder of the particle to be measured in a dispersion medium, introducing it into a commercially available laser diffraction particle size measuring device (e.g., Microtrac MT 3000), irradiating ultrasonic waves of about 28kHz with an output of 60W, and then volume cumulative particle size After obtaining the distribution graph, it can be measured by finding the particle size corresponding to 50% of the cumulative volume.
- a laser diffraction particle size measuring device e.g., Microtrac MT 3000
- Si has excellent capacity characteristics and lithium reactivity compared to silicon-based negative active materials such as SiOx and SiC as well as carbon-based negative active materials such as graphite. Therefore, when Si is applied as an anode active material, improved energy density and rapid charging performance can be obtained. However, when Si is applied as an anode active material, it is difficult to implement satisfactory lifespan characteristics because the negative electrode degrades rapidly during charging and discharging due to severe volume change during charging and discharging. As a result of repeated research to improve the lifespan characteristics of a lithium secondary battery to which Si is applied as an anode active material, the present inventors have found that Si is used as an anode active material when a battery is designed such that the Si charge depth and Si discharge depth satisfy a specific range. However, the present invention was completed by finding out that excellent lifespan characteristics can be implemented.
- the lithium secondary battery according to the present invention includes a negative electrode including a negative electrode active material; a positive electrode including a positive electrode active material; a separator interposed between the cathode and anode; and an electrolyte, wherein the negative electrode active material includes silicon (Si), Si represented by the following formula (1) has a charging depth of 30% to 60%, and Si represented by the following formula (2) The depth of discharge is more than 10%.
- the negative electrode active material does not include other types of negative electrode active materials and may be made of only silicon.
- Si filling depth (%) ⁇ (anode loading amount + total lithiation capacity of cathode)/cathode loading amount ⁇ ⁇ 100
- the positive loading amount is the capacity per unit area of the positive electrode (unit: mAh/cm 2 )
- the negative loading amount is the capacity per unit area of the negative electrode (unit: mAh/cm 2 )
- the prelithiation capacity of the negative electrode is It is the capacity per unit area (unit: mAh/cm 2 ) of lithium (Li) inserted into the negative electrode by prelithiation.
- Si discharge depth (%) ⁇ (anode loading amount + total lithiation capacity of cathode - discharge loading amount) / cathode loading amount ⁇ ⁇ 100
- the positive electrode loading is the capacity per unit area of the positive electrode (unit: mAh/cm 2 )
- the negative electrode loading is the capacity per unit area of the negative electrode (unit: mAh/cm 2 )
- the prelithiation capacity of the negative electrode is The capacity per unit area of lithium (Li) inserted into the negative electrode by prelithiation (unit: mAh/cm 2 )
- the discharge loading amount is the discharge capacity of the secondary battery at the discharge cut-off voltage as the positive electrode area is the value divided by
- the Si filling depth may be 40% to 60%, more preferably 50% to 60%.
- the Si filling depth can be adjusted by controlling the positive electrode loading amount, the negative electrode loading amount, and/or the degree of prelithiation of the negative electrode.
- the positive electrode loading amount and/or negative electrode loading amount depend on the type and content of the active material used, It may be set considering the porosity and/or the thickness of the active material layer.
- the Si discharge depth represents the capacity of lithium remaining in the negative electrode at the discharge cut-off voltage. According to the study of the present inventors, even if the Si charge depth satisfies 30 to 60%, when the Si discharge depth is less than 10%, it was found that life characteristics are rapidly deteriorated.
- the Si discharge depth may be 10% to 30%, more preferably 10% to 25%, even more preferably 15% to 25%, and still more preferably 17% to 25%.
- the Si discharge depth is complexly affected by the ratio of the negative electrode capacity to the positive electrode capacity (N/P ratio), the driving voltage range of the battery, and the pre-lithiation degree of the negative electrode, and by appropriately controlling these factors, the Si discharge depth can be adjusted.
- the lithium secondary battery of the present invention may be designed so that the Si usage range is 10 to 50%, preferably 20 to 40%, and more preferably 30% to 40%.
- the Si use range as shown in Equation (3) below, means the difference between the Si charge depth and the Si discharge depth. When the Si use range is high, the energy density increases, but the life characteristics are significantly lowered, and the Si use range If is too low, the energy density decreases.
- the N/P ratio which is the percentage of the negative electrode loading amount to the positive electrode loading amount
- the Si filling depth may increase, resulting in a decrease in lifespan.
- a decrease in lifespan may occur.
- the lithium secondary battery according to the present invention designed to satisfy the above conditions can realize excellent energy density and rapid charging performance by using Si particles, and exhibits excellent lifespan characteristics.
- the lithium secondary battery according to the present invention has an energy density of 500 Wh/L or more, preferably 550 Wh/L or more, more preferably 600 Wh/L or more, and even more preferably 650 Wh/L or more, while having an energy density of 80 Wh/L or more.
- the number of times of reaching the % lifetime may be 450 times or more, preferably 480 times or more, more preferably 500 times or more, even more preferably 600 times or more, and still more preferably 700 times or more.
- the lithium secondary battery according to the present invention has a cell energy density of 500 Wh/L or more and the number of 80% lifespan reaching 450 times or more, or a cell energy density of 550Wh/L or more and the number of 80% lifespan reaching 480 times. times or more, the cell energy density is 650 Wh/L or more, and the number of times 80% life reaches 480 times or more, or the cell energy density is 550 Wh/L to 600 Wh/L, and the number of times 80% life reaches 700 times or more. .
- the negative electrode according to the present invention may include silicon (Si) as an anode active material, and preferably, 100% silicon (Si) may be used as an anode active material. Silicon used in the present invention may be pure silicon not bonded to other metals or oxygen.
- the negative electrode according to the present invention includes an anode current collector and an anode active material layer formed on at least one surface of the anode current collector, and the anode active material layer may include silicon (Si) as an anode active material.
- Si has excellent capacity characteristics and lithium reactivity compared to silicon-based negative active materials such as SiOx and SiC as well as carbon-based negative active materials such as graphite. Therefore, when Si is applied as an anode active material, improved energy density and rapid charging performance can be obtained.
- the average particle diameter (D50) of the silicon may be 1 ⁇ m to 10 ⁇ m, specifically 2 ⁇ m to 8 ⁇ m, and more specifically 3 ⁇ m to 7 ⁇ m.
- the average particle diameter is less than 5 ⁇ m, the specific surface area of the particles is excessively increased, and thus the viscosity of the negative electrode slurry is excessively increased. Accordingly, the dispersion of the particles constituting the negative electrode slurry is not smooth.
- the size of the silicon particles is too small, the contact area between the silicon particles and the conductive materials is reduced by the composite of the conductive material and the binder in the negative electrode slurry, so the possibility of disconnection of the conductive network increases, resulting in a decrease in capacity retention rate.
- the BET specific surface area of the silicon is preferably 0.01 to 150.0 m 2 /g, more preferably 0.1 to 100.0 m 2 /g, particularly preferably 0.2 to 80.0 m 2 /g, and most preferably 0.2 to 18.0 m 2 /g.
- the BET surface area can be determined according to DIN 66131 using nitrogen.
- the silicon may exist in crystalline or amorphous form, and is preferably not porous.
- the silicon particles may be spherical or fragment-shaped, but are not limited thereto, and may have a fibrous structure or be present in the form of a silicon-containing film or coating.
- Silicon may be included in an amount of 50% by weight or more, 60% by weight or more, preferably 65% by weight or more, more preferably 70% by weight or more based on the total weight of the negative electrode active material layer, and 99% by weight or less, preferably may be included in an amount of 95% by weight or less, more preferably 90% by weight or less, and even more preferably 80% by weight or less.
- the negative electrode according to the present invention may further include other negative electrode active materials other than the silicon, if necessary.
- the other anode active material may be SiOx (where 0 ⁇ x ⁇ 2), a carbon-based anode active material, and the like.
- the carbon-based negative electrode active material may be, for example, artificial graphite, natural graphite, graphitized carbon fiber, amorphous carbon, soft carbon, or hard carbon, but is not limited thereto.
- the other negative active material may be included in an amount of 50% by weight or less, preferably 45% by weight or less, and more preferably 30% by weight or less based on the total weight of the negative electrode active material layer.
- the negative electrode active material layer may further include a conductive material and a binder, if necessary.
- the conductive material examples include spherical or scaly graphite; carbon-based materials such as carbon black, acetylene black, ketjen black, channel black, furnace black, lamp black, summer black, carbon fiber, single-walled carbon nanotubes, and multi-walled carbon nanotubes; 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 the like, and one of them alone or a mixture of two or more may be used.
- the conductive material may be included in an amount of 0.1 to 40% by weight, 1 to 30% by weight, or 5 to 30% by weight based on the total weight of the negative electrode active material layer.
- the negative electrode active material layer according to the present invention may include two or more types of conductive materials, and in this case, the conductive materials may include a point-shaped conductive material and a plate-shaped conductive material.
- the dotted conductive material may be used to improve the conductivity of the negative electrode, and preferably has conductivity without causing chemical change.
- the conductive material is natural graphite, artificial graphite, carbon black, acetylene black, ketjen black, channel black, farnes black, lamp black, thermal black, conductive fiber, fluorocarbon, aluminum powder, nickel powder, zinc oxide, titanic acid It may be at least one selected from the group consisting of potassium, titanium oxide, and polyphenylene derivatives, and preferably may include carbon black in terms of implementing high conductivity and excellent dispersibility.
- the point-shaped conductive material may have a BET specific surface area of 40 m 2 /g or more and 70 m 2 /g or less, preferably 45 m 2 /g or more and 65 m 2 /g or less, more preferably 50 m 2 /g or more and 60 m 2 /g or less. there is.
- the point-like conductive material may satisfy a functional group content (Volatile matter) of 0.01% or more and 0.05% or less, preferably 0.01% or more and 0.04% or less, more preferably 0.01% or more and 0.03% or less.
- a functional group content Volatile matter
- Control of the functional group content can be adjusted according to the degree of heat treatment of the point-shaped conductive material. That is, in the production of the point-like conductive material, a high functional group content means a lot of foreign substances, and a low functional group content means more heat treatment processing, and the point-like conductive material according to the present application has a functional group content within the above range. In order to satisfy, it is characterized in that the point-shaped conductive material is subjected to a certain portion of heat treatment to satisfy the functional group content range.
- the particle size of the dot-shaped conductive material may be 10 nm to 100 nm, preferably 20 nm to 90 nm, and more preferably 20 nm to 60 nm.
- the plate-shaped conductive material is a planar conductive material or a bulk type conductive material that can improve conductivity by increasing the surface contact between silicon particles in the negative electrode and suppress the disconnection of the conductive path due to volume expansion at the same time. can be expressed as
- the plate-like conductive material may include at least one selected from the group consisting of plate-like graphite, graphene, graphene oxide, and graphite flakes, and preferably may be plate-like graphite.
- An average particle diameter (D50) of the plate-shaped conductive material may be 2 ⁇ m to 7 ⁇ m, specifically 3 ⁇ m to 6 ⁇ m, and more specifically 4 ⁇ m to 5 ⁇ m.
- the plate-shaped conductive material may have a BET specific surface area of 1 m 2 /g or more and 500 m 2 /g or less, preferably 5 m 2 /g or more and 300 m 2 /g or less, more preferably 5 m 2 /g or more and 300 m 2 /g or less. there is.
- binder for example, polyvinylidene fluoride (PVDF), vinylidene fluoride-hexafluoropropylene copolymer (PVDF-co-HFP), polyvinyl alcohol, polyacrylic acid , polyacrylamide, 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 the like, and one of them alone Alternatively, a mixture of two or more may be used.
- the binder may be included in an amount of 1 to 20% by weight, 2 to 20% by weight, or 2 to 10% by weight based on the total weight of the negative electrode active material layer.
- the negative electrode may have a multi-layered structure in which a negative electrode active material layer is composed of a single layer or two or more layers.
- a negative electrode active material layer is composed of a single layer or two or more layers.
- each layer may have different types and/or contents of the negative active material, the binder, and/or the conductive material.
- the negative electrode according to the present invention may have a two-layer structure, and a layer adjacent to the current collector (hereinafter referred to as a lower layer) and an upper layer formed on the lower layer may have different types of negative electrode active materials.
- the anode active material of the lower layer may be silicon
- the anode active material of the upper layer may be SiOx (where 0 ⁇ x ⁇ 2).
- the negative electrode active material layer may have a porosity of 20% to 70% or 20% to 50%. If the porosity of the negative electrode active material layer is too small, the impregnability of the electrolyte solution may be lowered and thus lithium mobility may be lowered, and if the porosity is too large, the energy density may be lowered.
- the negative electrode may be a pre-lithiated negative electrode in which lithium is intercalated before charging and discharging.
- Prelithiation of the negative electrode may be performed through a negative electrode prelithiation method well known in the art.
- the prelithiation of the negative electrode is a method of compressing or depositing lithium metal on the negative electrode active material layer, a method of inserting lithium into the negative electrode active material layer through an electrochemical method, a sacrificial positive electrode material or positive electrode active material included in the positive electrode Excess lithium contained in the anode is inserted into the anode through an activation process, or excess lithium is imparted to the anode through an electrochemical method or a method of compressing or depositing lithium metal, and the excess lithium provided to the anode through the activation process is applied to the anode. It may be performed by a method of inserting into, etc., and may be performed by combining two or more of the above methods.
- the negative electrode of the present invention may have a pre-lithiation degree of 5 to 50%, preferably 5 to 30%, more preferably 10 to 20%, represented by the following formula (4).
- Equation (4)
- a lithium secondary battery having excellent capacity and lifespan characteristics may be implemented. Specifically, if the degree of pre-lithiation of the negative electrode is too small, life characteristics may deteriorate. Life characteristics can be improved by controlling the depth of discharge, but in this case, it is difficult to secure cell energy density. In addition, if the degree of prelithiation of the negative electrode is too high, degradation of silicon particles in the electrode may be accelerated, and thus capacity characteristics may deteriorate.
- a cathode according to the present invention includes a cathode active material layer.
- the positive electrode of the present invention may include a positive electrode current collector and a positive electrode active material layer formed on at least one surface of the positive electrode current collector.
- the positive electrode active material layer includes a positive electrode active material, and may further include a conductive material and/or a binder, if necessary.
- the cathode active material various cathode active materials known in the art, lithium nickel-based oxide, lithium manganese-based oxide, lithium cobalt-based oxide, and the like may be used.
- the molar ratio of nickel to all metals other than lithium is 60 mol% or more, preferably 80 mol% or more, more preferably 83 mol% or more, and still more preferably 85 mol% or more.
- mol % or more of lithium nickel-based oxide may be included.
- a lithium nickel-based oxide containing 60 mol% or more of Ni has a high capacity, when a lithium nickel-based oxide containing 60 mol% or more of Ni is used as a positive electrode active material and Si is used as a negative electrode active material, compared to the prior art, A lithium secondary battery having excellent capacity characteristics can be manufactured.
- the lithium nickel-based oxide may be, for example, represented by Chemical Formula 1 below.
- M 1 may be at least one selected from the group consisting of Al, B, Co, W, Mg, V, Ti, Zn, Ga, In, Ru, Nb, Sn, Sr, and Zr.
- 1+x1 represents the molar ratio of lithium in the lithium nickel-based oxide, and may be -0.2 ⁇ x1 ⁇ 0.2, 0.1 ⁇ x1 ⁇ 0.1, or 0 ⁇ x1 ⁇ 0.1.
- a1 represents the molar ratio of nickel among all metals except lithium in the lithium nickel-based oxide, 0.6 ⁇ a1 ⁇ 1, 0.8 ⁇ a1 ⁇ 1, 0.8 ⁇ a1 ⁇ 0.98, 0.82 ⁇ a1 ⁇ 0.98, 0.83 ⁇ a1 ⁇ 0.98 , 0.85 ⁇ a1 ⁇ 0.98, 0.88 ⁇ a1 ⁇ 0.98, or 0.90 ⁇ a1 ⁇ 0.98.
- b1 represents the molar ratio of cobalt among all metals except lithium in the lithium nickel-based oxide, 0 ⁇ b1 ⁇ 0.4, 0 ⁇ b1 ⁇ 0.2, 0 ⁇ b1 ⁇ 0.18, 0.01 ⁇ b1 ⁇ 0.18, 0.01 ⁇ b1 ⁇ 0.17 , 0.01 ⁇ b1 ⁇ 0.15, 0.01 ⁇ b1 ⁇ 0.12, or 0.01 ⁇ b1 ⁇ 0.10.
- c1 represents the molar ratio of manganese among all metals except lithium in the lithium nickel-based oxide, 0 ⁇ c1 ⁇ 0.4, 0 ⁇ c1 ⁇ 0.2, 0 ⁇ c1 ⁇ 0.18, 0.01 ⁇ c1 ⁇ 0.18, 0.01 ⁇ c1 ⁇ 0.17 , 0.01 ⁇ c1 ⁇ 0.15, 0.01 ⁇ c1 ⁇ 0.12, or 0.01 ⁇ c1 ⁇ 0.10.
- d1 represents the molar ratio of M 1 in all metals except lithium in the lithium nickel-based oxide, 0 ⁇ d1 ⁇ 0.2, 0 ⁇ d1 ⁇ 0.18, 0 ⁇ d1 ⁇ 0.17, 0 ⁇ d1 ⁇ 0.15, 0 ⁇ d1 ⁇ 0.12, or 0 ⁇ d1 ⁇ 0.10.
- the cathode active material may further include a coating layer on the surface of the lithium nickel-based oxide, if necessary.
- the coating layer may include a coating element M 2 , and the coating element M 2 may include, for example, Al, B, Co, W, Mg, V, Ti, Zn, Ga, In, Ru, Nb, Sn, It may be at least one selected from the group consisting of Sr and Zr.
- the coating layer is formed through various coating methods known in the art, for example, dry coating, wet coating, chemical vapor deposition (CVD), physical vapor deposition (PVD), atomic layer deposition (ALD), etc. It can be.
- the form of the cathode active material is not particularly limited, and may be, for example, secondary particle form in which tens to hundreds of primary particles are aggregated, single particle form composed of 10 or less primary particles, or a combination thereof.
- the average particle diameter of the primary particles may be 0.05 ⁇ m to 4 ⁇ m, specifically, the average particle diameter of the primary particles may be 0.05 ⁇ m or more, 0.1 ⁇ m or more, , The average particle diameter of the primary particles may be 4 ⁇ m or less, 3 ⁇ m or less, or 2 ⁇ m or less. If the average particle diameter of the primary particles is too large, a rock salt phase may be formed and resistance characteristics and life characteristics may deteriorate.
- the average particle diameter of the secondary particles may be 2 ⁇ m to 25 ⁇ m, specifically, 2 ⁇ m or more, 3 ⁇ m or more, or 4 ⁇ m or more, and may be 25 ⁇ m or less, 20 ⁇ m or less, or 18 ⁇ m or less. .
- the average particle diameter of the secondary particles satisfies the above range, it is possible to prevent the cathode active material particles from being broken during the rolling process or from deteriorating processability during slurry preparation.
- the single particles may have an average particle diameter D 50 of 2 ⁇ m to 10 ⁇ m.
- the average particle diameter D 50 of the single particles may be 2 ⁇ m or more, 3 ⁇ m or more, 4 ⁇ m or more, 5 ⁇ m or more, or 6 ⁇ m or more, and 10 ⁇ m or less, 9 ⁇ m or less, 8 ⁇ m or less, or 7 ⁇ m may be below. If the average particle diameter D 50 of the single particles is too large, the lithium migration path becomes longer, increasing resistance and degrading output characteristics.
- the average particle diameter of the primary particles constituting the single particle may be 0.5 ⁇ m to 4 ⁇ m, specifically, 0.5 ⁇ m or more, 0.7 ⁇ m or more, 1 ⁇ m or more, or 1.5 ⁇ m or more, 4 ⁇ m or less, It may be 3.5 ⁇ m or less, or 3 ⁇ m or less. If the average particle diameter of the primary particles constituting single particles is too large, the lithium migration path becomes longer, increasing resistance and degrading output characteristics. If it is too small, the specific surface area increases, which may increase side reactions with the electrolyte. .
- the conductive material for example, spherical or scaly graphite; carbon-based materials such as carbon black, acetylene black, ketjen black, channel black, furnace black, lamp black, summer black, carbon fiber, single-walled carbon nanotubes, and multi-walled carbon nanotubes; 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 the like, and one of them alone or a mixture of two or more may be used.
- the conductive material may be included in an amount of 0.1 to 20% by weight, 1 to 20% by weight, or 1 to 10% by weight based on the total weight of the positive electrode active material layer.
- binder for example, polyvinylidene fluoride (PVDF), vinylidene fluoride-hexafluoropropylene copolymer (PVDF-co-HFP), polyvinyl alcohol, polyacrylonitrile (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.
- the binder may be included in an amount of 1 to 20% by weight, 2 to 20% by weight, or 2 to 10% by weight based on the total weight of the positive electrode active material layer.
- the separator separates the negative electrode and the positive electrode and provides a passage for the movement of lithium ions. If it is normally used as a separator in a lithium secondary battery, it can be used without particular limitation. It is preferable to have an excellent ability to absorb the electrolyte while being resistant.
- a porous polymer film for example, a porous polymer film made of polyolefin-based polymers such as ethylene homopolymer, propylene homopolymer, ethylene/butene copolymer, ethylene/hexene copolymer, and ethylene/methacrylate copolymer, or these A laminated structure of two or more layers of may be used.
- porous non-woven fabrics for example, non-woven fabrics made of high-melting glass fibers, polyethylene terephthalate fibers, and the like may be used.
- a coated separator containing a ceramic component or a polymer material may be used to secure heat resistance or mechanical strength, and may be selectively used in a single-layer or multi-layer structure.
- the electrolyte used in the present invention includes organic liquid electrolytes, inorganic liquid electrolytes, solid polymer electrolytes, gel-type polymer electrolytes, solid inorganic electrolytes, and molten inorganic electrolytes that can be used in the manufacture of lithium secondary batteries, and are limited to these. it is not going to be
- the electrolyte may include an organic solvent and a lithium salt.
- the organic solvent may be used without particular limitation as long as it can serve as a medium through which ions involved in the electrochemical reaction of the battery can move.
- the organic solvent includes ester solvents such as methyl acetate, ethyl acetate, ⁇ -butyrolactone, and ⁇ -caprolactone; ether solvents such as dibutyl ether or tetrahydrofuran; ketone solvents such as cyclohexanone; aromatic hydrocarbon-based solvents such as benzene and fluorobenzene; Dimethylcarbonate (DMC), diethylcarbonate (DEC), methylethylcarbonate (MEC), ethylmethylcarbonate (EMC), ethylene carbonate (EC), propylene carbonate, PC) and other carbonate-based solvents; alcohol solvents such as ethyl alcohol and isopropyl alcohol; nitriles such as R-CN (R is a straight-chain, branched or cyclic hydrocarbon group having 2
- the lithium salt may be used without particular limitation as long as it is a compound capable of providing lithium ions used in a lithium secondary battery.
- the lithium salt is LiPF 6 , LiN(FSO
- additives may be included in the electrolyte for the purpose of improving life characteristics of a battery, suppressing capacity decrease, suppressing gas generation, and the like.
- various additives used in the art for example, fluoro ethylene carbonate (FEC), vinylene carbonate (VC), vinyl ethylene carbonate (VEC), ethylene sulfate (ESa), lithium difluoro Phosphate (LiPO 2 F 2 ), lithium bisoxalato borate (LiBOB), lithium tetrafluoro borate (LiBF4), lithium difluorooxalato borate (LiDFOB), lithium difluorobisoxalatophosphate (LiDFBP), lithium Tetrafluorooxalato phosphate (LiTFOP), lithium methyl sulfate (LiMS), lithium ethyl sulfate (LiES) propanesultone (PS), propensultone (PRS), succinonitrile (SN), a
- n and n are each independently an integer of 1 to 100.
- R 16 is a linear or non-linear alkylene group having 1 to 3 carbon atoms
- R 17 to R 19 are each independently at least one selected from the group consisting of hydrogen, an alkyl group having 1 to 3 carbon atoms and -CN
- D is CH, or N.
- R 1 R 2 , R 3 , and R 4 are each independently hydrogen; Or an alkyl group having 1 to 5 carbon atoms, a cyano group (CN), an allyl group, a propargyl group, an amine group, a phosphate group, an ether group, a benzene group, a cyclohexyl group, a silyl group, an isocyanate group (-NCO), a fluorine group (-F) may be included.
- compounds acting as oxygen scavengers may be used as the additive.
- Materials with phosphite-based structures such as tris tri(methylsilyl)phosphite (TMSPi), tris trimethylphosphite (TMPi), and tris(2,2,2-trifluoroethyl)phosphite (TTFP) (see Formula E); tristri(methylsilyl)phosphate (TMSPa); polyphosphoric acid trimethylsilyl ester (PPSE); tris(pentafluorophenyl)borane (TPFPB); Coumarin-3-carbonitrile (CMCN), 7-ethynylcoumarin (ECM), 3-acetylcoumarin (AcCM), 3-[(trimethylsilyl)oxyl]-2H-1-benzopyran-2-one ( TMSOCM) 3-(trimethylsilyl)coumarin (TMSCM) and the like, compounds containing a Coumarin structure (see Formula F); 3-(2-propyn-1
- R1 to R6 are each independently a substituted or unsubstituted alkenyl group having 2 to 20 carbon atoms and a substituted or unsubstituted alkynyl group having 2 to 20 carbon atoms, a cyano group (-CN), or a fluoro group.
- a cathode active material conductive material: PVDF binder was mixed in N-methylpyrrolidone at a weight ratio of 97.7:0.9:1.4 to prepare a cathode slurry. At this time, LiNi 0.86 Co 0.05 Mn 0.07 Al 0.02 O 2 was used as the cathode active material, and CNT was used as the conductive material.
- the positive electrode slurry was applied on an aluminum current collector sheet, dried, and rolled to prepare a positive electrode having a loading amount of 4.52 mAh/cm 2 .
- a negative electrode slurry was prepared by mixing negative electrode active material: conductive material: acrylic binder in water at a weight ratio of 70:20.3:9.7. At this time, Si particles (Elkem Co.) having an average particle diameter of 5 ⁇ m were used as the anode active material, and carbon black:graphite:CNT was mixed and used in a weight ratio of 9.8:10:0.52 as the conductive material.
- the negative electrode slurry was applied on a copper current collector sheet, dried, and then rolled to prepare a negative electrode having a loading amount of 8.73 mAh/cm 2 .
- a lithium secondary battery A was prepared by preparing an electrode assembly by interposing a separator between the positive electrode and the negative electrode prepared as described above, inserting the electrode assembly into a battery case, and then injecting an electrolyte solution.
- Cathode active material conductive material: PVDF binder was mixed in N-methylpyrrolidone at a weight ratio of 96.25:1.5:2.25 to prepare a cathode slurry. At this time, LiNi 0.83 Co 0.11 Mn 0.06 O 2 was used as the cathode active material, and Denka Black was used as the conductive material.
- the positive electrode slurry was applied on an aluminum current collector sheet, dried, and rolled to prepare a positive electrode having a loading amount of 3.50 mAh/cm 2 .
- a negative electrode slurry was prepared by mixing negative electrode active material: conductive material: acrylic binder in water at a weight ratio of 70:20.3:9.7. At this time, Si particles (Waker Co., Ltd.) having an average particle diameter of 5 ⁇ m were used as the anode active material, and carbon black:graphite:CNT was mixed at a weight ratio of 9.8:10:0.52 as the conductive material.
- the negative electrode slurry was applied on a copper current collector sheet, dried, and then rolled to prepare a negative electrode having a loading amount of 7.36 mAh/cm 2 .
- An electrode assembly was prepared by interposing a separator between the positive electrode and the negative electrode prepared as described above, and after inserting the electrode assembly into a battery case, an electrolyte solution was injected to prepare a lithium secondary battery B.
- a lithium secondary battery C was manufactured in the same manner as in Preparation Example 2, except that the loading amounts of the positive electrode and the negative electrode were changed as described in Table 1 below.
- Lithium secondary batteries D to F were prepared in the same manner as in Preparation Example 1, except that the loading amounts of the positive and negative electrodes were changed as described in Table 1 below.
- a lithium secondary battery G was manufactured in the same manner as in Preparation Example 2, except that the loading amounts of the positive electrode and the negative electrode were changed as described in Table 1 below.
- a cathode active material conductive material: PVDF binder was mixed in N-methylpyrrolidone at a weight ratio of 97.7:0.9:1.4 to prepare a cathode slurry. At this time, LiNi 0.86 Co 0.05 Mn 0.07 Al 0.02 O 2 was used as the cathode active material, and CNT was used as the conductive material.
- the positive electrode slurry was applied on an aluminum current collector sheet, dried, and rolled to prepare a positive electrode having a loading amount of 3.03 mAh/cm 2 .
- a negative electrode slurry was prepared by mixing negative electrode active material: conductive material: acrylic binder in water at a weight ratio of 70:20.3:9.7. At this time, Si particles (Elkem Co.) having an average particle diameter of 5 ⁇ m were used as the anode active material, and carbon black:graphite:CNT was mixed and used in a weight ratio of 9.8:10:0.52 as the conductive material.
- the negative electrode slurry was applied on a copper current collector sheet, dried, and then rolled to prepare a negative electrode having a loading amount of 7.75 mAh/cm 2 .
- Pre-lithiation was performed by pressing lithium metal on the negative electrode, and the degree of pre-lithiation was 7.38%.
- An electrode assembly was prepared by interposing a separator between the positive electrode prepared as described above and the prelithiated negative electrode, the electrode assembly was inserted into a battery case, and an electrolyte solution was injected to prepare a lithium secondary battery H.
- Lithium secondary batteries I to K were prepared in the same manner as in Preparation Example 8, except that the loading amount of the positive electrode was changed as described in Table 1 below.
- a lithium secondary battery L was manufactured in the same manner as in Preparation Example 8, except that prelithiation was performed so that the prelithiation degree (%) was 16.5%.
- the N/P ratio and Si charge depth of the lithium secondary batteries A to L prepared as described above are shown in Table 1 below.
- Example 1 A 63 193.1 51.8 19.2 32.6 581 857
- Example 2 A 69 193.1 51.8 16.1 35.7 631 690
- Example 3 A 75 193.1 51.8 12.9 38.9 680 548
- Example 4 B 65 210.3 47.6 16.6 31.0 595 530
- Example 5 C 65 184.0 54.3 19.0 35.3 593 500
- Example 6 H 85 255.8 46.5 13.3 33.2 629 481
- Example 8 H 70 255.8 46.5 19.1 27.4 529 784
- Example 9 L 100 255.8 54.1 15.0 39.1 715 483 Comparative Example 1 A 91 193.1 51.8 4.7 47.1 805 320 Comparative Example 2 A 97 193.1 51.8 1.6 50.2 856 238 Comparative Example 3 D 100 392.7 25.5 0.0 25.5 659 148
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Abstract
Description
| 구분 | 전지 # | 양극 로딩량 (mAh/cm2) |
음극 로딩량 (mAh/cm2) |
전리튬화도 % | NP ratio (%) | Si 충전심도 |
| 제조예 1 | A | 4.52 | 8.73 | - | 193.1 | 51.8 |
| 제조예 2 | B | 3.50 | 7.36 | - | 210.3 | 47.6 |
| 제조예 3 | C | 4.00 | 7.36 | - | 184.0 | 54.3 |
| 제조예 4 | D | 3.03 | 11.90 | - | 392.7 | 25.5 |
| 제조예 5 | E | 3.03 | 7.75 | - | 255.8 | 39.1 |
| 제조예 6 | F | 4.03 | 7.75 | - | 192.3 | 52.0 |
| 제조예 7 | G | 4.50 | 7.36 | - | 163.6 | 61.1 |
| 제조예 8 | H | 3.03 | 7.75 | 7.38 | 255.8 | 46.5 |
| 제조예 9 | I | 3.52 | 7.75 | 7.38 | 220.2 | 52.8 |
| 제조예 10 | J | 4.03 | 7.75 | 7.38 | 192.3 | 59.4 |
| 제조예 11 | K | 4.50 | 7.75 | 7.38 | 172.2 | 65.5 |
| 제조예 12 | L | 3.03 | 7.75 | 16.5 | 255.8 | 54.1 |
| 구분 | 전지 # | 가용 SOC | NP ratio(%) | Si 충전 심도(%) | Si 방전 심도(%) | Si 사용 범위(%) | 셀 에너지 밀도 (Wh/L) |
80% 수명 도달 cycle 횟수 |
| 실시예 1 | A | 63 | 193.1 | 51.8 | 19.2 | 32.6 | 581 | 857 |
| 실시예 2 | A | 69 | 193.1 | 51.8 | 16.1 | 35.7 | 631 | 690 |
| 실시예 3 | A | 75 | 193.1 | 51.8 | 12.9 | 38.9 | 680 | 548 |
| 실시예 4 | B | 65 | 210.3 | 47.6 | 16.6 | 31.0 | 595 | 530 |
| 실시예 5 | C | 65 | 184.0 | 54.3 | 19.0 | 35.3 | 593 | 500 |
| 실시예 6 | H | 85 | 255.8 | 46.5 | 13.3 | 33.2 | 629 | 481 |
| 실시예 7 | H | 80 | 255.8 | 46.5 | 15.2 | 31.3 | 596 | 572 |
| 실시예 8 | H | 70 | 255.8 | 46.5 | 19.1 | 27.4 | 529 | 784 |
| 실시예 9 | L | 100 | 255.8 | 54.1 | 15.0 | 39.1 | 715 | 483 |
| 비교예 1 | A | 91 | 193.1 | 51.8 | 4.7 | 47.1 | 805 | 320 |
| 비교예 2 | A | 97 | 193.1 | 51.8 | 1.6 | 50.2 | 856 | 238 |
| 비교예 3 | D | 100 | 392.7 | 25.5 | 0.0 | 25.5 | 659 | 148 |
| 비교예 4 | E | 100 | 255.8 | 39.1 | 0.0 | 39.1 | 730 | 172 |
| 비교예 5 | F | 100 | 192.3 | 52.0 | 0.0 | 52.0 | 847 | 150 |
| 비교예 6 | G | 65 | 163.6 | 61.1 | 21.4 | 39.7 | 574 | 330 |
| 비교예 7 | H | 100 | 255.8 | 46.5 | 7.4 | 39.1 | 723 | 289 |
| 비교예 8 | H | 95 | 255.8 | 46.5 | 9.4 | 37.1 | 693 | 354 |
| 비교예 9 | I | 100 | 220.2 | 52.8 | 7.4 | 45.4 | 770 | 199 |
| 비교예 10 | J | 100 | 192.3 | 59.4 | 7.4 | 52.0 | 813 | 187 |
| 비교예 11 | K | 100 | 172.2 | 65.5 | 7.4 | 58.1 | 841 | 110 |
| 비교예 12 | K | 65 | 172.2 | 65.5 | 27.7 | 37.9 | 577 | 269 |
Claims (14)
- 음극 활물질을 포함하는 음극; 양극 활물질을 포함하는 양극; 상기 음극 및 양극 사이에 개재되는 분리막; 및 전해질을 포함하는 리튬 이차 전지이며,상기 음극 활물질이 실리콘 입자를 포함하고,하기 식 (1)로 표시되는 Si 충전 심도가 30% ~ 60%이고, 하기 식 (2)로 표시되는 Si 방전 심도가 10% 이상인 리튬 이차 전지.식 (1):Si 충전 심도(%) = {(양극 로딩량 + 음극의 전리튬화 용량)/음극 로딩량} ×100상기 식 (1)에서, 양극 로딩량은 양극의 단위 면적당 용량(단위: mAh/cm2), 음극 로딩량은 음극의 단위 면적당 용량(단위: mAh/cm2), 음극의 전리튬화 용량은 전리튬화에 의해 음극에 삽입된 리튬(Li)의 단위 면적당 용량(단위: mAh/cm2)임.식 (2):Si 방전 심도(%) = {(양극 로딩량 + 음극의 전리튬화 용량 - 방전 로딩량) /음극 로딩량} ×100상기 식 (2)에서, 양극 로딩량은 양극의 단위 면적당 용량(단위: mAh/cm2), 음극 로딩량은 음극의 단위 면적당 용량(단위: mAh/cm2), 음극의 전리튬화 용량은 전리튬화에 의해 음극에 삽입된 리튬(Li)의 단위 면적당 용량(단위: mAh/cm2), 상기 방전 로딩량은 방전 컷-오프(cut-off) 전압에서 이차 전지의 방전 용량을 양극 면적으로 나눈 값임.
- 제1항에 있어서,상기 음극 활물질은 실리콘 입자로 이루어진 것인 리튬 이차 전지.
- 제1항에 있어서,상기 Si 충전 심도가 40% ~ 60%인 리튬 이차 전지.
- 제1항에 있어서,상기 Si 방전 심도가 10% 내지 30%인 리튬 이차 전지.
- 제1항에 있어서,상기 리튬 이차 전지는 하기 식 (3)으로 표시되는 Si 사용 범위가 10% ~ 50% 이하인 리튬 이차 전지.식 (3): Si 사용 범위 (%) = Si 충전 심도 - Si 방전 심도
- 제1항에 있어서,상기 리튬 이차 전지는 양극 로딩량에 대한 음극 로딩량의 백분율인 N/P 비가 150% 내지 300%인 리튬 이차 전지.
- 제1항에 있어서,상기 리튬 이차 전지는 양극 로딩량에 대한 음극 로딩량의 백분율인 N/P 비가 180% 내지 300%인 리튬 이차 전지.
- 제1항에 있어서,상기 음극은 전리튬화된 음극이며, 하기 식 (4)로 표시되는 전리튬화도가 5 내지 50%인 리튬 이차 전지.식 (4):전리튬화도(%) = {전리튬화에 의해 음극에 삽입된 Li의 단위면적당 용량 / Si의 단위 면적당 용량} ×100
- 제8항에 있어서,상기 전리튬화도가 5% 내지 30%인 리튬 이차 전지.
- 제1항에 있어서,상기 양극 활물질은 리튬을 제외한 전체 금속 중 니켈의 함량이 60몰% 이상인 리튬 니켈계 산화물을 포함하는 것인 리튬 이차 전지.
- 제10항에 있어서,상기 리튬 니켈계 산화물은 하기 화학식 1로 표시되는 것인 리튬 이차 전지.[화학식 1]Li1+x1[Nia1Cob1Mnc1M2 d1]O2상기 화학식 1에서, -0.2≤x1≤0.2, 0.6≤a1<1, 0<b1<0.4, 0<c1<0.4, 0≤d1≤0.2이고, M2는 Al, B, Co, W, Mg, V, Ti, Zn, Ga, In, Ru, Nb, Sn, Sr 및 Zr로 이루어진 군에서 선택된 적어도 하나 이상임.
- 제1항에 있어서,상기 리튬 이차 전지는 셀 에너지 밀도가 500Wh/L 이상이고, 80% 수명 도달 횟수가 450회 이상인 리튬 이차 전지.
- 제1항에 있어서,상기 리튬 이차 전지는 셀 에너지 밀도가 650Wh/L 이상이고, 80% 수명 도달 횟수가 480회 이상인 리튬 이차 전지.
- 제1항에 있어서,상기 리튬 이차 전지는 셀 에너지 밀도가 500Wh/L 내지 600Wh/L이고, 80% 수명 도달 횟수가 700회 이상인 리튬 이차 전지.
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| JP2024519734A JP2024536254A (ja) | 2021-10-05 | 2022-10-05 | リチウム二次電池 |
| EP22878893.1A EP4401189A4 (en) | 2021-10-05 | 2022-10-05 | LITHIUM SECONDARY BATTERY |
| CN202280067006.3A CN118056312A (zh) | 2021-10-05 | 2022-10-05 | 锂二次电池 |
| US18/698,288 US20250183280A1 (en) | 2021-10-05 | 2022-10-05 | Lithium Secondary Battery |
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| KR20210131946 | 2021-10-05 | ||
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| KR1020220127248A KR20230049045A (ko) | 2021-10-05 | 2022-10-05 | 리튬 이차 전지 |
| KR10-2022-0127248 | 2022-10-05 |
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| WO2023059072A1 true WO2023059072A1 (ko) | 2023-04-13 |
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| JP (1) | JP2024536254A (ko) |
| WO (1) | WO2023059072A1 (ko) |
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| WO2023136681A1 (ko) * | 2022-01-13 | 2023-07-20 | 주식회사 엘지에너지솔루션 | 비수 전해질용 첨가제를 포함하는 비수 전해질 및 이를 포함하는 리튬 이차전지 |
Citations (7)
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|---|---|---|---|---|
| WO2014073217A1 (ja) * | 2012-11-12 | 2014-05-15 | パナソニック株式会社 | 非水電解質電池の製造方法及び非水電解質電池 |
| JP2016126976A (ja) * | 2015-01-08 | 2016-07-11 | 株式会社Gsユアサ | リチウム二次電池 |
| JP2018179682A (ja) * | 2017-04-10 | 2018-11-15 | 日産自動車株式会社 | 二次電池の状態推定方法および状態推定システム |
| JP6511222B2 (ja) * | 2013-01-16 | 2019-05-15 | 三星エスディアイ株式会社Samsung SDI Co., Ltd. | リチウム電池 |
| KR20200089182A (ko) * | 2019-01-16 | 2020-07-24 | 주식회사 엘지화학 | 에너지 밀도가 우수한 Si계 화합물을 포함하는 리튬 이차전지 |
| KR20210131946A (ko) | 2019-05-17 | 2021-11-03 | 한국전력공사 | 산성가스 포집공정 자동제어방법 |
| KR20220127248A (ko) | 2020-01-10 | 2022-09-19 | 신에쓰 가가꾸 고교 가부시끼가이샤 | Iii 족 질화물 기판의 제조 방법 및 iii 족 질화물 기판 |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2015111194A1 (ja) * | 2014-01-24 | 2015-07-30 | 日産自動車株式会社 | 電気デバイス |
| JP6414214B2 (ja) * | 2014-06-26 | 2018-10-31 | 株式会社村田製作所 | 正極、電池、電池パック、電子機器、電動車両、蓄電装置および電力システム |
| JP2016018588A (ja) * | 2014-07-04 | 2016-02-01 | 古河電気工業株式会社 | リチウムイオン二次電池、およびその製造方法 |
| CN109314270B (zh) * | 2016-06-15 | 2022-02-01 | 罗伯特·博世有限公司 | 锂离子电池及其制备方法 |
-
2022
- 2022-10-05 US US18/698,288 patent/US20250183280A1/en active Pending
- 2022-10-05 WO PCT/KR2022/015008 patent/WO2023059072A1/ko not_active Ceased
- 2022-10-05 JP JP2024519734A patent/JP2024536254A/ja active Pending
Patent Citations (7)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2014073217A1 (ja) * | 2012-11-12 | 2014-05-15 | パナソニック株式会社 | 非水電解質電池の製造方法及び非水電解質電池 |
| JP6511222B2 (ja) * | 2013-01-16 | 2019-05-15 | 三星エスディアイ株式会社Samsung SDI Co., Ltd. | リチウム電池 |
| JP2016126976A (ja) * | 2015-01-08 | 2016-07-11 | 株式会社Gsユアサ | リチウム二次電池 |
| JP2018179682A (ja) * | 2017-04-10 | 2018-11-15 | 日産自動車株式会社 | 二次電池の状態推定方法および状態推定システム |
| KR20200089182A (ko) * | 2019-01-16 | 2020-07-24 | 주식회사 엘지화학 | 에너지 밀도가 우수한 Si계 화합물을 포함하는 리튬 이차전지 |
| KR20210131946A (ko) | 2019-05-17 | 2021-11-03 | 한국전력공사 | 산성가스 포집공정 자동제어방법 |
| KR20220127248A (ko) | 2020-01-10 | 2022-09-19 | 신에쓰 가가꾸 고교 가부시끼가이샤 | Iii 족 질화물 기판의 제조 방법 및 iii 족 질화물 기판 |
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| JP2024536254A (ja) | 2024-10-04 |
| US20250183280A1 (en) | 2025-06-05 |
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