Cathode active material, and cathode and lithium secondary battery comprising same
A lithium transition metal oxide cathode active material with controlled surface crystal planes and single/pseudo-single particle form addresses particle breakage and cracking issues, improving energy density and long-term performance of lithium secondary batteries.
Patent Information
- Application Number
- PCT/KR2025/010386
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-07-19
- Filing Date
- 2025-07-15
- Publication Date
- 2026-01-22
AI Technical Summary
Conventional lithium nickel-cobalt-manganese oxides used in cathodes for lithium secondary batteries are prone to particle breakage and cracking during manufacturing and charge/discharge processes, leading to increased contact with electrolyte, gas generation, and reduced life and energy density due to low rolling density.
A cathode active material composed of lithium transition metal oxide with a high nickel content and single or pseudo-single particle form, controlled surface crystal plane ratios, and specific particle dimensions to enhance structural stability and lithium mobility.
The solution suppresses particle breakage and cracking, enables high rolling density, improves energy density, and enhances lithium secondary battery output and long-term life characteristics.
Smart Images

Figure KR2025010386_22012026_PF_FP_ABST
Abstract
Description
Cathode active material, cathode containing same, and lithium secondary battery
[0001] This application claims the benefit of priority to Korean Patent Application No. 10-2024-0095995, filed July 19, 2024, the entire contents of which are incorporated herein by reference.
[0002] The present invention relates to a positive electrode active material for a lithium secondary battery, a positive electrode including the same, and a lithium secondary battery.
[0003] The recent rapid proliferation of battery-powered electronic devices such as mobile phones, laptops, and electric vehicles has led to a rapid increase in demand for compact, lightweight, and relatively high-capacity secondary batteries. In particular, lithium secondary batteries, with their lightweight design and high energy density, are attracting attention as power sources for portable devices. Accordingly, active research and development efforts are underway to improve the performance of lithium secondary batteries.
[0004] Lithium secondary batteries produce electrical energy through oxidation and reduction reactions when lithium ions are inserted / deintercalated from the positive and negative electrodes, while charging an organic electrolyte or polymer electrolyte between the positive and negative electrodes, which are made of active materials capable of intercalating and deintercalating lithium ions.
[0005] Lithium cobalt oxide (LiCoO2), lithium nickel oxide (LiNiO2), lithium manganese oxide (LiMnO2 or LiMn2O4, etc.), and lithium iron phosphate compound (LiFePO4) have been used as cathode active materials for lithium secondary batteries. Among these, lithium cobalt oxide (LiCoO2) is widely used due to its high operating voltage and excellent capacity characteristics, and is applied as a cathode active material for high voltage. However, due to the rising price of cobalt (Co) and unstable supply, it is difficult to use it in large quantities as a power source in fields such as electric vehicles, and the need for the development of a cathode active material that can replace it has arisen.
[0006] Accordingly, a nickel-cobalt-manganese lithium composite transition metal oxide was developed in which some of the cobalt (Co) is replaced with nickel (Ni) and manganese (Mn). Conventional lithium nickel-cobalt-manganese oxides are typically in the form of spherical secondary particles formed by agglomeration of tens to hundreds of primary particles. However, in the case of lithium nickel-cobalt-manganese oxides formed by agglomeration of many primary particles, the primary particles are prone to particle breakage during the rolling process during the manufacture of the positive electrode, and cracks occur within the particles during the charge and discharge process. When particle breakage or cracks occur in the positive electrode active material, the contact area with the electrolyte increases, which increases gas generation and active material degradation due to side reactions with the electrolyte, and this leads to problems such as reduced life characteristics. In addition, fine powder is generated due to the breaking during rolling, which results in a low rolling density, resulting in a low energy density.
[0007] The present invention is intended to solve the above problems, and to provide a positive electrode active material that can suppress particle breakage and crack generation during electrode manufacturing and charge / discharge processes and has excellent rolling density.
[0008] In addition, the present invention seeks to provide a cathode and a lithium secondary battery having improved output characteristics and long-term life characteristics by including a cathode active material having excellent lithium mobility characteristics.
[0009] [1] The present invention provides a cathode active material comprising a lithium transition metal oxide having a content of Ni of 60 at% or more among transition metals other than lithium, and having a single particle composed of one nodule and a pseudo-single particle form that is a composite of 30 or fewer nodules, wherein the ratio of the (003) plane to the total surface area of the cathode active material is 40% or less.
[0010] [2] The present invention provides a positive electrode active material in which the ratio of the major axis to the minor axis of the positive electrode active material particle is 1.0 to 1.8 in the above [1].
[0011] [3] The present invention provides a positive electrode active material in the above [1] or [2], wherein the lithium transition metal oxide has a composition represented by the following chemical formula 1.
[0012] [Chemical Formula 1] Li a Ni b Co c M 1 d M 2 e O2
[0013] In the above chemical formula 1, M 1 is Mn, Al or a combination thereof, and M 2 is at least one selected from the group consisting of Zr, W, Y, Ba, Ca, Ti, Mg, Ta and Nb, and 0.8≤a≤1.2, 0.6≤b<1, 0 <c<0.4, 0<d<0.4, 0≤e≤0.1임.
[0014] [4] The present invention provides a positive electrode active material in which the ratio of the (102) plane to the total surface area of the positive electrode active material is 20% to 80%, in at least one of the above [1] to [3].
[0015] [5] The present invention provides a positive electrode active material in which the ratio of the (104) plane to the total surface area of the positive electrode active material is 20% to 80%, in at least one of the above [1] to [4].
[0016] [6] The present invention provides a positive electrode active material having a powder resistance of 0.00005Ω to 0.0005Ω in at least one of the above [1] to [5].
[0017] [7] The present invention, in at least one of the above [1] to [6], D of the positive electrode active material 50Provides a positive electrode active material having a diameter of 2㎛ to 8㎛.
[0018] [8] The present invention, in at least one of the above [1] to [7], the specific surface area BET of the positive electrode active material is 0.3 m 2 / g to 1.2m 2 / g provides a positive electrode active material.
[0019] [9] The present invention, in at least one of the above [1] to [8], the tap density of the positive electrode active material is 1.5 g / cm 3 2.9g / cm 3 It provides a positive electrode active material.
[0020]
[0010] The present invention provides a positive electrode comprising a positive electrode active material according to at least one of the above [1] to [9].
[0021]
[0011] The present invention provides a lithium secondary battery including a positive electrode according to the above
[0010] .
[0022] The cathode active material for a lithium secondary battery according to the present invention has a single particle and / or pseudo-single particle form with excellent particle strength, so that particle breakage and crack occurrence during electrode manufacturing and charge / discharge processes can be suppressed.
[0023] In addition, since the cathode active material for a lithium secondary battery according to the present invention enables dense particle packing, it is possible to form a cathode having a high rolling density, and thus, it is possible to provide a cathode having a high energy density.
[0024] Furthermore, the positive electrode active material of the present invention has high lithium ion activity on the surface, so that a lithium secondary battery with excellent output characteristics can be provided.
[0025] Since the positive electrode active material of the present invention has a uniform lithium ion activity level on the surface, structural degradation in a specific portion is suppressed, and thus the long-term life characteristics of a lithium secondary battery including the positive electrode active material of the present invention are excellent.
[0026] Figure 1 is an image of one of the particles included in the positive electrode active material manufactured in Example 1, taken using a TEM (Transmission Electron Microscope).
[0027] Figure 2 is an image of one of the particles included in the positive electrode active material manufactured in Example 2, taken using a TEM (Transmission Electron Microscope).
[0028] Figure 3 is an image of one of the particles included in the positive electrode active material manufactured in Example 3, taken using a TEM (Transmission Electron Microscope).
[0029] Figure 4 is an image of one of the particles included in the positive electrode active material manufactured in Comparative Example 1, taken using a TEM (Transmission Electron Microscope).
[0030] Figure 5 is an image of one of the particles included in the positive electrode active material manufactured in Comparative Example 2, taken using a TEM (Transmission Electron Microscope).
[0031] Terms or words used in this specification and 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 spirit 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 possible manner.
[0032] It should be understood that the terms “include,” “comprising,” or “having” used in this specification are intended to specify the presence of a feature, number, step, component, or combination thereof, but do not preclude the possibility of the presence or addition of one or more other features, numbers, steps, components, or combinations thereof.
[0033] In the present invention, "secondary particle" refers to a particle formed by the agglomeration of tens to hundreds of primary particles. More specifically, the secondary particle is an agglomerate of 50 or more primary particles.
[0034] The expression "particle" used in the present invention may include any one or all of single particles, quasi-single particles, primary particles, nodules, and secondary particles.
[0035]
[0036] positive electrode active material
[0037] The cathode active material of the present invention is a cathode active material having a content of Ni of 60 at% or more among transition metals other than lithium, and having a single particle form consisting of one nodule or a pseudo-single particle form consisting of a complex of 30 or fewer nodules.
[0038] In the present invention, “at%” means atomic percent, which indicates the ratio of the number of atoms of a specific element to the total number of atoms.
[0039] In the present invention, a “single particle” is a particle composed of one single nodule.
[0040] In the present invention, "nodule" means a particle unit that can be a single crystal lacking a crystalline grain boundary, or a polycrystal that has no apparent grain boundary when observed under a field of view of 5,000 to 20,000 times using a scanning electron microscope (SEM). In the present invention, "quasi-single particle" means a particle that is a composite formed of 30 or fewer nodules. The positive electrode active material of the present invention has less particle breakage or cracking due to rolling during electrode manufacturing, and accordingly, less gas generation and deterioration of the positive electrode active material due to side reactions with the electrolyte, and can thus realize excellent high-temperature life characteristics.
[0041]
[0042] The positive electrode active material of the present invention has a ratio of the (003) plane to the total surface area of the positive electrode active material of 40% or less. In lithium transition metal oxides, there are various surface crystal planes such as (003), (102), (104), and (012). The inventors of the present invention have discovered that the surface shape can be controlled by controlling the ratio of the (003) plane among these surface crystal planes.
[0043] Specifically, positive electrode active materials having single particle and / or quasi-single particle morphology have a large primary particle size and require a lot of reaction heat for particle growth, making it more difficult to control the surface shape compared to conventional secondary particles.
[0044] The present inventors have found that it is possible to control the surface shape of a positive electrode active material having a single particle and / or pseudo-single particle form by adjusting the ratio of (003) planes among the surface crystal planes. In conventional secondary particles, the (003) plane, which has low electrochemical lithium ion activity, is distributed at a high ratio on the surface crystal plane, thereby increasing the structural stability of the positive electrode active material. In conventional secondary particles, even when the (003) plane is distributed at a high ratio on the surface crystal plane, the insertion / de-insertion of lithium ions is easy due to the large specific surface area, so that there is no deterioration in the output characteristics, and rather, there is an effect of improving the life characteristics.
[0045] On the other hand, in the case of positive electrode active materials having single particle and / or pseudo-single particle morphology, if the proportion of (003) crystal planes exposed on the surface is high, the electrochemical lithium ion activity on the surface is low, and the diffusion characteristics of lithium ions are inferior. Therefore, as charge / discharge is repeated, the non-uniformity of lithium ions within the particle becomes severe, and the structural degradation caused by this is thought to become more severe.
[0046] The positive electrode active material of the present invention may have a ratio of the (003) plane to the total surface area of the positive electrode active material of 40% or less, 38% or less, 35% or less, 30% or less, 28% or less, or 25% or less. The positive electrode active material of the present invention may have a ratio of the (003) plane to the total surface area of the positive electrode active material of more than 0%, 5% or more, 10% or more, 15% or more, or 20% or more.
[0047]
[0048] The positive electrode active material of the present invention may have a ratio of (102) planes of 20 to 80%, preferably 30 to 70%, and more preferably 40 to 60% of the total surface area of the positive electrode active material.
[0049] The positive electrode active material of the present invention may have a ratio of (104) planes of 20 to 80%, preferably 30 to 70%, and more preferably 40 to 60% of the total surface area of the positive electrode active material.
[0050]
[0051] The surface crystal plane of the above-mentioned positive electrode active material can be analyzed by TEM analysis and SADP imaging. For example, the ratio of a specific surface crystal plane for 300 positive electrode active material particles can be measured and the arithmetic mean of these can be obtained. The TEM analysis can be performed using a selected area diffraction pattern (SADP) and a fast Fourier transform (FFT).
[0052] Specifically, the positive electrode active material is prepared as a specimen for TEM analysis, set in the TEM equipment, and the particle shape is observed in STEM mode while rotating (tilting) the specimen to adjust the beam transmission direction. Then, if the interplanar distance (d-spacing) and diffraction angle correspond to the (003) plane through SADP photography or FFT analysis, the corresponding direction is defined as the (003) plane. This process is repeated for 300 positive electrode active material particles to determine the proportion of the total surface area of the positive electrode active material occupied by the (003) plane.
[0053]
[0054] The ratio of the major axis to the minor axis of the positive electrode active material particles of the present invention may be 1.0 to 1.8, preferably 1.0 to 1.5, and more preferably 1.0 to 1.4. When the ratio of the major axis to the minor axis of the positive electrode active material particles of the present invention satisfies the above range, the tap density of the positive electrode active material can be improved. Accordingly, the rolling characteristics of the positive electrode including the positive electrode active material are improved, thereby improving the energy density of the lithium secondary battery including the positive electrode.
[0055] In the present invention, the "long axis" and "short axis" of the positive electrode active material are values derived from the maximum particle diameter (long axis) and minimum particle diameter (short axis) of the particles by using an image obtained through a TEM (Transmission Electron Microscope) photograph of the positive electrode active material particles, converting the particles into two-dimensional images, and using an image analysis program for the two-dimensional images, and mean an average value of tens to hundreds of particles, preferably 300 particles in the present invention.
[0056]
[0057] The lithium transition metal oxide included in the above positive electrode active material may have a composition represented by the following chemical formula 1.
[0058] [Chemical Formula 1] Li a Ni b Co c M 1 d M 2 e O2
[0059] In the above chemical formula 1, M 1 is Mn, Al or a combination thereof, and M 2 It may be at least one selected from the group consisting of Zr, W, Y, Ba, Ca, Ti, Mg, Ta, and Nb.
[0060] The above a represents the molar ratio of lithium in the nickel-based lithium composite metal oxide, and may be 0.80≤a≤1.2, preferably 0.95≤a≤1.08, and more preferably 1≤a≤1.08.
[0061] The above b represents the molar ratio of nickel among the metal elements excluding lithium in the nickel-based lithium composite metal oxide, and may be 0.6≤b≤0.99, 0.80≤b≤0.95, or 0.83≤b≤0.93. When the nickel content satisfies the above range, high-capacity characteristics can be realized.
[0062] The above c represents the molar ratio of cobalt among the metal elements excluding lithium in the nickel-based lithium composite metal oxide, and is 0. <c<0.40, 0<c<0.20, 0<c≤0.15, 또는 0.01≤c≤0.10일 수 있다.
[0063] The above d is M among the metal elements excluding lithium in the nickel-based lithium composite metal oxide. 1 It represents the molar ratio of 0 <d<0.40, 0<d<0.20, 0<d≤0.15, 또는 0.01≤d≤0.10일 수 있다.
[0064] The above e is M among the metal elements excluding lithium in the nickel-based lithium composite metal oxide. 2 It represents the molar ratio, and can be 0≤e≤0.10, or 0≤e≤0.05.
[0065]
[0066] The powder resistance of the positive electrode active material of the present invention may be 0.00005Ω to 0.00050Ω, preferably 0.00010Ω to 0.00045Ω, and more preferably 0.00015Ω to 0.00040Ω. The powder resistance can be measured, for example, by a powder resistance measuring device (HPRM-1000, Hantech Co., Ltd.). Since the powder resistance is a property that mainly reflects the electrical characteristics on the surface of the positive electrode active material, such a powder resistance value can be obtained by controlling the surface crystal plane of the positive electrode active material as in the present invention.
[0067]
[0068] D of the positive electrode active material of the present invention 50 The silver may be 2㎛ to 8㎛, preferably 2㎛ to 7㎛, more preferably 2㎛ to 6㎛. In the present invention, "D 50 " means the particle size based on 50% of the volume cumulative particle size distribution of the positive electrode active material powder. The median particle diameter D 50can be measured using a laser diffraction method. For example, after dispersing the positive electrode active material 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.
[0069] The specific surface area BET of the positive electrode active material of the present invention is 0.3 m 2 / g to 1.2m 2 / g, preferably 0.4m 2 / g to 1.1m 2 / g, more preferably 0.5m 2 / g to 0.9m 2 / g. In the present invention, the “specific surface area BET” is measured by the BET method, and specifically, can be calculated from the nitrogen gas adsorption amount at liquid nitrogen temperature (77K) using BELSORP-mino II of BEL Japan.
[0070]
[0071] The tap density of the positive electrode active material of the present invention is 1.5 g / cm 3 2.9g / cm 3 , preferably 1.7g / cm 3 2.7g / cm 3 , more preferably 1.8 g / cm 3 2.6g / cm 3 The tap density can be measured, for example, by charging 5 g of the positive electrode active material using a tap density tester (Micromeritics GeoPyc 1365) and then vibrating it horizontally until a force of 108 N is applied.
[0072]
[0073] Method for manufacturing positive electrode active material
[0074] Next, a method for manufacturing the positive electrode active material of the present invention will be described. As in the positive electrode active material of the present invention, various conditions can influence the manufacturing process in order to control the ratio of (003) planes among the surface crystal planes.
[0075] For example, a method for manufacturing a cathode active material according to the present invention may include a step of mixing and calcining a transition metal precursor including nickel, cobalt, and manganese and a lithium raw material.
[0076] At this time, the positive electrode active material precursor may be purchased and used as a commercially available precursor such as nickel-cobalt-manganese hydroxide, or may be manufactured according to a precursor manufacturing method known in the art, such as a co-precipitation method.
[0077] For example, nickel (Ni), cobalt (Co) and M 1 After preparing a transition metal-containing solution containing an ammonium cation, a complex forming agent containing an ammonium cation and a basic aqueous solution are added to the transition metal-containing solution to cause a co-precipitation reaction, thereby preparing a positive electrode active material precursor.
[0078] The above transition metal-containing solution comprises nickel-containing raw material, cobalt-containing raw material, M 1 May contain raw materials, and the M 1 The containing raw material may be a manganese-containing raw material and / or an aluminum-containing raw material.
[0079] The nickel-containing raw material may be, for example, a nickel-containing acetate, nitrate, sulfate, halide, sulfide, hydroxide, oxide or oxyhydroxide, and specifically, may be, but is not limited to, Ni(OH)2, NiO, NiOOH, NiCO3ㆍ2Ni(OH)2ㆍ4H2O, NiC2O2ㆍ2H2O, Ni(NO3)2ㆍ6H2O, NiSO4, NiSO4ㆍ6H2O, a fatty acid nickel salt, a nickel halide or a combination thereof.
[0080] The cobalt-containing raw material may be a cobalt-containing acetate, nitrate, sulfate, halide, sulfide, hydroxide, oxide or oxyhydroxide, and specifically, may be, but is not limited to, Co(OH)2, CoOOH, Co(OCOCH3)2ㆍ4H2O, Co(NO3)2ㆍ6H2O, CoSO4, Co(SO4)2ㆍ7H2O or a combination thereof.
[0081] The manganese-containing raw material may be, for example, a manganese-containing acetate, nitrate, sulfate, halide, sulfide, hydroxide, oxide, oxyhydroxide or a combination thereof, and specifically, may be, but is not limited to, manganese oxides such as Mn2O3, MnO2, Mn3O4; manganese salts such as MnCO3, Mn(NO3)2, MnSO4, manganese acetate, manganese dicarboxylic acid salts, manganese citrate, manganese fatty acid salts; manganese oxyhydroxide, manganese chloride or a combination thereof.
[0082] The aluminum-containing raw material may be, for example, Al2O3, Al(OH)3, Al(NO3)3, Al2(SO4)3, (HO)2AlCH3CO2, HOAl(CH3CO2)2, Al(CH3CO2)3 aluminum halides or combinations thereof.
[0083] The transition metal-containing solution contains nickel-containing raw materials, cobalt-containing raw materials, and M 1 It is manufactured by adding the containing raw material to a solvent, specifically, water, or a mixed solvent of an organic solvent (e.g., alcohol, etc.) that can be uniformly mixed with water, or an aqueous solution of a nickel-containing raw material, an aqueous solution of a cobalt-containing raw material, and M 1 It may be manufactured by mixing the raw materials contained therein.
[0084] The ammonium cation-containing complex forming agent may be, but is not limited to, NH4OH, (NH4)2SO4, NH4NO3, NH4Cl, CH3COONH4, (NH4)2CO3, or a combination thereof. Meanwhile, the ammonium cation-containing complex forming agent may be used in the form of an aqueous solution, and in this case, the solvent may be water, or a mixture of water and an organic solvent (specifically, alcohol, etc.) that can be uniformly mixed with water.
[0085] The basic compound may be a hydroxide of an alkali metal or alkaline earth metal, such as NaOH, KOH, or Ca(OH)2, a hydrate thereof, or a combination thereof. The basic compound may also be used in the form of an aqueous solution, in which case the solvent may be water, or a mixture of water and an organic solvent that is uniformly miscible with water (specifically, alcohol, etc.).
[0086] Basic compounds are determined by the pH of the reaction solution, gas conditions during the coprecipitation reaction, temperature conditions for the coprecipitation reaction, nickel-containing raw material, cobalt-containing raw material, and M 1 The composition and specific surface area BET of the positive electrode active material precursor can be controlled by adjusting various conditions such as the concentration of the raw material contained.
[0087] For example, the positive electrode active material precursor may have a composition represented by the following chemical formula 2.
[0088] [Chemical Formula 2]
[0089] Ni x1 Co y1 Mn z1 (OH)2
[0090] The above x1 represents the molar ratio of nickel among all metal elements in the transition metal hydroxide, and may be 0.6≤x1≤0.99, 0.8≤x1≤0.98, 0.85≤x1≤0.98, or 0.88≤x1≤0.95. When the nickel content in the transition metal hydroxide satisfies the above range, a positive electrode active material having high-capacity characteristics can be manufactured.
[0091] The above y1 represents the molar ratio of cobalt among all metal elements in the transition metal hydroxide, 0 <y1<0.4, 0<y1<0.3, 0.01≤y1<0.2, 0.01≤y1<0.14, 또는 0.01≤y1<0.12일 수 있다.
[0092] The above z1 represents the molar ratio of manganese among all metal elements in the transition metal hydroxide, 0 <z1<0.4, 0.01≤z1<0.3, 0.01≤z1<0.2, 또는 0.01≤z1<0.12일 수 있다.
[0093] In addition, the specific surface area BET of the above positive electrode active material precursor is 15 to 35 m 2 / g, preferably 17 to 30 m 2 / g, more preferably 19 to 27 m 2 / g. If the BET of the positive electrode active material precursor is large, the thermal energy is transferred to the interior of the particles during firing, enabling uniform particle growth, which improves the degree of sphericity and is advantageous in achieving the surface crystal plane required in the present invention. However, if the BET of the positive electrode active material precursor is excessively large, the thermal energy required for uniform particle growth also increases, which may make it difficult to control the surface crystal plane.
[0094]
[0095] Afterwards, the positive electrode active material precursor and the lithium raw material can be mixed.
[0096] The lithium raw material may include lithium-containing sulfate, nitrate, acetate, carbonate, oxalate, citrate, halide, hydroxide, or oxyhydroxide, and is not particularly limited as long as it can be dissolved in water. Specifically, the lithium raw material may be Li2CO3, LiNO3, LiNO2, LiOH, LiOHㆍH2O, LiH, LiF, LiCl, LiBr, LiI, CH3COOLi, Li2O, Li2SO4, CH3COOLi, or Li3C6H5O7, and any one of these or a mixture of two or more thereof may be used.
[0097] The positive electrode active material precursor and the lithium source material may be mixed in a molar ratio of, for example, but not limited to, about 1:1, about 1:1.05, about 1:1.10, about 1:1.15, or about 1:1.20.
[0098]
[0099] Thereafter, the mixture may be calcined. For example, the calcination may be performed in an air or oxygen atmosphere. The oxygen atmosphere may have an oxygen content of 60 vol% or more.
[0100] For example, the firing may be performed at a temperature of 830°C to 950°C, 840°C to 940°C, or 850°C to 930°C.
[0101] For example, the firing may be performed for 10 to 28 hours, 11 to 27 hours, or 12 to 26 hours.
[0102] By controlling the firing conditions as described above, uniform particle growth becomes possible, which is advantageous in achieving the surface crystal plane required in the present invention.
[0103]
[0104] anode
[0105] The positive electrode according to the present invention comprises the positive electrode active material of the present invention described above. Specifically, the positive electrode comprises a positive electrode current collector, a positive electrode active material layer formed on the positive electrode current collector, and the positive electrode active material layer comprises the positive electrode active material powder of the present invention. Since the positive electrode active material powder has been described above, a detailed description thereof will be omitted, and only the remaining components will be described in detail below.
[0106]
[0107] The positive electrode current collector may include a highly conductive metal, and is not particularly limited as long as it is easily adhered to by the positive electrode active material layer and does not react within the voltage range of the battery. The positive electrode current collector may be made of, for example, stainless steel, aluminum, nickel, titanium, heat-treated 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 adhesion of the positive electrode active material. For example, the positive electrode current collector may be used in various forms such as a film, a sheet, a foil, a net, a porous body, a foam, a non-woven fabric, etc.
[0108]
[0109] The above positive electrode active material layer may optionally include a conductive material and a binder, together with the positive electrode active material powder, as needed.
[0110] At this time, the positive electrode active material powder may be included in an amount of 80 to 99 wt%, more specifically 85 to 98.5 wt%, based on the total weight of the positive electrode active material layer, and when included in the above content range, it may exhibit excellent capacity characteristics.
[0111]
[0112] The conductive material is used to provide conductivity to the electrode, and in the battery to be formed, as long as it does not cause a chemical change and has electronic conductivity, it can be used without any special restrictions. 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 conductive material may be included in an amount of 0.1 to 15 wt% based on the total weight of the positive electrode active material layer.
[0113]
[0114] The above 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 active material layer.
[0115]
[0116] The above positive electrode can be manufactured according to a conventional positive electrode manufacturing method, except that the positive electrode active material powder described above is used. Specifically, the positive electrode slurry composition, prepared by dissolving or dispersing the positive electrode active material powder described above and optionally a binder, a conductive agent, and a dispersant in a solvent as needed, is applied onto a positive electrode current collector, followed by drying and rolling.
[0117] The solvent may be a solvent generally used in the relevant technical field, such as dimethyl sulfoxide (DMSO), isopropyl alcohol, N-methylpyrrolidone (NMP), dimethyl formamide (DMF), acetone, or water. One of these may be used alone or a mixture of two or more 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.
[0118]
[0119] Alternatively, the positive electrode may be manufactured by casting the positive electrode slurry composition onto a separate support, peeling the resulting film from the support, and laminating the resulting film onto a positive electrode current collector.
[0120]
[0121] electrochemical devices
[0122] Next, an electrochemical device according to the present invention will be described. The electrochemical device according to the present invention includes the anode of the present invention described above. Specifically, the electrochemical device may be a battery, a capacitor, or the like, and more specifically, a lithium secondary battery.
[0123] The lithium secondary battery specifically includes a positive electrode, a negative electrode positioned opposite the positive electrode, and a separator and electrolyte interposed between the positive electrode and the negative electrode. Since the positive electrode is the same as described above, a detailed description thereof will be omitted, and only the remaining components will be specifically described below.
[0124] In addition, the lithium secondary battery may optionally further include a battery container that houses the electrode assembly of the positive electrode, the negative electrode, and the separator, and a sealing member that seals the battery container.
[0125]
[0126] In the above lithium secondary battery, the negative electrode includes a negative electrode current collector and a negative electrode active material layer positioned on the negative electrode current collector.
[0127] The negative electrode current collector is not particularly limited as long as it has high conductivity without causing chemical changes in the battery, and for example, copper, stainless steel, aluminum, nickel, titanium, heat-treated carbon, copper or stainless steel surface-treated with carbon, nickel, titanium, silver, etc., aluminum-cadmium alloy, etc. can be used. In addition, the negative electrode current collector can typically have a thickness of 3 ㎛ to 500 ㎛, and like the positive electrode current collector, fine unevenness can be formed on the surface of the current 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.
[0128]
[0129] The above negative electrode active material layer optionally includes a binder and a conductive material together with the negative electrode active material.
[0130] As the negative electrode active material, a compound capable of reversible intercalation and deintercalation of lithium may be used. Specific examples include carbonaceous materials such as artificial graphite, natural graphite, graphitized carbon fiber, and amorphous carbon; metallic compounds capable of alloying with lithium such as Si, Al, Sn, Pb, Zn, Bi, In, Mg, Ga, Cd, Si alloy, Sn alloy, or Al alloy; SiO β(0 < β < 2), SnO2, vanadium oxide, lithium vanadium oxide, and other metal oxides capable of doping and dedoping lithium; or composites containing the above metallic compounds and carbonaceous materials, such as Si-C composites or Sn-C composites, and any one or a mixture of two or more of these may be used. In addition, a metallic lithium thin film may be used as the negative electrode active material. In addition, both low-crystalline carbon and high-crystalline carbon may be used as the carbonaceous material. Representative examples of low-crystalline carbon include soft carbon and hard carbon, and representative examples of high-crystalline carbon include natural graphite or artificial graphite in the form of amorphous, plate-like, flaky, spherical, or fibers, Kish graphite, pyrolytic carbon, mesophase pitch-based carbon fiber, meso-carbon microbeads, mesophase pitches, and high-temperature heat-treated carbon such as petroleum or coal tar pitch derived cokes.
[0131] The above negative electrode active material may be included in an amount of 80 wt% to 99 wt% based on the total weight of the negative electrode active material layer.
[0132]
[0133] The above binder is a component that assists in bonding between the conductive material, the active material, and the current collector, and is typically added in an amount of 0.1 wt% to 10 wt% based on the total weight of the negative electrode active material layer. Examples of such binders include polyvinylidene fluoride (PVDF), polyvinyl alcohol, carboxymethyl cellulose (CMC), starch, hydroxypropyl cellulose, regenerated cellulose, polyvinyl pyrrolidone, polytetrafluoroethylene, polyethylene, polypropylene, ethylene-propylene-diene polymer (EPDM), sulfonated-EPDM, styrene-butadiene rubber, nitrile-butadiene rubber, fluororubber, and various copolymers thereof.
[0134] The conductive agent is a component for further improving the conductivity of the negative electrode active material, and may be added in an amount of 10 wt% or less, preferably 5 wt% or less, based on the total weight of the negative electrode active material layer. The conductive agent is not particularly limited as long as it has conductivity and does not cause a chemical change in the battery, and examples thereof include graphite such as natural graphite or artificial graphite; carbon black such as acetylene black, Ketjen black, channel black, furnace black, lamp black, and thermal black; conductive fibers such as carbon fiber or metal fiber; fluorinated carbon; metal powder such as aluminum or nickel powder; conductive whiskers such as zinc oxide or potassium titanate; conductive metal oxides such as titanium oxide; and conductive materials such as polyphenylene derivatives.
[0135]
[0136] The above negative electrode active material layer can be manufactured by applying and drying a negative electrode slurry composition prepared by dissolving or dispersing a negative electrode active material, and optionally a binder and a conductive material in a solvent, on a negative electrode current collector, or by casting the negative electrode slurry composition on a separate support, and then laminating the obtained film by peeling it off from the support on a negative electrode current collector.
[0137]
[0138] Meanwhile, in the lithium secondary battery, the separator separates the negative electrode and the positive electrode and provides a passage for lithium ions to move. Any separator commonly used in lithium secondary batteries can be used without any particular restrictions, and in particular, one having low resistance to ion movement of the electrolyte and excellent electrolyte moisture absorption capacity is preferable. Specifically, 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, can be used. In addition, a conventional porous nonwoven fabric, for example, a nonwoven fabric made of high-melting-point glass fiber, polyethylene terephthalate fiber, etc. can also be used. In addition, a coated separator containing a ceramic component or a polymer material to secure heat resistance or mechanical strength can be used, and can optionally be used in a single-layer or multi-layer structure.
[0139]
[0140] In addition, the electrolyte used in the present invention may include, but is not limited to, an organic liquid electrolyte, an inorganic liquid electrolyte, a solid polymer electrolyte, a gel-type polymer electrolyte, a solid inorganic electrolyte, a molten inorganic electrolyte, etc. that can be used in the manufacture of a lithium secondary battery.
[0141] Specifically, the electrolyte may include an organic solvent and a lithium salt.
[0142] 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 (where R represents a linear, branched, or cyclic hydrocarbon group having 2 to 20 carbon atoms 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.
[0143]
[0144] The above lithium salt can be used without any special limitation as long as it is a compound that can provide lithium ions used in a lithium secondary battery. Specifically, the anion of the above lithium salt is F - , Cl - , Br - , I - , NO3 - , N(CN)2 - , BF4 - , CF3CF2SO3 - , (CF3SO2)2N - , (FSO2)2N - , CF3CF2(CF3)2CO - , (CF3SO2)2CH - , (SF5)3C - , (CF3SO2)3C - , CF3(CF2)7SO3 - , CF3CO2 - , CH3CO2 - , SCN - and (CF3CF2SO2)2N - It may be at least one selected from the group consisting of, and the lithium salt may be LiPF6, LiClO4, LiAsF6, LiBF4, LiSbF6, LiAlO2, LiAlCl4, LiCF3SO3, LiC4F9SO3, LiN(C2F5SO3)2, LiN(C2F5SO2)2, LiN(CF3SO2)2, LiCl, LiI, or LiB(C2O4)2. It is preferable to use the concentration of the lithium salt within the range of 0.1M to 2.0M. When the concentration of the lithium salt is within the above range, the electrolyte has appropriate conductivity and viscosity, so that it can exhibit excellent electrolyte performance, and lithium ions can move effectively.
[0145]
[0146] In addition to the electrolyte components, the electrolyte may further include one or more additives, such as haloalkylene carbonate compounds such as difluoroethylene carbonate, pyridine, triethylphosphite, triethanolamine, cyclic ethers, ethylene diamine, n-glyme, hexaphosphoric acid triamide, nitrobenzene derivatives, sulfur, quinone imine dyes, N-substituted oxazolidinones, N,N-substituted imidazolidines, ethylene glycol dialkyl ethers, ammonium salts, pyrrole, 2-methoxyethanol, or aluminum trichloride, for the purpose of improving the life characteristics of the battery, suppressing battery capacity decrease, and improving the discharge capacity of the battery. At this time, the additives may be included in an amount of 0.1 to 5 wt% based on the total weight of the electrolyte.
[0147]
[0148] Hereinafter, embodiments of the present invention will be described in detail so that those skilled in the art can easily implement them. However, the present invention may be implemented in various different forms and is not limited to the embodiments described herein.
[0149]
[0150] Example 1
[0151] Ni 0.65 Co 0.07 Mn 0.28 It has a composition of (OH)2 and a surface area BET of 27 m 2 / g of a positive electrode active material precursor was prepared. The positive electrode active material precursor, Li2CO3, was mixed so that the molar ratio of the total transition metal:lithium was 1:1.06, and calcined at 910°C for 23 hours in an oxygen atmosphere to obtain a composition of Li 1.06 Ni 0.65 Co 0.07 Mn 0.28 A positive electrode active material containing O2 was manufactured. At this time, the oxygen atmosphere was fired under the condition that the O2:Air ratio was 8:2.
[0152] As a result of TEM analysis of the positive electrode active material of manufactured Example 1, the ratio of the (003) plane to the total surface area was 22%.
[0153]
[0154] Example 2
[0155] Ni 0.65 Co 0.07 Mn 0.28 It has a composition of (OH)2 and a surface area BET of 19 m 2 / g of a positive electrode active material precursor was prepared. The positive electrode active material precursor, Li2CO3, was mixed so that the molar ratio of the total transition metal:lithium was 1:1.08, and calcined at 910°C for 23 hours in an oxygen atmosphere to obtain a composition of Li 1.08 Ni 0.65 Co 0.07 Mn 0.28 A positive electrode active material containing O2 was manufactured. At this time, the oxygen atmosphere was fired under the condition that the O2:Air ratio was 8:2.
[0156] As a result of TEM analysis of the positive electrode active material of manufactured Example 2, the ratio of the (003) plane to the total surface area was 37%.
[0157]
[0158] Example 3
[0159] Ni 0.65 Co 0.07 Mn 0.28 It has a composition of (OH)2 and a surface area BET of 27 m 2 / g of a positive electrode active material precursor was prepared. The positive electrode active material precursor, Li2CO3, was mixed so that the molar ratio of the total transition metal:lithium was 1:1.06, and calcined at 870°C for 19 hours in an oxygen atmosphere to obtain a composition of Li 1.06 Ni 0.65 Co 0.07 Mn 0.28 A positive electrode active material containing O2 was manufactured. At this time, the oxygen atmosphere was fired under the condition that the O2:Air ratio was 8:2.
[0160] As a result of TEM analysis of the positive electrode active material of Example 3 manufactured, the ratio of the (003) plane to the total surface area was 32%.
[0161]
[0162] Comparative Example 1
[0163] Ni 0.65 Co 0.07 Mn 0.28 It has a composition of (OH)2 and a surface area BET of 9 m 2 / g of a positive electrode active material precursor was prepared. The positive electrode active material precursor, Li2CO3, was mixed so that the molar ratio of the total transition metal:lithium was 1:1.10, and calcined at 870°C for 19 hours in an oxygen atmosphere to obtain a composition of Li 1.10 Ni 0.65 Co 0.07 Mn 0.28 A positive electrode active material containing O2 was manufactured. At this time, the oxygen atmosphere was fired under the condition that the O2:Air ratio was 8:2.
[0164] As a result of TEM analysis of the positive electrode active material of manufactured Comparative Example 1, the ratio of the (003) plane to the total surface area was 64%.
[0165]
[0166] Comparative Example 2
[0167] Ni 0.65 Co 0.07 Mn 0.28 It has a composition of (OH)2 and a surface area BET of 9 m 2 / g of a positive electrode active material precursor was prepared. The positive electrode active material precursor, Li2CO3, was mixed so that the molar ratio of the total transition metal:lithium was 1:1.03, and calcined at 870°C for 19 hours in an oxygen atmosphere to obtain a composition of Li 1.03 Ni 0.65 Co 0.07 Mn 0.28 A positive electrode active material containing O2 was manufactured. At this time, the oxygen atmosphere was fired under the condition that the O2:Air ratio was 8:2.
[0168] As a result of TEM analysis of the positive electrode active material of manufactured Comparative Example 2, the ratio of the (003) plane to the total surface area was 85%.
[0169]
[0170] Experimental Example 1 - TEM image observation of positive electrode active material particles
[0171] For the positive electrode active materials manufactured in Examples 1 to 3 and Comparative Examples 1 and 2, particle cross-sections were photographed using a TEM (Transmission Electron Microscope).
[0172] Specifically, after measuring the short axis and long axis length of 300 particles in cross-sectional TEM images, the ratio of the long axis to the short axis (e.g., the a / b value in Fig. 1) was calculated, respectively. Examples of the results are shown in Figs. 1 to 5 below. In addition, the arithmetic mean value of the measured long axis to short axis ratio values is shown in Table 1 below.
[0173] Ratio of major axis to minor axis Example 11.31 Example 21.52 Example 31.34 Comparative Example 12.07 Comparative Example 22.23
[0174] In addition, the non-active plane and the active plane are distinguished and shown in FIGS. 1 to 5. The non-active plane is the (003) plane, and the active planes are the (102) plane and the (104) plane, etc.
[0175]
[0176] Experimental Example 2 - Measurement of powder resistance of positive electrode active material
[0177] The powder resistance of each of the positive electrode active materials manufactured in Examples 1 to 3 and Comparative Examples 1 and 2 was measured using a powder resistance measuring device (HPRM-1000, Hantech Co., Ltd.). Specifically, 5 g of each of the positive electrode active materials manufactured in Examples 1 to 3 and Comparative Examples 1 and 2 was placed in a cylindrical metal mold in a powder resistance measuring device (HPRM-1000, Hantech Co., Ltd.) and subjected to a pressure of 2000 kgf / cm. 2 The powder resistance was measured by applying pressure. The measured powder resistance values are shown in Table 2 below.
[0178] Powder resistance (Ω) Example 10.00033 Example 20.00023 Example 30.00029 Comparative example 10.00013 Comparative example 20.00009
[0179]
[0180] Experimental Example 3 - Initial Resistance Measurement
[0181] The positive electrode active material, carbon black conductive agent, and polyvinylidene fluoride (PVdF) binder prepared in Examples 1 to 3 and Comparative Examples 1 and 2 were mixed in a weight ratio of 96:2:2 in an N-methylpyrrolidone solvent to prepare a positive electrode slurry, which was then applied to one surface of an aluminum current collector, dried at 130°C, and rolled to prepare a positive electrode.
[0182] Lithium metal was used as the cathode.
[0183] An electrode assembly was manufactured by interposing a porous polyethylene separator between the positive and negative electrodes manufactured as described above, and the electrode assembly was placed inside a case, and then an electrolyte was injected into the case to manufacture a lithium secondary battery. At this time, the electrolyte was manufactured by dissolving 1.0 M lithium hexafluorophosphate (LiPF6) and 2 wt% VC in an organic solvent composed of ethylene carbonate / dimethyl carbonate / diethyl carbonate / (mixed volume ratio of EC / DMC / DEC = 1 / 2 / 1).
[0184] For each lithium secondary battery cell manufactured in this manner, the initial resistance value was measured. The measurement results are shown in Table 3 below. The initial resistance value was calculated as the voltage change rate when a current of 2.5 C was applied for 10 seconds after setting the SOC.50% at 0.3 C in the 2nd cycle based on the 1st cycle discharge capacity measured at 0.3 C.
[0185] Initial resistance (Ω) Example 11.36 Example 21.52 Example 31.34 Comparative Example 12.07 Comparative Example 22.23
[0186]
[0187] Experimental Example 4 - Measurement of Life Characteristics
[0188] For each lithium secondary battery cell manufactured in the above Experimental Example 3, it was charged to 4.45 V with a constant current of 0.5 C at 45°C with a cutoff of 0.05 C. Thereafter, it was discharged to 3.0 V with a constant current of 0.5 C. The above charge and discharge behavior was considered as one cycle, and this cycle was repeated 100 times, and then the capacity retention rate and resistance increase rate according to the cycle were measured. For the capacity retention rate, the value was calculated by dividing the capacity at the 100th cycle by the initial capacity and multiplying by 100, and for the resistance increase rate, the value was calculated by dividing the resistance at the 100th cycle by the initial resistance and multiplying by 100. The results are shown in Table 4 below.
[0189] Capacity retention rate (%) Resistance increase rate (%) Example 193.3 32.0 Example 290.5 34.2 Example 392.7 33.9 Comparative example 189.9 36.4 Comparative example 285.1 53.7
Claims
1. Contains a lithium transition metal oxide having a content of Ni of 60 at% or more among transition metals other than lithium, As a cathode active material in the form of a single particle consisting of one nodule and a pseudo-single particle complex consisting of 30 or fewer nodules, A positive electrode active material having a ratio of (003) planes of 40% or less of the total surface area of the positive electrode active material.
2. In paragraph 1, A cathode active material having a ratio of the major axis to the minor axis of the cathode active material particles of 1.0 to 1.
8.
3. In paragraph 1, The above lithium transition metal oxide is a positive electrode active material having a composition represented by the following chemical formula 1: [Chemical Formula 1] Li a Ni b Co c M 1 d M 2 e O2 In the above chemical formula 1, M 1 is Mn, Al or a combination thereof, and M 2 is at least one selected from the group consisting of Zr, W, Y, Ba, Ca, Ti, Mg, Ta and Nb, and 0.8≤a≤1.2, 0.6≤b<1, 0 <c<0.4, 0<d<0.4, 0≤e≤0.1임.
4. In paragraph 1, A positive electrode active material having a (102) plane occupying 20% to 80% of the total surface area of the positive electrode active material.
5. In paragraph 1, A cathode active material having a (104) plane occupying 20% to 80% of the total surface area of the cathode active material.
6. In paragraph 1, A positive electrode active material having a powder resistance of 0.00005Ω to 0.0005Ω.
7. In paragraph 1, D of the above positive electrode active material 50 A positive electrode active material having a diameter of 2㎛ to 8㎛.
8. In paragraph 1, The BET specific surface area of the above positive electrode active material is 0.3 m 2 / g to 1.2m 2 / g of positive electrode active material.
9. In paragraph 1, The tap density of the above positive electrode active material is 1.5 g / cm 3 2.9g / cm 3 A positive electrode active material.
10. A positive electrode comprising a positive electrode active material according to paragraph 1.
11. A lithium secondary battery comprising the positive electrode of clause 10.
Citation Information
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