WO2024091030A1 - 탄소나노튜브 및 이를 포함하는 분산액 - Google Patents
탄소나노튜브 및 이를 포함하는 분산액 Download PDFInfo
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- C01B—NON-METALLIC ELEMENTS; COMPOUNDS THEREOF; METALLOIDS OR COMPOUNDS THEREOF NOT COVERED BY SUBCLASS C01C
- C01B32/00—Carbon; Compounds thereof
- C01B32/15—Nano-sized carbon materials
- C01B32/158—Carbon nanotubes
- C01B32/168—After-treatment
- C01B32/174—Derivatisation; Solubilisation; Dispersion in solvents
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- H—ELECTRICITY
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- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
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- C01B32/00—Carbon; Compounds thereof
- C01B32/15—Nano-sized carbon materials
- C01B32/158—Carbon nanotubes
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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
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- 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
- H01M4/62—Selection of inactive substances as ingredients for active masses, e.g. binders, fillers
- H01M4/624—Electric conductive fillers
- H01M4/625—Carbon or graphite
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- C01B2202/00—Structure or properties of carbon nanotubes
- C01B2202/20—Nanotubes characterized by their properties
- C01B2202/22—Electronic properties
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- C01P2006/40—Electric properties
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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
- H01M2004/028—Positive electrodes
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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
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- 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 carbon nanotubes having low viscosity and low slurry powder resistance when preparing a dispersion, and a dispersion containing the carbon nanotubes.
- carbon nanomaterials include Fullerene, Carbon Nanotube (CNT), Graphene, and Graphite Nano Plate.
- CNT Carbon Nanotube
- Graphene Graphene
- Graphite Nano Plate Graphite Nano Plate
- carbon nanotubes are 1. It is a macromolecule with a hexagonal honeycomb-shaped graphite surface, in which two carbon atoms are bonded to three other carbon atoms, and is rounded to a nano-sized diameter.
- Carbon nanotubes are hollow and light, have electrical conductivity as good as copper, thermal conductivity as good as diamond, and tensile strength as good as steel. Depending on the rolled shape, they are classified into Single-Walled Carbon Nanotube (SWCNT), Multi-Walled Carbon Nanotube (MWCNT), and Rope Carbon Nanotube.
- SWCNT Single-Walled Carbon Nanotube
- MWCNT Multi-Walled Carbon Nanotube
- Rope Carbon Nanotube Rope Carbon Nanotube.
- lithium secondary batteries Recently, the area where the most active research is being conducted on the uses of carbon nanotubes is in the field of lithium secondary batteries.
- the ultimate goal of lithium secondary batteries is to store more electrical energy in a smaller size, and one of the methods to improve the electrode density of lithium secondary batteries to manufacture electrodes with higher energy density per unit volume is carbon nanotechnology.
- Methods of applying tubes as conductive materials are being studied.
- high-density electrodes are formed by molding electrode active material particles with a size of several ⁇ m to tens of ⁇ m by high-pressure press, so the particles are deformed during the molding process, the space between particles is reduced, and electrolyte permeability is reduced. easy.
- materials with excellent electrical conductivity and strength are used as conductive materials when manufacturing electrodes.
- Carbon nanotubes are also widely used as conductive materials because they have excellent strength and electrical conductivity.
- the conductive material is dispersed between compressed electrode active materials, thereby maintaining micropores between the active material particles, facilitating penetration of the electrolyte solution, and reducing resistance within the electrode due to excellent conductivity.
- Carbon nanotubes have a problem in that they do not achieve a stable dispersion in an aqueous solution due to strong van der Waals attraction between them and agglomeration occurs. If the carbon nanotubes aggregate in the dispersion, the processability of the dispersion deteriorates and the dispersion cannot be uniformly applied. Therefore, it is preferable to apply the dispersion with the viscosity of the dispersion lowered to the maximum.
- Patent Document 1 KR 10-2017-0031061 A (2017.03.20)
- the purpose of the present invention is to provide a novel carbon nanotube that is particularly suitable for use as a conductive material due to its low viscosity when preparing the dispersion and low slurry powder resistance, and a dispersion containing the carbon nanotubes.
- the present invention provides novel carbon nanotubes, a dispersion containing the carbon nanotubes, and a positive electrode slurry composition containing the dispersion.
- the present invention provides carbon nanotubes characterized by satisfying the following equation 1:
- R is the powder resistance of carbon nanotubes ( ⁇ cm)
- A is ln ⁇ (purity of carbon nanotubes (% by weight) * specific surface area (m 2 /g)) / bulk density (kg/m 3 ) ⁇ ,
- the specific surface area of the carbon nanotubes is 320 m 2 /g or more
- the bulk density of the carbon nanotubes is 30 kg/m 3 or less.
- the present invention provides the carbon nanotube according to (1) above, wherein the specific surface area of the carbon nanotube is 320 to 500 m 2 /g.
- the present invention provides the carbon nanotube according to (1) or (2) above, wherein the carbon nanotube has a bulk density of 15 to 30 kg/m 3 .
- the present invention provides the carbon nanotube according to any one of (1) to (3) above, wherein R is 0.0125 ⁇ cm or less.
- the present invention provides the carbon nanotube according to any one of (1) to (4) above, wherein R is 0.0080 to 0.0125 ⁇ cm.
- the present invention provides a carbon nanotube dispersion containing the carbon nanotubes and a dispersion medium according to any one of (1) to (5) above.
- the present invention provides a carbon nanotube dispersion according to (6) above, wherein the dispersion medium is at least one selected from the group consisting of N-methylpyrrolidone, pyridine, dimethylaminobenzene, and diethylaminobenzene.
- the present invention provides the carbon nanotube dispersion according to (6) or (7) above, wherein the carbon nanotube content in the dispersion is 0.05 to 5% by weight.
- the present invention provides a positive electrode slurry composition containing a carbon nanotube dispersion, a positive electrode material, and a stabilizer according to any one of (6) to (8) above.
- the present invention provides the positive electrode slurry composition according to (9) above, wherein the stabilizer is contained in an amount of 10 to 100% by weight based on the content of carbon nanotubes in the positive electrode slurry composition.
- the carbon nanotubes of the present invention have a low viscosity when preparing a dispersion, allowing the carbon nanotube content in the dispersion to be above a certain level, and have low slurry powder resistance, making them particularly suitable for use as a conductive material.
- the term 'carbon nanotube' used in the present invention is a secondary structure formed by completely or partially gathering carbon nanotube units to form a bundle, and the carbon nanotube units have graphite sheets of nano size. It has a cylindrical shape and an sp2 bond structure. At this time, the characteristics of a conductor or semiconductor can be displayed depending on the angle and structure at which the graphite surface is rolled.
- the carbon nanotube unit is divided into single-walled carbon nanotube (SWCNT, single-walled carbon nanotube), double-walled carbon nanotube (DWCNT, double-walled carbon nanotube), and multi-walled carbon nanotube (MWCNT). , multi-walled carbon nanotube), and the thinner the wall thickness, the lower the resistance.
- the carbon nanotubes of the present invention may include one or more of single-walled, double-walled, and multi-walled carbon nanotube units.
- the present invention provides carbon nanotubes characterized by satisfying the following equation 1:
- R is the powder resistance of carbon nanotubes ( ⁇ cm)
- A is ln ⁇ (purity of carbon nanotubes (% by weight) * specific surface area (m 2 /g)) / bulk density (kg/m 3 ) ⁇ ,
- the specific surface area of the carbon nanotubes is 320 m 2 /g or more
- the bulk density of the carbon nanotubes is 30 kg/m 3 or less.
- the inventor of the present invention studied the physical properties of carbon nanotubes, which enable both viscosity characteristics and conductivity characteristics to be maintained at an excellent level when preparing a dispersion, and as a result, the powder resistance, purity, specific surface area, and bulk density of carbon nanotubes were determined by the formula above. 1 is satisfied, and when the specific surface area of the carbon nanotube is 320 m 2 /g or more and the bulk density is 30 kg/m 3 or less, it is confirmed that both the dispersibility and electrical conductivity of the carbon nanotube can be maintained excellently. , completed the present invention.
- Equation 1 means that there is a correlation between the powder resistance of carbon nanotubes, purity, specific surface area, and bulk density. Equation 1 above was derived based on various data, and it can be confirmed that carbon nanotubes that satisfy Equation 1 have excellent dispersibility and electrical conductivity at the same time.
- Equation 1 each have different units, but in the present invention, the units of each value are ignored and each value is assumed to be a dimensionless number. However, since each value may vary depending on the units of powder resistance, purity, specific surface area, and bulk density of carbon nanotubes, which are variables of each value, when applying Equation 1 above, the units of each variable are fixed as follows.
- the specific surface area of the carbon nanotubes may be 320 m 2 /g or more, preferably 320 to 500 m 2 /g. If carbon nanotubes are defined only by Equation 1 above without limiting the range of the specific surface area value of carbon nanotubes, a substantially infinite number of carbon nanotubes can satisfy Equation 1, and within that range, the dispersibility and dispersibility desired by the present invention can be achieved. In addition to carbon nanotubes having excellent electrical conductivity, carbon nanotubes having poor dispersibility and/or electrical conductivity may be included. Therefore, the carbon nanotubes of the present invention must satisfy Equation 1 above and have a specific surface area within the range described above. Meanwhile, the specific surface area may be measured according to the BET method, and more specifically, it may be calculated by determining the amount of nitrogen gas adsorption under liquid nitrogen temperature (77K) using BELSORP-mini II of BEL Japan. .
- the carbon nanotubes of the present invention may have a bulk density of 30 kg/m 3 or less, preferably 15 to 30 kg/m 3 .
- the bulk density of carbon nanotubes when the bulk density of carbon nanotubes is within the above-mentioned range, the dispersibility and electrical conductivity of carbon nanotubes are particularly excellent, and even with a low carbon nanotube content when preparing the dispersion. It can provide sufficient electrical conductivity.
- the bulk density can be calculated by measuring the weight of carbon nanotubes contained in a container in free fall using a 25ml SUS measuring cup and dividing the measured weight by the volume of the container.
- R which is the powder resistance of the carbon nanotubes of the present invention
- R may be 0.0125 ⁇ cm or less, and particularly preferably 0.0080 to 0.0125 ⁇ cm.
- the electrical conductivity may be particularly excellent.
- the powder resistance may be measured by measuring the resistance according to pressure when the compressed density is 1g/cc using Nittoseiko Analytech's MCP-PD51 equipment.
- the carbon nanotubes of the present invention may have a purity of 80% by weight or more, and particularly preferably 83% by weight or more.
- the purity refers to the content of carbon nanotubes remaining after the impurities in the carbon nanotubes are removed, and can be calculated using the following formula.
- the present invention provides a dispersion containing the carbon nanotubes described above. More specifically, the present invention provides a carbon nanotube dispersion containing the above carbon nanotubes and a dispersion medium.
- the dispersion medium may be one or more selected from the group consisting of N-methylpyrrolidone, pyridine, dimethylaminobenzene, and diethylaminobenzene, and preferably N-methylpyrrolidonyl.
- the carbon nanotubes can be smoothly dispersed, and only the dispersion medium can be easily and selectively removed during the subsequent application and firing process of the dispersion.
- the carbon nanotube content in the dispersion may be 0.05 to 5% by weight, preferably 0.5 to 3% by weight. If the carbon nanotube content in the dispersion is lower than the above-mentioned range, sufficient electrical conductivity cannot be achieved, and if the carbon nanotube content is higher than the above-mentioned range, agglomeration of excessively added carbon nanotubes occurs, causing an increase in viscosity. , As a result, the processability of the dispersion itself may be greatly reduced.
- the dispersion includes carboxymethylcellulose (CMC), hydroxyethylcellulose, pectin, alginic acid, guar gum, locust bean gum, gum arabic, dextrin, altose, sorbitol, lactose, polysaccharides and monosaccharides such as rice starch and sucrose; sodium cholate, gelatin, and polyvinyl alcohol; Anionic surfactants such as naphthalene sulfonic acid-formaldehyde condensate and alkyl benzenesulfonate, cationic surfactants, nonionic surfactants, polyether-modified silicone surfactants, and Hydrogenated Nitrile Butadiene Rubber (HNBR) ) etc.
- CMC carboxymethylcellulose
- HNBR Hydrogenated Nitrile Butadiene Rubber
- the dispersant may be HNBR.
- the dispersant may be included in an amount of 0.1 to 5% by weight, preferably 0.3 to 3% by weight, based on the total weight of the dispersion. Within the above content range, the viscosity of the dispersion may be low and the viscosity stability may be excellent.
- the carbon nanotube dispersion provided by the present invention has excellent electrical conductivity and can be used as a conductive material in a positive electrode slurry composition. Accordingly, the present invention provides a positive electrode slurry composition containing the dispersion.
- the present invention includes a positive electrode slurry composition including the carbon nanotube dispersion, a positive electrode material, and a stabilizer.
- the dispersion liquid was the same as previously described.
- the cathode material is not particularly limited as long as it can be used as a cathode material for a lithium secondary battery.
- the stabilizer may be polyvinylidene fluoride (PVDF), polyvinylpyrrolidone (PVP), or a mixture thereof.
- PVDF polyvinylidene fluoride
- PVP polyvinylpyrrolidone
- the stabilizer may be included in an amount of 10 to 100% by weight, preferably 30 to 70% by weight, based on the content of carbon nanotubes in the positive electrode slurry composition. Within the above content range, stability during slurry production may be more excellent.
- Co(NO 3 ) 2 ⁇ 6H 2 O was used as a cobalt precursor
- NH 4 VO 3 was used as a vanadium precursor.
- the cobalt precursor and vanadium precursor were dissolved in water, and citric acid anhydride (CA) was dissolved as a complexing agent to prepare a catalyst precursor composition. After sufficiently stirring the catalyst precursor composition, it was added to hydrotalcite as a support. Afterwards, the catalyst was dried at 190°C for 5 hours using an oven, and then calcined for 4 hours at a specific calcination temperature and in the air to complete the catalyst.
- CA citric acid anhydride
- Carbon nanotubes were synthesized using the catalyst used in the above catalyst preparation example. Specifically, after charging 0.3 g of the prepared catalyst into the fixed bed reactor, nitrogen gas was injected into the fixed bed reactor at 1600 sccm, and the temperature inside the reactor was heated to the reaction temperature. Afterwards, ethylene gas, a carbon source gas, was injected at 400 sccm and the reaction was continued for 90 minutes to synthesize carbon nanotubes.
- the catalysts and reaction temperature conditions used in each example and comparative example are summarized in Table 2 below.
- Powder resistance Resistance according to pressure was measured at a compressed density of 1g/cc using Nittoseiko Analytech's MCP-PD51 equipment.
- Example 1-1 83.17 417 22.4 0.0110 O
- Example 1-2 90.79 422 16.8 0.0095 O
- Example 1-3 93.6 415 17.2 0.0097 O
- Example 1-4 94.1 406 19.3 0.0100 O
- Examples 1-5 96.3 325 24.0 0.0110 O
- Comparative Example 1-1 96.3 287 28.4 0.0121 O
- Comparative Example 1-2 96.3 240 33.0 0.0135
- Example 2-1 96.3 415 12.9 0.0090 O
- Example 2-2 94.1 350 21.2 0.0115 O Comparative Example 2-1 94.3 280 20.1 0.0125 O
- Example 3-1 90.1 391 23.3 0.0115 O
- Example 3-2 89.7 393 23.1 0.0116 O Comparative Example 3-1 85.5 368 32.1 0.0144 O Comparative Example 3-2 80.0 350 38.7 0.0180 X
- Example 4-1 91.5 321 26.7 0.0125 O
- Example 4 91.5 321 26.7 0.0125 O
- Example 4 91.5 3
- the carbon nanotubes according to the embodiment of the present invention satisfy Equation 1. Meanwhile, the carbon nanotubes according to Comparative Examples 1-1, 1-2 and 2-1 satisfy Equation 1, but do not satisfy the specific surface area range required by the present invention, and the carbon nanotubes according to Comparative Example 3-1 satisfies Equation 1, but does not satisfy the bulk density range required by the present invention, and the carbon nanotube according to Comparative Example 3-2 does not satisfy Equation 1.
- a dispersion was prepared using the carbon nanotubes prepared in the above examples and comparative examples. 1.0 g of the prepared carbon nanotubes and 0.6 g of the dispersant HNBR were added to 98.4 g of the dispersion medium N-methylpyrrolidone. Afterwards, a dispersion was prepared under 1500 bar and 3 pass conditions using a high pressure homogenizer. The prepared dispersion was mixed with the cathode material so that the carbon nanotube content was 0.5% by weight, and PVDF, a stabilizer, was additionally added at 60% by weight based on the carbon nanotube content to prepare a slurry, which was dried in an oven at 130°C. The dispersion medium was removed, powder was obtained, and powder resistance was measured.
- the viscosity and slurry powder resistance of the prepared dispersion were measured by the following methods.
- Viscosity The viscosity of the dispersion was measured at room temperature using Brookfield's DV2T equipment.
- Slurry powder resistance Resistance according to pressure was measured at a compressed density of 2.5 g/cc using Nittoseiko Analytech's MCP-PD51 equipment.
- the powder resistance during slurry production is significantly higher than that of the examples, and from this, the corresponding carbon nanotubes It can be confirmed that the suitability for use as a conductive material is poor.
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Abstract
Description
| 조성물 내 코발트 함량(중량%) | Co/V(몰 비) | Ca/V(몰 비) | 소성온도(℃) | |
| 촉매 제조예 1 | 5.0 | 3.33 | 0.44 | 300 |
| 촉매 제조예 2 | 5.5 | 3.33 | 0.44 | 300 |
| 촉매 제조예 3 | 6.0 | 3.33 | 0.44 | 300 |
| 촉매 제조예 4 | 6.5 | 3.33 | 0.44 | 300 |
| 촉매 제조예 5 | 8.5 | 3.33 | 0.44 | 300 |
| 촉매 제조예 6 | 11.0 | 3.33 | 0.44 | 300 |
| 촉매 제조예 7 | 14.0 | 3.33 | 0.44 | 300 |
| 촉매 제조예 8 | 6.0 | 3.33 | 0.44 | 250 |
| 촉매 제조예 9 | 6.0 | 3.33 | 0.44 | 400 |
| 촉매 제조예 10 | 6.0 | 3.33 | 0.44 | 500 |
| 촉매 제조예 11 | 6.0 | 3.33 | 0.31 | 300 |
| 촉매 제조예 12 | 6.0 | 3.33 | 0.43 | 300 |
| 촉매 제조예 13 | 6.0 | 3.33 | 0.65 | 300 |
| 촉매 제조예 14 | 6.0 | 3.33 | 0.87 | 300 |
| 촉매 제조예 15 | 6.0 | 1.00 | 0.44 | 300 |
| 촉매 제조예 16 | 6.0 | 1.70 | 0.44 | 300 |
| 촉매 제조예 17 | 6.0 | 2.50 | 0.44 | 300 |
| 촉매 제조예 18 | 6.0 | 2.90 | 0.44 | 300 |
| 촉매 제조예 19 | 6.0 | 4.90 | 0.44 | 300 |
| 촉매 제조예 20 | 6.0 | 10.00 | 0.44 | 300 |
| 촉매 | 반응 온도(℃) | |
| 실시예 1-1 | 촉매 제조예 1 | 670 |
| 실시예 1-2 | 촉매 제조예 2 | 670 |
| 실시예 1-3 | 촉매 제조예 3 | 670 |
| 실시예 1-4 | 촉매 제조예 4 | 670 |
| 실시예 1-5 | 촉매 제조예 5 | 670 |
| 비교예 1-1 | 촉매 제조예 6 | 670 |
| 비교예 1-2 | 촉매 제조예 7 | 670 |
| 실시예 2-1 | 촉매 제조예 8 | 670 |
| 실시예 2-2 | 촉매 제조예 9 | 670 |
| 비교예 2-1 | 촉매 제조예 10 | 670 |
| 실시예 3-1 | 촉매 제조예 11 | 670 |
| 실시예 3-2 | 촉매 제조예 12 | 670 |
| 비교예 3-1 | 촉매 제조예 13 | 670 |
| 비교예 3-2 | 촉매 제조예 14 | 670 |
| 실시예 4-1 | 촉매 제조예 15 | 670 |
| 실시예 4-2 | 촉매 제조예 16 | 670 |
| 실시예 4-3 | 촉매 제조예 17 | 670 |
| 실시예 4-4 | 촉매 제조예 18 | 670 |
| 실시예 4-5 | 촉매 제조예 19 | 670 |
| 실시예 4-6 | 촉매 제조예 20 | 670 |
| 실시예 5-1 | 촉매 제조예 3 | 640 |
| 실시예 5-2 | 촉매 제조예 3 | 610 |
| 순도(중량%) | 비표면적(m2/g) | 벌크 밀도(kg/m3) | 분체 저항 (Ω·cm) | 식 1 만족 여부 | |
| 실시예 1-1 | 83.17 | 417 | 22.4 | 0.0110 | O |
| 실시예 1-2 | 90.79 | 422 | 16.8 | 0.0095 | O |
| 실시예 1-3 | 93.6 | 415 | 17.2 | 0.0097 | O |
| 실시예 1-4 | 94.1 | 406 | 19.3 | 0.0100 | O |
| 실시예 1-5 | 96.3 | 325 | 24.0 | 0.0110 | O |
| 비교예 1-1 | 96.3 | 287 | 28.4 | 0.0121 | O |
| 비교예 1-2 | 96.3 | 240 | 33.0 | 0.0135 | O |
| 실시예 2-1 | 96.3 | 415 | 12.9 | 0.0090 | O |
| 실시예 2-2 | 94.1 | 350 | 21.2 | 0.0115 | O |
| 비교예 2-1 | 94.3 | 280 | 20.1 | 0.0125 | O |
| 실시예 3-1 | 90.1 | 391 | 23.3 | 0.0115 | O |
| 실시예 3-2 | 89.7 | 393 | 23.1 | 0.0116 | O |
| 비교예 3-1 | 85.5 | 368 | 32.1 | 0.0144 | O |
| 비교예 3-2 | 80.0 | 350 | 38.7 | 0.0180 | X |
| 실시예 4-1 | 91.5 | 321 | 26.7 | 0.0125 | O |
| 실시예 4-2 | 89.1 | 346 | 22.0 | 0.0123 | O |
| 실시예 4-3 | 95.1 | 389 | 20.9 | 0.0105 | O |
| 실시예 4-4 | 94.4 | 404 | 18.7 | 0.0100 | O |
| 실시예 4-5 | 92.3 | 367 | 16.2 | 0.0108 | O |
| 실시예 4-6 | 81.5 | 335 | 22.0 | 0.0122 | O |
| 실시예 5-1 | 95.7 | 372 | 16.0 | 0.0089 | O |
| 실시예 5-2 | 95.6 | 361 | 18.0 | 0.0091 | O |
| 점도(cP) | 슬러리 분체 저항(mΩ·cm) | |
| 실시예 1-1 | 900 | 6.9 |
| 실시예 1-2 | 1050 | 7.3 |
| 실시예 1-3 | 1000 | 6.2 |
| 실시예 1-4 | 1000 | 7.3 |
| 실시예 1-5 | 650 | 9.2 |
| 비교예 1-1 | 300 | 16.7 |
| 비교예 1-2 | 250 | 23.2 |
| 실시예 2-1 | 1000 | 5.8 |
| 실시예 2-2 | 700 | 7.9 |
| 비교예 2-1 | 300 | 19.6 |
| 실시예 3-1 | 950 | 7.2 |
| 실시예 3-2 | 950 | 7.3 |
| 비교예 3-1 | 800 | 16.9 |
| 비교예 3-2 | 750 | 18.9 |
| 실시예 4-1 | 650 | 10.0 |
| 실시예 4-2 | 700 | 9.5 |
| 실시예 4-3 | 950 | 7.4 |
| 실시예 4-4 | 1000 | 7.0 |
| 실시예 4-5 | 800 | 7.5 |
| 실시예 4-6 | 650 | 8.6 |
| 실시예 5-1 | 900 | 6.1 |
| 실시예 5-2 | 850 | 6.3 |
Claims (10)
- 하기 식 1을 만족하는 것을 특징으로 하는 탄소나노튜브:[식 1]-0.004 * A + 0.0385 ≤ R ≤ -0.004 * A + 0.0425상기 식 1에서,R은 탄소나노튜브의 분체 저항(Ω·cm)이고,A는 ln{(탄소나노튜브의 순도(중량%) * 비표면적(m2/g)) / 벌크 밀도(kg/m3)}이며,상기 탄소나노튜브의 비표면적은 320m2/g 이상이고,상기 탄소나노튜브의 벌크 밀도는 30kg/m3 이하이다.
- 제1항에 있어서,상기 탄소나노튜브의 비표면적은 320 내지 500m2/g인 탄소나노튜브.
- 제1항에 있어서,상기 탄소나노튜브의 벌크 밀도는 15 내지 30kg/m3인 탄소나노튜브.
- 제1항에 있어서,상기 R은 0.0125Ω·cm 이하인 탄소나노튜브.
- 제4항에 있어서,상기 R은 0.0080 내지 0.0125Ω·cm인 탄소나노튜브.
- 제1항의 탄소나노튜브; 및분산매;를 포함하는 탄소나노튜브 분산액.
- 제6항에 있어서,상기 분산매는 N-메틸피롤리돈, 피리딘, 디메틸아미노벤젠 및 디에틸아미노벤젠으로 이루어진 군에서 선택되는 1 이상인 탄소나노튜브 분산액.
- 제6항에 있어서,상기 분산액 내 탄소나노튜브 함량은 0.05 내지 5 중량%인 탄소나노튜브 분산액.
- 제6항의 탄소나노튜브 분산액;양극재; 및안정제;를 포함하는 양극 슬러리 조성물.
- 제9항에 있어서,상기 안정제는 양극 슬러리 조성물 내 탄소나노튜브의 함량을 기준으로 10 내지 100 중량%로 포함되는 것인 양극 슬러리 조성물.
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| CN202380022799.1A CN118715175A (zh) | 2022-10-28 | 2023-10-26 | 碳纳米管及含有该碳纳米管的分散体 |
| EP23883135.8A EP4464660A4 (en) | 2022-10-28 | 2023-10-26 | CARBON NANOTUBE AND DISPERSION SOLUTION INCLUDING THEM |
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| Publication number | Priority date | Publication date | Assignee | Title |
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| JP7723860B1 (ja) * | 2025-03-28 | 2025-08-14 | artience株式会社 | 全固体二次電池用電極組成物、該組成物を用いてなる電極スラリー、電極電池、及び該組成物の製造方法 |
| JP7776037B1 (ja) * | 2025-03-28 | 2025-11-26 | artience株式会社 | 炭素材料分散液、電極組成物、電極及び全固体電池 |
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| WO2026089370A1 (ko) * | 2024-10-22 | 2026-04-30 | 주식회사 엘지화학 | 탄소나노튜브 및 이의 제조방법 |
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| JP2025511485A (ja) | 2025-04-16 |
| TW202434521A (zh) | 2024-09-01 |
| EP4464660A1 (en) | 2024-11-20 |
| CN118715175A (zh) | 2024-09-27 |
| JP7801042B2 (ja) | 2026-01-16 |
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