Carbon material, method for manufacturing carbon material, method for manufacturing spherical carbon material, method for manufacturing composite carbon material, and method for manufacturing secondary battery
A carbon material with controlled particle size and density ratios, treated to form dense spherical particles, addresses battery swelling and maintains performance in lithium-ion batteries.
Patent Information
- Application Number
- JP2023546858
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-09-10
- Filing Date
- 2022-08-18
- Publication Date
- 2025-12-03
- Estimated Expiration
- 2042-08-18
AI Technical Summary
Existing carbon materials used in lithium-ion secondary batteries face issues such as battery swelling, decreased large-current charge/discharge characteristics, and reduced cycle life due to the densification of the active material layer, which are not adequately addressed by existing spheroidizing treatments.
A carbon material containing natural graphite with specific particle size and tap density ratios, subjected to spheroidizing treatment, forms dense particles with conductive paths to reduce battery swelling.
The carbon material effectively suppresses battery swelling and maintains high charge/discharge characteristics and cycle life by ensuring efficient particle packing and conductive pathways.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a carbon material, a method for producing the carbon material, a method for producing a spherical carbon material, a method for producing a composite carbon material, and a method for producing a secondary battery including the composite carbon material. [Background technology]
[0002] In recent years, the miniaturization of electronic devices has led to an increasing demand for high-capacity secondary batteries. In particular, lithium-ion secondary batteries have attracted attention because of their higher energy density and superior large-current charge / discharge characteristics compared to nickel-cadmium and nickel-metal hydride batteries. Up until now, efforts to increase the capacity of lithium ion secondary batteries have been widely studied. In recent years, there has been an increasing demand for even higher performance lithium-ion secondary batteries, which has led to demands for lithium-ion secondary batteries to achieve even higher capacity, higher input / output, and longer life.
[0003] It is known that carbon materials such as graphite are used as negative electrode active materials for lithium ion secondary batteries. Among these, graphite with a high degree of graphitization is known to be preferable as a negative electrode active material because, when used as a negative electrode active material for lithium ion secondary batteries, it can achieve a capacity close to 372 mAh / g, which is the theoretical lithium absorption capacity of graphite, and it is also excellent in terms of cost and durability.
[0004] When the active material layer containing the negative electrode material is densified to increase capacity, problems such as an increase in irreversible charge / discharge capacity during the initial cycle, a decrease in large current charge / discharge characteristics, and a decrease in cycle characteristics occur due to destruction and deformation of the material.
[0005] In order to solve the above problems, for example, Patent Document 1 discloses a technique for producing spheroidized natural graphite by subjecting flake natural graphite to mechanical energy treatment. Patent Document 2 discloses a method for obtaining spherical graphite particles with smooth particle surfaces by adding a resin binder to raw graphite particles and subjecting them to a spheroidizing treatment. Patent Document 3 discloses a method for obtaining spherical graphite particles with excellent spheroidization efficiency by spheroidizing a flaky, scale-like, or lump-like carbon material.
[0006] [Patent Document 1] Japanese Patent Application Laid-Open No. 2000-340232 [Patent Document 2] Japanese Patent Application Laid-Open No. 2014-114197 [Patent Document 3] Japanese Patent Application Laid-Open No. 2017-126425
[0007] According to the investigations of the present inventors, when the spherical graphite particles disclosed in Patent Documents 1 to 3 that have been subjected to the above-mentioned spheroidizing treatment are used, the problem of battery swelling may occur, and therefore further improvements were necessary to improve the safety of secondary batteries. Summary of the Invention
[0008] An object of the present invention is to provide a carbon material that can alleviate the problem of battery swelling.
[0009] The present inventors discovered that battery swelling can be reduced by using a carbon material containing natural graphite, when the volume-based average particle size (d50) of the carbon material measured by laser diffraction satisfies a specific formula, and the ratio (d90 / d10) of the particle size (d90) of the 90% cumulative particle size from the smallest particle side to the particle size (d10) of the 10% cumulative particle size, and the tap density is equal to or greater than a predetermined value. This discovery led to the completion of the present invention.
[0010] The reason why the carbon material of the present invention exhibits the above-mentioned effects is thought to be as follows. By subjecting the carbon material of the present invention to a spheroidizing treatment, it is possible to form dense particles by allowing small particles to fit into the gaps formed by larger particles. Such a densified spherical carbon material ensures conductive paths, thereby reducing battery swelling.
[0011] The gist of the present invention is as follows. [1] A carbon material containing natural graphite and satisfying the following formulas (1) and (2): y≧0.23x+3.1 (1) z≧0.43 (2) (x is the d50 (μm) of the carbon material, y is the d90 / d10 of the carbon material, and z is the tap density (g / cm 3 ) [2] The carbon material according to [1], wherein d50 is 3.0 μm or more. [3] The carbon material according to [1] or [2], wherein d50 is 20.0 μm or less. [4] SA is 20.0m 2 / g or less. [5] The carbon material according to any one of [1] to [4], wherein the shape of the carbon material is selected from the group consisting of flakes, scales, and chunks. [6] The carbon material according to any one of [1] to [5], which has an average thickness of 3 μm or less. [7]d 002 The carbon material according to any one of [1] to [6], wherein the value is 0.340 nm or less. (d 002 The value is the interlayer distance of the lattice plane (002 plane) determined by X-ray diffraction using the Gakushin method. [8] The carbon material according to any one of [1] to [7], which is used as a negative electrode material for a secondary battery. [9] A method for producing a spherical carbon material, comprising a step of spheroidizing the carbon material according to any one of [1] to [8].
[10] The method for producing the spherical carbon material according to [9], wherein the spherical carbon material is used as a negative electrode material for a secondary battery.
[11] A method for producing a composite carbon material, comprising a step of compounding the spherical carbon material obtained by the production method according to [9] or
[10] with a carbonaceous material precursor.
[12] A method for producing a carbon material according to any one of claims [1] to [8], comprising a step of pulverizing a raw carbon material.
[13] A method for manufacturing a secondary battery including a positive electrode, a negative electrode, and an electrolyte, comprising: A method for producing a secondary battery, comprising the step of forming, on a current collector, a negative electrode active material layer containing the composite carbon material obtained by the method for producing a composite carbon material according to
[11] , to obtain a negative electrode. [Effects of the Invention]
[0012] The spherical carbonaceous material produced using the carbonaceous material of the present invention can suppress battery swelling in secondary batteries. [Brief explanation of the drawings]
[0013] [Figure 1] FIG. 1 is a graph showing the relationship between x (d50) and y (d90 / d10) for the carbon materials listed in Table 1. DETAILED DESCRIPTION OF THE INVENTION
[0014] The present invention will be described in detail below. The following description of the constituent elements of the invention is one example (typical example) of the embodiment of the present invention, and the present invention is not limited to these forms as long as they do not exceed the gist of the invention.
[0015] <Carbon materials> One embodiment of the present invention is a carbon material that contains natural graphite and satisfies the following formulas (1) and (2), and is preferably used as a negative electrode material for a secondary battery. y≧0.23x+3.1 (1) z≧0.43 (2) (x is the d50 (μm) of the carbon material, y is the d90 / d10 of the carbon material, and z is the tap density (g / cm 3 )
[0016] In this specification, the various volume-based average particle diameters (d50), the particle diameter (d10) corresponding to the cumulative 10% from the smallest particle of the particle diameters measured on a volume basis, and the particle diameter (d90) corresponding to the cumulative 90% from the smallest particle of the particle diameters measured on a volume basis are values calculated from the volume-based particle size distribution measured by laser diffraction.
[0017] In this specification, various tap densities are measured using a powder tester with a diameter of 5 cm and a volume capacity of 100 cm 3 The sample is filled to the brim into a cylindrical tap cell, and then tapped 500 times with a stroke length of 18 mm, and the density is calculated from the volume and mass of the sample at that time.
[0018] The spherical carbon material produced using a carbon material that contains natural graphite and satisfies the above formulas (1) and (2) can suppress battery swelling in secondary batteries for the reasons described above.
[0019] From the viewpoint of suppressing battery swelling in a secondary battery, the carbon material satisfying the formula (1) preferably satisfies the following formula (1A), and more preferably satisfies the following formula (1B). y≧0.23x+3.3 (1A) 0.23x+6.5≧y≧0.23x+3.5 (1B)
[0020] Carbon materials satisfying the above formulas (1) and (2) can be obtained by pulverizing the material into scaly particles with a d50 of approximately 100 μm and using the fine powder generated during pulverization without classification. As a fine grinding process, a circulating grinding process that repeatedly applies collision force, shear force, and grinding force in a fine grinding mill is effective in generating fine powder and tends to make it easier to increase the d90 / d10 ratio relative to d50.
[0021] A typical carbon material is graphite, which is commercially available, has a theoretically high charge / discharge capacity of 372 mAh / g, and is preferable because it is more effective in improving charge / discharge characteristics at high current densities than other carbon materials.
[0022] Graphite containing few impurities is preferred, and it can be used after being subjected to various known purification treatments, if necessary. The types of graphite include natural graphite, artificial graphite, etc. In the present invention, graphite containing at least natural graphite is used because it has high capacity and good charge / discharge characteristics at high current density. The carbon material can be used alone or in combination of two or more kinds. In order to effectively obtain the above-mentioned effects of using natural graphite, the proportion of natural graphite in the carbon material is preferably 80% by mass or more, particularly 90% by mass or more, and especially 95 to 100% by mass, based on 100% by mass of the carbon material.
[0023] (Physical properties of carbon materials) Carbon particle size d50 The volume-based average particle size (d50) of the carbon material of this embodiment is usually 20.0 μm or less, preferably 16.0 μm or less, more preferably 14.0 μm or less, even more preferably 12.0 μm or less, and particularly preferably 11.0 μm or less, and is usually 3.0 μm or more, preferably 5.0 μm or more, more preferably 7.0 μm or more, even more preferably 8.0 μm or more, and particularly preferably 10.0 μm or more.
[0024] When d50 is equal to or less than the upper limit, streaking is less likely to occur when applying the slurry during electrode preparation, and rapid charge / discharge characteristics and low-temperature input / output characteristics tend to be improved.When d50 is equal to or greater than the lower limit, an increase in irreversible capacity and loss of initial battery capacity tend to be more easily prevented.
[0025] Carbon particle size d10 The particle size (d10) corresponding to the cumulative 10% from the smallest particle side of the particle size measured on a volume basis of the carbon material of this embodiment is usually 1.0 μm or more, preferably 1.5 μm or more, more preferably 2.0 μm or more, even more preferably 2.5 μm or more, and particularly preferably 3.0 μm or more, and is usually 12.0 μm or less, preferably 10.0 μm or less, more preferably 8.0 μm or less, even more preferably 6.0 μm or less, and particularly preferably 4.0 μm or less.
[0026] When d10 is within the above range, the particles do not tend to aggregate too strongly, which can prevent process defects such as increased slurry viscosity, and can also prevent a decrease in electrode strength and initial charge / discharge efficiency in secondary batteries. When d10 is within the above range, a decrease in high current density charge / discharge characteristics and a decrease in output characteristics also tend to be avoided.
[0027] Carbon particle size d90 The particle size (d90) of the carbon material of this embodiment, measured on a volume basis, corresponding to the cumulative 90% from the smallest particle side, is usually 50.0 μm or less, preferably 40.0 μm or less, more preferably 35.0 μm or less, even more preferably 30.0 μm or less, and particularly preferably 25.0 μm or less, and is usually 9.0 μm or more, preferably 13.0 μm or more, more preferably 15.0 μm or more, even more preferably 18.0 μm or more, and particularly preferably 20.0 μm or more.
[0028] When d90 is within the above range, it is possible to avoid a decrease in electrode strength and a decrease in initial charge / discharge efficiency in the secondary battery, and it also tends to be possible to avoid process defects such as streaking when applying the slurry, a decrease in high current density charge / discharge characteristics, and a decrease in output characteristics.
[0029] Carbon material d90 / d10 The ratio (d90 / d10) of the particle size (d90) corresponding to the cumulative 90% from the smallest particle to the particle size (d10) corresponding to the cumulative 10% from the smallest particle, measured on a volume basis, of the particle size of the carbon material obtained in this embodiment is usually 5.6 or more, preferably 5.9 or more, and more preferably 6.2 or more, and is usually 20 or less, preferably 10 or less, and more preferably 7 or less.
[0030] When d90 / d10 is within the above range, the blister resistance is excellent.
[0031] Tap density of carbon material The tap density of this carbon material is typically 0.43 g / cm 3 or more, preferably 0.44 g / cm 3More preferably, it is 0.45 g / cm or more. 3 More preferably, it is 0.46 g / cm 3 or more, usually 0.80 g / cm 3 or less, preferably 0.70 g / cm 3 or less, more preferably 0.60 g / cm 3 More preferably, it is 0.55 g / cm or less. 3 The following is the result.
[0032] When the tap density is within the above range, spheroidization proceeds efficiently, and the tap density of the spherical carbon material obtained after the spheroidization treatment tends to be large.
[0033] Specific surface area (hereinafter sometimes referred to as "SA") of carbon material measured by the BET method The specific surface area (SA) of this carbon material by the BET method is usually 20.0 m 2 / g or less, preferably 18.0m 2 / g or less, and more preferably 16.0m 2 / g or less, and more preferably 14.0m 2 / g or less, and particularly preferably 12.0m 2 / g or less, and is usually 3.0m 2 / g or more, preferably 4.5m 2 / g or more, more preferably 6.0m 2 / g or more, more preferably 7.5m 2 / g or more, particularly preferably 8.5m 2 / g or more.
[0034] When the specific surface area is within the above range, it is possible to obtain a spherical carbon material with high spheroidization efficiency, high tap density, and high SA. As a result, there are more lithium ion insertion and desorption sites, which tends to make it possible to obtain a spherical carbon material with excellent low-temperature input / output characteristics.
[0035] In this specification, the various specific surface areas (SA) are values measured by the BET method using nitrogen adsorption.
[0036] ·Shape of carbon material The particle shape of the carbon material of this embodiment is not particularly limited as long as it satisfies the above formulas (1) and (2), but is preferably flaky, scale-like, or chunk-like, and more preferably flaky. With the above-mentioned shape, the particle contact area is large and the number of particle contact points can be increased, making it possible to ensure a conductive path when forming an electrode.
[0037] Average thickness of carbon particles The average thickness of the particles of the carbon material of this embodiment is usually 3 μm or less, preferably 2 μm or less, more preferably 1 μm or less, and usually 0.01 μm or more, preferably 0.05 μm or more, more preferably 0.1 μm or more.
[0038] When the average thickness of the carbon material particles is within the above range, fine powder is likely to be generated during the spheroidizing treatment, and the generated fine powder can be efficiently spheroidized while being caught in the particles, making it possible to obtain dense spherical carbon material particles with a high tap density. As a result, it tends to be possible to obtain spherical carbon material particles with a secure conductive path, suppress electrodeposition, and reduce swelling.
[0039] In this specification, the average thickness of each type of particle is determined by observing the cross section of the particle using a scanning electron microscope (SEM) and calculating the average thickness of 20 particles, excluding 5 particles on each side with a particle thickness corresponding to the length perpendicular to the planar direction of 30 randomly selected particles.
[0040] When the planar direction of the particles is not determined, the particles may be oriented, and then the cross section of the particles may be observed and measured using a scanning electron microscope (SEM). The plane of a particle is the plane that has the largest area defined by the outline of the particle when the particle is observed from multiple directions. In the case of scaly or flake-like carbon materials, the basal plane is considered to be the plane.
[0041] Carbon material 002 Value (X-ray parameter) The d of the lattice plane (002 plane) of this carbon material obtained by X-ray diffraction using the Gakushin method 002 The value (interlayer distance) is preferably 0.330 nm or more, more preferably 0.332 nm or more, even more preferably 0.334 nm or more, and preferably 0.340 nm or less, more preferably 0.339 nm or less, even more preferably 0.338 nm or less. d 002 If the value is within the above range, the crystallinity of the carbon material is appropriately high, and an increase in irreversible capacity tends to be reduced.
[0042] In this specification, various d 002 The values are those determined by X-ray diffraction according to the Gakushin method.
[0043] Raman R value of carbon materials The Raman R value of the carbon material of this embodiment is usually 0.05 or more, preferably 0.08 or more, more preferably 0.10 or more, and usually 0.50 or less, preferably 0.40 or less, more preferably 0.30 or less.
[0044] In this specification, various Raman R values are values obtained by Raman spectroscopy at 1580 cm -1 The intensity of the peak PA near 1360 cm -1 The intensity of the peaks PB and IB near 1580 cm is measured, and the intensity ratio (IB / IA) is calculated. -1 "Around 1580~1620cm" -1 It refers to the range of 1360cm. -1 "Around 1350~1370cm" -1 Refers to the range of.
[0045] The Raman R value is an index that indicates the crystallinity near the surface of a carbon particle (up to about 100 Å from the particle surface), and a larger Raman R value indicates lower crystallinity or a more disordered crystalline state. When the Raman R value is within the above range, a structure with a low crystalline state is obtained on the surface of the carbon material, facilitating the insertion and desorption of lithium ions, which is thought to result in good input / output characteristics. Raman spectra can be measured using a Raman spectrometer. Specifically, the particles to be measured are loaded into a measurement cell by gravity, and the measurement cell is irradiated with argon ion laser light while the measurement cell is rotated in a plane perpendicular to the laser light.
[0046] <Method of manufacturing carbon materials> As a method for producing a carbon material that satisfies the above-mentioned preferable properties, for example, there is a method in which a carbon material that serves as a raw material (also referred to as a raw carbon material) is pulverized.
[0047] Carbon material used as raw material Examples of the carbon material to be used as the raw material include natural graphite, artificial graphite, etc. In the present invention, at least natural graphite is used because it can suppress electrode plate swelling and has good process adaptability.
[0048] Depending on its properties, natural graphite is classified into flake graphite, crystalline graphite, vein graphite, and amorphous graphite (see the section on graphite in "Powder and Granular Process Technology Collection" (published by Industrial Technology Center, Inc. in 1974) and "HANDBOOK OF CARBON, GRAPHITE, DIAMOND AND FULLERENES" (published by Noyes Publications)). The degree of graphitization is highest for flake graphite and crystalline graphite, at 100%, followed by flake graphite, at 99.9%. Graphite with a high degree of graphitization is preferred in this embodiment. Natural graphite with a low impurity content is particularly preferred. Natural graphite can be used after undergoing various known purification processes, if necessary.
[0049] Natural graphite is produced in Madagascar, China, Brazil, Ukraine, Canada, etc. Flaky graphite is produced in Sri Lanka, etc. The main producers of soil graphite are the Korean Peninsula, China, Mexico, etc.
[0050] Artificial graphite can be obtained by graphitizing raw materials containing a large amount of easily graphitizable carbon at temperatures between 2500°C and 3200°C. During the calcination, silicon-containing compounds and boron-containing compounds can also be used as graphitization catalysts.
[0051] Examples of easily graphitizable carbon include coal-based heavy oils such as coal tar pitch and dry distillation liquefied oil; straight-run heavy oils such as atmospheric residue and vacuum residue; petroleum-based heavy oils such as cracked heavy oils such as ethylene tar produced as a by-product during the thermal decomposition of crude oil, naphtha, etc.; petroleum-based pitch; aromatic hydrocarbons such as acenaphthylene, decacyclene, and anthracene; nitrogen-containing cyclic compounds such as phenazine and acridine; sulfur-containing cyclic compounds such as thiophene; aliphatic cyclic compounds such as adamantane; polyphenylenes such as biphenyl and terphenyl; polyvinyl esters such as polyvinyl chloride, polyvinyl acetate, and polyvinyl butyral; and thermoplastic polymers such as polyvinyl alcohol.
[0052] As described above, since a carbon material having high capacity and good charge / discharge characteristics at high current density can be obtained, the raw material carbon material preferably contains natural graphite in an amount of 80 mass % or more, particularly 90 mass % or more, and especially 95 to 100 mass %.
[0053] Crushing The equipment used for pulverization is preferably a fine mill, since it is necessary to reduce the particle size of the carbon powder. In particular, pulverization using not only impact forces but also shear forces and grinding forces is preferred, as this results in a more circular particle shape after pulverization, improving packing and achieving a high tap density. Furthermore, circulatory grinding, which repeatedly applies impact forces, shear forces, and grinding forces within the fine mill, is preferred, as this produces a fine powder with a high tap density and a large d90 / d10 ratio relative to d50.
[0054] Examples of fine grinding mills include mechanical grinders, airflow grinders, and swirl flow grinders. Specific examples include ball mills, vibration mills, pin mills, stirring mills, jet mills, cyclone mills, turbo mills, and kryptrons. In particular, it is preferable to use a swirl flow grinder, since it increases the d90 / d10 ratio relative to d50.
[0055] When treating a raw carbon material using the above-mentioned apparatus, the peripheral speed of the rotating rotor is usually 30 m / s or more, preferably 75 m / s or more, more preferably 100 m / s or more, even more preferably 110 m / s or more, particularly preferably 120 m / s or more, and preferably 200 m / s or less. When the peripheral speed of the rotor is within the above range, it is possible to obtain suitable spherical carbon materials from the carbon material obtained, which is preferable.
[0056] The pulverization treatment is preferably a method in which the raw carbon material is circulated or retained in an apparatus for treatment. When circulating or retaining the raw carbon material in an apparatus for treatment, the flow rate of a suction blower used to discharge the raw carbon material from the pulverizer is usually 10 m / s or more, preferably 20 m / s or more, more preferably 25 m / s or more, and usually 100 m / s or less, preferably 80 m / s or less, more preferably 60 m / s or less. When the flow rate of the suction blower is within the above range, it is possible to achieve both a large d90 / d10 ratio relative to d50 and productivity.
[0057] The pulverization treatment can be carried out, for example, in an air atmosphere, an oxidizing atmosphere, or an inert atmosphere such as carbon dioxide, nitrogen, argon, etc. Among these, treatment in an air atmosphere or an oxidizing atmosphere is preferred because oxidation of the surface of the carbon material generates micropores and increases the SA.
[0058] Classification In order to satisfy the above formulas (1) and (2), it is preferable that the carbon material is not subjected to classification treatment.
[0059] High-purification treatment When producing the carbon material of this embodiment, it may be purified. As a method for purifying the carbon material, an acid treatment using an acidic solution containing nitric acid or hydrochloric acid may be used. This method is preferable because it can remove impurities such as metals, metal compounds, and inorganic compounds from the carbon material without introducing sulfates into the system, which may be highly active sulfur sources.
[0060] The acid treatment may be carried out using an acid containing nitric acid and / or hydrochloric acid. Other acids that can be used include inorganic acids such as bromic acid, hydrofluoric acid, boric acid, and iodic acid, and organic acids such as citric acid, formic acid, acetic acid, oxalic acid, trichloroacetic acid, and trifluoroacetic acid. The acid used in the acid treatment is preferably concentrated hydrofluoric acid, concentrated nitric acid, or concentrated hydrochloric acid, more preferably concentrated nitric acid or concentrated hydrochloric acid. In this embodiment, the carbon material may be treated with sulfuric acid, but the amount and concentration of sulfuric acid used should be such that the effects and properties of this embodiment are not impaired.
[0061] When multiple acids are used, a combination of hydrofluoric acid, nitric acid, and hydrochloric acid is preferred because it can efficiently remove the above-mentioned impurities. When multiple acids are used, the mixing ratio of the mixed acid is usually 10% by mass or more, preferably 20% by mass or more, and more preferably 25% by mass or more. The upper limit is the value when all acids are mixed in equal amounts (expressed as 100% by mass / type of acid).
[0062] The acid treatment is carried out, for example, by immersing the carbon material in the acid solution described above.
[0063] The amount of acidic solution used for immersion is such that the ratio (mass ratio) of the carbonaceous material to the acidic solution is usually 100:10 or more, preferably 100:20 or more, more preferably 100:30 or more, and usually 100:1000 or less, preferably 100:500 or less, more preferably 100:300 or less. When the amount of acidic solution used is 100:10 or more, the above-mentioned impurities tend to be removed efficiently. When the amount of acidic solution used is 100:1000 or less, the amount of carbonaceous material that can be washed at one time increases, allowing for both improved productivity and reduced costs.
[0064] The immersion time is usually 0.5 to 48 hours, preferably 1 to 40 hours, more preferably 2 to 30 hours, and even more preferably 3 to 24 hours. When the immersion time is equal to or less than the upper limit, both improvement in productivity and cost reduction can be achieved. When the immersion time is equal to or more than the lower limit, the impurities tend to be efficiently removed.
[0065] The immersion temperature is usually 25° C. or higher, preferably 40° C. or higher, more preferably 50° C. or higher, and even more preferably 60° C. or higher. When an aqueous acid is used, the theoretical upper limit of the immersion temperature is 100° C., which is the boiling point of water. When the immersion temperature is within the above range, the impurities tend to be removed efficiently.
[0066] It is preferable to wash the carbonaceous material after the acid treatment with water in order to remove the acid remaining after the acid treatment and raise the pH from a weakly acidic range to a neutral range. If the pH of the carbonaceous material after the acid treatment (treated carbonaceous material) is usually 3 or higher, preferably 3.5 or higher, more preferably 4 or higher, and even more preferably 4.5 or higher, water washing can be omitted. If the pH of the carbonaceous material after the acid treatment is below the upper limit described above, it is preferable to wash it with water as needed. It is preferable to use ion-exchanged water or distilled water as the washing water from the viewpoints of improving the washing efficiency and preventing the inclusion of impurities.
[0067] The cleaning water has a resistivity at 25°C, which is an index of the amount of ions in the water, of usually 0.1 MΩ·cm or more, preferably 1 MΩ·cm or more, and more preferably 10 MΩ·cm or more. The theoretical upper limit of the resistivity of cleaning water is 18.24 MΩ·cm. A resistivity of cleaning water equal to or greater than the lower limit indicates that the amount of ions in the water is low, which is preferable from the viewpoints of suppressing impurity contamination and improving cleaning efficiency.
[0068] The water washing can be carried out, for example, by stirring and mixing the treated carbonaceous material with water.
[0069] The mixing ratio (mass ratio) of the treated carbon material to water in water washing is usually 100:10 or more, preferably 100:30 or more, more preferably 100:50 or more, and even more preferably 100:100 or more, and usually 100:1000 or less, preferably 100:700 or less, more preferably 100:500 or less, and even more preferably 100:400 or less. When the mixing ratio of the treated carbon material to water is 100:1000 or less, production efficiency tends to be improved. When the mixing ratio of the treated carbon material to water is 100:10 or more, the effect of reducing residual impurities and acids tends to be excellent.
[0070] The stirring temperature (temperature of the washing water) is usually 25° C. or higher, preferably 40° C. or higher, more preferably 50° C. or higher, and even more preferably 60° C. or higher. The upper limit of the stirring temperature is 100° C., which is the boiling point of water. When the stirring temperature is equal to or higher than the lower limit, there is a tendency for the effect of reducing residual impurities and acid content to be excellent.
[0071] The stirring time is usually 0.5 to 48 hours, preferably 1 to 40 hours, more preferably 2 to 30 hours, and even more preferably 3 to 24 hours. When the stirring time is equal to or less than the upper limit, production efficiency tends to be improved. When the stirring time is equal to or more than the lower limit, the effect of reducing residual impurities and acid content tends to be excellent.
[0072] When water washing is carried out batchwise, it is preferable to repeat the treatment steps of stirring and filtering in washing water multiple times from the viewpoint of removing impurities and acids. Water washing may be repeated so that the pH of the treated carbonaceous material is usually 3 or higher, preferably 3.5 or higher, more preferably 4 or higher, and even more preferably 4.5 or higher. Water washing is usually carried out once or more, preferably twice or more, and more preferably three times or more.
[0073] The hydrogen ion concentration of the wastewater from the carbonaceous material obtained by acid treatment and, if necessary, further washing with water is usually 200 ppm or less, preferably 100 ppm or less, more preferably 50 ppm or less, and even more preferably 30 ppm or less, and usually 1 ppm or more, preferably 2 ppm or more, more preferably 3 ppm or more, and even more preferably 4 ppm or more. When the hydrogen ion concentration of the wastewater is equal to or less than the upper limit, acids are removed and a decrease in pH tends to be suppressed. When the hydrogen ion concentration of the wastewater is equal to or greater than the lower limit, the treatment time can be shortened, which tends to lead to improved productivity.
[0074] Heat treatment process for carbon materials When producing the carbon material of this embodiment, a heat treatment may be carried out to adjust the amount of unstable carbon and crystallinity of the carbon material. When the above-mentioned crushing treatment is carried out, the amount of unstable carbon on the surface of the carbon material particles may increase too much, so by carrying out the heat treatment, the amount of unstable carbon can be appropriately reduced.
[0075] The temperature conditions during the heat treatment in this case may be set depending on the desired degree of crystallinity, and are usually 300° C. or higher, preferably 500° C. or higher, more preferably 700° C. or higher, and even more preferably 800° C. or higher, and usually 2000° C. or lower, preferably 1500° C. or lower, and more preferably 1200° C. or lower. The above temperature conditions can appropriately increase the crystallinity of the carbon particle surface.
[0076] Even when the raw carbon material contains a carbon material with low crystallinity, the crystallinity can be increased by graphitizing the carbon material with low crystallinity through heat treatment in order to increase the discharge capacity. The temperature conditions during the heat treatment in this case may be set depending on the desired degree of crystallinity, and are usually 600° C. or higher, preferably 900° C. or higher, more preferably 1600° C. or higher, and even more preferably 2500° C. or higher, and usually 3200° C. or lower, preferably 3100° C. or lower. The above temperature conditions can increase the crystallinity of the carbon particle surface.
[0077] The crystals on the surface of the carbonaceous particles may be disordered, and this disorder becomes particularly pronounced when the above-mentioned crushing treatment is carried out. Therefore, by carrying out a heat treatment, the disordered crystals on the surface of the carbonaceous particles can be restored. When the heat treatment is carried out, the temperature conditions are maintained within the above range for a period of time of usually 10 seconds or more and usually 72 hours or less.
[0078] The heat treatment is carried out in an inert gas atmosphere such as nitrogen gas, or in a non-oxidizing atmosphere using gas generated from the raw carbon material. Examples of heat treatment devices that can be used include shuttle furnaces, tunnel furnaces, electric furnaces, lead hammer furnaces, rotary kilns, direct current furnaces, Acheson furnaces, resistance heating furnaces, and induction heating furnaces.
[0079] <Method for manufacturing spherical carbon material> One embodiment of the present invention is a method for producing a spherical carbon material, in which a carbon material according to one embodiment of the present invention is subjected to a spheroidizing treatment to obtain a spherical carbon material (hereinafter, sometimes referred to as "the spherical carbon material of this embodiment").
[0080] -Circularity of spherical carbon material The spherical carbon material of this embodiment usually has a circularity of 0.85 or more, preferably 0.90 or more. Circularity is determined by measuring particle size distribution based on equivalent circle diameter using a flow particle image analyzer and calculating the average circularity. Circularity is defined by the following formula (3), with a circularity of 1 representing a theoretically perfect sphere. [Circularity] = [Perimeter of a circle with the same area as the projected shape of a particle] / [Actual perimeter of the projected shape of a particle] (3)
[0081] In measuring this circularity, ion-exchanged water is used as the dispersion medium and polyoxyethylene (20) monolaurate is used as the surfactant. The equivalent circle diameter is the diameter of a circle (equivalent circle) that has the same projected area as the photographed particle image, and circularity is the ratio of the perimeter of the equivalent circle as the numerator to the perimeter of the photographed particle projected image as the denominator. The circularity is calculated by averaging the circularities of particles with measured equivalent diameters in the range of 3 μm to 40 μm.
[0082] Spherical processing The spheronization treatment can be carried out by a known method. The spheroidization treatment may be carried out, for example, by using an apparatus that repeatedly applies mechanical actions to particles, such as compression, friction, shear force, and the like, mainly involving impact force and particle interaction. Specifically, a preferred device has a rotor with many blades installed inside a casing, and the rotor rotates at high speed to apply mechanical actions such as impact compression, friction, and shear force to the carbon material introduced inside, thereby performing surface treatment. Also, it is preferable that the carbon material has a mechanism for repeatedly applying a mechanical action by circulating the carbon material particles.
[0083] Specific examples of the apparatus include the Hybridization System (manufactured by Nara Machinery Works), Kryptron, Kryptron Orb (manufactured by EarthTechnica), CF Mill (manufactured by Ube Industries, Ltd.), Mechanofusion System, Nobilta, Faculty (manufactured by Hosokawa Micron Corporation), Theta Composer (manufactured by Tokuju Kogyosho Co., Ltd.), COMPOSI (manufactured by Nippon Coke and Engineering Co., Ltd.), etc. Among these, the Hybridization System manufactured by Nara Machinery Works is preferred.
[0084] When the spheroidizing treatment is carried out using the above-mentioned device, the peripheral speed of the rotating rotor is usually 30 to 100 m / sec, preferably 40 to 100 m / sec, and more preferably 50 to 100 m / sec. The spheroidization treatment can be carried out by simply passing the carbon material through the device, but it is preferable to circulate or retain the carbon material in the device for 30 seconds or more, and it is more preferable to circulate or retain the carbon material in the device for 1 minute or more.
[0085] Granulating agent The spheronization treatment may be carried out in the presence of a granulating agent. The use of a granulating agent increases the adhesive force between the carbonaceous material particles, making it possible to produce spherical carbonaceous material particles in which the carbonaceous material particles are more firmly attached.
[0086] The granulating agent used in this embodiment does not contain any organic solvent, or if it contains any organic solvent, at least one of the organic solvents preferably has no flash point, or if it has a flash point, the flash point is preferably 5° C. or higher. This makes it possible to prevent the risk of ignition of the organic compound, fire, and explosion induced by impact or heat generation when granulating the carbon material in the next step, and enables stable and efficient production. In this specification, the flash point can be measured by a known method.
[0087] Examples of granulating agents include synthetic oils such as coal tar, petroleum heavy oil, paraffinic oils such as liquid paraffin, olefinic oils, naphthenic oils, and aromatic oils; natural oils such as vegetable oils, animal aliphatic oils, esters, and higher alcohols; organic compounds such as resin binder solutions in which a resin binder is dissolved in an organic solvent with a flash point of 5°C or higher, preferably 21°C or higher; aqueous solvents such as water; and mixtures thereof.
[0088] Organic solvents with a flash point of 5°C or higher include: aromatic hydrocarbons such as alkylbenzenes (e.g., xylene, isopropylbenzene, ethylbenzene, propylbenzene), alkylnaphthalenes (e.g., methylnaphthalene, ethylnaphthalene, propylnaphthalene), allylbenzenes (e.g., styrene), and allylnaphthalene; aliphatic hydrocarbons (e.g., octane, nonane, decane); ketones (e.g., methyl isobutyl ketone, diisobutyl ketone, cyclohexanone); esters (e.g., propyl acetate, butyl acetate, isobutyl acetate, amyl acetate); alcohols (e.g., methanol, ethanol, propanol, butanol, isopropyl alcohol, isobutyl alcohol, ethylene glycol, propylene glycol, diethylene glycol, triethylene glycol, tetraethylene glycol, glycerin); ethylene glycol monomethyl ether, ethylene glycol monoethyl ether, ethylene glycol monobutyl ether, diethylene glycol Examples include glycol derivatives such as monobutyl ether, triethylene glycol monobutyl ether, tetraethylene glycol monobutyl ether, methoxypropanol, methoxypropyl-2-acetate, methoxymethylbutanol, methoxybutyl acetate, diethylene glycol dimethyl ether, dipropylene glycol dimethyl ether, diethylene glycol ethyl methyl ether, triethylene glycol dimethyl ether, tripropylene glycol dimethyl ether, tetraethylene glycol dimethyl ether, and ethylene glycol monophenyl ether; ethers such as 1,4-dioxane; nitrogen-containing compounds such as dimethylformamide, pyridine, 2-pyrrolidone, and N-methyl-2-pyrrolidone; sulfur-containing compounds such as dimethyl sulfoxide; halogen-containing compounds such as dichloromethane, chloroform, carbon tetrachloride, dichloroethane, trichloroethane, and chlorobenzene; and mixtures thereof. This does not include compounds with low flash points, such as toluene. These organic solvents can also be used alone as granulating agents.
[0089] Examples of resin binders include cellulose-based resin binders such as ethyl cellulose, methyl cellulose, and salts thereof; acrylic-based resin binders such as polymethyl acrylate, polyethyl acrylate, polybutyl acrylate, polyacrylic acid, and salts thereof; methacrylic-based resin binders such as polymethyl methacrylate, polyethyl methacrylate, and polybutyl methacrylate; and phenolic resin binders.
[0090] Among the granulating agents, coal tar, petroleum heavy oil, paraffinic oils such as liquid paraffin, alcohols, and aromatic oils are preferred because they can produce spherical carbon materials with high circularity and little fine powder.
[0091] The granulating agent is preferably one that can be efficiently removed and does not adversely affect battery characteristics such as capacity, output characteristics, storage and cycle characteristics, etc. Specifically, one that reduces the mass by typically 50% or more, preferably 80% or more, more preferably 95% or more, even more preferably 99% or more, and particularly preferably 99.9% or more when heated to 700°C in an inert atmosphere can be appropriately selected.
[0092] Examples of methods for mixing the carbonaceous material and the granulating agent include a method of mixing the carbonaceous material and the granulating agent using a mixer or kneader, a method of mixing the carbonaceous material with a granulating agent in which an organic compound is dissolved in a low-viscosity diluting solvent (organic solvent) and then removing the diluting solvent (organic solvent), etc. Another method for spheronizing the carbonaceous material is to charge the granulating agent and the carbonaceous material into a granulating device and simultaneously perform the step of mixing the carbonaceous material and the granulating agent and the step of spheronizing the carbonaceous material.
[0093] The amount of granulating agent added is usually 0.1 part by mass or more, preferably 1 part by mass or more, more preferably 3 parts by mass or more, even more preferably 6 parts by mass or more, and particularly preferably 10 parts by mass or more, relative to 100 parts by mass of the carbon material, and is usually 1000 parts by mass or less, preferably 100 parts by mass or less, more preferably 80 parts by mass or less, even more preferably 50 parts by mass or less, and particularly preferably 20 parts by mass or less. When the amount of granulating agent added is within the above range, interparticle adhesive force is increased, circularity is increased, and problems such as reduced productivity due to adhesion of the carbon material to the equipment are less likely to occur.
[0094] When a granulating agent is used in producing the spherical carbon material of this embodiment, a step of removing the granulating agent may be included. Methods for removing the granulating agent include, for example, washing with a solvent and volatilizing and decomposing the granulating agent by heat treatment.
[0095] When the granulating agent is volatilized and decomposed for removal by heat treatment, the heat treatment temperature is usually 60°C or higher, preferably 100°C or higher, more preferably 200°C or higher, even more preferably 300°C or higher, and particularly preferably 500°C, and is usually 1500°C or lower, preferably 1000°C or lower, and more preferably 800°C or lower. When the heat treatment temperature is within the above range, the granulating agent can be sufficiently volatilized and decomposed for removal, thereby improving productivity.
[0096] The heat treatment time is usually 0.5 to 48 hours, preferably 1 to 40 hours, more preferably 2 to 30 hours, and even more preferably 3 to 24 hours. When the heat treatment time is within the above range, the granulating agent can be sufficiently volatilized and decomposed for removal, thereby improving productivity.
[0097] The heat treatment atmosphere may be an active atmosphere such as air, or an inert atmosphere such as nitrogen or argon. When the heat treatment is performed at 200 to 300°C, there are no particular limitations on the heat treatment atmosphere. When the heat treatment is performed at 300°C or higher, the heat treatment atmosphere is preferably an inert atmosphere such as nitrogen or argon, from the viewpoint of preventing oxidation of the graphite surface.
[0098] Pressure treatment It is preferable to include a step of pressurizing the spherical carbon material after obtaining the spherical carbon material. Examples of methods for pressurizing the spherical carbon material include isotropic pressurization by hydrostatic pressure using water as a pressurizing medium and isotropic pressurization by air pressure using gas as a pressurizing medium. Alternatively, the method may include a step of filling the spherical carbon material into a mold and pressurizing it in a certain direction using a uniaxial press.
[0099] The pressure of the pressure medium in the above pressure treatment is usually 50 to 4000 kgf / cm 2 and preferably 300 to 3500 kgf / cm 2 and more preferably 500 to 3000 kgf / cm 2 When the pressure of the pressurizing medium is equal to or higher than the lower limit, the pore volume can be set within a smaller range. When the pressure of the pressurizing medium is equal to or lower than the upper limit, an increase in the specific surface area tends to be easily suppressed.
[0100] <Method of manufacturing composite carbon material> One embodiment of the present invention is a method for producing a composite carbon material, in which the spherical carbon material of this embodiment obtained by the method for producing a spherical carbon material of one embodiment of the present invention is composited with a carbonaceous material precursor to obtain the composite carbon material.
[0101] The composite carbon material of this embodiment, in which the spherical carbon material and the carbonaceous material are combined, can suppress side reactions with the electrolyte, improve rapid charge / discharge performance, and suppress battery swelling in the secondary battery.
[0102] The carbonaceous material used here preferably has lower crystallinity than the carbon material according to one embodiment of the present invention.
[0103] Examples of methods for obtaining the composite carbon material include a method of mixing the spherical carbon material of this embodiment with a carbonaceous material precursor, and a method of vapor-depositing the carbonaceous material precursor onto the spherical carbon material of this embodiment. Preferred are a method of mixing the spherical carbon material of this embodiment with a carbonaceous material precursor and heating in a non-oxidizing atmosphere (referred to as a mixing method in this embodiment), and a method of vapor-depositing the carbonaceous material precursor onto the spherical carbon material of this embodiment in an inert gas atmosphere (referred to as a gas-phase method in this embodiment).
[0104] ·Mixed method In the mixing method, the spherical carbon material of the present embodiment is preferably mixed with an organic compound that is a carbonaceous material precursor, and the mixture is heated in a non-oxidizing atmosphere.
[0105] Examples of organic compounds that are carbonaceous material precursors include carbonaceous heavy oils such as soft or hard coal tar pitch, coal tar, and coal liquefied oil; petroleum heavy oils such as residual oil from atmospheric or vacuum distillation of crude oil; cracked heavy oils that are by-products of ethylene production by naphtha cracking; and petroleum pitch.
[0106] Examples of organic compounds that are resin-derived carbonaceous material precursors include thermosetting resins such as phenolic resins, polyacrylonitrile, and polyimides; thermoplastic resins such as polyvinyl chloride, polyvinylidene chloride, and polyvinyl alcohol; and natural polymers such as celluloses, starch, and polysaccharides.
[0107] Examples of coal-based feedstock oils include coal-based heavy oils such as coal tar pitch, impregnated pitch, formed pitch, and coal liquefaction oil, which are produced from coal as a raw material, and refined coal tar pitch from which insoluble components have been removed. Coal-based feedstock oils contain a large amount of flat-plate aromatic hydrocarbons, such as dibenzocoronene and pentacene, which have multiple benzene rings bonded to them. When the temperature of flat-plate aromatic hydrocarbons increases during the calcination process and their fluidity increases, the flat-plate aromatic hydrocarbons tend to overlap with each other, and the thermal polycondensation reaction proceeds with the flat-plate structures overlapping. As a result, the van der Waals forces acting between the surfaces of the hydrocarbons polymerized by polycondensation become stronger, which tends to reduce the interplanar distance between the polymerized hydrocarbons and increase the degree of crystallization.
[0108] Examples of petroleum-based feedstocks include heavy oil distillation residues, naphtha cracking residues, and catalytically cracked heavy oils. Other examples include thermally treated pitches, such as ethylene tar pitch, FCC decant oil, and Ashland pitch, which are obtained by thermally treating cracked heavy oils. Petroleum-based feedstocks contain flat-plate aromatic hydrocarbons with many bonded benzene rings, but also many linear paraffinic hydrocarbons. Furthermore, even among flat-plate aromatic hydrocarbons with many bonded benzene rings, many have side chains such as methyl groups, or many have benzene rings partially substituted with cyclohexane rings. Therefore, when the temperature increases during the calcination process, increasing fluidity and allowing flat-plate aromatic hydrocarbons to overlap, the presence of a large amount of linear paraffin on those surfaces tends to hinder this overlap. Furthermore, flat-plate aromatic hydrocarbons with side chains such as methyl groups tend to hinder the overlap of flat-plate aromatic hydrocarbons. Furthermore, cyclohexane rings also tend to inhibit the stacking of aromatic hydrocarbons, but the cyclohexane rings are decomposed by heat to form side chains such as methyl groups, which further tend to inhibit the stacking. For these reasons, petroleum-based feedstock oils tend to have a lower degree of crystallization than coal-based feedstock oils. For this reason, petroleum-based feedstock oils are preferred as organic compounds that serve as carbonaceous material precursors used in this embodiment.
[0109] Specifically, it is preferable to use, as the carbonaceous precursor, pitch obtained by heat treating petroleum heavy oil and heavy oils generated during petroleum refining, since an amorphous phase with a small degree of crystallization can be obtained.
[0110] The organic compound serving as the carbonaceous material precursor of this embodiment may be a coal-based feedstock oil to which petroleum-based feedstock oil, a resin-derived organic compound, or other solvent has been added.
[0111] Since these coal-based feedstock oils usually contain light oil components, they are preferably purified by distillation to extract useful components and increase productivity.
[0112] The carbon residue ratio of the organic compound that is the carbonaceous material precursor is usually 1% or more, preferably 10% or more, more preferably 20% or more, and even more preferably 30% or more, and is usually 99% or less, preferably 90% or less, more preferably 80% or less, and even more preferably 70% or less. When the carbon residue ratio is within the above range, the carbonaceous material precursor can be uniformly diffused and infiltrated into the surface and the micropores of the spherical carbonaceous material, which tends to improve input / output characteristics. The residual carbon rate is measured by a method conforming to JIS 2270.
[0113] The carbonaceous material precursor can be diluted by adding a solvent, etc. By adding a solvent, etc., the viscosity of the carbonaceous material precursor can be reduced, and the carbonaceous material precursor tends to diffuse and penetrate more uniformly onto the surface and inside the micropores of the spherical carbon material.
[0114] As a method for mixing the spherical carbon materials and the carbonaceous material precursor of this embodiment, for example, a method may be mentioned in which the spherical carbon materials and the carbonaceous material precursor are mixed using a mixer or kneader to obtain a mixture in which the carbonaceous material precursor adheres to the spherical carbon materials. The spherical carbon material, the carbonaceous material precursor, and, if necessary, raw materials such as a solvent are mixed, if necessary, under heating.
[0115] Gas phase method An example of the vapor phase method is a CVD (Chemical Vapor Deposition) method in which a vapor phase coating raw material compound, which is a carbonaceous material precursor, is uniformly vapor-deposited on the spherical carbon material of this embodiment in an inert gas atmosphere.
[0116] Examples of vapor-phase coating raw material compounds include gaseous compounds that can be decomposed by heat or plasma to form a carbonaceous material coating on the surface of the spherical carbon material. Examples of gaseous compounds include unsaturated aliphatic hydrocarbons such as ethylene, acetylene, and propylene; saturated aliphatic hydrocarbons such as methane, ethane, and propane; and aromatic hydrocarbons such as benzene, toluene, and naphthalene. These gaseous compounds may be used singly or as a mixed gas of two or more.
[0117] The temperature, pressure, time, etc. for the CVD treatment can be appropriately selected depending on the type of coating material used and the desired amount of coated carbonaceous material.
[0118] Other processing After the spherical carbonaceous material is compounded with the carbonaceous material by the above-mentioned mixing method or vapor phase method, it can be subjected to a crushing and / or pulverization treatment. Furthermore, other steps or control conditions not described above may be added as long as they do not impair the effects of this embodiment.
[0119] - Carbonaceous material content in composite carbon material The content of the carbonaceous material in the composite carbon material of this embodiment is usually 0.01 mass% or more, preferably 0.1 mass% or more, and more preferably 1.0 mass% or more, based on 100 mass% of the composite carbon material, and is usually 20.0 mass% or less, preferably 15.0 mass% or less, and more preferably 12.0 mass% or less.
[0120] When the content of the carbonaceous material in the composite carbonaceous material is equal to or less than the upper limit, when the composite carbonaceous material is rolled under a pressure sufficient to achieve a high capacity in a secondary battery, the material fracture of the composite carbonaceous material is unlikely to occur, an increase in the irreversible charge / discharge capacity during the initial cycles can be suppressed, and a decrease in the initial efficiency tends to be suppressed. When the content of the carbonaceous material in the composite carbonaceous material is equal to or more than the lower limit, the effect of the carbonaceous material tends to be easily obtained.
[0121] The content of the carbonaceous material in the composite carbon material is calculated from the masses of the materials before and after firing, as shown in the following formula (4), assuming that there is no change in the mass of the spherical carbon material before and after firing. Carbonaceous material content (mass%) = {(w2-w1) / w2} × 100 (4) (W1 is the mass of the spherical carbon material (kg), and W2 is the mass of the composite carbon material (kg).)
[0122] (Physical properties of composite carbon materials) Particle size d50 of composite carbon material The volume-based average particle size (d50) of the composite carbon material obtained in this embodiment is usually 50.0 μm or less, preferably 40.0 μm or less, more preferably 25.0 μm or less, and usually 5.0 μm or more, preferably 8.0 μm or more, more preferably 10.0 μm or more.
[0123] When d50 is equal to or less than the upper limit, streaking is less likely to occur when applying the slurry during electrode preparation, and rapid charge / discharge characteristics and low-temperature input / output characteristics tend to be improved.When d50 is equal to or greater than the lower limit, an increase in irreversible capacity and loss of initial battery capacity tend to be more easily prevented.
[0124] Particle size d10 of composite carbon material The particle size (d10) corresponding to the cumulative 10% from the smallest particle side of the particle size measured on a volume basis of the composite carbon material obtained in this embodiment is usually 3.0 μm or more, preferably 4.0 μm or more, and more preferably 5.0 μm or more, and is usually 30.0 μm or less, preferably 20.0 μm or less, and more preferably 15.0 μm or less.
[0125] When d10 is within the above range, the particles do not tend to aggregate too strongly, which can prevent process defects such as increased slurry viscosity, a decrease in electrode strength in secondary batteries, and a decrease in initial charge / discharge efficiency. Furthermore, a decrease in high current density charge / discharge characteristics and a decrease in output characteristics also tend to be avoided.
[0126] Particle size d90 of composite carbon material The particle size (d90) corresponding to the cumulative 90% from the smallest particle side of the particle size measured on a volume basis of the composite carbon material obtained in this embodiment is usually 70.0 μm or less, preferably 50.0 μm or less, more preferably 40.0 μm or less, and usually 10.0 μm or more, preferably 15.0 μm or more, more preferably 20.0 μm or more.
[0127] When d90 is within the above range, it is possible to avoid a decrease in electrode strength and a decrease in initial charge / discharge efficiency in the secondary battery, and it also tends to be possible to avoid process defects such as streaking when applying the slurry, a decrease in high current density charge / discharge characteristics, and a decrease in output characteristics.
[0128] d90 / d10 of composite carbon materials The ratio (d90 / d10) of the particle size (d90) corresponding to the cumulative 90% from the smallest particle side to the particle size (d10) corresponding to the cumulative 10% from the smallest particle side, measured on a volume basis, of the particle size of the composite carbon material obtained in this embodiment is usually 1.5 or more, preferably 2.0 or more, more preferably 2.5 or more, and even more preferably 3.0 or more, and is usually 5.0 or less, preferably 4.5 or less, more preferably 4.0 or less, and even more preferably 3.5 or less.
[0129] When d90 / d10 is within the above range, the blister resistance is excellent.
[0130] Tap density of composite carbon material The tap density of the composite carbon material obtained in this embodiment is usually 0.50 g / cm 3 or more, preferably 0.80 g / cm 3 More preferably, it is 1.00 g / cm3 or more, usually 2.00 g / cm 3 or less, preferably 1.60 g / cm 3 or less, more preferably 1.40 g / cm 3 The following is the result.
[0131] If the tap density is within the above range, high-speed charge / discharge characteristics and productivity will be good.
[0132] Specific surface area (SA) of composite carbon material measured by BET method The specific surface area (SA) of the composite carbon material obtained in this embodiment is typically 10.0 m 2 / g or less, preferably 5.0m 2 / g or less, and more preferably 3.0m 2 / g or less, usually 0.1m 2 / g or more, preferably 0.5m 2 / g or more, more preferably 1.0m 2 / g or more.
[0133] If the specific surface area is within the above range, high-speed charge / discharge characteristics and productivity are good.
[0134] Circularity of composite carbon material The circularity of the composite carbon material obtained in this embodiment is usually 0.85 or more, and preferably 0.90 or more.
[0135] <Secondary battery manufacturing method> One embodiment of the present invention is a method for producing a secondary battery including a positive electrode, a negative electrode, and an electrolyte, and includes a step of forming, on a current collector, a negative electrode active material layer including the composite carbon material obtained by the method for producing a composite carbon material according to one embodiment of the present invention, to obtain a negative electrode.
[0136] (Negative electrode active material layer) The negative electrode active material layer can be mixed with a carbon material different from the composite carbon material for the purpose of improving the orientation of the electrode plate, the permeability of the electrolyte, the conductive path, etc., and improving the cycle characteristics, the electrode plate swelling, etc.
[0137] Examples of carbon materials other than composite carbon materials include natural graphite, artificial graphite, amorphous carbon, and carbon materials containing metal particles or metal compounds. These carbon materials may be used alone or in any combination of two or more.
[0138] Examples of natural graphite include highly purified natural graphite. "High purification" usually refers to a process of dissolving and removing ash, metals, and the like contained in low-purity natural graphite by treating it in an acid such as hydrochloric acid, sulfuric acid, nitric acid, or hydrofluoric acid, or by combining multiple acid treatment processes. Usually, the acid used is removed by washing with water or the like after the acid treatment process. Alternatively, instead of the acid treatment process, ash, metals, and the like may be evaporated and removed by treating it at a high temperature of 2000°C or higher. Ash, metals, and the like may also be removed by treating it in a halogen gas atmosphere such as chlorine gas during high-temperature heat treatment. These methods may be used in any combination.
[0139] The volume-based average particle size (d50) of natural graphite is usually 5 μm or more, preferably 8 μm or more, more preferably 10 μm or more, and usually 60 μm or less, preferably 40 μm or less, more preferably 30 μm or less. If the volume-based average particle size is within this range, high-speed charge / discharge characteristics and productivity will be good.
[0140] The specific surface area (SA) of natural graphite measured by the BET method is usually 1m 2 / g or more, preferably 2m 2 / g or more, usually 30m 2 / g or less, preferably 15m 2 If the specific surface area is in this range, high-speed charge / discharge characteristics and productivity are good.
[0141] The tap density of natural graphite is typically 0.4 g / cm 3 or more, preferably 0.6 g / cm 3 More preferably, it is 0.8 g / cm 3 or more, usually 1.3 g / cm 3and preferably 1.2 g / cm 3 or less, more preferably 1.1 g / cm 3 If the tap density is within this range, the high-speed charge / discharge characteristics and productivity will be good.
[0142] Examples of artificial graphite include particles obtained by firing a single graphite precursor particle in powder form and graphitizing it, and granulated particles obtained by molding a plurality of graphite precursor particles, firing them, graphitizing them, and crushing them.
[0143] The volume-based average particle size (d50) of the artificial graphite is usually 5 μm or more, preferably 10 μm or more, and usually 60 μm or less, preferably 40 μm or less, and more preferably 30 μm or less. If the volume-based average particle size is within this range, plate bulging can be suppressed and productivity can be improved.
[0144] The specific surface area (SA) of artificial graphite measured by the BET method is usually 0.5 m 2 / g or more, preferably 1.0m 2 / g or more, usually 8m 2 / g or less, preferably 6m 2 / g or less, more preferably 4m 2 If the specific surface area is in this range, the electrode plate swelling can be suppressed and productivity can be improved.
[0145] The tap density of artificial graphite is typically 0.6 g / cm 3 or more, preferably 0.7 g / cm 3 and more preferably 0.8 g / cm 3 and is typically 1.5 g / cm 3 and preferably 1.4 g / cm 3 More preferably, it is 1.3 g / cm or less. 3 If the tap density is within this range, electrode plate swelling can be suppressed and productivity can be improved.
[0146] As the amorphous carbon, for example, particles obtained by firing bulk mesophase or particles obtained by subjecting an easily graphitizable organic compound to infusibilization treatment and then firing can be used.
[0147] The volume-based average particle size (d50) of the amorphous carbon is usually 5 μm or more, preferably 12 μm or more, and usually 60 μm or less, preferably 40 μm or less. If the volume-based average particle size is within this range, high-speed charge / discharge characteristics and productivity will be good.
[0148] The specific surface area (SA) of amorphous carbon measured by the BET method is usually 1 m 2 / g or more, preferably 2m 2 / g or more, more preferably 2.5m 2 / g or more, usually 8m 2 / g or less, preferably 6m 2 / g or less, and more preferably 4m 2 If the specific surface area is in this range, high-speed charge / discharge characteristics and productivity are good.
[0149] The tap density of amorphous carbon is typically 0.6 g / cm 3 or more, preferably 0.7 g / cm 3 More preferably, it is 0.8 g / cm 3 or more, usually 1.3 g / cm 3 and preferably 1.2 g / cm 3 and more preferably 1.1 g / cm 3 If the tap density is within this range, the high-speed charge / discharge characteristics and productivity will be good.
[0150] Examples of carbon materials containing metal particles or metal compounds include materials obtained by combining graphite with a metal or a compound thereof selected from the group consisting of Fe, Co, Sb, Bi, Pb, Ni, Ag, Si, Sn, Al, Zr, Cr, P, S, V, Mn, Nb, Mo, Cu, Zn, Ge, In, and Ti. The metal may be an alloy of two or more metals. Among these, metals or compounds thereof selected from the group consisting of Si, Sn, As, Sb, Al, Zn, and W are preferred, and Si, SiO x is more preferred. SiO xIt is obtained using silicon dioxide (SiO2) and silicon metal (Si) as raw materials. The value of x is usually 0 < x < 2, preferably 0.2 or more, more preferably 0.4 or more, still more preferably 0.6 or more, preferably 1.8 or less, more preferably 1.6 or less, still more preferably 1.4 or less. If x is within this range, it is possible to reduce the irreversible capacity due to the binding of lithium and oxygen while achieving high capacity.
[0151] The volume-based average particle diameter (d50) of the metal particles is usually 0.005 μm or more, preferably 0.01 μm or more, more preferably 0.02 μm or more, still more preferably 0.03 μm or more, usually 10 μm or less, preferably 9 μm or less, more preferably 8 μm or less. When the volume-based average particle diameter is within this range, volume expansion during charge and discharge is reduced, and good cycle characteristics can be obtained while maintaining the charge-discharge capacity.
[0152] The specific surface area (SA) of the metal particles measured by the BET method is usually 0.5 m 2 / g or more, preferably 1 m 2 / g or more, usually 120 m 2 / g or less, preferably 100 m 2 / g or less. When the specific surface area is within this range, the charge-discharge efficiency and discharge capacity of the secondary battery are high, the insertion and extraction of lithium are fast during high-speed charge and discharge, and the rate characteristics are excellent.
[0153] The negative electrode active material layer preferably contains a binder. Examples of the binder include those having an olefinic unsaturated bond in the molecule. Specifically, styrene-butadiene rubber, styrene·isoprene·styrene rubber, acrylonitrile-butadiene rubber, butadiene rubber, ethylene·propylene·diene copolymer, etc. can be mentioned. By using a binder having an olefinic unsaturated bond in the molecule, the swelling property of the negative electrode active material layer with respect to the electrolyte can be reduced. Among them, styrene-butadiene rubber is preferred due to its ease of availability.
[0154] The negative electrode active material layer of this embodiment is formed by dispersing the composite carbon material and the binder in a dispersion medium to form a slurry, and then applying this to the current collector. Examples of the dispersion medium include organic solvents such as alcohol, and water. The slurry may further contain a conductive agent, such as carbon black, such as acetylene black, ketjen black, or furnace black, or fine powder of Cu, Ni, or an alloy thereof.
[0155] Examples of the current collector include thin metal films such as rolled copper foil, electrolytic copper foil, and stainless steel foil. The thickness of the current collector is preferably 4 μm or more, more preferably 6 μm or more, and is preferably 30 μm or less, more preferably 20 μm or less.
[0156] The drying temperature after coating the slurry on the current collector is preferably 60° C. or higher, more preferably 80° C. or higher, and preferably 200° C. or lower, more preferably 195° C. or lower. The drying atmosphere after coating the slurry on the current collector is preferably air or an inert atmosphere.
[0157] The thickness of the negative electrode active material layer is preferably 5 μm or more, more preferably 20 μm or more, even more preferably 30 μm or more, and preferably 200 μm or less, more preferably 100 μm or less, and even more preferably 75 μm or less. When the thickness of the negative electrode active material layer is within the above range, the negative electrode is highly practical and has sufficient lithium absorption / desorption function for high-density current values.
[0158] (Cathode active material layer) The positive electrode is formed by forming a positive electrode active material layer containing a positive electrode active material and a binder on a current collector.
[0159] Examples of the positive electrode active material include metal chalcogen compounds capable of absorbing and releasing alkali metal cations such as lithium ions during charging and discharging. Examples of the metal chalcogen compounds include transition metal oxides such as vanadium oxide, molybdenum oxide, manganese oxide, chromium oxide, titanium oxide, and tungsten oxide; transition metal sulfides such as vanadium sulfide, molybdenum sulfide, titanium sulfide, and CuS; transition metal phosphorus-sulfur compounds such as NiPS3 and FePS3; transition metal selenium compounds such as VSe2 and NbSe3; and Fe. 0.25 V 0.75 S2, Na 0.1 Examples include composite oxides of transition metals such as CrS2; and composite sulfides of transition metals such as LiCoS2 and LiNiS2.
[0160] Among these, V2O5 and V5O are preferred. 13 , VO2, Cr2O5, MnO2, TiO2, MoV2O8, LiCoO2, LiNiO2, LiMn2O4, TiS2, V2S5, Cr 0.25 V 0.75 S2, Cr 0.5 V 0.5 S2, and more preferably LiCoO2, LiNiO2, LiMn2O4, or a lithium transition metal composite oxide in which part of the transition metal in these materials is replaced with another metal. These positive electrode active materials may be used alone or in combination.
[0161] Examples of binders for binding the positive electrode active material include inorganic compounds such as silicates and water glass; and resins without unsaturated bonds such as Teflon (registered trademark) and polyvinylidene fluoride. Among these, resins without unsaturated bonds are preferred because they can suppress decomposition during the oxidation reaction. The weight-average molecular weight of the resin without unsaturated bonds is usually 10,000 or more, preferably 100,000 or more, and usually 3,000,000 or less, preferably 1,000,000 or less.
[0162] The positive electrode active material layer may contain a conductive agent to improve the conductivity of the electrode. Examples of the conductive agent include carbon powders such as acetylene black, carbon black, and graphite; and metal fibers, powders, and foils.
[0163] The positive electrode is formed in the same manner as in the negative electrode production by forming a slurry of the positive electrode active material and binder in a dispersion medium, applying the slurry onto a current collector, and drying the slurry.
[0164] Examples of the current collector for the positive electrode include aluminum, nickel, and stainless steel (SUS).
[0165] (electrolyte) The electrolyte is preferably a non-aqueous electrolyte, and examples thereof include a non-aqueous electrolyte solution in which a lithium salt is dissolved in a non-aqueous solvent, and a non-aqueous electrolyte solution in the form of a gel, rubber, or solid sheet using an organic polymer compound.
[0166] Examples of non-aqueous solvents used in non-aqueous electrolyte solutions include chain carbonates such as diethyl carbonate, dimethyl carbonate, and ethyl methyl carbonate; cyclic carbonates such as ethylene carbonate, propylene carbonate, and butylene carbonate; chain ethers such as 1,2-dimethoxyethane; cyclic ethers such as tetrahydrofuran, 2-methyltetrahydrofuran, sulfolane, and 1,3-dioxolane; chain esters such as methyl formate, methyl acetate, and methyl propionate; and cyclic esters such as γ-butyrolactone and γ-valerolactone.
[0167] These non-aqueous solvents may be used alone or in combination of two or more. In the case of a mixed solvent, a combination of a mixed solvent containing a cyclic carbonate and a chain carbonate is preferred, and the cyclic carbonate is preferably a mixed solvent of ethylene carbonate and propylene carbonate, since high ionic conductivity can be exhibited even at low temperatures and low-temperature chargeability can be improved.
[0168] Examples of lithium salts used in non-aqueous electrolytes include inorganic lithium salts such as halides such as LiCl and LiBr, perhalogenates such as LiClO4, LiBrO4, and LiClO4, inorganic fluorides such as LiPF6, LiBF4, and LiAsF6, and fluorine-containing organic lithium salts such as perfluoroalkanesulfonates such as LiCF3SO3 and LiC4F9SO3, and perfluoroalkanesulfonimide salts such as Li trifluorosulfonimide ((CF3SO2)2NLi). Among these, LiClO4, LiPF6, and LiBF4 are preferred.
[0169] The lithium salts may be used alone or in combination of two or more. The concentration of the lithium salt in the non-aqueous electrolyte is usually 0.5 mol / L or more and usually 2.0 mol / L or less.
[0170] Examples of the organic polymer compound in the non-aqueous electrolyte solution formed into a gel, rubber, or solid sheet using an organic polymer compound include polyether polymer compounds such as polyethylene oxide and polypropylene oxide; crosslinked polymers of polyether polymer compounds; vinyl alcohol polymer compounds such as polyvinyl alcohol and polyvinyl butyral; insolubilized vinyl alcohol polymer compounds; polyepichlorohydrin; polyphosphazene; polysiloxane; vinyl polymer compounds such as polyvinylpyrrolidone, polyvinylidene carbonate, and polyacrylonitrile; and polymer copolymers such as poly(ω-methoxyoligooxyethylene methacrylate), poly(ω-methoxyoligooxyethylene methacrylate-co-methyl methacrylate), and poly(hexafluoropropylene-vinylidene fluoride).
[0171] The electrolyte may further include a film-forming agent. Examples of the film-forming agent include carbonate compounds such as vinylene carbonate, vinyl ethyl carbonate, and methyl phenyl carbonate; alkene sulfides such as ethylene sulfide and propylene sulfide; sultone compounds such as 1,3-propane sultone and 1,4-butane sultone; and acid anhydrides such as maleic anhydride and succinic anhydride.
[0172] The electrolyte may further contain an overcharge inhibitor such as diphenyl ether or cyclohexyl benzene.
[0173] (separator) A porous separator such as a porous membrane or nonwoven fabric is usually placed between the positive electrode and the negative electrode to prevent short circuits between the electrodes. In this case, the electrolyte is impregnated into the porous separator. Examples of separator materials include polyolefins such as polyethylene and polypropylene; and polyethersulfone. Polyolefins are preferred.
[0174] (Secondary battery) The form of the secondary battery of this embodiment is not particularly limited, and examples thereof include a cylindrical type in which a sheet electrode and a separator are spirally wound; a cylindrical type with an inside-out structure in which a pellet electrode and a separator are combined; and a coin type in which a pellet electrode and a separator are stacked. By housing these types of batteries in an exterior case, they can be used in any shape, such as coin, cylindrical, or rectangular.
[0175] The procedure for assembling the secondary battery of this embodiment is not particularly limited, and may be an appropriate procedure depending on the structure of the battery. For example, a method may be used in which a negative electrode is placed on an outer case, an electrolyte and a separator are provided thereon, a positive electrode is placed on top of the negative electrode so as to face the negative electrode, and the battery is constructed by crimping together with a gasket and a sealing plate.
[0176] When manufacturing the negative electrode by forming the negative electrode active material layer described above, there are no particular restrictions on the method and the selection of other materials. Also, when manufacturing a secondary battery using this negative electrode, there are no particular restrictions on the method and the selection of members necessary for the battery configuration such as the positive electrode and electrolyte.
[0177] A secondary battery using a spherical carbon material as a negative electrode material, which contains natural graphite and uses the carbon material of this embodiment satisfying the above formulas (1) and (2) as a raw material, can suppress battery swelling for the reasons described above. Therefore, the negative electrode material using the carbon material of this embodiment can be suitably used for secondary batteries typified by lithium ion secondary batteries.
Examples
[0178] Next, specific embodiments of the present invention will be described in more detail with reference to examples. The present invention is not limited by these examples.
[0179] <d50·d90·d10> The d50, d90, and d10 of the carbon materials obtained in Examples 1 to 6 and Comparative Examples 1 to 4, and the composite carbon materials obtained in Examples 7 to 9 and Comparative Examples 5 to 6 were calculated from the volume-based particle size distribution measured by the laser diffraction method. Specifically, 0.01 g of a carbon material or a composite carbon material was suspended in about 150 mL of a 0.1 volume % aqueous solution of polyoxyethylene (20) sorbitan monolaurate (Tween 20 (registered trademark)), which is a surfactant. This was introduced as a measurement sample into a laser diffraction / scattering type particle size distribution measuring device ("LA-920" manufactured by HORIBA), and after irradiating the measurement sample with ultrasonic waves at an intensity of 4 for 1 minute, the volume-based d50, d90, and d10 were calculated from the volume-based particle size distribution measured by the measuring device.
[0180] [[ID=The specific surface areas (SA) of the carbon materials obtained in Examples 1 to 6 and Comparative Examples 1 to 4, and the composite carbon materials obtained in Examples 7 to 9 and Comparative Examples 5 and 6, measured by the BET method, were measured using a specific surface area measuring device (Shimadzu Corporation, "Gemini 2360") by pre-drying the measurement samples at 350°C for 15 minutes under a nitrogen flow, cooling them to the temperature of liquid nitrogen, and then measuring them by the nitrogen adsorption BET 6-point method using a gas flow method under conditions where the relative pressure of nitrogen to atmospheric pressure was 0.05 to 0.31.
[0181] <Tap density> Using a powder tester ("PT-S" manufactured by Hosokawa Micron), the carbon materials obtained in Examples 1 to 6 and Comparative Examples 1 to 4, and the composite carbon materials obtained in Examples 7 to 9 and Comparative Examples 5 to 6 were each measured using a powder tester with a diameter of 5 cm and a volume capacity of 100 cm. 3 The sample was dropped through a sieve with 1.7 mm openings into a cylindrical tapping cell, filling the cell to capacity. The sample was then tapped 500 times with a stroke length of 18 mm, and the density calculated from the volume and mass of the sample at that time was taken as the tap density.
[0182] <d 002 > The carbon materials obtained in Examples 1 to 6 and Comparative Examples 1 to 4 were analyzed by X-ray diffraction using the Gakushin method. 002 asked for. Specifically, the carbon material was mixed with approximately 15% by mass of X-ray standard high-purity silicon powder, and the resulting mixture was used as a measurement sample. The CuKα ray monochromated by a graphite monochromator was used as the radiation source. The wide-angle X-ray diffraction curve was measured using the reflection diffractometer method, and the interplanar spacing (d 002 ) was calculated.
[0183] <Average particle thickness> The average thickness of the particles of the carbon materials obtained in Examples 1 to 6 and Comparative Examples 1 to 4 was calculated by observing the cross section of the particles using a scanning electron microscope (SEM). Specifically, the length of 30 randomly selected particles in the cross-sectional image observed using a scanning electron microscope (SEM) in the direction perpendicular to the plane (basal plane) was measured, and the average thickness of 20 particles, excluding 5 particles on the larger and 5 particles on the smaller sides, was calculated as the average thickness of the particles. Note that an average thickness of "<1 μm" means that the average thickness is less than 1 μm and 0.01 μm or more.
[0184] <Circularity> The circularity of the carbon materials obtained in Examples 1 to 6 and Comparative Examples 1 to 4, and the composite carbon materials obtained in Examples 7 to 9 and Comparative Examples 5 and 6 was determined by measuring the particle size distribution based on the circle-equivalent diameter using a flow-type particle image analyzer and calculating the average circularity. The circularity is defined by the following formula (3): [Circularity] = [Perimeter of a circle with the same area as the projected shape of a particle] / [Actual perimeter of the projected shape of a particle] (3) In measuring this circularity, ion-exchanged water was used as the dispersion medium, and polyoxyethylene (20) monolaurate was used as the surfactant. The equivalent circle diameter is the diameter of a circle (equivalent circle) having the same projected area as the photographed particle image, and circularity is the ratio of the perimeter of the equivalent circle as the numerator to the perimeter of the photographed particle projected image as the denominator. The circularities of particles with measured equivalent diameters in the range of 3 μm to 40 μm were averaged to obtain the circularity.
[0185] <Swelling> To 60.00±0.06 g of the composite carbon materials obtained in Examples 7 to 9 and Comparative Examples 5 and 6, 60.60±0.12 g (0.6 g in terms of solid content) of a 1 mass % aqueous solution of carboxymethylcellulose sodium salt and 1.237±0.012 g (0.6 g in terms of solid content) of an aqueous dispersion of styrene-butadiene rubber with a weight-average molecular weight of 270,000 were added, and the mixture was stirred for 5 minutes in a Keyence hybrid mixer and degassed for 30 seconds to obtain a slurry. This slurry was applied to a 10 μm thick copper foil current collector so that the solid content was 10.00±0.2 mg / cm 2The coating was applied to a width of 5 cm using a small die coater so that the coating would adhere, and then roll pressed using a roller with a diameter of 25 cm to make the density of the negative electrode active material layer 1.50±0.03 g / cm 3 The thickness of the negative electrode sheet was adjusted to be H. The resulting negative electrode sheet, an NMC (nickel / manganese / cobalt) positive electrode sheet, and a polyethylene separator were stacked in this order: negative electrode, separator, positive electrode. The resulting battery element was wrapped in an aluminum laminate film, and an electrolyte prepared by dissolving LiPF6 in a mixed solvent of ethylene carbonate (EC) and dimethyl carbonate (DMC) (volume ratio = 3:7) to a concentration of 1 mol / L was injected. The battery was then vacuum-sealed to produce a sheet-shaped nonaqueous secondary battery.
[0186] The fabricated, uncharged batteries were constrained under a confining pressure of 80 kPa in a 25°C atmosphere and placed on a horizontal surface. A laser displacement meter (Keyence CL-3000) was used to irradiate a laser from the top of the restraining jig to measure the thickness change of the battery during charge and discharge. The batteries were initially charged and discharged for two cycles at a voltage range of 4.1 V to 3.0 V and a current value of 0.1 C (the current value required to discharge the rated capacity in one hour based on the hourly rate discharge capacity is defined as 1 C), followed by two cycles at a voltage range of 4.2 V to 3.0 V and a current value of 0.2 C. Following the initial charge / discharge, 25 cycles were repeated at a voltage range of 4.2 V to 3.0 V and a current value of 0.5 C, and the change in battery thickness during the cycles was measured. The change in thickness in the discharged state after the initial charge / discharge was defined as d(0), and the change in thickness in the discharged state after 25 cycles was defined as d(25), and the battery swelling δ was calculated using the following formula (5). δ(%) = [d(25) - d(0)] / H × 100 (5) (H is the thickness of the negative electrode sheet after roll pressing and before pouring.)
[0187] Example 1 d50=100μm, thickness<10μm, d 002Scaly natural graphite with a particle size of 0.336 nm and a Raman index of 0.17 was fed into a dry swirling mill equipped with a milling blade and an airflow classification mechanism inside the milling chamber. The milling blade rotation speed was adjusted to a peripheral speed of 126 m / s and the suction blower flow rate at the mill's outlet was adjusted to 48 m / s. The particles were circulated and milled in an air atmosphere through collisions, shearing, and friction between the particles, between the particles and the milling blades, and between the particles and the milling chamber wall. The milled powder was collected using a bag filter to prevent fine powder from being removed, yielding a scaly carbon material. The physical properties of the resulting carbon material are shown in Table 1.
[0188] Example 2 A carbon material was obtained in the same manner as in Example 1, except that the flow rate of the suction blower of the dry swirl-flow mill was set to 44 m / s. The physical properties of the obtained carbon material are shown in Table 1.
[0189] Example 3 A carbon material was obtained in the same manner as in Example 1, except that the flow rate of the suction blower of the dry swirl flow mill was set to 40 m / s. The physical properties of the obtained carbon material are shown in Table 1.
[0190] Example 4 A carbon material was obtained in the same manner as in Example 1, except that the flow rate of the suction blower of the dry swirl flow mill was set to 35 m / s. The physical properties of the obtained carbon material are shown in Table 1.
[0191] Example 5 A carbon material was obtained in the same manner as in Example 1, except that the flow rate of the suction blower of the dry swirl-flow mill was set to 31 m / s. The physical properties of the obtained carbon material are shown in Table 1.
[0192] Example 6 A carbon material was obtained in the same manner as in Example 1, except that the flow rate of the suction blower of the dry swirl-flow mill was set to 26 m / s. The physical properties of the obtained carbon material are shown in Table 1.
[0193] (Comparative Example 1) d50=100μm, thickness<10μm, d 002Scaly natural graphite with a particle size of 0.336 nm and a Raman index of 0.17 was fed into a dry swirling mill equipped with a milling blade and an airflow classification mechanism inside the milling chamber. The milling blade rotation speed was adjusted to a peripheral speed of 115 m / s and the suction blower flow rate at the mill outlet was adjusted to 36 m / s. The particles were circulated and ground in an air atmosphere through collisions, shearing, and friction between the particles, between the particles and the milling blades, and between the particles and the milling chamber wall. The ground powder was collected using a cyclone so that the fine powder could be classified, yielding a carbon material. The physical properties of the resulting carbon material are shown in Table 1.
[0194] (Comparative Example 2) A carbon material was obtained in the same manner as in Comparative Example 1, except that the flow rate of the suction blower of the dry swirl-flow mill was set to 34 m / s. The physical properties of the obtained carbon material are shown in Table 1.
[0195] (Comparative Example 3) UF8 manufactured by AMG Mining was used as the carbon material. The physical properties of the carbon material used are shown in Table 1.
[0196] Comparative Example 4 d50=100μm, thickness<10μm, d 002 The natural flake graphite with a Raman value of 0.17 and a scaly surface roughness of 3.36 Å was pulverized using a collision plate jet mill to obtain a carbon material. The physical properties of the obtained carbon material are shown in Table 1.
[0197] Example 7 100 parts by mass of the carbon material obtained in Example 3 was mixed with 12 parts by mass of liquid oil as a granulating agent, and then subjected to a spheroidizing treatment. The liquid oil used as a granulating agent was then removed by further heat treatment, thereby obtaining spherical carbon materials. The obtained spherical carbon material was packed into a rubber container, sealed, and subjected to isostatic pressure treatment, after which the obtained molded product was crushed and classified. The resulting powder was mixed with pitch containing 0.02% ash by mass, 20 ppm metal impurities, and 1% quinoline insoluble matter as a carbonaceous material precursor. The pressure inside the furnace was reduced to below 10 Torr, then returned to atmospheric pressure with nitrogen. Nitrogen was then circulated to reduce the oxygen concentration inside the furnace to less than 100 ppm, and the mixture was then heated in an inert gas atmosphere at 700°C for 1 hour, followed by another heat treatment at 1000°C for 1 hour. The resulting fired product was crushed and classified to obtain a composite carbonaceous material containing amorphous carbonaceous material on the surface of spherical carbonaceous material. The firing yield confirmed that the mass ratio of the spherical carbonaceous material to the amorphous carbonaceous material (spherical carbonaceous material:amorphous carbonaceous material) in the resulting composite carbonaceous material was 1:0.08 (7.4% carbonaceous material content in the composite carbonaceous material). The physical properties of the resulting composite carbonaceous material are shown in Table 2.
[0198] Example 8 A composite carbon material was obtained in the same manner as in Example 7, except that the carbon material was the one obtained in Example 4. The physical properties of the obtained composite carbon material are shown in Table 2.
[0199] Example 9 A composite carbon material was obtained in the same manner as in Example 7, except that the carbon material was the one obtained in Example 5. The physical properties of the obtained composite carbon material are shown in Table 2.
[0200] (Comparative Example 5) A composite carbon material was obtained in the same manner as in Example 7, except that the carbon material was the one obtained in Comparative Example 1. The physical properties of the obtained composite carbon material are shown in Table 2.
[0201] (Comparative Example 6) A composite carbon material was obtained in the same manner as in Example 7, except that the carbon material was the one obtained in Comparative Example 2. Table 2 shows the physical properties of the obtained composite carbon material.
[0202] (Comparative Example 7) Spheroidization was attempted in the same manner as in Example 7, except that the carbon material was that obtained in Comparative Example 4, but a spherical carbon material could not be obtained due to the low tap density.
[0203] [Table 1]
[0204] [Table 2]
[0205] As can be seen from Tables 1 and 2, the composite carbon materials of Examples 7 to 9, which were obtained using carbon materials containing natural graphite and satisfying the above formulas (1) and (2), were able to suppress battery swelling. On the other hand, the composite carbon materials of Comparative Examples 5 and 6, which were obtained using carbon materials that did not satisfy the above formula (1), were unable to suppress battery swelling. This is thought to be because in the carbon material of this embodiment, small particles fit into the gaps formed between larger particles, allowing for the granulation of dense particles, and this densification ensures conductive paths, thereby suppressing battery swelling. Comparative Example 7 is an example in which a carbon material with a low tap density was used, but due to the low tap density, spherical carbon material could not be produced.
[0206] Although the present invention has been described in detail with reference to specific embodiments, it will be apparent to those skilled in the art that various modifications can be made without departing from the spirit and scope of the invention. This application is based on Japanese Patent Application No. 2021-148060, filed on September 10, 2021, the entire contents of which are incorporated by reference. [Industrial Applicability]
[0207] A secondary battery using a carbon material containing natural graphite and satisfying the above formulas (1) and (2) as a raw material for the negative electrode can suppress battery swelling. Therefore, the carbon material of this embodiment can be suitably used as a negative electrode material for secondary batteries, such as lithium-ion secondary batteries.
Claims
1. A carbon material containing natural graphite and satisfying the following formulas (1) and (2): y≧0.23x+3.1 (1) z≧0.43 (2) (x is the d50 (μm) of the carbon material, y is the d90 / d10 of the carbon material, and z is the tap density (g / cm 3 )
2. 2. The carbon material according to claim 1, wherein d50 is 3.0 μm or more.
3. The carbon material according to claim 1, wherein d50 is 20.0 μm or less.
4. SA is 20.0 m 2 The carbon material according to claim 1, wherein the carbon content is 1 / g or less.
5. The carbon material according to claim 1, wherein the shape of the carbon material is selected from the group consisting of flakes, scales, and chunks.
6. 2. The carbon material according to claim 1, having an average thickness of 3 μm or less.
7. d 002 2. The carbon material of claim 1, wherein the value is 0.340 nm or less. (d 002 The value is the interlayer distance of the lattice plane (002 plane) determined by X-ray diffraction according to the Gakushin method.
8. The carbon material according to claim 1, which is used as a negative electrode material for a secondary battery.
9. A method for producing a spherical carbon material, comprising a step of spheroidizing the carbon material according to any one of claims 1 to 8.
10. The method for producing a spherical carbon material according to claim 9, wherein the spherical carbon material is used as a negative electrode material for a secondary battery.
11. A method for producing a composite carbon material, comprising the step of compounding the spherical carbon material obtained by the method according to claim 9 with a carbonaceous material precursor.
12. The method for producing a carbon material according to any one of claims 1 to 8, comprising a step of pulverizing a raw carbon material.
13. A method for manufacturing a secondary battery including a positive electrode, a negative electrode, and an electrolyte, comprising: A method for producing a secondary battery, comprising the step of forming, on a current collector, a negative electrode active material layer containing the composite carbon material obtained by the method for producing a composite carbon material according to claim 11, to obtain a negative electrode.
Citation Information
Patent Citations
Carbonaceous material and nonaqueous secondary battery
JP2016189319A
Carbon material for nonaqueous secondary battery, and lithium ion secondary battery
JP2017126425A
Negative electrode material for nonaqueous secondary batteries, negative electrode for nonaqueous secondary batteries, and nonaqueous secondary battery
WO2018097212A1