Method for producing electrode active material for non-aqueous secondary battery

By contacting graphene dispersions with a dispersibility index of 0.25 or more with alkali metal-transition metal composite oxide particles, the method enhances electrical conductivity and durability of electrode active materials in non-aqueous secondary batteries, addressing the conductivity and durability challenges of existing materials.

JP7741638B2Active Publication Date: 2025-09-18NICHIA CORP
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Patent Information

Application Number
JP2020568608
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-02-01
Filing Date
2020-01-30
Publication Date
2025-09-18
Estimated Expiration
2040-01-30

AI Technical Summary

Technical Problem

Existing electrode active materials for non-aqueous secondary batteries face challenges in achieving sufficient electrical conductivity and durability, particularly when using commercially available materials, which often require conductive additives like acetylene black but still fall short in performance.

Method used

A method involving the production of electrode active materials by contacting graphene dispersions with a dispersibility index of 0.25 or more with alkali metal-transition metal composite oxide particles, reducing uneven adhesion and enhancing electrical conductivity and durability.

Benefits of technology

The method results in electrode active materials that exhibit improved durability and output characteristics for non-aqueous secondary batteries by minimizing graphene unevenness and promoting better electrical conductivity.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides a method for producing an electrode active material for a non-aqueous secondary battery, which can be used to produce a non-aqueous secondary battery with excellent durability and output characteristics. The method for producing an electrode active material for a non-aqueous secondary battery includes contacting a dispersion containing graphene and a dispersion medium with alkali metal-transition metal composite oxide particles, and the dispersion has a dispersibility index of 0.25 or more.
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Description

[Technical Field]

[0001] The present disclosure relates to a method for producing an electrode active material for a non-aqueous secondary battery. [Background technology]

[0002] High output characteristics are required for non-aqueous electrolyte secondary batteries used in large power equipment such as electric vehicles. To achieve high output characteristics, the electrical conductivity of the electrode active material layer is important, but it is sometimes difficult to obtain sufficient electrical conductivity with commercially available electrode active materials. Attempts to improve electrical conductivity have generally been made by mixing a conductive additive such as acetylene black into the electrode active material layer in addition to the electrode active material, but there is still room for improvement.

[0003] In relation to the above, positive electrode active material-graphene composite particles have been proposed, which are secondary particles obtained by mixing a nanoparticle-sized active material with graphene oxide and then reducing the graphene oxide (see, for example, International Publication No. 2014 / 115670). Summary of the Invention [Problem to be solved by the invention]

[0004] An object of one aspect of the present disclosure is to provide a method for producing an electrode active material that can be used to construct a nonaqueous secondary battery that is excellent in durability and output characteristics. [Means for solving the problem]

[0005] Specific means for solving the above problems are as follows, and the present invention includes the following aspects: A first aspect is a method for producing an electrode active material for a nonaqueous secondary battery, which includes contacting a dispersion containing graphene and a dispersion medium with alkali metal-transition metal composite oxide particles, and the dispersion has a dispersibility index of 0.25 or more. [Effects of the Invention]

[0006] According to the first aspect of the present disclosure, it is possible to provide a method for producing an electrode active material that can be used to construct a nonaqueous secondary battery that is excellent in durability and output characteristics. [Brief explanation of the drawings]

[0007] [Figure 1] 1 is an example of a scanning electron microscope (SEM) image of graphene contained in dispersion A. [Figure 2] 1 is an example of an SEM image of graphene contained in dispersion B. [Figure 3] 1 is an example of an SEM image of graphene contained in dispersion C. [Figure 4] 10 is an example of the results of X-ray photoelectron spectroscopy (XPS) of graphene contained in dispersion C. [Figure 5] This is an example of an SEM image of an alkali metal-transition metal composite oxide. [Figure 6] This is an example of an SEM image of an alkali metal-transition metal composite oxide. [Figure 7] 1 is an example of an SEM image of alkali metal-transition metal composite oxide particles to which graphene is attached in Example 1. [Figure 8] 1 is an example of an SEM image of alkali metal-transition metal composite oxide particles to which graphene is attached in Example 2. [Figure 9] 1 is an example of an SEM image of alkali metal-transition metal composite oxide particles to which graphene is attached in Comparative Example 1. [Figure 10] 10 is an example of an SEM image of alkali metal-transition metal composite oxide particles to which graphene is attached in Example 3. [Figure 11] 10 is an example of an SEM image of alkali metal-transition metal composite oxide particles to which graphene is attached in Example 4. [Figure 12] 1 is an example of an SEM image of alkali metal-transition metal composite oxide particles to which graphene is attached in Comparative Example 2. DETAILED DESCRIPTION OF THE INVENTION

[0008] In this specification, the term "process" refers not only to an independent process, but also to a process that cannot be clearly distinguished from other processes, as long as the intended purpose of the process is achieved. Furthermore, the content of each component in a composition refers to the total amount of the multiple substances present in the composition, unless otherwise specified, when multiple substances corresponding to each component are present in the composition. Hereinafter, embodiments of the present invention will be described in detail. However, the embodiments described below are intended to exemplify methods for producing electrode active materials for non-aqueous secondary batteries, etc., in order to embody the technical concept of the present invention, and the present invention is not limited to the methods for producing electrode active materials for non-aqueous secondary batteries, etc., described below.

[0009] Method for producing electrode active material for non-aqueous secondary battery A method for producing an electrode active material for a non-aqueous secondary battery includes a contacting step of contacting a graphene dispersion containing graphene and a dispersion medium with alkali metal-transition metal composite oxide particles (hereinafter also simply referred to as "composite oxide particles"), and the dispersion has a dispersibility index of 0.25 or more.

[0010] Dispersions containing graphene and a dispersion medium with a dispersibility index of 0.25 or greater have good dispersibility. Contacting such dispersions with alkali metal-transition metal composite oxide particles is believed to reduce uneven adhesion of graphene to the alkali metal-transition metal composite oxide particles. This is believed to suppress metal elution from the alkali metal-transition metal composite oxide during charge and discharge when forming a nonaqueous secondary battery, thereby improving the durability of the nonaqueous secondary battery. Furthermore, reduced uneven adhesion of graphene is believed to improve the electrical conductivity of the electrode active material and improve the output characteristics of the nonaqueous secondary battery.

[0011] The dispersibility index is an index used to evaluate the dispersibility of a dispersion and is measured, for example, as follows. A graphene dispersion to be measured is prepared using a desired dispersion medium so that the graphene concentration is 3 mg / mL. The graphene dispersion is treated with ultrasound (frequency: 40 kHz, output: 110 W, 20°C) for 10 minutes to obtain a primary dispersion. The primary dispersion is immediately (within 1 minute) diluted 200-fold to obtain a secondary dispersion with a graphene concentration of 0.015 mg / mL. The secondary dispersion is treated with ultrasound for 10 minutes to obtain a measurement dispersion. The absorbance of this measurement dispersion is measured at 700 nm using the dispersion medium as a reference within 1 minute of obtaining the measurement dispersion, and the obtained absorbance is defined as the dispersibility index. In other words, the dispersibility index is a parameter corresponding to the absorbance of a graphene dispersion of a predetermined concentration. The dispersibility index of the dispersion may be, for example, 0.25 or more, preferably 0.35 or more, more preferably 0.4 or more, and particularly preferably 0.45 or more. The upper limit of the dispersibility index may be, for example, 1 or less, and preferably less than 1 or 0.95 or less. The dispersion medium for measuring the dispersibility index may be a desired organic solvent, and for example, N-methyl-2-pyrrolidone (hereinafter sometimes abbreviated as NMP) is used.

[0012] When a dispersion containing graphene and a dispersion medium has good dispersion stability, uneven adhesion of graphene can be further reduced. The dispersion stability of a graphene dispersion can be evaluated, for example, by the dispersion stability index, and can be measured, for example, as follows. A graphene dispersion to be measured is prepared using a desired dispersion medium so that the graphene concentration is 3 mg / mL. The graphene dispersion is treated with ultrasound (frequency: 40 kHz, output: 110 W, 20°C) for 10 minutes to obtain a primary dispersion. The primary dispersion is centrifuged at 7000 rpm (6300 G) for 5 minutes, and the supernatant is collected and diluted 200-fold to obtain a secondary dispersion. The secondary dispersion is treated with ultrasound (frequency: 40 kHz, output: 110 W, 20°C) for 10 minutes to obtain a measurement dispersion. The absorbance of the obtained measurement dispersion at 700 nm is measured using the dispersion medium as a reference within 1 minute after obtaining the measurement dispersion. The obtained absorbance is used as the dispersion stability index. That is, the dispersion stability index is a parameter corresponding to the absorbance corresponding to the concentration of stably dispersible graphene. The dispersion stability index of the graphene dispersion may be, for example, 0.05 or more, and preferably 0.1 or more. The upper limit of the dispersion stability index may be, for example, 1 or less, and preferably less than 1 or 0.95 or less. A desired organic solvent may be selected as the dispersion medium for measuring the dispersion stability index, and for example, NMP is used.

[0013] Examples of graphene contained in the dispersion herein include graphene, graphite, graphene oxide, reduced graphene oxide, and intercalation compounds such as expanded graphite, and graphene precursors such as ABC-stacked and ABA-stacked graphite. Graphene may be in the form of a sheet or flake, or may be in the form of nanoparticles, flakes, or other thin particles. While graphene generally refers to a sheet-like substance (single-layer graphene) with a thickness of one atom, graphene in this specification also encompasses not only single-layer graphene but also sheet-like substances (graphite) in which multiple single-layer graphenes are stacked by intermolecular forces. The number of stacked layers is up to about 100.

[0014] The graphene contained in the dispersion may be selected from commercially available products or may be produced by known methods. For example, graphene can be produced by epitaxial growth, reduction of graphite oxide, or generation from a metal-carbon melt. Graphene oxide can also be prepared by known methods such as the modified Hummers method. Reduced graphene can also be prepared by heat-treating graphene oxide.

[0015] The graphene concentration in the dispersion may be, for example, 0.1% by mass or more, preferably 1% by mass or more, and more preferably 3% by mass or more. The graphene concentration may be, for example, 10% by mass or less, preferably 5% by mass or less, and more preferably 4% by mass or less. When the graphene concentration in the dispersion is within the above range, the viscosity of the dispersion can be adjusted to a range suitable for contacting the alkali metal-transition metal composite oxide particles with the dispersion.

[0016] The average diameter of the graphene contained in the dispersion may be, for example, 1000 nm or less, preferably 900 nm or less, and more preferably 800 nm or less. The average diameter may be, for example, 100 nm or more, and preferably 300 nm or more. When the average diameter of the graphene contained in the dispersion is within the above range, uneven adhesion of the graphene to the alkali metal-transition metal composite oxide particles can be further reduced. The average diameter of graphene is determined as the volume-average diameter, which is the particle size corresponding to the cumulative 50% from the smallest diameter side in a volume-based cumulative particle size distribution measured under wet conditions using a dynamic light scattering particle size distribution analyzer.

[0017] The graphene contained in the dispersion may contain oxygen in its composition. When the graphene contains oxygen in its composition, the oxygen composition may be, for example, 10 atomic % or less, preferably 7 atomic % or less, and more preferably 3 atomic % or less. The oxygen composition may be, for example, 0.1 atomic % or more, and preferably 0.5 atomic % or more. When the oxygen composition of the graphene contained in the dispersion is within the above range, sufficient electrical conductivity can be imparted and reaction between the oxygen contained in the graphene and the electrolyte solution during charge and discharge can be suppressed. The oxygen composition of the graphene is measured using an X-ray photoelectron spectroscopy (XPS).

[0018] The specific surface area of ​​the graphene contained in the dispersion is, for example, 20 m 2 / g or more 1000m 2 / g or less, preferably 100m 2 / g or more 700m 2 / g or less. When the specific surface area of ​​the graphene contained in the dispersion is within the above range, uneven adhesion of the graphene to the alkali metal-transition metal composite oxide particles can be further reduced. The specific surface area is measured, for example, by the BET method using nitrogen gas.

[0019] The dispersion medium constituting the graphene dispersion may be, for example, an organic solvent, etc. Specific examples of the organic solvent include low-polarity aromatic solvents such as orthodichlorobenzene (hereinafter sometimes abbreviated as ODCB), 1,2,4-trichlorobenzene, and mesitylene; ester solvents such as butyl butyrate; ketone solvents such as diisopropyl ketone; nitrile solvents such as acetonitrile and isobutyronitrile; carbonate solvents such as ethylene carbonate and propylene carbonate; and amide solvents such as NMP.

[0020] A solvent having a donor number of 30 or less can be used as the dispersion medium for the graphene dispersion. From the viewpoint of the solubility of the binder described below, the donor number is preferably 2.5 or more, more preferably 25 or more, and preferably 29 or less. The lower limit of the donor number of the solvent is, for example, preferably 3 or more, or 25 or more. Here, the donor number of the solvent is an index of the electron donating property of the solvent molecule, and is described, for example, in "Donors and Acceptors" by V. Gutmann, Academic Press Center (1900). Examples of solvents having a donor number of 30 or less include NMP (27.3), propylene carbonate (15.1), isobutyronitrile (15.4), and ODCB (3.0). Here, the donor number is shown in parentheses. Among these, from the viewpoint of the solubility of the binder described below, NMP is preferred as a dispersion medium having a donor number of 30 or less.

[0021] The dispersion medium constituting the graphene dispersion may have a surface tension of, for example, 50 mN / m or less, preferably 45 mN / m or less, at 25°C. The surface tension of the solvent may be, for example, 35 mN / m or more, preferably 40 mN / m or more. When the surface tension of the solvent is within the above range, graphene tends to be dispersed more finely. Specific examples include ODCB and NMP. Among these, NMP is preferred as a dispersion medium having a surface tension of 50 mN / m or less at 25°C, from the viewpoint of the solubility of the binder described below.

[0022] The graphene dispersion can be prepared by dispersing raw graphene in a solvent. The graphene dispersion can be performed, for example, by mixing the raw graphene with a solvent. A commonly used mixing method can be used for mixing. Specific examples include a mixing method using a stirring device equipped with a stirring blade or a magnetic stirrer, and a mixing method using a ball mill. For example, when a ball mill is used, the mixing time may be, for example, 1 hour to 36 hours. The temperature during mixing may be, for example, 20°C or higher and 50°C or lower.

[0023] Energy may be applied to the graphene dispersion process as needed. Examples of energy application methods include microwave irradiation, heat treatment, ultrasonic treatment, submerged plasma treatment, and grinding and shearing treatments using a ball mill, jet mill, pressure homogenizer, and supercritical treatment. Among these, methods that exert gentle shearing forces, such as a ball mill using nylon balls, are preferred. Furthermore, when applying energy, ionic liquids, anionic polymers, and the like may be present. Examples of ionic liquids include imidazolium-based ionic liquids (see, for example, NATURE CHEMISTRY, 7, 730-736 (2015)). Examples of anionic polymers include poly(meth)acrylate salts (conjugate bases of poly(meth)acrylic acid), poly(styrenesulfonate) salts (conjugate bases of PSS), and Nafion®. When applying energy, the duration of energy application can be appropriately selected depending on the purpose and method of application.

[0024] Examples of raw graphene include graphene, graphite, graphene oxide, reduced graphene oxide, and intercalation compounds such as expanded graphite, and graphene precursors such as ABC-layered graphite. Graphene may be in the form of a sheet or flake, or may be in the form of nanoparticles, flake particles, or other thin particles. While graphene generally refers to a sheet-like substance (single-layer graphene) with a thickness of one atom, graphene in this specification also encompasses not only single-layer graphene but also sheet-like substances (graphite) in which multiple single-layer graphenes are stacked by intermolecular forces. The number of stacked layers is up to about 100.

[0025] As the raw graphene, for example, graphene having an average diameter exceeding 1000 nm can be used. The average diameter of the raw graphene may be preferably 2 μm or more, and may be, for example, 100 μm or less, preferably 50 μm or less. When the average diameter of the raw graphene is within the above range, the graphene tends to be dispersed more finely. The average diameter of the raw graphene is determined as the volume average diameter, which is the particle size corresponding to the cumulative 50% from the smallest diameter side in the volume-based cumulative particle size distribution measured under wet conditions using a dynamic light scattering particle size distribution analyzer.

[0026] The raw graphene may contain oxygen in its composition. When the raw graphene contains oxygen in its composition, the oxygen composition may be, for example, 10 atomic % or less, preferably 7 atomic % or less, and more preferably 3 atomic % or less. The oxygen composition of the graphene may be, for example, 0.1 atomic % or more, and preferably 0.5 atomic % or more. When the oxygen composition of the raw graphene and the oxygen composition of the graphene contained in the dispersion are within the above ranges, sufficient electrical conductivity can be imparted, and the reaction between the oxygen contained in the graphene and the electrolyte solution during charge and discharge can be suppressed.

[0027] The specific surface area of ​​raw graphene is, for example, 20 m 2 / g or more 1000m 2 / g or less, preferably 100m 2 / g or more 700m 2 / g or less. When the specific surface area of ​​the raw graphene is within the above range, the graphene tends to be dispersed more finely. The specific surface area is measured, for example, by the BET method using nitrogen gas.

[0028] The raw graphene may be selected from commercially available products or may be produced by known methods. For example, graphene can be produced by epitaxial growth, reduction of graphite oxide, or generation from a metal-carbon melt. Graphene oxide can also be prepared by known methods such as the modified Hummers method. Reduced graphene can also be prepared by heat-treating graphene oxide.

[0029] As a solvent for dispersing graphene, for example, a solvent with a donor number of 30 or less can be used. From the viewpoint of the solubility of the binder described below, the donor number is preferably 2.5 or more, more preferably 25 or more, and also preferably 29 or less. Here, the donor number of a solvent is an index of the electron donating property of the solvent molecule, and is described, for example, in "Donors and Acceptors" by V. Gutmann, Academic Press Center (1900). Examples of solvents with a donor number of 30 or less include NMP (27.3), propylene carbonate (15.1), isobutyronitrile (15.4), and ODCB (3.0). Here, the donor number is shown in parentheses. Among these, NMP is preferred as a solvent with a donor number of 30 or less from the viewpoint of the solubility of the binder described below.

[0030] The solvent used to disperse graphene may have a surface tension of 50 mN / m or less, preferably 45 mN / m or less, at 25°C. The surface tension of the solvent may be, for example, 35 mN / m or more, preferably 40 mN / m or more. When the surface tension of the solvent is within the above range, graphene tends to be dispersed more finely. Specific examples include ODCB and NMP. Among these, NMP is preferred as a solvent having a surface tension of 50 mN / m or less at 25°C, from the viewpoint of the solubility of the binder described below.

[0031] The graphene may be dispersed using a dispersion aid such as a dispersant or an oxidizing agent. Examples of the dispersant include commonly used dispersants such as anionic dispersants, cationic dispersants, and nonionic dispersants. Examples of the oxidizing agent include a one-electron oxidizing agent having a predetermined oxidation-reduction potential.

[0032] The redox potential of the one-electron oxidizing agent may be, for example, 0.2 V or more and 1.9 V or less. From the viewpoint of reactivity with solvents having 30 or less donors, as described below, it is preferably 0.3 V or more, more preferably 0.4 V or more. The redox potential of the one-electron oxidizing agent may be preferably less than 1.9 V, more preferably 1.2 V or less, and even more preferably 0.6 V or less. The one-electron oxidizing agent may be, for example, a peroxide such as hydrogen peroxide, or a salt compound composed of a cation and an anion. Examples of the cation include, from the viewpoint of redox potential, a carbocation, an aminium cation, and the like. The carbocation may be, for example, a triarylmethyl cation, and the aminium cation may be, for example, a triarylaminium radical cation. The three aryl groups constituting the triaryl cation or triarylaminium radical cation may be the same or different. Examples of the aryl group include aromatic hydrocarbon groups having 6 to 20 carbon atoms, preferably 6 to 10 carbon atoms. The aryl group may have one or more substituents, and examples of the substituent include an alkyl group having 1 to 12 carbon atoms, an alkenyl group having 1 to 12 carbon atoms, an alkyloxy group having 1 to 12 carbon atoms, a halogen atom, etc. Two or more substituents on the aryl group may be linked to each other to form a fused ring structure.

[0033] Specific examples of carbocations include triarylmethyl cations such as triphenylmethyl cation and tris(4-bromophenyl)methyl cation. Specific examples of aminium cations include triarylaminium radical cations such as triphenylaminium radical cation, tris(4-bromophenyl)aminium radical cation and tris(2,4-dibromophenyl)aminium radical cation. Among these, triarylmethyl cations are preferred from the viewpoint of solubility in solvents having a predetermined donor number, as described below.

[0034] From the viewpoint of the stability of the modified graphene, an anion constituting the one-electron oxidant may be, for example, a fluorine-based anion containing a fluorine atom. Examples of the fluorine-based anion include tetrafluoroborate (BF4 - ), hexafluorophosphate (PF6 - ), hexafluoroantimonate (SbF6 - ), bis(trifluoromethanesulfonyl)imide (TFSI - Among these, tetrafluoroborate is preferred from the viewpoint of the dispersibility of graphene in the dispersion medium.

[0035] The graphene dispersion treatment can be carried out by contacting a one-electron oxidizing agent with the raw graphene in the presence of the solvent. When the one-electron oxidizing agent is used for the graphene dispersion treatment, the mass ratio of the one-electron oxidizing agent to the graphene may be, for example, 0.1 to 20, and preferably 1 to 10. When a solvent is used, the mass ratio of the solvent to the carbon raw material may be, for example, 10 to 600, and preferably 50 to 450.

[0036] The atmosphere in which graphene is brought into contact with the one-electron oxidant may be an inert gas atmosphere such as argon or nitrogen, and the oxygen concentration may preferably be, for example, 5 ppm or less.

[0037] The contact time between graphene and the one-electron oxidizing agent may be, for example, 1 to 7 days at room temperature. The contact between graphene and the one-electron oxidizing agent may further include a step of applying energy, as necessary. Applying energy may further improve the dispersibility of graphene.

[0038] When a graphene dispersion is prepared by contacting graphene with a one-electron oxidant, the resulting graphene dispersion may contain, for example, modified graphene containing graphene in which holes have been formed by electron abstraction by the one-electron oxidant and anions that compensate for the charge. That is, the graphene dispersion may contain hole-doped graphene and anions that form charge pairs with the hole-doped graphene. The inclusion of modified graphene in the graphene dispersion further improves the dispersion stability of the graphene dispersion.

[0039] The modified graphene may have a different zeta potential than graphene that has not been treated with a one-electron oxidant. For example, the zeta potential of the modified graphene may be −50 mV or less in NMP, which may be reduced by 15 mV or more compared to the unmodified graphene.

[0040] After obtaining a graphene dispersion by dispersion treatment, graphene or modified graphene contained in the dispersion may be separated. For example, when dispersion treatment is performed in a solvent, solid-liquid separation may be performed after contact. Solid-liquid separation may be performed by filtration using a membrane filter or the like, or by settling the solid content and removing the supernatant. The solid content obtained by solid-liquid separation may be washed with an organic solvent as needed. Examples of organic solvents used for washing include the above-mentioned aromatic solvents, amide-based solvents such as NMP, and nitrile-based solvents such as acetonitrile.

[0041] The graphene or modified graphene obtained by the dispersion treatment may be extracted as a powder by a drying treatment, or the separated graphene or modified graphene may be re-dispersed in a desired organic solvent to form a graphene dispersion.

[0042] In the method for producing a positive electrode active material for a non-aqueous secondary battery, the graphene dispersion described above is brought into contact with alkali metal-transition metal composite oxide particles to obtain a positive electrode active material for a non-aqueous secondary battery. The obtained positive electrode active material for a non-aqueous secondary battery is considered to include alkali metal-transition metal composite oxide particles having graphene disposed on at least a portion of their surfaces. Graphene may be attached to the surfaces of the alkali metal-transition metal composite oxide particles, or may cover at least a portion of the surfaces.

[0043] The contact between the graphene dispersion and the composite oxide particles can be achieved, for example, by wet-mixing the graphene dispersion and the composite oxide particles. The mixing is performed using a commonly used mixing method such as a stirring blade or a homogenizer. A desired organic solvent may be used for mixing, if necessary.

[0044] The graphene dispersion and the composite oxide particles may be contacted at a ratio of the solid content of the graphene dispersion to the mass of the composite oxide particles of, for example, 0.01% by mass or more, preferably 0.1% by mass or more, more preferably 0.2% by mass or more, and even more preferably 0.4% by mass or more. From the viewpoint of energy density, the ratio may be, for example, 10% by mass or less, preferably 2.5% by mass or less, more preferably 1% by mass or less, even more preferably 0.7% by mass or less, even more preferably 0.6% by mass or less, and particularly preferably 0.5% by mass or less, relative to the mass of the composite oxide particles. The temperature during contact may be, for example, 20°C or more and 70°C or less. The contact time may be, for example, 1 minute to 3 hours.

[0045] After the contact of the graphene dispersion with the composite oxide particles, treatments such as solid-liquid separation, drying, purification, and classification may be carried out as necessary.

[0046] The composite oxide particles used for contact may contain at least one composite oxide capable of constituting either a positive electrode or a negative electrode. Examples of composite oxides capable of constituting a positive electrode include alkali metal-cobalt composite oxide, alkali metal-nickel composite oxide, alkali metal-nickel-cobalt-manganese composite oxide, alkali metal-manganese composite oxide with a spinel structure, and alkali metal iron phosphate with an olivine structure. The alkali metal may be any of lithium, sodium, potassium, etc.

[0047] The composite oxide capable of constituting the positive electrode can be obtained by a known method. For example, it can be produced by a production method including mixing an alkali metal compound and an oxide having a desired composition to obtain a raw material mixture, and heat-treating the obtained raw material mixture. The heat-treated product obtained after the heat treatment may be crushed or may be washed with water to remove unreacted materials, by-products, etc. Furthermore, it may be further subjected to a dispersion treatment, classification treatment, etc.

[0048] Examples of methods for obtaining an oxide having the desired composition include a method in which raw material compounds (hydroxides, carbonates, etc.) are mixed according to the target composition and then decomposed into an oxide by heat treatment, and a co-precipitation method in which a solvent-soluble raw material compound is dissolved in a solvent, and a precursor is precipitated according to the target composition by adjusting the temperature, pH, adding a complexing agent, etc., and the obtained precursor is then heat-treated to obtain an oxide.

[0049] Alkali metal-transition metal composite oxides having a layered structure, such as alkali metal-cobalt composite oxides, are preferred because they facilitate the production of nonaqueous secondary batteries with a good balance of charge / discharge capacity, energy density, etc. The alkali metal-transition metal composite oxide may contain at least an alkali metal such as lithium and a transition metal such as nickel, and may further contain at least one of aluminum, cobalt, and manganese.

[0050] When the alkali metal-transition metal composite oxide contains nickel, the ratio of the number of moles of nickel to the total number of moles of metals other than alkali metals may be, for example, 0.33 or more, preferably 0.4 or more, and more preferably 0.55 or more. The upper limit of the ratio of the number of moles of nickel may be, for example, less than 1, preferably 0.98 or less, more preferably 0.8 or less, and even more preferably 0.6 or less. When the ratio of the number of moles of nickel is within the above-mentioned range, it is possible to achieve both good charge / discharge capacity at high voltage and good cycle characteristics in a nonaqueous electrolyte secondary battery.

[0051] When the alkali metal-transition metal composite oxide contains cobalt, the ratio of the number of moles of cobalt to the total number of moles of metals other than alkali metals may be, for example, 0.02 or more, preferably 0.05 or more, more preferably 0.1 or more, and even more preferably 0.15 or more. The upper limit of the ratio of the number of moles of cobalt may be, for example, less than 1, preferably 0.33 or less, more preferably 0.3 or less, and even more preferably 0.25 or less. When the ratio of the number of moles of cobalt is within the above-mentioned range, a sufficient charge / discharge capacity at high voltage can be achieved in the nonaqueous electrolyte secondary battery.

[0052] When the alkali metal-transition metal composite oxide contains manganese, the ratio of the number of moles of manganese to the total number of moles of metals other than alkali metals may be, for example, 0.01 or more, preferably 0.05 or more, more preferably 0.1 or more, and even more preferably 0.15 or more. The upper limit of the ratio of the number of moles of manganese may be, for example, 0.33 or less, preferably 0.3 or less, and more preferably 0.25 or less. When the ratio of the number of moles of manganese is within the above-mentioned range, the nonaqueous electrolyte secondary battery can achieve both good charge / discharge capacity and safety.

[0053] In the alkali metal-transition metal composite oxide, the ratio of the number of moles of alkali metal to the total number of moles of metals other than alkali metal may be, for example, 1.0 or more, preferably 1.03 or more, more preferably 1.05 or more. The upper limit of the ratio of the number of moles of alkali metal may be, for example, 1.5 or less, preferably 1.25 or less.

[0054] When the alkali metal-transition metal composite oxide contains cobalt and manganese in addition to nickel, the molar ratio of nickel, cobalt and manganese may be, for example, nickel:cobalt:manganese = (0.33 to 0.95):(0.02 to 0.33):(0.01 to 0.33), preferably (0.55 to 0.6):(0.15 to 0.25):(0.15 to 0.3).

[0055] The alkali metal-transition metal composite oxide may be, for example, an alkali metal-transition metal composite oxide having a composition represented by the following formula. A p Ni x Co y M 1 z O 2+α Here, p, x, y, z and α satisfy 1.0 ≦ p ≦ 1.3, 0 ≦ x ≦ 1, 0 ≦ y ≦ 1, 0 ≦ z ≦ 1, x + y + z = 1, -0.1 ≦ α ≦ 0.1, A represents at least one selected from the group consisting of Li, Na and K, and M 1 represents at least one of Mn and Al.

[0056] In addition, examples of the composite oxide capable of forming the negative electrode include lithium titanate (e.g., Li4Ti5O 12 , LiTi2O4, etc.), lithium titanium composite oxide (e.g., Li4Ti 5-x Mn x O 12 ; 0 < x ≦ 0.3), lithium metal oxide (e.g., Li x M y O z ; M = Sn, Cu, Pb, Sb, Zn, Fe, In, Al or Zr), lithium metal sulfide (e.g., Li x M y S z; M=Ti, Sn, Cu, Pb, Sb, Zn, Fe, In, Al, or Zr), and in these, lithium may be substituted with another alkali metal. For these composite oxides, the matters and production methods described in, for example, JP-A Nos. 2000-302547, 2013-012496, and 2013-058495 can be appropriately used.

[0057] The composite oxide particles may be doped with an element other than the elements constituting the composite oxide. Examples of the doped element include B, Mg, Al, Si, P, S, Ca, Ti, V, Cr, Zn, Sr, Y, Zr, Nb, Mo, In, Sn, Ba, La, Ce, Nd, Sm, Eu, Gd, Ta, W, and Bi. Compounds used for doping with these elements include oxides and fluorides containing at least one element selected from the group consisting of these elements, as well as alkali metal composite oxides thereof. The doping amount may be, for example, 0.005 mol % or more and 10 mol % or less based on the alkali metal-transition metal composite oxide particles.

[0058] The composite oxide particles may also have a core particle containing a metal composite oxide and an attachment disposed on the surface of the core particle. The attachment may be disposed on at least a portion of the core particle's surface, preferably occupying at least 1% of the core particle's surface area. The composition of the attachment may be appropriately selected depending on the purpose, and examples include oxides and fluorides containing at least one element selected from the group consisting of Li, B, Na, Mg, Si, P, S, K, Ca, Ti, V, Cr, Zn, Sr, Y, Zr, Nb, Mo, In, Sn, Ba, La, Ce, Nd, Sm, Eu, Gd, Ta, W, and Bi, as well as alkali metal composite oxides thereof. The content of the attachment may be, for example, 0.03% by mass to 10% by mass, preferably 0.1% by mass to 2% by mass, in the alkali metal-transition metal composite oxide particles.

[0059] The average diameter of the composite oxide particles may be, for example, 1 μm or more and 40 μm or less in terms of volume average particle diameter, and from the viewpoint of output characteristics, it is preferably 1.5 μm or more, more preferably 3 μm or more, and is preferably 30 μm or less, more preferably 20 μm or less.

[0060] The lower limit of the ratio of the average diameter of the carbon material to the average diameter of the composite oxide particles (carbon material / composite oxide particles) may be, for example, 0.01 or more, and preferably 0.1 or more. The upper limit of the ratio of the average diameter of the carbon material to the average diameter of the composite oxide particles (carbon material / composite oxide particles) may be, for example, 10 or less, and preferably 2 or less.

[0061] The composite oxide particles may be aggregated particles consisting of a large number of primary particles, or may be so-called single particles consisting of, for example, six or less primary particles. The composite oxide particles have a 50% particle size D in the cumulative particle size distribution based on volume. 50 Average particle size D based on electron microscope observation SEM Ratio to D 50 / D SEM may be 1 or more and 6 or less.

[0062] For composite oxide particles, the average particle size D SEM From the viewpoint of durability, the thickness may be, for example, 0.1 μm or more and 20 μm or less, and from the viewpoint of power density and electrode plate packing, the thickness is preferably 0.3 μm or more, more preferably 0.5 μm or more, and is preferably 15 μm or less, more preferably 10 μm or less, and particularly preferably 5 μm or less.

[0063] Average particle size D based on electron microscope observation SEM is the average spherical equivalent diameter of primary particles measured from scanning electron microscope (SEM) images. SEMSpecifically, it is measured as follows: Using a scanning electron microscope (SEM), observations are made at magnifications ranging from 1000x to 10000x depending on the particle size. 100 primary particles whose particle outlines can be confirmed are selected, and the outline length of the selected particles is determined by tracing the outline of the primary particle using image processing software. The spherical equivalent diameter is calculated from the outline length, and the average particle size D is determined as the arithmetic mean of the obtained spherical equivalent diameters. SEM is required.

[0064] In composite oxide particles, D 50 / D SEM When D is 1, it indicates that the composite oxide particle is composed of a single primary particle, and the closer it is to 1, the fewer the number of primary particles that make up the particle. 50 / D SEM is preferably 1 or more and 6 or less from the viewpoint of durability, and is preferably 5 or less, particularly preferably 3 or less, from the viewpoint of output density.

[0065] The 50% particle size D 50 It may be, for example, 1 μm or more and 30 μm or less, and from the viewpoint of power density, it is preferably 1.5 μm or more, more preferably 3 μm or more, and is preferably 10 μm or less, more preferably 5.5 μm or less.

[0066] 50% particle size D 50 is determined as the particle size corresponding to the cumulative 50% from the small diameter side in the cumulative particle size distribution on a volume basis measured under wet conditions using a laser diffraction particle size distribution analyzer. Similarly, the 90% particle size D 90 and 10% particle size D 10 are calculated as the particle diameters corresponding to 90% and 10% cumulatively from the small diameter side, respectively.

[0067] 90% particle size D in the cumulative particle size distribution based on volume 90 10% particle size D 10 The ratio of D to D indicates the spread of the particle size distribution of the composite oxide particles, and the smaller the value, the more uniform the particle size of the particles. 90 / D 10For example, D may be 8 or less, and from the viewpoint of power density, D is preferably 6 or less, and more preferably 3 or less. 90 / D 10 The lower limit may be, for example, 1.2 or more.

[0068] D 50 / D SEM For composite oxide particles in which is 1 or more and 6 or less, reference can be made to, for example, JP-A Nos. 2017-188443, 2017-188444, and 2017-188445.

[0069] The alkali metal-transition metal composite oxide may contain nickel in its composition. From the viewpoint of initial efficiency in nonaqueous electrolyte secondary batteries, the disorder of the nickel element in the alkali metal-transition metal composite oxide, as determined by X-ray diffraction, may be, for example, 4.0% or less, preferably 2.0% or less, and more preferably 1.5% or less. Here, the disorder of the nickel element refers to a chemical disorder of the transition metal ions (nickel ions) that should occupy the original sites. In alkali metal-transition metal composite oxides with a layered structure, this is typically the interchange of the alkali metal ions that should occupy the sites represented by 3b in the Wyckoff notation (3b sites, hereinafter the same) with the transition metal ions that should occupy the 3a sites. The smaller the disorder of the nickel element, the better the initial efficiency, and therefore the better.

[0070] The disorder of nickel element in alkali metal-transition metal composite oxide can be determined by X-ray diffraction. For alkali metal-transition metal composite oxide, X-ray diffraction spectrum is measured using CuKα radiation. The composition model is (Li 1-d Ni d )(Ni x Co y Mn z Al w)O2(x+y+z+w=1), and based on the obtained X-ray diffraction spectrum, perform structural optimization by Rietveld analysis. The percentage of d calculated as a result of structural optimization is taken as the value of disorder of the nickel element.

[0071] Electrode active material for non-aqueous secondary batteries One embodiment of an electrode active material for a nonaqueous secondary battery includes alkali metal-transition metal composite oxide particles, which have graphene disposed on at least a portion of their surfaces, obtained by contacting alkali metal-transition metal composite oxide particles with a dispersion containing graphene and a dispersion medium having a dispersibility index of 0.25 or greater. Graphene may be attached to the surface of the alkali metal-transition metal composite oxide particles, or the graphene may coat the surface. That is, alkali metal-transition metal composite oxide particles, which have graphene disposed on at least a portion of their surfaces, obtained by contacting a dispersion having good dispersibility with the alkali metal-transition metal composite oxide particles, have reduced unevenness in the adhesion of graphene to the alkali metal-transition metal composite oxide particle surface, thereby suppressing the elution of metal components contained in the alkali metal-transition metal composite oxide during charge and discharge. This is thought to improve durability when a nonaqueous secondary battery is constructed using this electrode active material. Furthermore, reduced unevenness in the adhesion of graphene improves the electrical conductivity of the electrode active material, which is thought to improve output characteristics when a nonaqueous secondary battery is constructed using this electrode active material.

[0072] From the viewpoint of electrical conductivity, the graphene content in the electrode active material may be, for example, 0.01% by mass or more, preferably 0.1% by mass or more, more preferably 0.2% by mass or more, and even more preferably 0.4% by mass or more, relative to the composite oxide particles. From the viewpoint of energy density, the graphene content may be, for example, 10% by mass or less, preferably 2.5% by mass or less, more preferably 1% by mass or less, even more preferably 0.7% by mass or less, even more preferably 0.6% by mass or less, and particularly preferably 0.5% by mass or less, relative to the composite oxide particles.

[0073] Electrode composition for non-aqueous secondary batteries The electrode composition for a non-aqueous secondary battery contains the above-mentioned electrode active material and a binder, and may further contain a conductive aid, a filler, an organic solvent, and the like, as necessary.

[0074] Binders are materials that aid in the adhesion of electrode active materials to conductive additives and to current collectors. Examples of binders include polyvinylidene fluoride (PVDF), polyvinyl alcohol, carboxymethyl cellulose (CMC), starch, hydroxypropyl cellulose, regenerated cellulose, polyvinylpyrrolidone, tetrafluoroethylene, polyethylene, polypropylene, ethylene-propylene-diene rubber (EPDM), sulfonated EPDM, styrene-butylene rubber, fluororubber, and various copolymers. The binder content may be, for example, 0.05% by mass or more and 50% by mass or less based on the total mass of the electrode composition.

[0075] The conductive additive is, for example, a material that improves the electrical conductivity of the electrode active material layer. Examples of the conductive additive include modified graphene. Other examples include graphite such as natural graphite and artificial graphite; carbon black such as carbon black, acetylene black, ketjen black, channel black, furnace black, lamp black, and summer black; conductive fibers such as carbon fiber and metal fiber; carbon materials such as graphene and carbon nanotubes; carbon fluoride; metal powders such as aluminum and nickel powder; conductive whiskers such as zinc oxide and potassium titanate; conductive metal oxides such as titanium oxide; and conductive materials such as polyphenylene derivatives. The content of the conductive additive may be, for example, 0.5% by mass or more and 30% by mass or less relative to the total mass of the electrode composition.

[0076] When the electrode composition contains other conductive additives in addition to the modified graphene, the lower limit of the content ratio of the modified graphene to the other conductive additives in the electrode composition (modified graphene / other conductive additives) may be, for example, 1 / 1000 or more, preferably 1 / 100 or more, and more preferably 1 / 10 or more. The upper limit of the content ratio of the modified graphene to the other conductive additives in the electrode composition may be, for example, 100 / 1 or less, preferably 10 / 1 or less, and more preferably 1 / 1 or less.

[0077] The filler is a material that suppresses the expansion of the electrode active material layer, and examples of the filler include lithium carbonate, olefin polymers such as polyethylene and polypropylene, and fibrous materials such as glass fiber and carbon fiber.

[0078] The electrode composition may contain an organic solvent, such as NMP.

[0079] Electrodes for non-aqueous secondary batteries The electrode for a non-aqueous secondary battery includes a current collector and an electrode active material layer disposed on the current collector and containing the above-described electrode active material for a non-aqueous secondary battery. The electrode is manufactured by dispersing the above-described electrode composition in a solvent such as NMP to form a slurry, applying the slurry to the current collector, and then drying and pressing the slurry.

[0080] Examples of current collectors include metals such as copper, stainless steel, aluminum, nickel, and titanium; baked carbon; composite materials in which the surface of copper or stainless steel is treated with carbon, nickel, titanium, silver, or the like; and aluminum-cadmium alloys. The current collector can also be formed with fine irregularities on its surface to enhance the adhesive strength of the electrode active material layer, etc. Various forms are possible, including films, sheets, foils, nets, porous bodies, foams, and nonwoven fabrics. The thickness of the current collector may be, for example, 3 μm or more and 500 μm or less.

[0081] In a non-aqueous secondary battery electrode constructed using the above-described electrode active material, the plate resistance is reduced. The reduction rate of the plate resistance in the non-aqueous secondary battery electrode may be, for example, 40% or more, and from the viewpoint of output characteristics, is preferably 50% or more, more preferably 60% or more, and particularly preferably 70% or more. The upper limit of the reduction rate may be, for example, 99% or less, preferably 95% or less. The reduction rate of the plate resistance is determined by the method described below using an electrode obtained by using acetylene black instead of the graphene contained in the electrode active material of this embodiment as a reference.

[0082] Non-aqueous secondary battery The nonaqueous secondary battery includes at least one of the above-described electrodes for nonaqueous secondary batteries. The nonaqueous secondary battery includes, in addition to the electrode for nonaqueous secondary batteries, a counter electrode for the electrode for nonaqueous secondary batteries, a nonaqueous electrolyte, a separator, and the like. The counter electrode may be the electrode for nonaqueous secondary batteries. Materials for nonaqueous secondary batteries described in, for example, JP 2002-075367 A, JP 2011-146390 A, JP 2006-12433 A, JP 2000-302547 A (U.S. Pat. No. 6,475,673), JP 2013-058495 A (U.S. Patent Application Publication No. 2010 / 015524), and the like, can be used appropriately for the counter electrode, nonaqueous electrolyte, separator, and the like in the nonaqueous secondary battery. These documents are incorporated herein by reference in their entirety.

[0083] The electrolyte contains, for example, an anion having fluorine. Specifically, lithium salts containing an anion having fluorine, such as LiPF, LiBF, LiSbF, LiAsF, LiSOCF, and LiN(SOCF) can be used alone or in combination of two or more.

[0084] Graphene Dispersion The graphene dispersion contains graphene and a dispersion medium, and has a dispersibility index of 0.25 or more. Details of the graphene and dispersion medium constituting the graphene dispersion, and details of the dispersibility index, are as described above. The graphene dispersion may be obtained by dispersing raw graphene, or may contain modified graphene obtained by contacting raw graphene with a one-electron oxidant. [Example]

[0085] The present invention will be specifically described below with reference to examples, but the present invention is not limited to these examples.

[0086] average diameter The average diameter of graphene was measured using a dynamic light scattering particle size distribution analyzer (ELSZ-2000ZS manufactured by Otsuka Electronics Co., Ltd.).

[0087] <Production of Dispersion A Containing Graphene> Raw graphene (rGO manufactured by Angstron, BET specific surface area 600 m 2 2 g of N-methyl-2-pyrrolidone (hereinafter referred to as NMP, donor number 27, surface tension 41 mN / m, purity >99.0%) was added to dry N-methyl-2-pyrrolidone (hereinafter referred to as NMP, donor number 27, surface tension 41 mN / m, purity >99.0%) so that the graphene concentration became 30 mg / mL, and ultrasonic treatment (frequency: 40 kHz, output: 110 W, 20°C) was carried out for 1 hour to obtain Dispersion A.

[0088] Dispersion A obtained above was adjusted with NMP to a graphene concentration of 3 mg / mL. The prepared solution was treated with ultrasound (frequency: 40 kHz, output: 110 W, 20°C) for 10 minutes to obtain a uniform primary dispersion. This dispersion was then diluted 200-fold to obtain a secondary dispersion with a graphene concentration of 0.015 mg / mL. This was then treated with ultrasound (frequency: 40 kHz, output: 110 W, 20°C) for 10 minutes to obtain a uniform measurement dispersion. The absorbance of this measurement dispersion was measured at 700 nm using a Hitachi High-Technologies U-4100 spectrophotometer with NMP as the standard. The obtained absorbance was used as the dispersibility index, which was 0.24. Furthermore, the average diameter and zeta potential of this measurement dispersion were measured (ELSZ-2000ZS manufactured by Otsuka Electronics Co., Ltd.), and the average diameter of graphene was 6540 nm, the standard deviation was 4001, and the zeta potential was −37 mV.

[0089] The primary dispersion obtained in the above-described dispersibility index measurement was centrifuged at 7,000 rpm (6,300 G) for 5 minutes, and the supernatant was collected and diluted 200-fold to obtain a secondary dispersion. The resulting secondary dispersion was treated with ultrasound (frequency: 40 kHz, output: 110 W, 20°C) for 10 minutes to obtain a uniform measurement dispersion. Absorbance was measured at 700 nm (based on NMP). The absorbance of this measurement dispersion was measured at 700 nm using a Hitachi High-Technologies U-4100 spectrophotometer with NMP as the standard, and the resulting absorbance was used as the dispersion stability index, which was 0.

[0090] The graphene contained in Dispersion A was observed using a scanning electron microscope (Hitachi High-Technologies SU8230; accelerating voltage 5 kV). An SEM image (magnification 10,000 times) is shown in Figure 1.

[0091] <Preparation of Dispersion B> Under an argon atmosphere, in a glove box with an oxygen concentration adjusted to 3.0 ppm or less, 64 mL of dry NMP, 2 g of the same raw graphene as Dispersion A, and 100 nylon balls (φ10 mm) were added to a planetary ball mill container at room temperature. The container was then closed and removed from the glove box. Subsequently, the planetary ball mill (rotation speed: 400 rpm) was run for 36 hours. The mixture was then filtered using a Teflon (registered trademark) membrane filter with a pore size of 0.1 μm while being suctioned with a pump. After filtration, the filter was washed with NMP. Graphene was added to the resulting NMP solution to a graphene concentration of 30 mg / mL, thereby obtaining Dispersion B. The average diameter of Dispersion B was measured in the same manner as Dispersion A, yielding a mean diameter of 578 nm with a standard deviation of 239 nm, confirming a small mean diameter and a narrow particle size distribution.

[0092] The dispersibility index and dispersion stability index of the obtained dispersion B were determined in the same manner as dispersion A. The dispersibility index was 0.41 and the dispersion stability index was 0, confirming that the dispersibility was improved compared to dispersion A.

[0093] The graphene extracted from Dispersion B was observed using a field emission scanning electron microscope (FE-SEM; Hitachi High-Technologies S-4800; accelerating voltage 0.5 kV). The SEM image is shown in Figure 2 (magnification 5000x).

[0094] <Production of Dispersion C Containing Graphene> Under an argon atmosphere, in a glove box with an oxygen concentration adjusted to 3 ppm or less, 64 mL of dry NMP and 1.2 g of a carbocation salt of a one-electron oxidant, tritylium tetrafluoroborate (triphenylmethylium tetrafluoroborate; redox potential 0.5 V), were added to a planetary ball mill container at room temperature and dissolved. 2 g of the same raw graphene as in Dispersion A and 100 nylon balls (φ10 mm) were added to this solution, after which the container was closed and removed from the glove box. Subsequently, the mixture was milled at 400 rpm for 36 hours. The mixture was then filtered using a Teflon (registered trademark) membrane filter with a pore size of 0.1 μm while being suctioned with a pump. After filtration, the filter was washed with NMP. Graphene was added to the filtered material to a concentration of 30 mg / mL in NMP, yielding Dispersion C. The average particle size of Dispersion C was measured in the same manner as Dispersion A, and was found to be 584 nm with a standard deviation of 95.7 nm, confirming that the average particle size was small and the particle size distribution was good. The zeta potential was also measured in the same manner as Dispersion A, and was found to be -62 mV, a decrease of 25 mV compared to Dispersion A.

[0095] The dispersibility index and dispersion stability index of the obtained Dispersion C were determined in the same manner as Dispersion A. The dispersibility index was 0.48 and the dispersion stability index was 0.12, confirming that the dispersibility and dispersion stability were improved compared to Dispersion A and Dispersion B.

[0096] Graphene extracted from Dispersion C was observed using a field-emission scanning electron microscope (FE-SEM; Hitachi High-Technologies S-4800; accelerating voltage 5 kV). Figure 3 shows an SEM image (10,000x magnification). Furthermore, X-ray photoelectron spectroscopy (hereafter referred to as XPS, ULVAC-PHI, Inc., Quantera SXM; X-ray source: AlKα; X-ray beam diameter: φ200 μm) was performed on the graphene extracted from Dispersion C. Fluorine atoms, not detected in the raw graphene, were detected at approximately 0.3 atomic % of the detected carbon atoms. Figure 4 shows the XPS chart. The detected fluorine atoms are thought to originate from the bond between inorganic matter and fluorine at 685 eV, and are likely tetrafluoroborate, the counter anion of the modified graphene.

[0097] [Preparation of alkali metal-transition metal composite oxides] D of alkali metal-transition metal composite oxide particles 10 , D 50 and D 90 The cumulative particle size distribution on a volume basis was measured using a laser diffraction particle size distribution analyzer (Malvern Panalytical's Mastersizer 2000), and the particle sizes were calculated based on the cumulative values ​​from the smallest diameter side. SEM In the study, 100 particles whose particle outlines could be confirmed were selected from images observed at 1000x to 10000x magnification using a scanning electron microscope (SEM), and the spherical equivalent diameter of the selected particles was calculated using image processing software (ImageJ), and the arithmetic mean value of the obtained spherical equivalent diameters was obtained.

[0098] <Preparation of alkali metal-transition metal composite oxide particles A> Average particle size D based on electron microscope observation according to a known method SEM is 0.44 μm, and D 10 = 3.5 μm, D 50 = 7.1 μm, D 90 =19.7μm, average particle size D SEM D against 50 Ratio of D 50 / D SEMis 16.1, and the ratio D 90 / D 10 The Ni disorder amount was 0.6%, and the composition formula was Li 1.01 Ni 0.925 Co 0.05 Al 0.025 Alkali metal-transition metal composite oxide particles A represented by O2 were obtained. An SEM image (SEM; JEOL JSM-IT100LA; accelerating voltage 20 kV) of the obtained alkali metal-transition metal composite oxide particles A is shown in Figure 5 (magnification 7000x).

[0099] <Preparation of Alkali Metal-Transition Metal Composite Oxide Particles B> Average particle size D based on electron microscope observation according to a known method SEM is 0.94 μm, and D 10 = 2.7 μm, D 50 = 5.1 μm, D 90 =10.1μm, average particle size D SEM D against 50 Ratio of D 50 / D SEM is 5.4, and the ratio D 90 / D 10 The Ni disorder amount was 1.1%, and the composition formula was Li 1.00 Ni 0.925 Co 0.05 Al 0.025 Alkali metal-transition metal composite oxide particles B represented by O2 were obtained. An SEM image (SEM; JEOL JSM-IT100LA; accelerating voltage 20 kV) of the obtained alkali metal-transition metal composite oxide particles B is shown in Figure 6 (magnification 7000x).

[0100] [Cathode manufacturing] Example 1 2.1 g of Dispersion B (0.06 g as graphene), 11.6 g of alkali metal-transition metal composite oxide particles A, and 2.65 g of NMP were mixed to obtain a positive electrode active material dispersion. 1.5 g of a solution of polyvinylidene fluoride (PVDF) dissolved in NMP (0.12 g as PVDF) was added to the positive electrode active material dispersion and mixed, followed by further addition and mixing of 0.9 g of acetylene black (hereinafter also referred to as AB) solution (0.18 g as AB) to obtain a positive electrode composition. The positive electrode active material was mixed with NMP to a concentration of 52 mass % to prepare an NMP slurry. The obtained NMP slurry was applied to aluminum foil as a current collector and dried to obtain a dried product. The dried product was compression molded (density 3.2 g / cm) using a roll press. 3 ), and then cut to a predetermined size to produce the positive electrode of Example 1. When the dried product was observed with an SEM (Hitachi High-Tech SU8230; accelerating voltage 0.5 KV), the presence of a positive electrode active material for a nonaqueous secondary battery in which graphene was attached to some of the lithium transition metal composite oxide particles was confirmed, as shown in FIG. 7 (magnification 20,000 times).

[0101] Example 2 A positive electrode was produced in the same manner as in Example 1, except that Dispersion C was used instead of Dispersion B. When the dried product was observed with an SEM (Hitachi High-Technologies SU8230; accelerating voltage 0.5 KV), the presence of a positive electrode active material for a nonaqueous secondary battery in which graphene was attached to some of the alkali metal-transition metal composite oxide particles was confirmed, as shown in Fig. 8 (magnification 20,000 times).

[0102] (Comparative Example 1) 11.6 g of alkali metal-transition metal composite oxide particles A were mixed with 1.5 g of a solution of polyvinylidene fluoride (PVDF) dissolved in NMP (0.12 g of PVDF), followed by further addition and mixing of 1.2 g of AB solution (0.24 g of AB) to obtain a positive electrode composition. The positive electrode composition was mixed with NMP to a concentration of 58 mass % to prepare an NMP slurry. The resulting NMP slurry was applied to an aluminum foil current collector and dried to obtain a dried product. The dried product was compression-molded using a roll press and then cut to a predetermined size to produce a positive electrode of Comparative Example 1. An SEM image (Hitachi High-Technologies SU8230; accelerating voltage 0.5 kV) of the positive electrode observed in the same manner as in Example 1 is shown in Figure 9 (magnification 20,000 times).

[0103] Example 3 A positive electrode was produced in the same manner as in Example 1, except that alkali metal-transition metal composite oxide particles B were used instead of alkali metal-transition metal composite oxide particles A. An SEM (Hitachi High-Tech SU8230; accelerating voltage 0.5 KV) image of the positive electrode observed in the same manner as in Example 1 is shown in Fig. 10 (magnification 20,000 times).

[0104] Example 4 A positive electrode was produced in the same manner as in Example 3, except that Dispersion C was used instead of Dispersion B. An SEM image (Hitachi High-Technologies SU8230; accelerating voltage 0.5 KV) of the positive electrode observed in the same manner as in Example 1 is shown in Fig. 11 (magnification 20,000 times).

[0105] (Comparative Example 2) A positive electrode was produced in the same manner as in Comparative Example 1, except that alkali metal-transition metal composite oxide particles B were used instead of alkali metal-transition metal composite oxide particles A. An SEM image (Hitachi High-Technologies SU8230; accelerating voltage 0.5 KV) of the positive electrode observed in the same manner as in Example 1 is shown in Fig. 12 (magnification 20,000 times).

[0106] [evaluation] The electrode plate resistances of the positive electrodes of Examples 1 to 3 and Comparative Examples 1 and 2 obtained above were Measurements were performed using the following procedure. The resulting electrode plate was placed on a horizontal glass plate, a probe (Mitsubishi Chemical Analytech MCP-TPAP2) was brought into contact with the electrode plate, and the resistance value was measured using a tester (Yokogawa M&C Digital Multimeter 7544 02F) (measurement temperature 23°C, dry room). Measurements were also performed at 10 points per electrode plate, and the average value was taken as the electrode plate resistance. The results are shown in Table 1. Table 1 also shows the rate of decrease in electrode plate resistance for the Examples compared to the Comparative Examples.

[0107] [Table 1]

[0108] As can be seen from Table 1, the electrodes using the positive electrode compositions for nonaqueous secondary batteries prepared using the dispersions with high dispersibility indexes in Examples 1 and 2 have lower plate resistance than Comparative Example 1, and therefore it is expected that the output characteristics of batteries using these electrodes will be improved. Furthermore, it was confirmed that Example 3 had a similar effect to Comparative Example 2.

[0109] As can be seen from Table 1, in Example 2, the electrode using the positive electrode composition for a nonaqueous secondary battery prepared from the dispersion obtained in the presence of a one-electron oxidant having an oxidation-reduction potential of 0.2 V or more and 1.9 V or less exhibited a higher rate of decrease in plate resistance than that of Example 1, and it can be expected that the effect of output characteristics will be more pronounced in batteries using these electrodes.

[0110] From Table 1, in Example 3, the 50% particle size D in the cumulative particle size distribution based on the volume 50 Average particle size D based on electron microscope observation SEM Ratio to D 50 / D SEM In the electrode using the positive electrode composition for a nonaqueous secondary battery made from alkali metal-transition metal composite oxide particles having a molecular weight of 1 or more and 6 or less, the reduction rate of the electrode plate resistance was higher than that of Example 1, and it is expected that the effect of the output characteristics will be more pronounced in the battery using such an electrode.

[0111] Using the positive electrodes of Examples 2 and 4, Comparative Examples 1 and 2 obtained above, secondary batteries for evaluation were fabricated in the following manner.

[0112] (Preparation of negative electrode) Graphite material was used as the negative electrode active material. 97.5 parts by mass of the negative electrode active material, 1.5 parts by mass of carboxymethyl cellulose (CMC), and 1.0 part by mass of styrene-butadiene rubber (SBR) were dispersed in water and kneaded to prepare a negative electrode paste. This paste was applied to a copper foil current collector, dried, and then compression-molded using a roll press. After drying, the paste was cut to a specified size to fabricate a negative electrode.

[0113] [Preparation of non-aqueous electrolyte] Ethyl carbonate and methyl ethyl carbonate were mixed in a volume ratio of 3:7 to obtain a mixed solvent, and lithium hexafluorophosphate was dissolved in the obtained mixed solvent to a concentration of 1.0 mol % to obtain a nonaqueous electrolyte solution.

[0114] [Assembly of non-aqueous electrolyte secondary batteries] Lead electrodes were attached to the positive and negative electrode current collectors, respectively, and then vacuum dried at 120°C. Next, a porous polyethylene separator was placed between the positive and negative electrodes, and the resulting product was housed in a bag-shaped laminate pack. After storage, the product was vacuum dried at 60°C to remove moisture adsorbed to each component. After vacuum drying, the nonaqueous electrolyte solution was poured into the laminate pack and sealed, yielding a laminate-type nonaqueous electrolyte secondary battery as a battery for evaluation. The following battery characteristics were evaluated using the obtained battery for evaluation.

[0115] <Evaluation of charge / discharge cycle characteristics> The test battery was placed in a constant temperature bath at 45°C and subjected to constant voltage charging at a charge voltage of 4.3V. After charging, constant voltage discharging was performed at a discharge voltage of 2.75V, and the discharge capacity Qdcyc(1) at the first cycle was measured. Charge and discharge were repeated thereafter, and finally the discharge capacity Qcyc(200) at the 200th cycle was measured. The capacity retention rate Pcyc after 200 cycles (=Qcyc(200) / Qcyc(1)) (%) was calculated by dividing Qcyc(200) by the obtained Qcyc(1). The results of Example 2 and Comparative Example 1 are shown in Table 2, and the results of Example 4 and Comparative Example 2 are shown in Table 3.

[0116] <Evaluation of output characteristics> The test batteries were charged at a constant current of 4.2 V at full charge to a charge depth of 50% at 25°C and -25°C. Subsequently, they were pulse-charged and pulse-charged at a specific current value i. The pulse was applied for 10 seconds, followed by a 3-minute break, followed by repeated discharge and charge. The pulse-discharge and charge current values ​​i were 0.04 A, 0.08 A, 0.12 A, 0.16 A, and 0.20 A at 25°C, and 0.03 A, 0.05 A, 0.08 A, 0.105 A, and 0.13 A at -25°C. The current value i was plotted on the horizontal axis, and the voltage value V after 10 seconds of pulse discharge was plotted on the vertical axis. The absolute value of the slope was calculated within the current range where the i-V plot maintained a linear line, and this was used to determine the battery resistance R(25) (Ω) and R(-25) (Ω). Table 2 shows the results for Example 2 and Comparative Example 1, and Table 3 shows the results for Example 4 and Comparative Example 2. Tables 2 and 3 also show the reduction rates of the battery resistance of the examples compared to the comparative examples.

[0117] [Table 2]

[0118] From Table 2, it was confirmed that, in Example 2, by constructing a secondary battery using a positive electrode composition for a nonaqueous secondary battery made from a dispersion with a high dispersibility index, the capacity retention rate was higher and the battery resistance was lower, and the durability and output characteristics of the battery were improved compared to Comparative Example 1. Furthermore, it was confirmed that Example 4 had similar effects as Comparative Example 2.

[0119] [Table 3]

[0120] From Table 3, it was confirmed that in Example 4, by constructing a secondary battery using a positive electrode composition for a nonaqueous secondary battery made from a dispersion with a high dispersibility index, the capacity retention rate was higher and the battery resistance was lower than in Comparative Example 2, and the durability and output characteristics of the battery were improved.

[0121] In Tables 2 and 3 to Example 4, the 50% particle size D in the cumulative particle size distribution based on the volume 50 Average particle size D based on electron microscope observation SEM Ratio to D 50 / D SEM It was confirmed that by constructing a secondary battery using a positive electrode composition for a nonaqueous secondary battery made from alkali metal-transition metal composite oxide particles having a molecular weight of 1 or more and 6 or less, the rate of decrease in battery resistance was greater than that of Example 2, and the effect of improving output characteristics was more pronounced.

[0122] The disclosure of Japanese Patent Application No. 2019-017327 (filing date: February 1, 2019) is incorporated herein by reference in its entirety. All documents, patent applications, and technical standards described herein are incorporated herein by reference to the same extent as if each individual document, patent application, and technical standard was specifically and individually indicated to be incorporated by reference.

Claims

1. contacting a dispersion containing graphene and a dispersion medium with alkali metal-transition metal composite oxide particles; The alkali metal-transition metal composite oxide particles have a 50% particle size D 50 Average particle size D based on electron microscope observation SEM Ratio D to 50 / D SEM is 1 or more and 6 or less, contains nickel in its composition, and has a layered structure, The dispersibility index of the dispersion is 0.45 or more, the dispersion has a dispersion stability index of 0.1 or more, The dispersibility index is an absorbance obtained by measuring the absorbance at 700 nm of a measurement dispersion obtained by preparing a graphene dispersion using N-methyl-2-pyrrolidone as a measurement dispersion medium so that the graphene concentration is 3 mg / mL, treating the graphene dispersion with ultrasound (frequency: 40 kHz, output: 110 W, 20°C) for 10 minutes to obtain a primary dispersion, diluting the primary dispersion by 200 times within 1 minute to obtain a secondary dispersion having a graphene concentration of 0.015 mg / mL, and treating the secondary dispersion with ultrasound for 10 minutes, using the measurement dispersion medium as a reference, within 1 minute from obtaining the measurement dispersion, The dispersion stability index is an absorbance measured at 700 nm using the measurement dispersion medium as a reference within one minute after the measurement dispersion is obtained, the method comprising the steps of: preparing a graphene dispersion using N-methyl-2-pyrrolidone as a measurement dispersion medium so that the graphene concentration is 3 mg / mL; treating the graphene dispersion with ultrasound (frequency: 40 kHz, output: 110 W, 20°C) for 10 minutes to obtain a primary dispersion; centrifuging the primary dispersion at a rotation speed of 7000 rpm (6300 G) for 5 minutes to collect the supernatant; diluting the supernatant 200-fold to obtain a secondary dispersion; and treating the secondary dispersion with ultrasound (frequency: 40 kHz, output: 110 W, 20°C) for 10 minutes to obtain a measurement dispersion.

2. The method according to claim 1 , wherein the graphene has an oxygen composition of 10 atomic % or less.

3. The graphene has a specific surface area of ​​20 m 2 / g or more 1000m 2 The method according to claim 1 or 2, wherein the solubility is 1 / g or less.

4. The method according to claim 1 , wherein the graphene has an average diameter of 1000 nm or less.

5. 5. The production method according to claim 1, further comprising dispersing raw material graphene having an average diameter of more than 1000 nm in a solvent to obtain the dispersion, wherein the solvent has a donor number value of 30 or less.

6. 6. The production method according to claim 1, further comprising dispersing raw material graphene having an average diameter of more than 1000 nm in a solvent to obtain the dispersion, wherein the solvent has a surface tension of 50 mN / m or less.

7. 7. The method according to claim 5, wherein the solvent contains a one-electron oxidant having an oxidation-reduction potential of 0.2 V or more and 1.9 V or less in the dispersion treatment.

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