Secondary battery binder, slurry, electrode, method for producing secondary battery, and secondary battery
A water-based polymer binder with controlled conductivity and pH for secondary batteries enhances binding strength and reduces foaming, addressing the limitations of existing binders in aqueous slurries and improving production efficiency.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-08-19
- Publication Date
- 2026-03-04
AI Technical Summary
Existing binder technologies in secondary battery production do not adequately consider the types and properties of binders, particularly in aqueous slurries, leading to insufficient binding strength and potential foaming issues during production.
A novel secondary battery binder is developed, comprising a water-based polymer with specific conductivity, viscosity, and pH ranges, containing acidic functional groups and hydrophilic repeating units, which enhances binding strength and suppresses foaming during slurry production.
The novel binder improves binding strength between electrode components, reduces foaming, and supports stable electrode performance, contributing to efficient secondary battery production.
Smart Images

Figure 2026035051000001
Abstract
Description
[Technical Field]
[0001] The present disclosure relates to a secondary battery binder, a slurry, an electrode, a method for manufacturing a secondary battery, and a secondary battery. [Background technology]
[0002] Slurries containing binders are used in the manufacturing process of secondary batteries, particularly in the manufacturing process of electrodes. In recent years, due to concerns about the impact on the environment, interest has been shifting from slurries using organic solvents to aqueous slurries using water as the solvent. Patent Document 1 discloses the use of an aqueous slurry containing a latex-based binder. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2012-49061 Summary of the Invention [Problem to be solved by the invention]
[0004] The types and properties of binders are not sufficiently considered in Patent Document 1. An object of the present disclosure is to provide a novel binder that can favorably contribute to battery production and / or battery properties, or a slurry containing the binder. [Means for solving the problem]
[0005] The present disclosure includes the following aspects: [Section 1] Contains water-based polymers, A secondary battery binder, wherein the aqueous solution obtained when the water-based polymer is dissolved in water at a concentration of 2% by mass has a conductivity of 3.3 mS / cm or less. [Section 2] Item 2. The secondary battery binder according to Item 1, wherein the electrical conductivity is 0.5 mS / cm or more. [Section 3] Item 3. The secondary battery binder according to item 1 or 2, wherein the aqueous polymer is a vinyl polymer having an acidic functional group-containing repeating unit. [Section 4] The water-based polymer is formula: -[CH2-C(R 1 )(C(=O)R 2 )]- [In the formula, R 1 is a hydrogen atom or CH3, R 2 NH2, OM (M is a hydrogen atom or a counter cation), O(CH2) n OH, NH(CH2) n OH (wherein each n is independently 1 or more and 6 or less). A repeating unit (1) represented by the formula: formula: -[CH2-CH(OH)]- Repeating unit (2) 4. The secondary battery binder according to any one of items 1 to 3, comprising a repeating unit selected from the following: [Section 5] In the water-based polymer, the amount of the repeating unit selected from the repeating unit (1) and the repeating unit (2) is 40 mol % or more, The amount of repeating units containing an acidic functional group is 0.8 mol% or more, Item 5. The secondary battery binder according to item 4, wherein the amount of nonionic repeating units is 40 mol % or more. [Section 6] Item 6. The secondary battery binder according to any one of items 1 to 5, which contains SBR. [Section 7] Item 7. A slurry comprising the secondary battery binder according to any one of Items 1 to 6 and water. [Section 8] Item 8. The slurry according to Item 7, further comprising an electrode active material. [Section 9] Item 9. A method for producing a secondary battery, comprising applying the slurry according to Item 7 or 8. [Section 10] Item 7. An electrode comprising the secondary battery binder according to any one of Items 1 to 6 or a component derived from the secondary battery binder. [Section 11] Item 7. An electrode comprising a heat-dried product of the slurry according to Item 7 or 8. [Section 12] Item 12. A secondary battery comprising the electrode according to item 10 or 11. [Effects of the Invention]
[0006] The secondary battery binder according to the present disclosure or a slurry containing the secondary battery binder has one or more properties suitable for batteries or their production. In particular, the use of the secondary battery binder according to the present disclosure can suitably suppress foaming during slurry production. DETAILED DESCRIPTION OF THE INVENTION
[0007] <Definitions of terms, etc.> In this specification, when a term (symbol) that may appear multiple times in a chemical structure is defined, that definition applies independently to each occurrence, unless otherwise stated, regardless of whether "each independently" or a similar expression is explicitly stated.
[0008] In this specification, "(meth)acrylic" means "acrylic or methacrylic", and "(meth)allyl" means "allyl or methallyl".
[0009] In this specification, when multiple lower limit values and multiple upper limit values are separately described, any lower limit value and any upper limit value can be selected, and a numerical range that is a combination of the lower limit value and the upper limit value can be selected.
[0010] <Secondary battery binder> The secondary battery binder in the present disclosure is used to enhance the binding strength between particles inside an electrode in a secondary battery and the binding strength between an active material layer and a current collector.
[0011] [Water-based polymer] The secondary battery binder in the present disclosure includes a water-based polymer. The water-based polymer in the present disclosure is a polymer that can be dispersed in water by itself, and in particular, is water-soluble.
[0012] [Characteristics of water-based polymers] The properties of water-based polymers are shown below.
[0013] (water soluble) When 2 g of the aqueous polymer is dissolved in 100 g of water at 25°C, the insoluble content may be 20% by mass or less, or 15% by mass or less, preferably 5% by mass or less, and more preferably 1% by mass or less, relative to the aqueous polymer.
[0014] (molecular weight, etc.)
[0015] The Mw (weight average molecular weight) of the aqueous polymer measured by GPC-RI may be 100,000 or more, 300,000 or more, 500,000 or more, 750,000 or more, or 1,500,000 or more, preferably 150,000 or more, and more preferably 180,000 or more, and may be 3,000,000 or less, 1,000,000 or less, 500,000 or less, 250,000 or less, or 100,000 or less, preferably 1,000,000 or less, and more preferably 550,000 or less. This value is determined by the method described in the examples.
[0016] The Mw / Mn (breadth of molecular weight distribution) of the aqueous polymer as determined by GPC-RI may be 4.0 or more, 5.0 or more, 7.5 or more, 10 or more, or 12.5 or more, preferably 4.0 or more, and may be 25 or less, 15 or less, 10 or less, 7.0 or less, or 5 or less, preferably 7.0 or less, more preferably 5.0 or less. This value is determined by the method described in the Examples. When the Mw / Mn measured by GPC-RI is within the above range (particularly 4.0 or more and 15 or less), expansion after charge-discharge cycles is suitably suppressed.
[0017] (pH) The pH (25°C) of the aqueous solution obtained when a water-based polymer is dissolved in water at a concentration of 2% by mass may be 5.0 or more, 5.5 or more, 6.0 or more, 6.5 or more, 6.8 or more, 7.0 or more, 7.5 or more, 8.0 or more, 8.5 or more, or 9.0 or more, preferably 5.5 or more, more preferably 6.5 or more, and may be 10 or less, 9.5 or less, 9.0 or less, 8.5 or less, 8.0 or less, 7.5 or less, or 7.0 or less, preferably 8.5 or less, more preferably 7.0 or less. This value is determined by the method described in the Examples. Ion-exchanged water is usually used as the water. When the pH is at least the lower limit (particularly 7.0 or higher (neutral to alkaline)), the flexibility of the polymer component including the aqueous polymer is increased, and high compliance with the expansion and contraction of the active material can be exhibited. A pH of at least the lower limit mentioned above can improve the dispersibility of the slurry. A pH of at least 5.0 and at most 7.5 mentioned above improves the viscosity stability of the aqueous polymer solution, which is preferable from the viewpoint of productivity in battery production. When the pH is equal to or lower than the upper limit (particularly, pH 7.5 or lower), the hydrogen bonding interaction of the acidic groups becomes strong, and the viscosity stability can be improved.
[0018] (viscosity) The viscosity (25°C) of the aqueous solution obtained when a water-based polymer is dissolved in water at a concentration of 2% by mass may be 1 mPa·s or more, 5 mPa·s or more, 10 mPa·s or more, 25 mPa·s or more, or 50 mPa·s or more, preferably 3.0 mPa·s or more, more preferably 15.0 mPa·s or more, and may be 2000 mPa·s or less, 1000 mPa·s or less, 500 mPa·s or less, 100 mPa·s or less, 50 mPa·s or less, or 25 mPa·s or less, preferably 50 mPa·s or less, more preferably 30 mPa·s or less. This value is determined by the method described in the Examples. Ion-exchanged water is usually used as the water. By setting the viscosity within the above range (e.g., 3 mPa s or more and 200 mPa s or less), the dispersibility of the active material and binder in the slurry is improved, a binder film is well formed on the active material, and expansion of the electrodes (particularly the initial expansion rate) when the battery is formed can be suppressed. Similarly, by setting the viscosity within the above range, the dispersibility of the slurry can be improved.
[0019] (conductivity) The conductivity of the aqueous solution obtained when the aqueous polymer is dissolved in water at a concentration of 2% by mass is 3.3 mS / cm or less. When the conductivity is within the above range, foaming during kneading of the active material and the like can be suppressed. The conductivity is preferably 3.0 mS / cm or less. Also, it is preferably 0.5 mS / cm or more, and more preferably 2.0 mS / cm or more. It is believed that by ensuring that the conductivity is within the above range, the concentration of the ionic component does not become too high, the surfactant properties of the ionic component are suppressed, and foaming can be suppressed. This value can be determined by the method described in the Examples. Ion-exchanged water is usually used as the water.
[0020] (specific resistance) The resistivity of the aqueous solution obtained by dissolving a water-based polymer in water at a concentration of 2% by mass may be 100 Ω·cm or more, 200 Ω·cm or more, 300 Ω·cm or more, 400 Ω·cm or more, 600 Ω·cm or more, 800 Ω·cm or more, or 1000 Ω·cm or more, preferably 300 Ω·cm or more, more preferably 350 Ω·cm or more, and may be 2000 Ω·cm or less, 1500 Ω·cm or less, 1000 Ω·cm or less, 800 Ω·cm or less, or 600 Ω·cm or less, preferably 1500 Ω·cm or less, more preferably 800 Ω·cm or less. This value is determined by the method described in the Examples. Ion-exchanged water is usually used as the water.
[0021] (Turbidity) The turbidity of the aqueous solution obtained when a water-based polymer is dissolved in water at a concentration of 2% by mass may be 0.1 or more, 0.3 or more, 1.0 or more, 5.0 or more, or 10 or more, preferably 0.3 or more, and may be 50 or less, 25 or less, 5.0 or less, 2.5 or less, or 1.0 or less, preferably 1.0 or less, more preferably 0.5 or less. This value is determined by the method described in the Examples. Ion-exchanged water is usually used as the water.
[0022] [Water-based polymer structure, etc.] The aqueous polymer can be obtained by polymerizing one or more types of monomers. The aqueous polymer can be a vinyl polymer. The vinyl polymer is a polymer obtained by polymerizing a vinyl monomer. The vinyl monomer can be any compound having a polymerizable carbon-carbon double bond (ethylenically unsaturated double bond) (>C=C<), and can be a monomer containing a vinyl group, a vinylene group, a vinylidene group, an acryloyl group, a methacryloyl group, or a derivative group thereof. The aqueous polymer can be a (meth)acrylic polymer containing a repeating unit derived from a monomer having an acryloyl group or a methacryloyl group.
[0023] The water-based polymer may be a random polymer or a block polymer, for example a random polymer.
[0024] (hydrophilic repeating unit) The aqueous polymer has a hydrophilic repeating unit. The hydrophilic repeating unit contains a hydrophilic group. Examples of the hydrophilic group include anionic groups such as a carboxyl group, a sulfonic acid group, a phosphate group, and a nitrate group; cationic groups such as an amino group; a hydroxyl group; a polyoxyethylene group (e.g., having a repeating number of 2 or more, 5 or more, or 10 or more); and nonionic hydrophilic groups such as an amide group. The anionic group and the cationic group may be in a free acid / base state, or may be partially or completely in the form of a salt.
[0025] In this specification, when an anionic group or a cationic group or a structure containing such a group (for example, a repeating unit containing an acidic functional group) is mentioned, it is intended to encompass not only the anionic group and the cationic group but also salts thereof, unless explicitly stated otherwise.
[0026] Examples of counter cations of anionic groups include metal ions, preferably light metal ions, more preferably lithium ions, sodium ions, or potassium ions, and particularly lithium ions or sodium ions. The counter cations may be monovalent to trivalent, monovalent to divalent, or monovalent, preferably monovalent. Examples of counter anions of cationic groups include inorganic acid ions such as phosphate ions, nitrate ions, and sulfate ions, and halide ions. The aqueous polymer may be anionic, or may not have a cationic group.
[0027] The aqueous polymer of the present disclosure preferably has a repeating unit having an acidic functional group as a hydrophilic repeating unit. The acidic functional group may be an anionic group such as a carboxy group, a sulfonic acid group, a phosphate group, or a nitrate group, preferably a carboxy group or a sulfonic acid group, and more preferably a carboxy group. These groups may exist in the form of a salt, and in this case, the above-mentioned metal ions are suitable as counter cations. Examples of repeating units having an acidic functional group include repeating units derived from (meth)acrylic acid, maleic acid, vinylsulfonic acid, or (meth)allylsulfonic acid.
[0028] The aqueous polymer of the present disclosure may have a nonionic hydrophilic repeating unit, examples of which include (meth)acrylamide, hydroxyalkyl (meth)acrylate, hydroxyalkyl (meth)acrylamide, polyoxyalkylene (meth)acrylate, polyoxyalkylene (meth)acrylamide, and vinyl alcohol.
[0029] Examples of suitable hydrophilic repeating units include: formula: -[CH2-C(R 1 )(C(=O)R 2 )]- [In the formula, R 1 is a hydrogen atom or CH3, R 2 NH2, OM (M is a hydrogen atom or a counter cation), O(CH2) n OH, NH(CH2) n OH (wherein each n is independently 1 or more and 6 or less). A repeating unit (1) represented by the formula: formula: -[CH2-CH(OH)]- Repeating unit (2) Examples of repeating units include those selected from the following:
[0030] In the repeating unit (1), R 1 is preferably a hydrogen atom.
[0031] In the repeating unit (1), R 2 In the formula, M may be a metal cation, preferably a light metal cation, more preferably a lithium ion, a sodium ion, or a potassium ion, and particularly preferably a lithium ion or a sodium ion. M may be monovalent to trivalent, monovalent to divalent, or monovalent, and is preferably monovalent.
[0032] In the repeating unit (1), R 2 In the formula, n may be 6 or less, 5 or less, 4 or less, 3 or less, or 2 or less, preferably 3 or less, and especially 2 or less.
[0033] The repeating unit (1) is R 2 It is preferable that the repeating unit (1) contains at least one of an NH group, an OH group, an ONa group, and an OLi group. 2 is only NH2 group, R 2 is only OH group, R 2 is only ONa group, or R 2The repeating unit (1) may be only an OLi group. 2 may contain ONa groups and OH groups, and R 2 may contain OLi groups and OH groups, may contain NH2 groups and OH groups, may contain NH2 groups, OH groups and ONa groups, may contain NH2 groups, OH groups, ONa groups and OLi groups, or R 2 may include those with OH groups, OLi groups, and NH2 groups.
[0034] The repeating unit (2) can be introduced, for example, by polymerizing a vinyl ester (vinyl acetate, vinyl propionate, etc., particularly vinyl acetate) and then saponifying it, or by reacting it with a polymer having a vinyl alcohol-based repeating unit (for example, polyvinyl alcohol).
[0035] The aqueous polymer preferably contains a repeating unit derived from (meth)acrylic acid (particularly a sodium salt or lithium salt).
[0036] (non-hydrophilic repeating unit) The aqueous polymer may have a non-hydrophilic repeating unit. The non-hydrophilic repeating unit does not have a hydrophilic group (e.g., an ionic group). Examples of the non-hydrophilic repeating unit include repeating units derived from (meth)acrylonitrile, (meth)acrylic acid alkyl ester, vinyl chloride, etc.
[0037] [Composition of water-based polymers] The amount of hydrophilic repeating units in the aqueous polymer may be 20 mol% or more, 40 mol% or more, 60 mol% or more, 80 mol% or more, or 90 mol% or more, preferably 90 mol% or more, more preferably 95 mol% or more, and may be 100 mol% or less, 90 mol% or less, 80 mol% or less, or 70 mol% or less.
[0038] The amount of the acidic functional group-containing repeating unit in the aqueous polymer may be 0.8 mol% or more, 3 mol% or more, 5 mol% or more, 10 mol% or more, 20 mol% or more, 40 mol% or more, 60 mol% or more, 80 mol% or more, or 90 mol% or more, preferably 0.8 mol% or more, more preferably 15 mol% or more, and may be 90 mol% or less, 80 mol% or less, or 70 mol% or less, preferably 40 mol% or less, more preferably 30 mol% or less.
[0039] The amount of nonionic hydrophilic repeating units in the aqueous polymer may be 20 mol% or more, 40 mol% or more, 60 mol% or more, 80 mol% or more, or 90 mol% or more, preferably 60 mol% or more, more preferably 70 mol% or more, and may be 100 mol% or less, 90 mol% or less, 80 mol% or less, or 70 mol% or less, preferably 100 mol% or less, more preferably 80 mol% or less.
[0040] The amount of non-hydrophilic repeating units in the aqueous polymer may be 0 mol% or more, 1 mol% or more, 3 mol% or more, 5 mol% or more, 20 mol% or more, 40 mol% or more, or 50 mol% or more, or 70 mol% or less, 50 mol% or less, 40 mol% or less, 30 mol% or less, 20 mol% or less, 10 mol% or less, 5 mol% or less, or 3 mol% or less, preferably 50 mol% or less, more preferably 10 mol% or less. The aqueous polymer may not contain non-hydrophilic repeating units.
[0041] The amount of nonionic repeating units in the aqueous polymer may be 20 mol% or more, 40 mol% or more, 60 mol% or more, 80 mol% or more, or 90 mol% or more, preferably 60 mol% or more, more preferably 70 mol% or more, and may be 100 mol% or less, 90 mol% or less, 80 mol% or less, or 70 mol% or less, preferably 100 mol% or less, more preferably 80 mol% or less.
[0042] The total amount of repeating units (1) and repeating units (2) in the aqueous polymer may be 40 mol% or more, 60 mol% or more, 80 mol% or more, or 90 mol% or more, preferably 50 mol% or more, more preferably 60 mol% or more, and may be 100 mol% or less, 90 mol% or less, 80 mol% or less, or 70 mol% or less, preferably 100 mol% or less, more preferably 90 mol% or less.
[0043] The amount of repeating unit (1) in the aqueous polymer may be 20 mol% or more, 40 mol% or more, 60 mol% or more, 80 mol% or more, or 90 mol% or more, preferably 40 mol% or more, more preferably 60 mol% or more, and may be 100 mol% or less, 90 mol% or less, 80 mol% or less, or 70 mol% or less, preferably 100 mol% or less, more preferably 90 mol% or less.
[0044] The amount of the repeating unit (2) in the aqueous polymer may be 20 mol% or more, or 40 mol% or more, or 100 mol% or less, 90 mol% or less, 80 mol% or less, or 70 mol% or less, preferably 50 mol% or less, more preferably 10 mol% or less. The aqueous polymer may not contain the repeating unit (2).
[0045] A repeating unit derived from (meth)acrylamide (R 2 The amount of NH2) in the aqueous polymer may be 20 mol% or more, 40 mol% or more, 60 mol% or more, 80 mol% or more, or 90 mol% or more, preferably 30 mol% or more, more preferably 50 mol% or more, and may be 100 mol% or less, 90 mol% or less, 80 mol% or less, or 70 mol% or less, preferably 100 mol% or less, more preferably 80 mol% or less.
[0046] A repeating unit derived from (meth)acrylic acid or a salt thereof (R 2The amount of OM) in the aqueous polymer may be 20 mol% or more, 40 mol% or more, 60 mol% or more, 80 mol% or more, or 90 mol% or more, preferably 20 mol% or more, and may be 100 mol% or less, 90 mol% or less, 80 mol% or less, or 70 mol% or less, preferably 40 mol% or less, more preferably 30 mol% or less.
[0047] [Method of manufacturing water-based polymers] The aqueous polymer can be produced by any known method for producing copolymers. Preferably, it can be synthesized by aqueous radical polymerization. Specifically, a radical polymerization initiator and, if necessary, a chain transfer agent are added to a monomer mixture, and the resulting mixture is stirred while undergoing a polymerization reaction at a reaction temperature of approximately 50 to 100°C (e.g., 60 to 70°C). The reaction time is not particularly limited and may be approximately 1 to 10 hours. After the reaction time has elapsed, the mixture may be further aged for 15 minutes to 2 hours (e.g., 30 minutes to 1.5 hours) at a temperature 3°C to 10°C above the reaction temperature (e.g., 4°C to 8°C). Aging can reduce the amount of unreacted monomer. When the aqueous polymer contains vinyl alcohol units, the saponification conditions may be set with reference to, for example, the method for producing a copolymer of vinyl alcohol and an alkali metal neutralized product of an ethylenically unsaturated carboxylic acid, as described in WO2017 / 168947.
[0048] The monomer concentration at the start of polymerization may be 5% by mass or more, 10% by mass or more, 15% by mass or more, 20% by mass or more, or 25% by mass or more, and may be 30% by mass or less, 25% by mass or less, 20% by mass or less, 15% by mass or less, or 10% by mass or less, and in one aspect, is 10% by mass or more and 11% by mass or less, 15% by mass or more and 17% by mass or less, or 11% by mass or more and 13% by mass or less.
[0049] Various known initiators can be used without particular limitation. Examples of radical polymerization initiators include persulfates such as potassium persulfate and ammonium persulfate; redox-based polymerization initiators that combine such persulfates with reducing agents such as sodium hydrogen sulfite; and azo-based initiators such as 2,2'-azobis-2-amidinopropane dihydrochloride (NC-32) (V-50) and 2,2'-azobis[2-(2-imidazolin-2-yl)propane] dihydrochloride (VA-044). The amount of radical polymerization initiator used is preferably about 0.05 to 2% by mass, more preferably about 0.1 to 1.5% by mass, based on 100% by mass of the monomers that serve as raw materials for the aqueous polymer of the present disclosure.
[0050] The polymerization conditions can be appropriately set in accordance with the structure of the target compound.
[0051] [Amount of water-based polymer] The amount of the aqueous polymer in the secondary battery binder may be 25% by mass or more, 50% by mass or more, 75% by mass or more, 95% by mass or more, or 99% by mass or more, preferably 50% by mass or more, more preferably 75% by mass or more, and may be 99% by mass or less, 90% by mass or less, 80% by mass or less, or 70% by mass or less. The secondary battery binder may be the aqueous polymer alone.
[0052] [Other binder components] The secondary battery binder of the present disclosure may contain other binder components in addition to the aqueous polymer. Examples of other components include known binder resins, such as styrene-butadiene rubber (SBR), styrene-ethylene-butylene-styrene copolymer (SEBS), polyimide (PI), polyamide, and ethylene-vinyl acetate copolymer (EVA).
[0053] The amount of other binder components in the secondary battery binder may be 0% by mass or more, 0.5% by mass or more, 5% by mass or more, 10% by mass or more, or 25% by mass or more, and may be 50% by mass or less, 40% by mass or less, 30% by mass or less, 20% by mass or less, 10% by mass or less, or 5% by mass or less, for example, 3% by mass or less.
[0054] <Slurry> The slurry of the present disclosure contains the secondary battery binder and water, and may further contain an electrode active material. The slurry may also contain battery particles such as a conductive additive and other liquid media, and is typically an electrode slurry containing an electrode active material. The slurry may be a positive electrode slurry containing a positive electrode active material or a negative electrode slurry containing a negative electrode active material.
[0055] [Liquid medium] The slurry contains a liquid medium (aqueous medium) containing water. The liquid medium is preferably water alone from the viewpoint of environmental concerns, but may also contain an organic solvent, such as alcohol (ethanol, methanol, isopropyl alcohol, etc.). The amount of the organic solvent in the liquid medium may be 30% by mass or less, 20% by mass or less, 10% by mass or less, 5% by mass or less, or 3% by mass or less, and is preferably 10% by mass or less.
[0056] [Amount of liquid medium] The amount of the liquid medium may be 20% by mass or more, 40% by mass or more, 60% by mass or more, 80% by mass or more, or 100% by mass or more, and preferably 30% by mass or more, relative to 100% by mass of the slurry solids content (total amount of secondary battery binder, active material, and conductive additive), and may be 200% by mass or less, 100% by mass or less, 80% by mass or less, 60% by mass or less, 50% by mass or less, or 40% by mass or less, and is preferably 160% by mass or less, and more preferably 150% by mass or less.
[0057] [Secondary battery binder] The slurry contains a secondary battery binder, the types of which are described above.
[0058] [Amount of secondary battery binder] The amount of the secondary battery binder in the slurry solids (total amount of the secondary battery binder, active material, and conductive additive) may be 0.1% by mass or more, 0.3% by mass or more, 0.5% by mass or more, 1.0% by mass or more, 1.5% by mass or more, 3.0% by mass or more, or 5.0% by mass or more, preferably 0.3% by mass or more, and may be 10% by mass or less, 7.5% by mass or less, 5.0% by mass or less, 3.0% by mass or less, 1.0% by mass or less, 0.5% by mass or less, preferably 3.0% by mass or less, more preferably 1.0% by mass or less. A content equal to or greater than the above lower limit is preferred from the viewpoint of effectively exhibiting the effects of the secondary battery binder. A content equal to or less than the above upper limit is preferred from the viewpoint of achieving a high-capacity battery.
[0059] [Active material] The active material is an electrode active material, and may be a negative electrode active material or a positive electrode active material. When the active material is a negative electrode active material, it may contain, for example, a carbon material, and may also contain, for example, at least one of silicon and silicon oxide. Specific examples of the negative electrode active material and the positive electrode active material are shown below.
[0060] (Negative electrode active material) The negative electrode active material is not particularly limited, and any negative electrode active material commonly used in the art may be used.
[0061] Carbon materials such as crystalline carbon and amorphous carbon may be used as the negative electrode active material. Examples of crystalline carbon include graphite, such as natural graphite or artificial graphite, which may be amorphous, plate-like, flake-like, spherical, or fibrous. Examples of amorphous carbon include soft carbon (easily graphitizable carbon) or hard carbon (non-graphitizable carbon), mesophase pitch carbide, and calcined coke.
[0062] As the negative electrode active material, materials capable of storing and releasing a large amount of lithium ions such as silicon (Si), tin (Sn), titanium (Ti), etc. may be used. These materials can be used in the form of simple substances, alloys, compounds, solid solutions, or composite active materials including silicon-containing materials, tin-containing materials, and titanium-containing materials. Examples of silicon-containing materials include Si, Si / C, SiOx (0.05 < x < 1.95), or alloys, compounds, or solid solutions in which part of Si is substituted with at least one element selected from the group consisting of B, Mg, Ni, Ti, Mo, Co, Ca, Cr, Cu, Fe, Mn, Nb, Ta, V, W, Zn, C, N, and Sn. The silicon-containing material may be a silicon oxide. Examples of tin-containing materials include Ni2Sn4, Mg2Sn, SnOx (0 < x < 2), SnO2, SnSiO3, LiSnO, etc. Examples of titanium-containing materials include lithium titanates such as Li2TiO3, Li4Ti5O 12 and niobium titanium composite compounds, etc. These materials can be used alone or in combination of two or more. Among these, silicon or silicon oxide is preferable, and for example, it may be a simple substance of Si or silicon oxide.
[0063] As the negative electrode active material, it is more preferable to use a composite obtained by mixing a silicon or silicon oxide as the first negative electrode active material and a carbon material as the second negative electrode active material as the negative electrode active material. As the carbon material, any carbon material generally used in secondary batteries, particularly non-aqueous electrolyte secondary batteries, can be used, and crystalline carbon, amorphous carbon, or both of them may be used. Examples of crystalline carbon include those described above.
[0064] The method for manufacturing the negative electrode active material is not particularly limited. When manufacturing an active material composite in which the first negative electrode active material and the second negative electrode active material are mixed, a method in which both are uniformly dispersed may be adopted. For example, a method of mixing the first negative electrode active material and the second negative electrode active material with a ball mill can be mentioned.
[0065] (Positive electrode active material) The cathode active material is not particularly limited, and cathode active materials used in this technical field may be used.
[0066] The cathode active material may be a lithium-containing composite oxide. Examples of the lithium-containing composite oxide include, for example, LiMnO2, LiFeO2, LiCoO2, LiMn2O4, Li2FeSiO4, LiNi 1 / 3 Co 1 / 3 Mn 1 / 3 O2, LiNi 0.5 Co 0.2 Mn 0.3 O2, LiNi 0.6 Co 0.2 Mn 0.2 O2, LiNi 0.8 Co 0.1 Mn 0.1 O2, LiNi x Co y M z O2 (where 0 ≤ x < 1, 0 ≤ y < 1, 0 ≤ z < 1, and x + y + z = 1, and M is at least one element selected from the group consisting of Mn, V, Mg, Mo, Nb, Fe, Cu, and Al), LiMn (1-w) Fe w PO4 (where 0 < w < 1), LiFePO4, and the like.
[0067] [Amount of active material] The amount of the active material may be 35% by mass or more, 45% by mass or more, 55% by mass or more, 65% by mass or more, 75% by mass or more, or 95% by mass or more in the slurry solid content (total amount of the secondary battery binder, active material, and conductive assistant), preferably 55% by mass or more, more preferably 75% by mass or more, and may also be 99% by mass or less, 95% by mass or less, 90% by mass or less, or 85% by mass or less.
[0068] [Conductive assistant] As the conductive aid, conductive aids used in the present technical field can be used. The conductive aid is not particularly limited as long as it has conductivity, but carbon powder is preferred. Examples of carbon powder include commonly used carbon materials such as acetylene black (AB), ketjen black (KB), graphite, carbon fiber, carbon tube, graphene, amorphous carbon, hard carbon, soft carbon, glassy carbon, carbon nanofiber, and carbon nanotube. These may be used alone or in combination of two or more.
[0069] [Amount of conductive additive] The amount of the conductive additive may be 0.1 mass% or more, 0.5 mass% or more, 1.0 mass% or more, 3.0 mass% or more, or 5.0 mass% or more, and is preferably 0.3 mass% or more, and may be 10 mass% or less, 5.0 mass% or less, 3.0 mass% or less, or 1.0 mass% or less, and is preferably 3.0 mass% or less, and more preferably 1.0 mass% or less, based on the slurry solids content (total amount of secondary battery binder, active material, and conductive additive).
[0070] [Dispersion aid] The slurry of the present disclosure may further contain a dispersing aid. Examples of the dispersing aid include an organic acid containing at least one substituent selected from the group consisting of a hydroxy group, an amino group, and an imino group, and a carboxy group, or humic acid. Examples of organic acids containing a hydroxy group and a carboxy group include lactic acid, tartaric acid, citric acid, malic acid, glycolic acid, tartronic acid, glucuronic acid, and humic acid. Examples of organic acids containing an amino group and a carboxy group include glycine, alanine, phenylalanine, 4-aminobutyric acid, leucine, isoleucine, lysine, glutamic acid, aspartic acid, glutamine, asparagine, histidine, tryptophan, cysteine, and polymers thereof. Examples of organic acids containing an imino group and a carboxy group include proline, 3-hydroxyproline, 4-hydroxyproline, and pipecolic acid. Among these, glucuronic acid, humic acid, glycine, polyglycine, aspartic acid, and glutamic acid are preferred from the viewpoint of availability.
[0071] [Amount of dispersing agent] The amount of the dispersion aid may be 0.1 mass% or more, 0.5 mass% or more, 1.0 mass% or more, 1.5 mass% or more, or 3.0 mass% or more, and is preferably 0.3 mass% or more, and may be 5.0 mass% or less, 3.0 mass% or less, or 1.0 mass% or less, and is preferably 3.0 mass% or less, and more preferably 1.0 mass% or less, based on the slurry solids content (total amount of secondary battery binder, active material, and conductive aid).
[0072] [Other ingredients] The slurries of the present disclosure may also contain other ingredients, such as conventional additives.
[0073] [Amount of other ingredients] The amount of other components (individual amount or total amount) of the slurry solids (total amount of secondary battery binder, active material, and conductive additive) may be 0.1 mass% or more, 0.5 mass% or more, 1.0 mass% or more, 3.0 mass% or more, or 5.0 mass% or more, and is preferably 0.3 mass% or more, and may be 10 mass% or less, 5.0 mass% or less, 3.0 mass% or less, 1.0 mass% or less, 0.5 mass% or less, preferably 3.0 mass% or less, and more preferably 1.0 mass% or less.
[0074] [Method for producing slurry] The method for producing the slurry of the present disclosure is not particularly limited, and the slurry is produced by mixing the components. For example, a secondary battery binder, a liquid medium, an active material, and optionally, a conductive additive, a dispersing agent, etc., are mixed to form a slurry. The timing of adding the liquid medium is not particularly limited. The secondary battery binder of the present disclosure may be dispersed or dissolved in the liquid medium in advance, and then the active material and other components may be mixed to form a slurry. Alternatively, the active material, the secondary battery binder of the present disclosure, and optionally, a conductive additive, a dispersing agent, etc. may be mixed in a solid state, and then the liquid medium may be added to form a paste-like slurry.
[0075] <Electrode> The electrode of the present disclosure is an electrode for a secondary battery, and includes the aforementioned secondary battery binder (or a component derived from the secondary battery binder) of the present disclosure and an active material. That is, the electrode of the present disclosure can be produced, for example, by applying the aforementioned slurry of the present disclosure to a current collector and drying it. Therefore, the electrode may include a heat-dried product of the slurry. The secondary battery binder may be decomposed or reacted by heat drying and converted into a component derived from the secondary battery binder.
[0076] The temperature during heat drying may be 50°C or higher, 70°C or higher, 90°C or higher, 110°C or higher, or 130°C or higher, preferably 70°C or higher, and 300°C or lower, 250°C or lower, 200°C or lower, 175°C or lower, 150°C or lower, or 125°C or lower, preferably 150°C or lower. Heat drying may be carried out under reduced pressure (for example, 0.05 MPa or lower, 0.03 MPa or lower, or 0.01 MPa or lower). The heat drying time may be 1 hour or longer, 3 hours or longer, 6 hours or longer, 10 hours or longer, or 15 hours or longer, preferably 6 hours or longer, and may be 72 hours or shorter, 48 hours or shorter, 36 hours or shorter, 24 hours or shorter, or 18 hours or shorter, preferably 24 hours or shorter.
[0077] When the electrode of the present disclosure is a negative electrode, the material constituting the current collector may be, for example, a conductive substance such as C, Cu, Ni, Fe, V, Nb, Ti, Cr, Mo, Ru, Rh, Ta, W, Os, Ir, Pt, Au, or Al, or an alloy containing two or more of these conductive substances (e.g., stainless steel). The current collector may also be made of Fe plated with Cu. From the viewpoints of high electrical conductivity, stability in the electrolyte, and oxidation resistance, Cu, Ni, stainless steel, etc. are preferred as materials for the negative electrode current collector, and Cu or Ni is more preferred from the viewpoint of material cost.
[0078] When the electrode of the present disclosure is a positive electrode, the material constituting the current collector may be, for example, a conductive substance such as C, Ti, Cr, Mo, Ru, Rh, Ta, W, Os, Ir, Pt, Au, or Al, or an alloy containing two or more of these conductive substances (for example, stainless steel). From the viewpoints of high electrical conductivity, stability in the electrolyte, and oxidation resistance, C, Al, stainless steel, etc. are preferred as the material for the positive electrode current collector, and Al is more preferred from the viewpoint of material cost.
[0079] The shape of the current collector is not particularly limited, and for example, a foil-like substrate, a three-dimensional substrate, etc. Using a three-dimensional substrate (foam metal, mesh, woven fabric, nonwoven fabric, expanded fabric, etc.) tends to improve high-rate charge / discharge characteristics.
[0080] <Battery> The secondary battery of the present disclosure includes the aforementioned secondary battery electrode of the present disclosure. The secondary battery of the present disclosure may include the secondary battery electrode of the present disclosure as either one or both of the positive electrode and the negative electrode. The secondary battery of the present disclosure is fabricated using the secondary battery electrode of the present disclosure (i.e., using the binder of the present disclosure) by a method used in the technical field.
[0081] The secondary battery of the present disclosure is preferably a nonaqueous electrolyte secondary battery, and particularly preferably a lithium ion secondary battery. Because lithium ion secondary batteries must contain lithium ions, a lithium salt is preferred as the electrolyte. Examples of the lithium salt include lithium hexafluorophosphate, lithium perchlorate, lithium tetrafluoroborate, lithium trifluoromethanesulfonate, and lithium trifluoromethanesulfonyl imide. The electrolyte may be used alone or in combination of two or more.
[0082] Examples of the electrolyte solution that can be used include propylene carbonate, ethylene carbonate, dimethyl carbonate, diethyl carbonate, and γ-butyrolactone. The electrolyte solution can be used alone or in combination of two or more. Propylene carbonate alone, a mixture of ethylene carbonate and diethyl carbonate, or γ-butyrolactone alone are particularly preferred. The mixing ratio of the above-mentioned mixture of ethylene carbonate and diethyl carbonate can be adjusted as long as one of the components accounts for 10 to 90% by volume.
[0083] Other configurations of the secondary battery may also be the same as those of known secondary batteries.
[0084] Although the embodiments have been described above, it will be understood that various changes in form and details can be made without departing from the spirit and scope of the claims. [Example]
[0085] The present disclosure will be described in detail below with reference to examples, but the present disclosure is not limited to these examples.
[0086] The abbreviations have the following meanings: AN: Acrylonitrile AA: acrylic acid AAm: acrylamide 2-HEA: 2-hydroxyethyl acrylate MAS: methallylsulfonic acid VA: vinyl alcohol
[0087] <Preparation of polymer> The water-based polymer was prepared according to the procedure described below.
[0088] Example 1 A sealable vial having an internal volume of 500 ml was charged with 35.3 g (0.49 mol) of acrylamide, 0.2 g (0.001 mol) of sodium methallylsulfonate, 35.3 g (0.49 mol) of acrylic acid, 48.6 g (0.42 mol) of 2-hydroxyethyl acrylate, 1.36 g of 2,2'-azobis[2-(2-imidazolin-2-yl)propane] dihydrochloride (Fujifilm Wako Pure Chemical Industries, Ltd. product name "VA-044"), and 210.0 g of ion-exchanged water, and the resulting mixture was mixed to prepare an aqueous monomer solution, which was then deoxygenated. Separately, a 2 L reactor equipped with a stirrer, thermometer, N2 gas inlet, reflux condenser, and dropping funnel was charged with 858.3 g of ion-exchanged water. N2 gas was blown into the reactor to deoxygenate the system, and the internal temperature was raised to 68 °C. Subsequently, the deoxygenated monomer aqueous solution was added dropwise to the reactor over 3 hours using the dropping funnel while stirring. After the addition, the internal temperature was maintained at 68 °C for 2 hours. The mixture was further stirred at 73 °C for 1 hour, cooled to 30 °C, and 30.3 g of 48 wt% NaOH aqueous solution was added until the pH reached 5.5, yielding an aqueous solution containing a water-based polymer. The repeating unit composition of the water-based polymer was AAm / AA(H / Na) / 2-HEA / MAS(H / Na) = 35 / 35 / 29.9 / 0.1 (molar ratio).
[0089] Example 2 A sealable vial with an internal volume of 500 ml was charged with 126.6 g (1.78 mol) of acrylamide, 2.9 g (0.02 mol) of sodium methallylsulfonate, 1.45 g of 2,2'-azobis[2-(2-imidazolin-2-yl)propane] dihydrochloride (Fujifilm Wako Pure Chemical Industries, Ltd. product name "VA-044"), and 250.0 g of ion-exchanged water, and the resulting mixture was mixed to prepare an aqueous monomer solution, which was then deoxygenated. Separately, a 2 L reactor equipped with a stirrer, thermometer, N2 gas inlet, reflux condenser, and dropping funnel was charged with 831.0 g of ion-exchanged water. N2 gas was blown in to deoxygenate the system, and the internal temperature was raised to 68 °C. The prepared monomer aqueous solution was then added dropwise to the reactor using the dropping funnel over 3 hours while stirring. After the addition, the mixture was maintained at the same temperature for 1.5 hours. Next, 1.45 g of VA-044 and 20 g of ion-exchanged water were added, and the mixture was stirred at the same temperature for 1 hour. The mixture was further stirred at 73 °C for 1 hour, yielding an aqueous solution containing a water-based polymer. The repeating unit composition of the water-based polymer was AAm / MAS (H / Na) = 99 / 1 (molar ratio).
[0090] Example 3 A monomer aqueous solution was prepared by adding 23.8 g (0.33 mol) of acrylic acid, 22.6 g (0.19 mol) of 2-hydroxyethyl acrylate, 69.3 g (0.97 mol) of acrylamide, 0.608 g of ammonium persulfate, and 225.0 g of ion-exchanged water to a sealable vial having an internal volume of 500 ml and mixing them. Separately, a 1 L reactor equipped with a stirrer, thermometer, N2 gas inlet tube, reflux condenser, and dropping funnel was charged with 607.6 g of ion-exchanged water. N2 gas was blown into the system to deoxygenate it, and the internal temperature was raised to 75 °C. Subsequently, the prepared monomer aqueous solution was added dropwise to the reactor using the dropping funnel over 3 hours while stirring. After the addition, the mixture was maintained for 2 hours. The internal temperature was then raised to 80 °C and maintained for 1 hour. The internal temperature was cooled to 30 °C, and 70.57 g (0.30 mol) of a 5 mol / L aqueous sodium hydroxide solution was added to adjust the pH to 6.5, yielding an aqueous solution containing a water-based polymer. The repeating unit composition of the water-based polymer was 2-HEA / AA(H / Na) / AAm = 13 / 22 / 65 (molar ratio).
[0091] Comparative Example 1 22.3 g (0.31 mol) of acrylic acid, 30.2 g (0.57 mol) of acrylonitrile, 8.5 g (0.12 mol) of acrylamide, 0.405 g of potassium persulfate, and 50 g of ion-exchanged water were added to a sealable vial having an internal volume of 500 ml and mixed to prepare an aqueous monomer solution. Separately, 500.0 g of ion-exchanged water was charged into a 1 L reactor equipped with a stirrer, thermometer, N2 gas inlet, reflux condenser, and dropping funnel. N2 gas was blown into the system to deoxygenate it, and the internal temperature was raised to 75 °C. The prepared monomer aqueous solution was then added dropwise to the reactor over 3 hours using the dropping funnel while stirring. After the addition, the internal temperature was maintained at 80 °C for 1 hour. The internal temperature was then cooled to below 40 °C, and 69.5 g (0.31 mol) of a 5 mol / L lithium hydroxide aqueous solution was added to adjust the pH to 7.0, yielding an aqueous solution containing a water-based polymer. The repeating unit composition of the water-based polymer was AN / AA(H / Li) / AAm = 57 / 31 / 12 (molar ratio).
[0092] Comparative Example 2 103.6 g (1.20 mol) of methyl acrylate and 156.0 g (1.81 mol) of vinyl acetate were added to a beaker having an internal volume of 500 ml and mixed to prepare an aqueous monomer solution. Separately, a 2 L reactor equipped with a stirrer, thermometer, N2 gas inlet tube, reflux condenser, and dropping funnel was charged with 768 g of ion-exchanged water and 12 g of anhydrous sodium sulfate, and N2 gas was blown in to deoxygenate the system. Subsequently, 1 g of partially saponified polyvinyl alcohol (saponification degree 88%) and 1.2 g of lauryl peroxide were added, and the internal temperature was raised to 60°C. Subsequently, the prepared monomer aqueous solution was added dropwise to the reactor over 4 hours using the dropping funnel while stirring. After the addition, the internal temperature was maintained at 65°C for 2 hours, and the precipitated solid was filtered. The obtained solid, 450 g of methanol, 420 g of ion-exchanged water, 140 g of sodium hydroxide, and 0.52 g of hydrazine were charged to the same reactor as above, and the mixture was stirred at 35°C for 3 hours. Subsequently, the internal temperature was cooled to 30°C, acetic acid was added to adjust the pH to 7.5, and the solid content was filtered off. The solid content was washed with methanol and dried under reduced pressure at 60°C for 8 hours to obtain an aqueous polymer. The composition of the repeating units of the aqueous polymer was VA / AA (H / Na) = 60 / 40 (molar ratio).
[0093] <Measurement of polymer properties> The properties of the aqueous polymers obtained in the above Examples and Comparative Examples were measured. The test methods are as follows. All aqueous polymer solutions used in each test method were prepared by dissolving aqueous polymers in ion-exchanged water.
[0094] [Molecular weight, etc.] The aqueous polymers obtained in the above examples and comparative examples were measured for Mw (weight average molecular weight) and Mw / Mn (breadth of molecular weight distribution) in terms of standard polyethylene glycol / polyethylene oxide using GPC-RI under the following detailed conditions. [GPC-RI] GPC equipment: HLC-8320GPC (Tosoh Corporation) Column: TSK GMPW XL (Tosoh Corporation) Carrier: 0.1M sodium nitrate Column temperature: 40℃ Flow rate: 1.0mL / min Injection volume: 200μL Concentration: 0.5mg / mL
[0095] [pH] A polymer aqueous solution was prepared by dissolving a water-based polymer in water to a solids concentration of 2% by mass. The solution was kept at 25°C and then measured for pH using a pH meter (Horiba, Ltd., model "D-71" with a glass pH electrode, model "9681S-10D"). The pH was calculated by rounding the measured value to one decimal place.
[0096] 〔viscosity〕 A polymer aqueous solution was prepared by dissolving a water-based polymer in water to a solids concentration of 2% by mass. The solution was kept at 25°C, and the viscosity of the polymer aqueous solution was measured using a B-type viscometer (manufactured by BROOKFIELD, model "DV1MLVTJ0"). During the measurement, the spindle and rotation speed corresponding to the viscosity were used as follows. LV-2, 12 rpm: 250 to 2500 mPa·s LV-1, 30 rpm: 20 to 200 mPa·s
[0097] 〔conductivity〕 A polymer aqueous solution was prepared by dissolving a water-based polymer in water to a solids concentration of 2% by mass. The solution was kept at 25°C and then the conductivity was measured using a conductivity meter (AS ONE, model "AS710") The conductivity was calculated by rounding the measured value to one decimal place.
[0098] [Specific resistance] A polymer aqueous solution was prepared by dissolving a water-based polymer in water to a solids concentration of 2% by mass. The solution was kept at 25°C, and the resistivity was measured using a conductivity meter (manufactured by AS ONE, model "AS710", electrode "2301-S"). The salt content was calculated by rounding the measured value to the nearest tenth.
[0099] [Turbidity] A polymer aqueous solution, prepared by dissolving a water-based polymer in water to a solids concentration of 2% by mass, was added to an acrylic resin cell (AS ONE, model "ST-MA"), and the absorbance at 660 nm was measured using an ultraviolet-visible-near-infrared spectrophotometer (Hitachi High-Tech Science, model "UH4150"). Similarly, the absorbance at 660 nm of standard samples with turbidities of 1, 20, and 100 was measured, and a calibration curve was created. The turbidity of the polymer aqueous solution was calculated from the calibration curve of the absorbance of the polymer aqueous solution and the turbidity of the standard samples.
[0100] <Characteristics of batteries / slurries / binder liquids, etc.> Using the aqueous polymers obtained in the above examples and comparative examples, batteries, slurries, and binder solutions were prepared and their properties were measured. The test methods were as follows.
[0101] [Capacity retention rate after 100 cycles] The capacity retention rate after 100 cycles was determined according to the following procedure. [Electrode preparation] As electrode active materials, 23.3 parts by mass of artificial graphite (G-49, manufactured by Jiangxi Zichen Technology), 5.8 parts by mass of silicon monoxide (KSC-1265, manufactured by Shin-Etsu Chemical Co., Ltd.), and 0.9 parts by mass of a polymer aqueous solution (solid content equivalent) were kneaded together. Water was then added to the mixture to achieve a solid content of 58% by mass, followed by kneading to prepare a negative electrode slurry. The resulting negative electrode slurry was applied to a rolled copper foil with a thickness of 18 μm and dried. The rolled copper foil and the coating were then intimately bonded together using a roll press (manufactured by Ohno Roll Co., Ltd.). A heat treatment (reduced pressure, 100°C, 12 hours or more) was then performed to prepare a negative electrode. The thickness of the active material layer in the resulting negative electrode was 36 μm, and the capacity density of the negative electrode was 3.5 mAh / cm. 2 It was.
[0102] [Coin cell assembly] A coin cell (CR2032) was prepared comprising the negative electrode prepared above, the following positive electrode, separator, and electrolyte. ·Positive electrode: LiNi 0.5 Co 0.2 Mn 0.3O2 (manufactured by Hachisansha Co., Ltd.) Separator: Glass filter (Advantech Co., Ltd., product name GA-100) Electrolyte: A solution in which LiPF6 is dissolved at a concentration of 1 mol / L in a solvent made by mixing ethylene carbonate (EC) and diethyl carbonate (DEC) in a volume ratio of 1:1, and 1 mass% of vinylene carbonate (VC) and 1 mass% of fluoroethylene carbonate (FEC), which are electrolyte additives, are added.
[0103] [Capacity retention rate measurement] Each coin cell prepared as described above was charged to 4.2 V at 30°C with a current equivalent to 0.1 C, discharged to 2.5 V at a current equivalent to 0.1 C, charged to 4.2 V at a current equivalent to 0.5 C, and discharged to 2.5 V at a current equivalent to 0.5 C for three cycles to age the battery. Subsequently, the battery was charged to 4.2 V at a current equivalent to 0.5 C, then discharged to SOC50 at a current equivalent to 0.5 C, discharged at a constant current for 12 seconds at a current equivalent to 0.2 C, then charged at a current equivalent to 0.1 C for 24 seconds, discharged at a constant current for 12 seconds at a current equivalent to 0.5 C, then charged at a current equivalent to 0.1 C for 1 minute, discharged at a constant current for 12 seconds at a current equivalent to 1 C, then charged at a current equivalent to 0.1 C for 2 minutes, discharged at a constant current for 12 seconds at a current equivalent to 2 C, and then discharged to 2.5 V at a current equivalent to 0.2 C, and the initial discharge capacity was measured. Subsequently, the battery was charged to 4.2 V at a current equivalent to 1 C and discharged to 2.5 V at a current equivalent to 1 C, and this cycle was repeated for 97 cycles (4th to 100th cycles). Thereafter, the same operation as that used to measure the initial discharge capacity was carried out to measure the discharge capacity after 100 cycles. The capacity retention rate was calculated using the following formula. Capacity retention rate after 100 cycles = [Discharge capacity after 100 cycles (mAh / g)] / [Initial discharge capacity after aging (mAh / g)] × 100 [%]
[0104] [Discharge capacity after 100 cycles] In the above test for [Capacity retention rate after 100 cycles], the discharge capacity after 100 cycles was measured.
[0105] [DC resistance (DCR) after 100 cycles] [Electrode preparation] An electrode was prepared in the same manner as described above in [Capacity retention rate after 100 cycles]. [Coin cell assembly] As described above in [Capacity retention rate after 100 cycles], a coin cell (CR2032) was prepared, which included a negative electrode, the following positive electrode, a separator, and an electrolyte solution.
[0106] [Measurement of DC resistance after 100 cycles] Each coin cell prepared as described above was charged to 4.2 V at 30°C with a current equivalent to 0.1 C, discharged to 2.5 V at a current equivalent to 0.1 C, charged to 4.2 V at a current equivalent to 0.5 C, and discharged to 2.5 V at a current equivalent to 0.5 C for three cycles to age the battery. Subsequently, the battery was charged to 4.2 V at a current equivalent to 0.5 C, then discharged to SOC50 at a current equivalent to 0.5 C, discharged at a constant current for 12 seconds at a current equivalent to 0.2 C, then charged at a current equivalent to 0.1 C for 24 seconds, discharged at a constant current for 12 seconds at a current equivalent to 0.5 C, then charged at a current equivalent to 0.1 C for 1 minute, discharged at a constant current for 12 seconds at a current equivalent to 1 C, then charged at a current equivalent to 0.1 C for 2 minutes, discharged at a constant current for 12 seconds at a current equivalent to 2 C, and then discharged to 2.5 V at a current equivalent to 0.2 C (initial discharge operation). Subsequently, the battery was charged to 4.2 V at a current equivalent to 1 C and discharged to 2.5 V at a current equivalent to 1 C, and this cycle was repeated for 97 cycles (4th to 100th cycles). Thereafter, the same operation as the initial discharge operation was carried out. The DC resistance of each coin cell was calculated from the discharge current and voltage values at 10.0 seconds of C-rate, and this was taken as the DC resistance after 100 cycles.
[0107] [Foaming (Low amount of foam after 15 minutes)] A polymer aqueous solution prepared by dissolving a water-based polymer in water to a solids concentration of 2% by mass was poured into a glass bottle (45 mm diameter, 110 mm height) to a height of 5.5 cm, and a 35 mm diameter disper (manufactured by PRIMIX, model "Homo Disper 2.5") was added to a height of 3.5 cm, followed by stirring for 2 minutes at 2500 rpm in an environment of 23° C. After 15 minutes of stirring, the state of foaming was visually confirmed, and solutions with almost no bubbles (approximately 20 bubbles or less in the solution) were rated as ◯, and solutions with many bubbles visible throughout were rated as ×.
[0108] The test results are summarized in the table below. TIFF2026035051000001.tif91164 [Industrial Applicability]
[0109] The present disclosure is suitable for use as a power source for mobile communication devices, portable electronic devices, electric bicycles, electric motorcycles, electric vehicles, and the like.
Claims
1. Contains water-based polymers, A secondary battery binder, wherein the aqueous solution obtained when the aqueous polymer is dissolved in water at a concentration of 2 mass % has a conductivity of 3.3 mS / cm or less.
2. 2. The secondary battery binder according to claim 1, wherein the electrical conductivity is 0.5 mS / cm or more.
3. 3. The secondary battery binder according to claim 1, wherein the aqueous polymer is a vinyl polymer having a repeating unit containing an acidic functional group.
4. The water-based polymer is formula: -[CH 2 -C(R 1 )(C(=O)R 2 )]- [In the formula, R 1 is a hydrogen atom or CH 3 and R 2 is NH 2 , OM (M is a hydrogen atom or a counter cation), O(CH 2 ) n OH, NH(CH 2 ) n OH (wherein each n is independently 1 or more and 6 or less). A repeating unit (1) represented by the formula: formula: -[CH 2 -CH(OH)]- Repeating unit (2) represented by 3. The secondary battery binder according to claim 1, comprising a repeating unit selected from:
5. In the water-based polymer, the amount of the repeating unit selected from the repeating unit (1) and the repeating unit (2) is 40 mol % or more; The amount of the acidic functional group-containing repeating unit is 0.8 mol% or more, 5. The secondary battery binder of claim 4, wherein the amount of nonionic repeating units is 40 mol % or more.
6. 3. The secondary battery binder of claim 1 or 2, comprising SBR.
7. A slurry comprising the secondary battery binder according to claim 1 or 2 and water.
8. The slurry of claim 7 further comprising an electrode active material.
9. A method for producing a secondary battery, comprising the step of applying the slurry according to claim 7 .
10. 3. An electrode comprising the secondary battery binder according to claim 1 or 2 or a component derived from said secondary battery binder.
11. An electrode comprising the heat-dried slurry according to claim 8.
12. A secondary battery comprising the electrode according to claim 10.
Citation Information
Patent Citations
Nonaqueous electrolyte secondary battery and manufacturing method thereof
JP2012049061A