Method for producing active material composite particles and method for producing secondary battery
The production of active material composite particles with voids formed by removing a secondary component from granules containing Si and a polymer addresses the challenge of volume expansion in Si-based secondary batteries, enhancing their cycle characteristics.
Patent Information
- Application Number
- JP2023058139
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-03-31
- Publication Date
- 2025-12-03
- Estimated Expiration
- 2043-03-31
AI Technical Summary
There is a need to improve the cycle characteristics of active materials containing Si, particularly in secondary batteries, as they face challenges with volume expansion during charging and discharging.
A method involving the production of active material composite particles by forming granules with elemental Si, a polymer, and another component, followed by an acid treatment to remove the secondary component, creating voids that absorb the expansion of Si during charging, thereby reducing overall expansion and improving cycle characteristics.
The method results in active material composite particles with enhanced cycle characteristics by mitigating volume changes, reducing confining pressure and interfacial peeling, thus improving the performance of secondary batteries.
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Abstract
Description
[Technical Field]
[0001] The present application discloses a method for producing active material composite particles and a method for producing a secondary battery. [Background technology]
[0002] Patent Document 1 discloses a granulated negative electrode active material that contains a composite of Si and carbon and a binder. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Publication No. 2019-021571 Summary of the Invention [Problem to be solved by the invention]
[0004] There is room for improvement in the cycle characteristics of active materials containing Si. [Means for solving the problem]
[0005] The present application discloses the following aspects as means for solving the above problems. <Aspect 1> A method for producing active material composite particles, comprising: Obtaining a granule containing elemental Si as a first component, a component other than elemental Si as a second component, and a polymer; and and subjecting the granules to an acid treatment to remove the second component from the granules while leaving the first component and the polymer in the granules, thereby forming voids in the granules. A method for producing active material composite particles. <Aspect 2> The manufacturing method of embodiment 1, The second component is SiO2. Manufacturing method. <Aspect 3> The production method of aspect 1 or 2, The acid treatment includes a hydrofluoric acid treatment. Manufacturing method. <Aspect 4> In the production method of any one of aspects 1 to 3, the polymer comprises a fluorine-containing polymer; Manufacturing method. <Aspect 5> A method for manufacturing a secondary battery, Obtaining active material composite particles by the production method of any one of aspects 1 to 4; and obtaining a negative electrode active material layer using the active material composite particles, Manufacturing method. [Effects of the Invention]
[0006] The active material composite particles of the present disclosure have excellent cycle characteristics. [Brief explanation of the drawings]
[0007] [Figure 1] 1 shows an example of the flow of a method for producing active material composite particles. [Figure 2] 1A and 1B are schematic diagrams showing the states of granules before acid treatment and active material composite particles after acid treatment. [Figure 3] 1 shows an example of a flow of a method for manufacturing a secondary battery. DETAILED DESCRIPTION OF THE INVENTION
[0008] 1. Method for producing active material composite particles A method for producing an active material composite particle 1 according to one embodiment will be described with reference to Figures 1 and 2. As shown in Figures 1 and 2, the method for producing an active material composite particle 1 according to one embodiment includes the following steps: Step S1: Obtaining a granule 1a containing a first component 1ax (simple substance Si), a second component 1ay (a component other than simple substance Si), and a polymer 1az; Step S2: The granules 1a are subjected to an acid treatment to remove the second component 1ay from the granules 1a while leaving the first component 1ax and the polymer 1az in the granules 1a, thereby forming voids 1b in the granules 1a.
[0009] 1.1 Process S1 In step S1, a granule 1a is obtained which contains a first component 1ax which is simple substance Si, a second component 1ay which is a component other than simple substance Si, and a polymer 1az.
[0010] 1.1.1 First component The first component 1ax is elemental Si. Elemental Si as the first component 1ax is more difficult to remove by the acid treatment described below than the second component 1ay, and is more likely to remain in the granules 1a even after the acid treatment. The elemental Si as the first component 1ax may exist, for example, as particles. That is, in step S1, particles containing elemental Si as the first component 1ax (Si particles) may be used.
[0011] The Si particles may exist as primary particles or secondary particles. The chemical composition of the Si particles is not particularly limited. The proportion of Si element in all elements contained in the Si particles may be, for example, 50 mol% or more, 70 mol% or more, or 90 mol% or more. The Si particles may contain other elements such as alkali metal elements such as Li element in addition to Si element. Examples of other elements include alkali metal elements such as Li element, Sn element, Fe element, Co element, Ni element, Ti element, Cr element, B element, P element, etc. The Si particles may also contain impurities such as oxides. The elemental Si contained in the Si particles may be amorphous Si or crystalline Si. The crystalline phase contained in the Si particles is not particularly limited.
[0012] The size of the Si particles is not particularly limited. The average primary particle diameter of the Si particles may be, for example, 10 nm or more, 30 nm or more, 50 nm or more, 100 nm or more, or 150 nm or more, and may be 10 μm or less, 5 μm or less, 3 μm or less, 2 μm or less, or 1 μm or less. The average secondary particle diameter of the Si particles may be, for example, 100 nm or more, 1 μm or more, or 2 μm or more, and may be 20 μm or less, 15 μm or less, or 10 μm or less. The average primary particle diameter and average secondary particle diameter can be determined by observation with an electron microscope such as an SEM, and are determined, for example, as the number average of the maximum Feret diameters of a plurality of particles. The number of samples is preferably large, depending on the number of Si particles contained in the granules 1a. The number of samples may be, for example, 1 or more, 2 or more, 5 or more, 20 or more, 50 or more, or 100 or more. The average primary particle size and the average secondary particle size can be adjusted as appropriate, for example, by appropriately changing the production conditions of the Si particles or by performing a classification process.
[0013] The Si particles may be porous. Porosity of the Si particles allows the voids in the Si particles to mitigate the expansion of the Si particles during charging. The shape of the voids in the porous Si particles is not particularly limited. The porous Si particles may be particles containing nanoporous silicon. Nanoporous silicon refers to silicon containing a plurality of pores with pore diameters on the nanometer order (less than 1000 nm, preferably 100 nm or less). The porous Si particles may contain pores with a diameter of 55 nm or less. Pores with a diameter of 55 nm or less are resistant to crushing even when pressed. That is, porous Si particles containing pores with a diameter of 55 nm or less tend to maintain their porosity even after pressing. For example, the porous Si particles may contain pores with a diameter of 55 nm or less in an amount of 0.21 cc or more, 0.22 cc / g or more, or 0.23 cc / g or more, or 0.30 cc / g or less, 0.28 cc / g or less, or 0.26 cc / g or less per gram of the porous Si particles. The amount of pores with a diameter of 55 nm or less contained in the porous Si particles can be determined from the pore size distribution by, for example, the nitrogen gas adsorption method or the DFT method.
[0014] When the Si particles are porous, their porosity is not particularly limited. The porosity of the porous Si particles may be, for example, 1% or more, 5% or more, 10% or more, or 20% or more, or 80% or less, 70% or less, 60% or less, 50% or less, 40% or less, or 30% or less. The porosity of the Si particles can be determined, for example, by observation using a scanning electron microscope (SEM). A large number of samples is preferable, for example, 100 or more. The porosity can be an average value determined from these samples.
[0015] When the first component 1ax is contained as Si particles, the number of Si particles contained in one granule 1a is not particularly limited. The number may be 1 or more, 2 or more, 5 or more, 10 or more, or 50 or more, or may be 1000 or less, 500 or 100 or less.
[0016] 1.1.2 Second Component The second component 1ay is a component other than elemental Si. The second component 1ay is removed by the acid treatment described below. That is, the second component 1ay may be a component that dissolves in a predetermined acid. For example, the second component 1ay may be SiO2. When the second component 1ay is SiO2, most of it can be easily removed from the granules 1a by the acid treatment described below. Furthermore, even if some of the SiO2 remains in the granules 1a after the acid treatment, it is unlikely to adversely affect the electrochemical reaction (such as the intercalation / deintercalation reaction of carrier ions) as an active material. The second component 1ay may exist, for example, as particles. That is, particles containing the second component 1ay (second particles) may be used in step S1. For example, particles containing SiO2 as the second component (SiO2 particles) may be used in step S1.
[0017] The second particles may exist as primary particles or secondary particles. The second particles may be, for example, SiO2 particles as described above. The SiO2 content in the SiO2 particles may be, for example, 50% by mass or more and 100% by mass or less, 70% by mass or more and 100% by mass or less, or 90% by mass or more and 100% by mass or less. The SiO2 particles may contain other elements, compounds, or impurities in addition to SiO2.
[0018] The size of the second particles is not particularly limited. The average primary particle diameter of the second particles may be, for example, 10 nm or more, 30 nm or more, 50 nm or more, 100 nm or more, or 150 nm or more, and may be 10 μm or less, 5 μm or less, 3 μm or less, 2 μm or less, or 1 μm or less. The average secondary particle diameter of the second particles may be, for example, 100 nm or more, 1 μm or more, or 2 μm or more, and may be 20 μm or less, 15 μm or less, or 10 μm or less. The average primary particle diameter and average secondary particle diameter can be determined by observation using an electron microscope such as an SEM, and are determined, for example, as the number average of the maximum Feret diameters of a plurality of particles. The number of samples depends on the number of second particles contained in the granules 1a, but a large number is preferable. The number of samples may be, for example, 1 or more, 2 or more, 5 or more, 20 or more, 50 or more, or 100 or more. The average primary particle size and the average secondary particle size can be adjusted as appropriate, for example, by appropriately changing the production conditions for the secondary particles or by performing a classification process.
[0019] When the second component 1ay is contained as second particles, the number of second particles contained in one granule 1a is not particularly limited. The number may be 1 or more, 2 or more, 5 or more, 10 or more, or 50 or more, or may be 1000 or less, 500 or 100 or less.
[0020] 1.1.3 Polymers The polymer 1az can function as a binder to bind the first component 1ax together or to maintain the shape of the active material composite particle 1, for example. The polymer 1az can also function as a cushioning material. The type of polymer 1az is not particularly limited. Various binders known as constituent materials for secondary batteries may be used as the polymer 1az. For example, the polymer 1az may be at least one selected from a butadiene rubber (BR)-based binder, a butylene rubber (IIR)-based binder, an acrylate butadiene rubber (ABR)-based binder, a styrene butadiene rubber (SBR)-based binder, a polyvinylidene fluoride (PVdF)-based binder, a polytetrafluoroethylene (PTFE)-based binder, a polyimide (PI)-based binder, a carboxymethyl cellulose (CMC)-based binder, a polyacrylate-based binder, a polyacrylic acid ester-based binder, and the like. In particular, when polymer 1az contains a fluorine-containing polymer, particularly when it contains one or both of a polyvinylidene fluoride (PVdF)-based binder and a polytetrafluoroethylene (PTFE)-based binder, and even more particularly when it contains a PVdF-based binder, higher performance is likely to be ensured. The PVdF-based binder may be a copolymer having units derived from a monomer other than VdF. Polymer 1az may be used alone or in combination of two or more.
[0021] 1.1.4 Content of each ingredient In the granule 1a, the contents of the first component 1ax, the second component 1ay, and the polymer 1az are not particularly limited. The granule 1a may contain, for example, 50% by mass or more and less than 100% by mass of the first component 1ax, more than 0% by mass and less than 50% by mass of the second component 1ay, and more than 0% by mass and less than 50% by mass of the polymer 1az. Alternatively, the granule 1a may contain 60% by mass or more and 90% by mass or less of the first component 1ax, 5% by mass or more and 30% by mass or less of the second component 1ay, and more than 5% by mass and 30% by mass or less of the polymer 1az.
[0022] 1.1.5 Other ingredients The granules 1a may consist of only the first component 1ax, the second component 1ay, and the polymer 1az, or may contain other components, such as various solid components and liquid components.
[0023] 1.1.6 Obtaining granules In step S1, for example, the first component 1ax, the second component 1ay, and the polymer 1az may be dry-mixed to allow the components to adhere to each other, thereby obtaining the granules 1a. In this case, the mixing means is not particularly limited, and the components may be mixed manually using a mortar or the like, or mechanically using various mixing devices. Alternatively, in step S1, the granules 1a may be obtained by obtaining a slurry or solution containing the first component 1ax, the second component 1ay, and the polymer 1az, and then drying the slurry or solution. For example, the polymer 1az may be dissolved in a solvent to obtain a polymer solution, and Si particles as the first component 1ax and second particles (e.g., SiO2 particles) as the second component 1ay are dispersed in the polymer solution to obtain a slurry. The slurry may then be dried to obtain the granules 1a in which the Si particles and the second particles are bound together via the polymer 1az. In this case, the type of solvent is not particularly limited. Furthermore, the means for drying the slurry is not particularly limited.
[0024] Step S1 is Step S1-1: forming a slurry containing a first component 1ax, a second component 1ay, and a polymer 1az into droplets to obtain slurry droplets; and Step S1-2: The slurry droplets are dried by a gas flow in a heated gas to obtain granules 1a containing a first component 1ax, a second component 1ay, and a polymer 1az. may also include:
[0025] The "slurry" in step S1-1 refers to a suspension or suspension containing the first component 1ax, the second component 1ay, and the polymer 1az, as long as it has sufficient fluidity to be capable of being formed into droplets. The "dropletization" of the slurry refers to converting the slurry containing the first component 1ax, the second component 1ay, and the polymer 1az into particles containing the first component 1ax, the second component 1ay, the polymer 1az, and a solvent. The method for forming droplets from the slurry containing the first component 1ax, the second component 1ay, and the polymer 1az is not particularly limited. For example, the slurry may be formed into droplets by spraying. A spray nozzle may be used to spray the slurry. Examples of methods for spraying the slurry using a spray nozzle include, but are not limited to, a pressurized nozzle method and a two-fluid nozzle method. Alternatively, the slurry may be formed into droplets using a rotary atomizer.
[0026] In step S1-1, the size of the slurry droplets is not particularly limited. The diameter (sphere-equivalent diameter) of the slurry droplets may be, for example, 0.5 μm or more or 5 μm or more, or 5000 μm or less or 1000 μm or less. The diameter of the slurry droplets can be measured, for example, using a two-dimensional image obtained by capturing an image of the slurry droplets, or can be measured using a laser diffraction particle size distribution analyzer. Alternatively, the droplet diameter can be estimated from the operating conditions of the device that forms the slurry droplets.
[0027] The "airflow drying" in step S1-2 refers to drying the slurry droplets while suspending them in a high-temperature airflow. "Airflow drying" can include not only drying but also an additional operation using a dynamic airflow. Airflow drying continuously applies a force to the slurry droplets by continuously applying hot air to them. Taking advantage of this, for example, step S1-2 may include disintegrating (crushing) agglomerates of slurry droplets (or agglomerates of granules 1a) by airflow drying. In other words, even if the slurry droplets or the like are excessively aggregated in step S1-2, the agglomerates can be crushed by airflow drying. Therefore, a slurry with a low solid content concentration can be used, and the processing speed can be easily increased. Thus, by crushing the slurry droplets or the like by airflow drying in step S1-2, the production time can be easily shortened. In step S1-2, the drying and crushing may be performed simultaneously or separately. In step S1-2, a first air flow drying step that primarily dries the slurry droplets and a second air flow drying step that primarily breaks down the aggregates may be performed. Also, the second air flow drying step may be performed repeatedly.
[0028] In step S1-2, the temperature of the heated gas, the supply amount (flow rate) of the heated gas, the supply speed (flow rate) of the heated gas, and the treatment time (drying time) by the heated gas can be appropriately set taking into consideration the size of the apparatus used, the shape of the slurry droplets, etc. For example, conditions such as those disclosed in JP 2022-047501 A may be adopted. In step S1-2, a heated gas that is substantially inert to the above-mentioned components may be used. For example, an oxygen-containing gas such as air, an inert gas such as nitrogen or argon, or low dew point dry air may be used. As an apparatus for performing flash drying, for example, a spray dryer may be used, but is not limited thereto.
[0029] 1.2 Process S2 In step S2, the granules 1a are subjected to an acid treatment to remove the second component 1ay from the granules 1a while leaving the first component 1ax and the polymer 1az in the granules 1a, thereby forming voids 1b in the granules 1a. That is, by subjecting the granules 1a to the acid treatment, the second component 1ay is etched.
[0030] The acid used in the acid treatment in step S2 may be any acid capable of removing the second component 1ay from the granules 1a while leaving the first component 1ax and polymer 1az in the granules 1a. The acid treatment in step S2 may include, for example, hydrofluoric acid treatment. That is, by contacting the granules 1a with hydrofluoric acid (aqueous hydrogen fluoride solution), the second component 1ay contained in the granules 1a may be dissolved while leaving the first component 1ax and polymer 1az in the granules 1a, thereby removing the second component 1ay from the granules 1a. In step S2, for example, 50 mol % to 100 mol %, 70 mol % to 100 mol %, or 90 mol % to 100 mol % of the second component 1ay contained in the granules 1a may be dissolved in the acid and removed.
[0031] In step S2, the method for contacting the granules 1a with the acid is not particularly limited. The granules 1a may be immersed in the acid, or the acid may be sprayed onto the granules 1a. Alternatively, the granules 1a may be dispersed in a solvent to form a slurry, and the acid may be added to the slurry, so that the granules 1a and the acid are brought into contact with each other in the slurry. In this case, water or various organic solvents can be used as the solvent for dispersing the granules 1a. For example, an alcohol such as ethanol may be used as the solvent. In step S2, the time for the acid treatment is not particularly limited. For example, the granules 1a may be dispersed in a solvent to form a slurry, and the acid may be added to the slurry and stirred for 1 minute to 10 hours. The temperature and atmosphere of the acid treatment in step S2 are also not particularly limited.
[0032] 1.3 Active material composite particles 1 After step S2, optional filtration, washing, and drying are performed to recover the solid content, thereby obtaining active material composite particles 1 that contain a first component 1ax and a polymer 1az and have voids 1b. In the active material composite particles 1, the expansion of Si during charging is absorbed by the voids 1b, reducing the amount of expansion of the active material composite particles 1 as a whole. For example, when the active material composite particles 1 are used in the negative electrode of a secondary battery, the volume change of the negative electrode during charging and discharging is reduced. This makes it possible to suppress increases in confining pressure and interfacial peeling, improving cycle characteristics.
[0033] 1.3.1 Components of active material composite particles The active material composite particle 1 includes at least a first component 1ax and a polymer 1az. The active material composite particle 1 may include, for example, 50% by mass or more and less than 100% by mass of the first component 1ax, 0% by mass or more and 10% by mass or less of the second component 1ay, and more than 0% by mass and 50% by mass or less of the polymer 1az. Alternatively, the active material composite particle 1 may include 60% by mass or more and 90% by mass or less of the first component 1ax, 0% by mass or more and 5% by mass or less of the second component 1ay, and 10% by mass or more and 30% by mass or less of the polymer 1az.
[0034] 1.3.2 Particle size of active material composite particles The active material composite particles 1 can be considered as secondary particles containing a first component 1ax, a polymer 1az, and voids 1b. The average particle diameter of the composite particles 1 is not particularly limited. The average particle diameter of the composite particles 1 may be 100 nm or more, 500 nm or more, 1 μm or more, 2 μm or more, or 3 μm or more, or may be 1 mm or less, 500 μm or less, 300 μm or less, 100 μm or less, 50 μm or less, 20 μm or less, 15 μm or less, or 10 μm or less. The average particle diameter of the composite particles 1 can be determined by observation with an electron microscope such as an SEM, and is determined, for example, as the number average of the maximum Feret diameters of multiple composite particles. A large number of samples is preferable, for example, 20 or more, or may be 50 or more, or may be 100 or more. Alternatively, the average particle diameter (D50, median diameter) of the composite particles 1 measured using a laser diffraction particle distribution analyzer may be 100 nm or more, 500 nm or more, 1 μm or more, 2 μm or more, or 3 μm or more, or may be 1 mm or less, 500 μm or less, 300 μm or less, 100 μm or less, 50 μm or less, 20 μm or less, 15 μm or less, or 10 μm or less.
[0035] 1.3.3 Structure and shape of active material composite particles In the active material composite particle 1, the arrangement of the first component 1ax, the polymer 1az, and the voids 1b is not particularly limited. Furthermore, the active material composite particle 1 may have a major axis and a minor axis, for example, before being applied to a secondary battery. The ratio of the major axis to the minor axis may be, for example, 1.0 or more or 1.1 or more, or may be 1.3 or less or 1.2 or less.
[0036] 2. Secondary battery manufacturing method The active material composite particle 1 of the present disclosure can be used, for example, as a negative electrode active material for a secondary battery. As shown in Fig. 3, a method for producing a secondary battery 100 according to one embodiment includes obtaining an active material composite particle 1 by the production method of the present disclosure and obtaining a negative electrode active material layer 20 using the active material composite particle 1. The secondary battery 100 may be, for example, a lithium ion secondary battery.
[0037] The negative electrode active material layer 20 may optionally contain other negative electrode active materials, electrolytes, conductive additives, binders, etc. in addition to the active material composite particles 1. The electrolyte may be, for example, an inorganic solid electrolyte. In this way, when an inorganic solid electrolyte is combined with the active material composite particles 1 in the negative electrode active material layer 20, even more excellent effects of the technology of the present disclosure can be obtained. The inorganic solid electrolyte may be a sulfide solid electrolyte or another inorganic solid electrolyte.
[0038] The secondary battery 100 can be manufactured by applying a known method, except that the active material composite particles 1 are used as the negative electrode active material. For example, it can be manufactured as follows. However, the manufacturing method of the secondary battery 100 is not limited to the following method, and each layer may be formed by, for example, dry molding or the like. (1) The active material composite particles 1 and the like that constitute the negative electrode active material layer 20 are dispersed in a solvent to obtain a negative electrode slurry. The solvent used in this case is not particularly limited, and water or various organic solvents can be used. Thereafter, the negative electrode slurry is applied to the surface of the negative electrode current collector 10 or the electrolyte layer 30 described below using a doctor blade or the like, and then dried to form the negative electrode active material layer 20 on the surface of the negative electrode current collector 10 or the electrolyte layer 30. Here, the negative electrode active material layer 20 may be press-molded. (2) The positive electrode active material and other components that constitute the positive electrode active material layer 40 are dispersed in a solvent to obtain a positive electrode slurry. The solvent used in this case is not particularly limited, and water or various organic solvents can be used. The positive electrode slurry is then applied to the surface of the positive electrode current collector 50 or the electrolyte layer 30 (described below) using a doctor blade or the like, and then dried to form the positive electrode active material layer 40 on the surface of the positive electrode current collector 50 or the electrolyte layer 30. Here, the positive electrode active material layer 40 may be press-molded. (3) The negative electrode active material layer 20 and the positive electrode active material layer 40 are stacked so that the electrolyte layer 30 is sandwiched between them, thereby obtaining a laminate having the negative electrode current collector 10, the negative electrode active material layer 20, the electrolyte layer 30, the positive electrode active material layer 40, and the positive electrode current collector 50 in this order. The electrolyte layer may be obtained, for example, by molding an electrolyte mixture containing a solid electrolyte and a binder, or by press molding. Here, the laminate may be further press-molded. Other members such as terminals may be attached to the laminate as necessary. When an electrolytic solution is used, a separator may be used in the electrolyte layer. (4) The laminate is housed in a battery case and sealed to obtain a secondary battery. [Example]
[0039] As described above, one embodiment of the technology of the present disclosure has been described, but the technology of the present disclosure can be modified in various ways other than the above embodiment without departing from the gist thereof. Below, the technology of the present disclosure will be described in more detail while showing examples, but the technology of the present disclosure is not limited to the following examples.
[0040] 1. Preparation of active material composite particles 1.1 Example 1 A polymer solution was prepared by adding 1.3 g of PVdF-HFP (Kureha Corporation) to 500 mL of dimethyl carbonate and dissolving the mixture under stirring. 5.0 g of Si particles and 1.0 g of SiO2 particles (Sigma-Aldrich, average particle size 0.1 μm to 0.2 μm) were added to the polymer solution and dispersed using an ultrasonic homogenizer to obtain a slurry. The slurry was sprayed and dried using a spray dryer (Yamato Scientific ADL311S) to produce granules consisting of Si, SiO2, and PVdF-HFP.
[0041] 2 g of the obtained granules were dispersed in 100 mL of ethanol, and then 3 mL of a 47 wt % aqueous hydrogen fluoride solution was added. After the addition, the mixture was stirred for 3 hours and then filtered under reduced pressure to recover the active material composite particles. In the active material composite particles, the SiO2 contained in the granules was removed by the hydrogen fluoride aqueous solution treatment (hydrofluoric acid treatment), and voids were formed. The obtained active material composite particles were vacuum dried at 120°C for 12 hours and used as the negative electrode active material described below.
[0042] 1.2 Comparative Example 1: No acid treatment In Example 1, the granules made of elemental Si, SiO2, and PVdF-HFP were used as they were as the negative electrode active material without acid treatment with an aqueous hydrogen fluoride solution.
[0043] 1.3 Comparative Example 2: No SiO2 5.0 g of particles of elemental Si was added to a polymer solution prepared in the same manner as in Example 1, and dispersed using an ultrasonic homogenizer to obtain a slurry. The slurry was sprayed and dried using a spray dryer (ADL311S manufactured by Yamato Scientific Co., Ltd.) to prepare granules consisting of elemental Si and PVdF-HFP, which were used as the negative electrode active material.
[0044] 2. Fabrication of all-solid-state batteries 2.1 Preparation of the positive electrode active material layer In a PP container, butyl butyrate as a solvent, a 5 wt% butyl butyrate solution of a PVDF-based binder, and LiNi as a positive electrode active material were added. 1 / 3 Co 1 / 3 Mn 1 / 3O2 particles (average particle size 6 μm), Li2S-P2S5-based glass ceramic as a sulfide solid electrolyte, and VGCF as a conductive additive were added and stirred for 30 seconds using an ultrasonic disperser (UH-50 manufactured by SMT). Next, the container was shaken for 3 minutes using a shaker (TTM-1 manufactured by Shibata Scientific Co., Ltd.) and further stirred for 30 seconds using the ultrasonic disperser. The container was then shaken for 3 minutes using the shaker to obtain a positive electrode slurry. The positive electrode slurry was applied to an Al foil (manufactured by Showa Denko) using an applicator by the blade method and dried on a hot plate at 100 °C for 30 minutes to form a positive electrode active material layer on the Al foil.
[0045] 2.2 Preparation of the negative electrode active material layer A PP container was charged with dibutyl ether and mesitylene as solvents, a 5 wt% mesitylene solution of a PVDF-based binder, VGCF as a conductive additive, Li2S-P2S5-based glass ceramic as a solid electrolyte, and the above-mentioned active material composite particles or granules as a negative electrode active material. The mixture was then stirred for 30 seconds using an ultrasonic disperser (UH-50, manufactured by SMT). The container was then shaken for 30 minutes using a shaker (TTM-1, manufactured by Shibata Scientific Co., Ltd.) to obtain a negative electrode slurry. The negative electrode slurry was applied to a Cu foil (manufactured by UACJ) using an applicator by the blade method and dried on a hot plate at 100 °C for 30 minutes to form a negative electrode active material layer on the Cu foil.
[0046] 2.3 Preparation of solid electrolyte layer Heptane as a solvent, a 5 wt% heptane solution of SBR binder, and Li2S-P2S5-based glass ceramic as a solid electrolyte were added to a PP container and stirred for 30 seconds using an ultrasonic disperser (UH-50, manufactured by SMT). The container was then shaken for 30 minutes using a shaker (TTM-1, manufactured by Shibata Scientific Co., Ltd.) to obtain an electrolyte slurry. The electrolyte slurry was applied to an Al foil substrate using an applicator by the blade method and dried on a hot plate at 100 °C for 30 minutes to form a solid electrolyte layer on the Al foil.
[0047] 2.4 Lamination of each layer The positive electrode active material layer and the solid electrolyte layer were laminated to obtain a first laminate having Al foil / positive electrode active material layer / solid electrolyte layer / Al foil. The first laminate was set in a roll press and pressed at a pressure of 100 kN / cm and a temperature of 165°C. The Al foil as a substrate was then removed from the first laminate to obtain a positive electrode laminate having Al foil / positive electrode active material layer / solid electrolyte layer.
[0048] The negative electrode active material layer and the solid electrolyte layer were stacked to obtain a second laminate having Cu foil / negative electrode active material layer / solid electrolyte layer / Al foil. The second laminate was set in a roll press and pressed at a pressure of 60 kN / cm and a temperature of 25°C. The Al foil substrate was then removed from the second laminate to obtain a first negative electrode laminate having Cu foil / negative electrode active material layer / solid electrolyte layer.
[0049] A third laminate was obtained by stacking the first negative electrode laminate, Al foil and solid electrolyte layer as a substrate, in the order Al foil / solid electrolyte layer / solid electrolyte layer / negative electrode active material layer / Cu foil. The third laminate was placed in a flat uniaxial press and pre-pressed at 100 MPa and 25°C for 10 seconds. The Al foil was then peeled off from the third laminate to obtain a second negative electrode laminate having a solid electrolyte layer / solid electrolyte layer / negative electrode active material layer / Cu foil. The area of the second negative electrode laminate was set to be larger than that of the positive electrode laminate.
[0050] The positive electrode laminate and the second negative electrode laminate were laminated in the following order: Al foil / positive electrode active material layer / solid electrolyte layer / solid electrolyte layer / solid electrolyte layer / negative electrode active material layer / Cu foil to obtain a fourth laminate. The fourth laminate was placed in a flat uniaxial press and pressed at 200 MPa and 120°C for 1 minute. This produced an all-solid-state battery for evaluation.
[0051] 3. Evaluation of all-solid-state batteries The fabricated all-solid-state battery was constrained at a predetermined confinement pressure using a constraining jig, charged at a constant current of 1 / 10 C to 4.55 V, discharged at 1 C to 3.0 V, charged at a constant current and constant voltage of 1 / 3 C to 4.35 V, and discharged at a constant current and constant voltage of 1 / 3 C to 3.00 V. After that, a constant current charge and discharge test was repeated 200 times at 2 C as a cycle test. The ratio of the discharge capacity at the 200th cycle to the initial discharge capacity of the cycle test ([discharge capacity at the 200th cycle / initial discharge capacity] × 100) was calculated as the discharge capacity retention rate.
[0052] 4. Evaluation Results Table 1 below shows the discharge capacity retention rates of the all-solid-state batteries of Example 1 and Comparative Examples 1 and 2. In Table 1 below, the discharge capacity retention rate of Comparative Example 2 is set to 100, and the discharge capacity retention rates of Example 1 and Comparative Example 1 are shown relative to each other.
[0053] [Table 1]
[0054] As shown in Table 1, the all-solid-state battery according to Example 1 has superior cycle characteristics compared to the all-solid-state batteries according to Comparative Examples 1 and 2. In the all-solid-state battery according to Example 1, removal of SiO2 from the granules forms voids in the active material composite particles, which presumably absorb the expansion of Si during charging, thereby reducing the amount of expansion of the active material composite particles as a whole. In other words, it is believed that the volume change of the negative electrode accompanying charge and discharge is reduced, making it possible to suppress increases in confining pressure and interfacial peeling, thereby improving the cycle characteristics.
[0055] In the above examples, the active material composite particles were produced using SiO2 as the second component, a fluorine-containing polymer as the polymer, and hydrofluoric acid treatment as the acid treatment, but it is believed that similar active material composite particles can be formed by acid treatment even when other materials are used. Furthermore, in the above examples, the active material composite particles were produced using an all-solid-state battery as the secondary battery for evaluation, but the effects of the active material composite particles can also be expected in other secondary batteries.
[0056] As described above, according to the following method, active material composite particles having excellent cycle characteristics can be produced. That is, the method for producing active material composite particles of the present disclosure includes: Step S1: Obtaining a granule containing elemental Si as a first component, a component other than elemental Si as a second component, and a polymer; Step S2: The granules are subjected to an acid treatment to remove the second component from the granules while leaving the first component and the polymer in the granules, thereby forming voids in the granules. [Explanation of symbols]
[0057] 1 Active material composite particles 1a Granules 1ax 1st component 1ay second component 1az Polymer 1b void 100 Secondary battery 10 Negative electrode current collector 20 Negative electrode active material layer 30 Electrolyte layer 40 Cathode active material layer 50 Positive electrode current collector
Claims
1. A method for producing active material composite particles for use in a secondary battery having a solid electrolyte, comprising: Obtaining a granule containing elemental Si as a first component, a component other than elemental Si as a second component, and a polymer; and and subjecting the granules to an acid treatment to remove the second component from the granules while leaving the first component and the polymer in the granules, thereby forming voids in the granules. A method for producing active material composite particles.
2. The method of claim 1, The second component is SiO 2 That is, Manufacturing method.
3. The method of claim 1, The acid treatment includes a hydrofluoric acid treatment. Manufacturing method.
4. The method of claim 1, the polymer comprises a fluorine-containing polymer; Manufacturing method.
5. A method for manufacturing a secondary battery, Obtaining active material composite particles by the manufacturing method according to any one of claims 1 to 4, and obtaining a negative electrode active material layer using the active material composite particles, Manufacturing method.
Citation Information
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