Energy storage devices
By using first and second particles with tailored circularity and diameter ratios in the negative electrode active material layer, the device achieves improved capacity retention and stress management, addressing the challenges of silicon-containing materials in electricity storage devices.
Patent Information
- Application Number
- JP2023095371
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-06-09
- Publication Date
- 2025-10-20
- Estimated Expiration
- 2043-06-09
AI Technical Summary
Existing silicon-containing negative electrode active materials in electricity storage devices face challenges in achieving a balanced specific surface area and internal stress management, leading to capacity degradation and cracking during the manufacturing process.
Incorporating first and second particles with specific circularity and diameter ratios in the negative electrode active material layer, where the first particles have an average circularity of 0.5 to 0.9 and the second particles exceed 0.9, with a diameter ratio of 0.1 to 1, to optimize packing density and void distribution, using Si/C composite particles to mitigate stress and expansion.
This configuration maintains a desirable specific surface area while reducing internal stress, enhancing capacity retention and cycle stability of the electricity storage device.
Smart Images

Figure 0007756682000002 
Figure 0007756682000003 
Figure 0007756682000004
Abstract
Description
[Technical Field]
[0001] The present disclosure relates to an electricity storage device. [Background technology]
[0002] The negative electrode active material disclosed in JP 2017-92009 A includes negative electrode active material particles containing silicon compound particles containing a silicon compound (SiOx: 0.5≦x≦1.6). The silicon compound particles contain at least one of Li2SiO3 and Li4SiO4. The negative electrode active material particles have a loose bulk density BD of 0.5 g / cm. 3 More than 0.9g / cm 3 and a tapped bulk density TD of 0.7 g / cm 3 More than 1.2g / cm 3 The density is equal to or less than 100%, and the degree of compression defined by (TD-BD) / TD is 25% or less. The publication states that, for negative electrode active material particles containing silicon compound particles, the SiO2 component portion, which becomes unstable during lithium insertion and extraction during battery charge and discharge, has been modified to lithium silicate in advance, thereby reducing irreversible capacity generated during charging. The publication also states that when the negative electrode active material particles satisfy the specified loose bulk density, tap density, and degree of compression, the cycle characteristics of the battery are improved. Furthermore, the publication states that the use of such negative electrode active material particles can improve electrode packing, thereby improving the cycle characteristics of the secondary battery.
[0003] The negative electrode active material disclosed in JP 2019-175851 A contains composite particles in which at least a portion of the surface of silicon oxide particles and graphite particles is coated with a low-crystalline carbon material having lower crystallinity than the graphite particles. The composite particles contain 50 to 500 parts by mass of silicon oxide particles and 200 to 2,000 parts by mass of graphite particles per 100 parts by mass of the low-crystalline carbon material. Thermogravimetric analysis of the composite particles in an oxygen-containing atmosphere reveals two peaks of weight loss upon heating in the differential curve, with the lower of the two peaks being observed in the temperature range of 500 to 600°C. The publication also describes the provision of a negative electrode active material for lithium-ion secondary batteries that can be used to produce lithium-ion secondary batteries with large initial discharge capacity and excellent charge-discharge cycle characteristics. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2017-92009 [Patent Document 2] Japanese Patent Application Publication No. 2019-175851 Summary of the Invention [Problem to be solved by the invention]
[0005] The present inventors wish to achieve a more preferable specific surface area in a silicon-containing negative electrode active material layer. [Means for solving the problem]
[0006] The electricity storage device disclosed herein includes a negative electrode active material layer containing a negative electrode active material. The negative electrode active material includes first particles and second particles containing silicon. The second particles are different from the first particles. The average circularity CR1 of the first particles is 0.5 or more and 0.9 or less. The average circularity CR2 of the second particles is greater than 0.9. The ratio (D2 / D1) of the average particle diameter D1 of the first particles to the average particle diameter D2 of the second particles is 0.1 or more and less than 1. This configuration allows the silicon-containing negative electrode active material layer in the electricity storage device to have a more preferable specific surface area. [Brief explanation of the drawings]
[0007] [Figure 1] FIG. 1 is a schematic cross-sectional view of an electricity storage device 100. As shown in FIG. [Figure 2] FIG. 2 is a schematic diagram of the electrode body 20. As shown in FIG. [Figure 3] FIG. 3 is a schematic cross-sectional view of the negative electrode sheet 60. DETAILED DESCRIPTION OF THE INVENTION
[0008] An embodiment of the technology disclosed herein will be described below. The embodiment described herein is not intended to limit the technology disclosed herein. The technology disclosed herein is not limited to the embodiment described herein unless otherwise specified. The drawings are schematic and do not necessarily reflect the actual product. Furthermore, members and parts that perform the same function are appropriately designated by the same reference numerals, and redundant explanations will be omitted. Furthermore, the notation "A to B" indicating a numerical range means "greater than or equal to A and less than or equal to B" unless otherwise specified, and also encompasses the meaning of "greater than A and less than B."
[0009] In this specification, the term "electricity storage device" refers to a device in which charging and discharging occur by the movement of charge carriers between a pair of electrodes (positive and negative electrodes) via an electrolyte. Such electricity storage devices include secondary batteries such as lithium ion secondary batteries, nickel-metal hydride batteries, and nickel-cadmium batteries; and capacitors such as lithium ion capacitors and electric double layer capacitors. In the following, an embodiment will be described in which a lithium ion secondary battery is used as an example of the above-mentioned electricity storage device.
[0010] Fig. 1 is a schematic cross-sectional view of an electricity storage device 100. Fig. 1 is a schematic cross-sectional view taken along the widest surface of the electricity storage device 100. As shown in Fig. 1, the electricity storage device 100 includes an electrode assembly 20, a case 30, and a non-aqueous electrolyte solution 80.
[0011] Fig. 2 is a schematic diagram of the electrode assembly 20. As shown in Fig. 1 and Fig. 2, the electrode assembly 20 is a wound electrode assembly in which a long, sheet-like positive electrode sheet 50 and a long, sheet-like negative electrode sheet 60 are stacked together with a long, sheet-like separator 70 interposed therebetween and wound in the sheet longitudinal direction (hereinafter simply referred to as the "longitudinal direction"). In the electrode assembly 20, the exposed region 52a of the positive electrode sheet 50 and the exposed region 62a of the negative electrode sheet 60 protrude outward from both ends in the lateral direction perpendicular to the longitudinal direction.
[0012] As shown in FIGS. 1 and 2, the positive electrode sheet 50 includes a long, sheet-like positive electrode collector foil 52 and a positive electrode active material layer 54. The positive electrode collector foil 52 is, for example, aluminum foil. In this embodiment, the positive electrode collector foil 52 has a region where the positive electrode active material layer 54 is provided and an exposed region 52a where the positive electrode active material layer 54 is not provided and the surface of the positive electrode collector foil 52 is exposed. The positive electrode active material layer 54 is provided, for example, in a strip shape along the longitudinal direction on one or both sides (both sides in this example) of the positive electrode collector foil 52. The positive electrode active material layer 54 is not provided at the end in the short direction (the end on the left side in the figure). Here, the exposed region 52a is a strip-shaped region at the end in the short direction (the end on the left side in the figure). As shown in FIG. 1, a current collector plate 42a is attached to the exposed region 52a.
[0013] The positive electrode active material layer 54 contains, for example, a positive electrode active material. The positive electrode active material is, for example, a lithium nickel cobalt manganese composite oxide (NCM) (for example, LiNi 1 / 3 Co 1 / 3 Mn 1 / 3 O2), LiNiO2, LiCoO2, LiFeO2, LiMn2O4, LiNi 0.5 Mn 1.5 Examples of the positive electrode active material layer 54 include lithium transition metal oxides such as 04 and lithium transition metal phosphate compounds such as LiFePO4. The positive electrode active material layer 54 may contain, in addition to the positive electrode active material, a conductive material, a binder, and the like. Examples of the conductive material include carbon black such as acetylene black (AB) and other carbon materials such as graphite. Examples of the binder include polyvinylidene fluoride (PVDF).
[0014] FIG. 3 is a schematic cross-sectional view of a negative electrode sheet 60. FIG. 3 shows a partially enlarged cross-sectional structure of a negative electrode current collector foil 62 and a negative electrode active material layer 64 in the negative electrode sheet 60. As shown in FIGS. 1 to 3, the negative electrode sheet 60 includes a long, sheet-like negative electrode current collector foil 62 and a negative electrode active material layer 64. The negative electrode current collector foil 62 is, for example, a copper foil. In this embodiment, the negative electrode current collector foil 62 has a region where the negative electrode active material layer 64 is provided and an exposed region 62a where the negative electrode active material layer 64 is not provided and the surface of the negative electrode active material layer 64 is exposed. The negative electrode active material layer 64 is, for example, provided in a strip shape along the longitudinal direction on one or both sides (both sides in this example) of the negative electrode current collector foil 62. The negative electrode active material layer 64 is not provided on the end portion in the lateral direction perpendicular to the longitudinal direction (the end portion on the right side in the figure). The exposed area 62a is a strip-shaped area at the end in the short direction (the end on the right side in the drawing). As shown in Fig. 1, the current collector plate 44a is attached to the exposed area 62a.
[0015] For example, a silicon-containing negative electrode active material may be used to increase the capacity of an electric storage device. The inventors' investigations revealed that using only a negative electrode active material with a high average circularity increases the packing density of the negative electrode active material in the negative electrode active material layer, but results in insufficient voids within the negative electrode active material, which tends to increase internal stress. The inventors' investigations also revealed that using only a negative electrode active material with a low average circularity provides adequate voids within the negative electrode active material layer, but the negative electrode active material is prone to cracking due to the stress of pressing the negative electrode active material layer during the manufacturing process. Cracking of the negative electrode active material increases the specific surface area of the negative electrode active material layer, which can lead to a decrease in the capacity of the electric storage device. The inventors believed that, for example, by suppressing the increase in specific surface area before and after pressing during the manufacturing process, a more preferable specific surface area can be achieved in the silicon-containing negative electrode active material layer. The inventors believed that this would suppress the decrease in capacity of the electric storage device and achieve a high-density negative electrode active material layer that appropriately alleviates internal stress due to expansion and contraction. Here, "negative electrode active material with a high average circularity" refers to a negative electrode active material with an average circularity of greater than 0.9. Here, "negative electrode active material with a low average circularity" refers to a negative electrode active material with an average circularity of 0.9 or less.
[0016] As shown in FIG. 3 , the negative electrode active material layer 64 includes a negative electrode active material 68. Here, the negative electrode active material 68 includes first particles 681 and second particles 682. The first particles 681 are particles containing silicon. The second particles 682 are particles containing silicon and different from the first particles 681. The first particles 681 and the second particles 682 are different from each other in, for example, average circularity and average particle diameter.
[0017] The average circularity CR1 of the first particles 681 is, for example, 0.5 to 0.9. From the viewpoint of increasing the density of the negative electrode active material layer 64, the average circularity CR1 is preferably 0.6 or more, more preferably 0.7 or more, and even more preferably 0.75 or more. From the viewpoint of providing an appropriate amount of voids in the negative electrode active material layer 64, the average circularity CR1 is preferably 0.85 or less, and more preferably 0.8 or less. The average circularity CR2 of the second particles 682 is, for example, greater than 0.9. From the viewpoint of increasing the density of the negative electrode active material layer 64, the average circularity CR2 is preferably 0.91 or more, more preferably 0.92 or more, and even more preferably 0.93 or more. From the viewpoint of providing an appropriate amount of voids in the negative electrode active material layer 64, the average circularity CR2 is preferably less than 1, preferably 0.98 or less, more preferably 0.96 or less, and even more preferably 0.95 or less.
[0018] In this specification, the "average circularity" of particles refers to the arithmetic mean value of the circularities of 1000 or more (e.g., 3000) particles randomly sampled. The circularity here is determined by image analysis of particle images, and calculating the circumferential length (L) of the particle and the circumferential length (L0) of a circle having the same projected area as the particle using the following formula (A): Circularity = L0 / L Formula (A) As the image analyzer used to calculate the average circularity, an image particle size distribution analyzer used for this type of application can be used without any particular limitation.
[0019] The second particles 682 are preferably particles smaller than the first particles 681. This allows the relatively smaller second particles 682 to fill the gaps between the relatively larger first particles 681, thereby increasing the density of the negative electrode active material layer 64. To achieve this effect, the ratio (D2 / D1) of the average particle diameter D1 of the first particles 681 to the average particle diameter D2 of the second particles 682 is preferably 0.1 or greater and less than 1, more preferably 0.8 or less, and more preferably 0.6 or less. To achieve the effect of suppressing a decrease in the capacity maintenance rate of the power storage device 100, the ratio (D2 / D1) is more preferably 0.5 or less, and particularly preferably 0.4 or less. To prevent the second particles 682 from filling the gaps between the first particles 681 and reducing the gaps in the negative electrode active material layer 64 too much, the ratio (D2 / D1) is preferably 0.15 or greater, and more preferably 0.2 or greater.
[0020] The average particle diameters D1 and D2 are not particularly limited as long as they can achieve the effects of the technology disclosed herein. The average particle diameter D1 is preferably approximately 3 μm to 25 μm. From the viewpoint of providing an appropriate amount of voids in the negative electrode active material layer 64, the average particle diameter D1 is preferably 5 μm or more, more preferably 7.5 μm or more, or preferably 20 μm or less, and more preferably 15 μm or less. The average particle diameter D2 is preferably approximately 0.3 μm to 10 μm. From the viewpoint of making it easier for the second particles to enter the voids between the first particles 681, the average particle diameter D2 is preferably 8 μm or less, more preferably 6 μm or less. From the viewpoint of realizing the effect of suppressing a decrease in the capacity retention rate, the average particle diameter D2 is even more preferably 5 μm or less, and particularly preferably 4 μm or less. In order to prevent the second particles 682 entering the gaps between the first particles 681 from excessively reducing the voids in the negative electrode active material layer 64, the average particle diameter D2 is preferably 0.5 μm or more, and more preferably 0.7 μm or more. In addition to this effect, from the viewpoint of realizing the effect of suppressing a decrease in the capacity maintenance rate, the average particle diameter D2 is more preferably 1 μm or more, and particularly preferably 2 μm or more. In this specification, the "average particle diameter" of particles refers to the particle diameter (D 50 particle size).
[0021] To provide an appropriate amount of voids, the negative electrode active material layer 64 preferably contains more first particles 681 than second particles 682. The ratio (mass ratio) (C2 / C1) of the content C1 of the first particles 681 to the content C2 of the second particles 682 in the negative electrode active material 68 is not particularly limited as long as the effects of the technology disclosed herein are achieved. The ratio (C2 / C1) is preferably approximately 0.03 or greater and less than 1. From the viewpoint of achieving the effects of the technology disclosed herein, the ratio (C2 / C1) is preferably 0.05 or greater, more preferably 0.08 or greater, and even more preferably 0.1 or greater. In addition to the above effects, from the viewpoint of suppressing a decrease in the capacity retention rate of the power storage device 100, the ratio (C2 / C1) is preferably 0.8 or less, more preferably 0.7 or less, even more preferably 0.5 or less, and particularly preferably 0.3 or less.
[0022] The first particles 681 and the second particles 682 may both be, for example, composite particles of silicon and carbon. The composite particles of silicon and carbon are, for example, particles in which silicon and carbon are integrated and behave like a single particle. Hereinafter, the composite particles of silicon and carbon are also referred to as "Si / C particles." When the first particles 681 and the second particles 682 are Si / C particles, the degree of deformation of the first particles 681 and the second particles 682 during the manufacturing process of the electricity storage device 100 and during charging and discharging can be reduced. This makes it easier to achieve a suitable specific surface area in the negative electrode active material layer 64.
[0023] The Si / C particles contain silicon, for example, on the surface and inside of the carbon material. The carbon material may be, for example, a porous carbon material. Here, the porous carbon material refers to a carbon material having pores. The pores of the porous carbon material can contribute to mitigating the expansion and contraction of silicon that accompanies the charging and discharging of the electricity storage device 100, for example. Therefore, when the carbon material of the Si / C particles is a porous carbon material, the internal stress of the negative electrode active material layer 64 can be reduced. The silicon may be supported, for example, in the pores of the porous carbon material. When the silicon is supported in the pores of the porous carbon material, for example, the pores can absorb the expansion of the silicon. Although not particularly limited, the porous carbon material is preferably fibrous or granular.
[0024] The Si / C particles are produced, for example, by the method described below. However, the method for producing the Si / C particles is not limited to the method described below. The method for producing the Si / C particles includes, for example, a preparation step, a mixing step, and a heating step.
[0025] The preparation step is, for example, a step of preparing a composite of a porous carbon material and SiO (SiO-C composite) as a raw material, and a metal reducing agent. As the metal reducing agent, any metal reducing agent used for this type of application can be used without any particular limitation. The metal reducing agent may be, for example, magnesium (Mg), aluminum (Al), etc.
[0026] The mixing step is, for example, a step of mixing the raw materials prepared in the preparation step. By performing the mixing step, a mixture of the raw materials, ie, the SiO-C composite and the metal reducing agent, is obtained. Here, the raw materials may be mixed using a conventionally known mixing means such as a mortar.
[0027] The heating step is, for example, a step of heating the mixture obtained in the mixing step. By carrying out the heating step, a reduction reaction by the metal reducing agent can occur. As a result, for example, SiO in the SiO-C composite is reduced to Si, and silicon (Si) is placed in the pores of the porous carbon material. The heating step is preferably carried out in, for example, a rare gas atmosphere such as an argon atmosphere, or an inert atmosphere such as a nitrogen atmosphere. The heating temperature condition in the heating step may be, for example, 200°C to 500°C. The heating time may be, for example, 0.1 to 10 hours.
[0028] When the first particles 681 and the second particles 682 are Si / C particles, for example, by appropriately adjusting the size of the SiO-C composite as a raw material, it is possible to realize the desired average particle diameters D1 and D2 for the first particles 681 and the second particles 682. By appropriately adjusting the amount of SiO in the SiO-C composite as a raw material, it is possible to adjust the amount of silicon (Si) contained in the first particles 681 and the second particles 682.
[0029] In the embodiment shown in FIG. 3 , the negative electrode active material layer 64 further includes graphite particles 683. In addition to the first particles 681 and the second particles 682, the graphite particles 683 can also function as a negative electrode active material. Furthermore, the graphite particles 683 expand and contract to a lesser extent during charging and discharging of the electricity storage device 100 compared to the first particles 681 and the second particles 682, which contain silicon. Therefore, by including the graphite particles 683 in the negative electrode active material layer 64, the graphite particles 683 can play a part of the role of the negative electrode active material in the negative electrode active material layer 64. This can better suppress the expansion and contraction of the negative electrode sheet 60 during charging and discharging of the electricity storage device 100.
[0030] The graphite particles 683 may be, for example, artificial graphite or natural graphite. The graphite particles 683 may have a coating layer of amorphous carbon on their surfaces. Although not particularly limited, the graphite particles 683 may have, for example, a substantially spherical shape. In this specification, the term "substantially spherical" in relation to the graphite particles 683 refers to an average aspect ratio of the graphite particles 683 based on observation with a scanning electron microscope (SEM) of 1 to 2 (preferably 1 to 1.5). The average aspect ratio can be determined, for example, by obtaining a planar SEM image of the graphite particles 683, randomly selecting a plurality of graphite particles 683 (for example, 10 to 100) from the SEM image, calculating the aspect ratio of each, and then calculating the arithmetic mean value. The average particle diameter of the graphite particles 683 may be, for example, 5 μm to 30 μm, or may be 10 μm to 20 μm.
[0031] When the negative electrode active material contains graphite particles 683, in order to achieve the above-mentioned effects, when the total of the first particles 681, the second particles 682, and the graphite particles 683 is taken as 100% by mass, the proportion of the graphite particles 683 is preferably approximately 20% by mass to 80% by mass (preferably 40% by mass to 75% by mass, and more preferably 50% by mass to 70% by mass).
[0032] The negative electrode active material layer 64 may contain a conductive material in addition to the negative electrode active material. Examples of the conductive material that can be used include carbon nanotubes such as single-walled carbon nanotubes (SWCNT), double-walled carbon nanotubes (DWCNT), and multi-walled carbon nanotubes (MWCNT); carbon black such as acetylene black (AB); and carbon fibers. Of these, carbon nanotubes are preferred, and single-walled carbon nanotubes are more preferred. By using carbon nanotubes as the conductive material, the conductive path can be more suitably maintained, and the cycle characteristics of the electricity storage device 100 can be further improved.
[0033] The proportion of the negative electrode active material in the negative electrode active material layer 64, taken as 100% by mass, is preferably 80% by mass or more, more preferably 90% to 99% by mass, and may be 95% to 99% by mass. The proportion of the conductive material in the negative electrode active material layer 64, taken as 100% by mass, may be 0.01% to 1% by mass, for example.
[0034] The negative electrode active material layer 64 may contain a binder in addition to the negative electrode active material. Examples of binders include carboxymethyl cellulose (CMC), polyacrylic acid (PAA), styrene butadiene rubber (SBR), and polyvinylidene fluoride (PVDF). Among these, carboxymethyl cellulose (CMC), polyacrylic acid (PAA), and styrene butadiene rubber (SBR) are preferably used. The proportion of the binder when the entire negative electrode active material layer 64 is taken as 100% by mass may be, for example, 1% by mass to 10% by mass.
[0035] In producing the negative electrode sheet 60, the negative electrode active material and optional materials (such as conductive materials and binders) are dispersed in an appropriate solvent (such as water) to prepare a paste (or slurry) composition. This composition is then applied to the surface of the negative electrode current collector foil 62 and dried. Then, by pressing as necessary, the negative electrode sheet 60 is produced, in which the negative electrode active material layer 64 is provided on the surface of the negative electrode current collector foil 62.
[0036] The separator 70 may be a porous sheet (film) made of a resin material such as polyethylene (PE), polypropylene (PP), polyester, cellulose, or polyamide. The porous sheet may have a single-layer structure or a laminated structure of two or more layers (for example, a three-layer structure in which PP layers are laminated on both sides of a PE layer). A heat-resistant layer (HRL) may be provided on the surface of the separator 70.
[0037] The case 30 is, for example, an outer container that houses the electrode assembly 20 and the nonaqueous electrolyte 80. Here, the case 30 is a flat, rectangular case. As shown in FIG. 1 , the case 30 has a positive electrode terminal 42, a negative electrode terminal 44, a safety valve 36, and an inlet (not shown). The positive electrode terminal 42 is, for example, a terminal for external connection on the positive electrode side. Here, the positive electrode terminal 42 is electrically connected to the positive electrode sheet 50 of the electrode assembly 20 via a current collector 42a. The negative electrode terminal 44 is, for example, a terminal for external connection on the negative electrode side. Here, the negative electrode terminal 44 is electrically connected to the negative electrode sheet 60 of the electrode assembly 20 via a current collector 44a. The safety valve 36 is, for example, a thin-walled portion configured to release internal pressure when the internal pressure of the case 30 rises above a predetermined level. The inlet is, for example, a portion through which the nonaqueous electrolyte 80 is injected into the case 30.
[0038] The non-aqueous electrolyte 80 contains, for example, an electrolyte salt, a non-aqueous solvent, and a scavenger. The electrolyte salt can be, for example, LiPF6. The concentration of the electrolyte salt in the non-aqueous electrolyte 80 is preferably, for example, 0.7 mol / L to 1.3 mol / L. The non-aqueous solvent can be, for example, a carbonate such as ethylene carbonate (EC), diethyl carbonate (DEC), dimethyl carbonate (DMC), ethyl methyl carbonate (EMC), monofluoroethylene carbonate (MFEC), difluoroethylene carbonate (DFEC), monofluoromethyl difluoromethyl carbonate (F-DMC), or trifluorodimethyl carbonate (TFDMC). These can be used alone or in combination of two or more.
[0039] The power storage device 100 can be used for a variety of purposes. Suitable applications include a driving power source mounted on vehicles such as electric vehicles (BEVs), hybrid electric vehicles (HEVs), and plug-in hybrid electric vehicles (PHEVs). The power storage device 100 can be used as a storage battery for a small-sized power storage device or the like. A plurality of power storage devices 100 may be connected in series and / or parallel to form a battery pack.
[0040] As described above, the power storage device 100 includes a negative electrode active material layer 64 containing a negative electrode active material 68. The negative electrode active material 68 includes first particles 681 containing silicon and second particles 682 containing silicon and different from the first particles 681. The first particles 681 have an average circularity CR1 of 0.5 or more and 0.9 or less. The second particles 682 have an average circularity CR2 greater than 0.9. The ratio (D2 / D1) of the average particle diameter D1 of the first particles 681 to the average particle diameter D2 of the second particles 682 is 0.1 or more and less than 1.
[0041] The power storage device 100 thus configured uses a negative electrode active material 68 including first particles 681 containing silicon and second particles 682 containing silicon, thereby achieving high capacity. The average particle diameter D1 of the first particles 681, which have a relatively low average circularity, is larger than the average particle diameter D2 of the second particles 682, which have a relatively high average circularity. Therefore, the second particles 682 easily enter the voids formed between the first particles 681. This prevents an increase in the specific surface area of the negative electrode active material layer 64, thereby achieving a more desirable specific surface area. In addition to achieving a more desirable specific surface area of the negative electrode active material layer 64, an appropriate amount of voids can be maintained within the negative electrode active material layer 64. Therefore, even if the negative electrode active material 68 expands and contracts during charging and discharging of the power storage device 100, the voids eliminate the expansion and contraction of the negative electrode active material 68. This makes it possible to suppress an increase in internal stress in the negative electrode active material layer 64 and a break in the conductive path.
[0042] Test examples relating to the present invention will be described below, but it is not intended that the present invention be limited to those shown in the following test examples.
[0043] <Preparation of test cell> Example 1 In producing the negative electrode sheet, first, materials were prepared. First particles, second particles, and graphite particles were prepared as negative electrode active materials. The first particles were Si / C particles with an average circularity of 0.64 and an average particle diameter of 10 μm. The second particles were Si / C particles with an average circularity of 0.95 and an average particle diameter of 2 μm. The graphite particles were graphite particles with an average particle diameter of 15 μm. Single-walled carbon nanotubes (SWCNTs) were prepared as the conductive material. Carboxymethyl cellulose (CMC), polyacrylic acid (PAA), and styrene butadiene rubber (SBR) were prepared as binders. These were mixed with water as a solvent in a mass ratio of first particles:second particles:graphite particles:SWCNT:CMC:PAA:SBR=31.5:3.5:65:0.1:1:1:1.5 to prepare a negative electrode mixture paste.
[0044] In preparing the negative electrode mixture paste, first, the first particles, the second particles, a paste of SWCNT (solid content 2%), and a dispersion medium were charged into a kneader and dispersed and mixed at 3000 rpm using a disperser to prepare a first paste. Next, graphite particles, CMC, and PAA were dry-mixed using a stirring granulator. Then, the first paste, the mixed powder obtained by dry mixing, and a dispersion medium (water) were kneaded and mixed. The solid content during the kneading and mixing was 65%. SBR and a dispersion medium (water) were further added to the kneaded and mixed mixture and mixed. In this way, a negative electrode mixture paste was prepared. The negative electrode mixture paste was applied in a strip shape to both sides of a 10 μm-thick copper foil. The paste on the copper foil was then dried, pressed to a predetermined thickness, and processed to a predetermined dimension to prepare a negative electrode sheet.
[0045] Next, lithium nickel cobalt manganese composite oxide (NCM) was prepared as the positive electrode active material, acetylene black (AB) as the conductive material, and polyvinylidene fluoride (PVDF) as the binder. These were mixed with N-methylpyrrolidone (NMP) as the solvent in a mass ratio of NCM:AB:PVDF = 100:1:1 to prepare a positive electrode composite paste. This paste was applied in strips to both sides of a 15 μm-thick aluminum foil. The paste on the aluminum foil was then dried, pressed to a predetermined thickness, and processed to the predetermined dimensions to prepare a positive electrode sheet.
[0046] A current collecting lead was attached to each of the positive electrode sheet and negative electrode sheet obtained as described above, and the sheets were stacked with a separator interposed therebetween to produce a laminated electrode assembly. The laminated electrode assembly was then inserted into an exterior body made of an aluminum laminate sheet, a nonaqueous electrolyte was injected into the interior of the exterior body, and the opening of the exterior body was sealed to produce a test cell of Example 1. A porous polyolefin sheet having a three-layer structure of PP / PE / PP was used as the separator. The nonaqueous electrolyte was a mixed solvent of ethylene carbonate (EC), fluoroethylene carbonate (FEC), ethyl methyl carbonate (EMC), and dimethyl carbonate (DMC) in a volume ratio of EC:FEC:EMC:DMC=15:5:40:40, in which LiPF6 was dissolved as a supporting electrolyte at a concentration of 1 mol / L.
[0047] The average circularity CR1 of the first particles and the average circularity CR2 of the second particles were calculated by image analysis of the particle images of each particle. In this image analysis, 3,000 particles were used for measurement. At this time, the circularity of each particle was calculated using the perimeter (L) of the particle, the perimeter (L0) of a circle having the same projected area as the particle, and the following formula (A): Circularity = L0 / L Formula (A) The average circularity CR1 and the average circularity CR2 were calculated by dividing the sum of the circularities of the 3,000 particles tested by the number of particles tested (3,000 in this case). In this test example, the average circularity CR1 and the average circularity CR2 were measured using an image particle size distribution analyzer.
[0048] Example 2 For the negative electrode active material, the first particles, the second particles, and the graphite particles were prepared in a mass ratio of the first particles:the second particles:the graphite particles=26.25:87:25:65. Except for this, the test cell of this example was fabricated using the same materials and procedures as in Example 1.
[0049] Example 3 The test cell of this example was fabricated using the same materials and procedures as in Example 1, except that the second particles used had an average particle diameter D2 of 4 μm.
[0050] Example 4 The test cell of this example was produced using the same materials and procedures as in Example 1, except that the second particles used had an average particle diameter D2 of 6 μm.
[0051] Example 5 For the negative electrode active material, the first particles, the second particles, and the graphite particles were prepared in a mass ratio of the first particles:the second particles:the graphite particles = 21:14:65. Except for this, the test cell of this example was produced using the same materials and procedures as in Example 1.
[0052] -Comparative Example 1- The test cell of this example was fabricated using the same materials and procedures as in Example 1, except that the second particles used had an average particle diameter D2 of 0.7 μm.
[0053] -Comparative Example 2- For the negative electrode active material, the first particles, the second particles, and the graphite particles were prepared in a mass ratio of the first particles:the second particles:the graphite particles = 35:0:65. Except for this, the test cell of this example was produced using the same materials and procedures as in Example 1.
[0054] -Comparative Example 3- For the negative electrode active material, the first particles, the second particles, and the graphite particles were prepared in a mass ratio of the first particles:the second particles:the graphite particles = 0:35:65. Except for this, the test cell of this example was produced using the same materials and procedures as in Example 1.
[0055] <Evaluation of specific surface area increase rate> For each test cell, the specific surface area of the negative electrode sheet before and after pressing in the above-mentioned manufacturing process was calculated to obtain the specific surface area increase rate. Here, the negative electrode sheet was cut to a predetermined size before and after pressing to obtain samples, and the gas adsorption amount was measured by gas adsorption method using a commercially available specific surface area and pore distribution measuring device. Nitrogen was used as the adsorbed gas. The specific surface area was calculated using the BET method. Then, the following mathematical formula (B): Specific surface area increase rate (%) = [{(specific surface area after pressing) - (specific surface area before pressing)} / (specific surface area before pressing)] × 100 Formula (B) The specific surface area increase rate (%) was calculated using the above formula. The results are shown in the corresponding columns in Table 1.
[0056] <Evaluation of capacity retention rate> A cycle test was performed on each test cell in an environment of 25°C, in which CCCV charging (0.4C rate up to 4.2V, then 0.1C cut) was performed, followed by CC discharging (0.4C rate, 2.5V cut) under the above conditions, with one cycle consisting of charging and discharging. The discharge capacity at the first cycle (initial capacity) and the discharge capacity at the 200th cycle were measured, and the following formula (C) was used: Capacity retention rate (%) = (discharge capacity at 200th cycle / initial capacity) × 100 Formula (C) The capacity retention rate (%) of the test cell of each example was measured based on the results shown in the corresponding column in Table 1.
[0057] [Table 1]
[0058] As shown in Table 1, the test cells of Examples 1 to 5 contained first particles and second particles containing silicon as the negative electrode active material. In the test cells of Examples 1 to 5, the average circularity CR1 of the first particles was 0.5 or more and 0.9 or less, the average circularity CR2 of the second particles was greater than 0.9, and the ratio (D2 / D1) of the average particle diameter D1 of the first particles to the average particle diameter D2 of the second particles was 0.1 or more and less than 1. It was shown that the negative electrode sheets used in the test cells of Examples 1 to 5 had a lower rate of increase in specific surface area before and after pressing than the comparative examples. It was found that the negative electrode sheets used in the test cells of Examples 1 to 5 were less affected by pressing than the negative electrode sheets of Comparative Examples 1 to 3, and thus achieved a more preferable specific surface area.
[0059] As described above, specific aspects of the technology disclosed herein include those described in the following sections. Section 1: An electricity storage device including a negative electrode active material layer containing a negative electrode active material, The negative electrode active material is first particles comprising silicon; second particles different from the first particles, the second particles including silicon; It contains where: the average circularity CR1 of the first particles is 0.5 or more and 0.9 or less, the average circularity CR2 of the second particles is greater than 0.9; a ratio (D2 / D1) of an average particle diameter D1 of the first particles to an average particle diameter D2 of the second particles is 0.1 or more and less than 1; Energy storage device. Section 2: Item 2. The electricity storage device according to item 1, wherein the ratio (C2 / C1) of the content C1 of the first particles to the content C2 of the second particles in the negative electrode active material is 0.5 or less. Section 3: Item 3. The electricity storage device according to item 1 or 2, wherein the ratio (D2 / D1) of the average particle diameter D1 to the average particle diameter D2 of the second particles is 0.5 or less. Section 4: 4. The electricity storage device according to any one of items 1 to 3, wherein the average particle diameter D2 is 1 μm or more and 5 μm or less. Section 5: 5. The electricity storage device according to any one of items 1 to 4, wherein the first particles and the second particles are composite particles of silicon and carbon. Item 6: Item 6. The electricity storage device according to any one of items 1 to 5, wherein the negative electrode active material layer further contains graphite particles.
[0060] Although the embodiments of the technology disclosed herein have been described above, it is not intended that the technology disclosed herein be limited to the above-described embodiments. The technology disclosed herein may also be implemented in other embodiments. The technology described in the claims includes various modifications and alterations of the above-described exemplary embodiments. For example, it is possible to replace part of the above-described embodiments with other modified embodiments, and it is also possible to add other modified embodiments to the above-described embodiments. Furthermore, if a technical feature is not described as essential, it may be deleted as appropriate. [Explanation of symbols]
[0061] 20 Electrode body 30 cases 50 positive electrode sheet 60 negative electrode sheet 62 Negative electrode current collecting foil 64 Negative electrode active material layer 68 Anode active material 681 1st particle 682 2nd particle 683 Graphite particles 100 Energy storage device
Claims
1. An electricity storage device including a negative electrode active material layer containing a negative electrode active material, The negative electrode active material is first particles comprising silicon; second particles different from the first particles, the second particles including silicon; It contains where: the average circularity CR1 of the first particles is 0.5 or more and 0.9 or less, the average circularity CR2 of the second particles is greater than 0.9; a ratio (D2 / D1) of an average particle diameter D1 of the first particles to an average particle diameter D2 of the second particles is 0.1 or more and less than 1; Energy storage device.
2. The power storage device according to claim 1 , wherein a ratio (C2 / C1) of a content C1 of the first particles to a content C2 of the second particles in the negative electrode active material is 0.5 or less.
3. The electricity storage device according to claim 2 , wherein a ratio (D2 / D1) of the average particle diameter D1 to the average particle diameter D2 of the second particles is 0.5 or less.
4. The electricity storage device according to claim 1 , wherein the average particle diameter D2 is 1 μm or more and 5 μm or less.
5. The electricity storage device according to claim 1 , wherein the first particles and the second particles are both composite particles of silicon and carbon.
6. The electricity storage device according to any one of claims 1 to 5, wherein the negative electrode active material layer further contains graphite particles.
Citation Information
Patent Citations
Negative electrode active substance, mixed negative electrode active substance material, negative electrode for nonaqueous electrolyte secondary battery, lithium ion secondary battery, negative electrode active substance manufacturing method, and lithium ion secondary battery manufacturing method
JP2017092009A
Negative electrode active material for lithium ion secondary batteries and manufacturing method therefor
JP2019175851A
Lithium-ion secondary battery negative electrode material, production method for lithium-ion secondary battery negative electrode material, lithium-ion secondary battery negative electrode, and lithium-ion secondary battery
WO2019220576A1
Negative electrode for nonaqueous electrolyte secondary batteries, and nonaqueous electrolyte secondary battery
WO2022176650A1
Secondary battery
WO2023053947A1