All-solid-state batteries
By orienting the binder in the positive electrode active material layer at a 60% rate perpendicular to the stacking direction, the strength of the layer is improved, preventing failures and maintaining high energy density and output in all-solid-state batteries.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-05-19
- Publication Date
- 2026-03-10
AI Technical Summary
The positive electrode active material layer in all-solid-state batteries is fragile, leading to potential failures like short circuits, and increasing the binder content to enhance strength results in decreased energy density and output.
The orientation rate of the binder in the positive electrode active material layer is set to 60% or more in a direction perpendicular to the stacking direction, maintaining strength while minimizing energy density and output losses.
This approach enhances the positive electrode active material layer's strength, preventing cracking and collapse during charge and discharge cycles, thus maintaining high energy density and output.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to an all-solid-state battery. [Background technology]
[0002] In recent years, there has been a strong desire to reduce carbon dioxide emissions in order to combat global warming. The automotive industry is hoping that the introduction of electric vehicles (EVs) and hybrid electric vehicles (HEVs) will help reduce carbon dioxide emissions, and there has been active development of all-solid-state batteries, such as secondary batteries for motor drive, which hold the key to their practical application.
[0003] Secondary batteries for driving motors are required to have extremely high output characteristics and high energy compared to consumer lithium secondary batteries used in mobile phones, laptops, etc. Therefore, lithium secondary batteries, which have the highest theoretical energy of all practical batteries, have attracted attention and are currently being rapidly developed.
[0004] Currently widely used lithium secondary batteries use flammable organic electrolytes, and these liquid-based lithium secondary batteries require stricter safety measures against leakage, short circuits, overcharging, and other issues than other batteries.
[0005] Therefore, in recent years, there has been active research and development into all-solid-state secondary batteries that use oxide- or sulfide-based solid electrolytes. Solid electrolytes are materials primarily composed of ionic conductors that allow ionic conduction in a solid state. For this reason, all-solid-state secondary batteries do not, in principle, encounter the various problems associated with flammable organic electrolytes that occur in conventional liquid-based lithium secondary batteries. Furthermore, the use of high-potential, high-capacity positive electrode materials and high-capacity negative electrode materials generally leads to significant improvements in the output density and energy density of batteries.
[0006] However, in all-solid-state secondary batteries, the positive electrode active material layer that constitutes part of the battery is known to be relatively fragile and can cause failures such as short circuits. In response to this, for example, JP 2019-021459 A discloses a method for stably producing a positive electrode active material layer by including a binder in the positive electrode active material layer. Summary of the Invention [Problem to be solved by the invention]
[0007] However, the inventors have found that the positive electrode active material layer described in JP 2019-021459 A does not sufficiently improve the strength of the outer peripheral edge of the positive electrode active material layer. On the other hand, they have also found that increasing the binder content of the positive electrode active material layer in order to sufficiently improve the strength leads to a problem of a decrease in energy density and a decrease in energy output.
[0008] Therefore, an object of the present invention is to provide a means for improving the strength of a positive electrode active material layer while minimizing a decrease in energy density and a decrease in energy output in an all-solid-state battery having a positive electrode active material layer containing a binder. [Means for solving the problem]
[0009] The present inventors have conducted extensive research to solve the above-mentioned problems, and as a result, have found that the above-mentioned problems can be solved by setting the orientation rate of the binder contained in the positive electrode active material layer to a certain level or higher, thereby completing the present invention.
[0010] An all-solid-state battery according to one embodiment of the present invention includes a power generating element including a positive electrode including a positive electrode active material layer containing a positive electrode active material and a binder, a negative electrode, and a solid electrolyte layer interposed between the positive electrode and the negative electrode and containing a solid electrolyte, and is characterized in that the orientation rate of the binder contained in the positive electrode active material layer in a direction perpendicular to the stacking direction of the power generating element is 60% or more. [Brief explanation of the drawings]
[0011] [Figure 1] FIG. 1 is a perspective view showing the appearance of a stacked battery according to one embodiment of the present invention. [Figure 2] FIG. 2 is a cross-sectional view taken along line 2-2 shown in FIG. [Figure 3] FIG. 3 is a schematic diagram showing an enlarged cross section of a cell layer that constitutes the power generating element of the stacked battery shown in FIGS. [Figure 4] FIG. 4 is a diagram for explaining a method for calculating the aspect ratio of a binder. [Figure 5] FIG. 5 is a schematic diagram showing an example of a branched chain fibrous binder. [Figure 6] FIG. 6 is a diagram schematically illustrating an example of a forming step in one embodiment of a manufacturing method for producing a positive electrode active material layer. DETAILED DESCRIPTION OF THE INVENTION
[0012] One aspect of the present invention is an all-solid-state battery having a power generating element including a positive electrode including a positive electrode active material layer containing a positive electrode active material and a binder, a negative electrode, and a solid electrolyte layer interposed between the positive electrode and the negative electrode and containing a solid electrolyte, wherein the orientation rate of the binder contained in the positive electrode active material layer in a direction perpendicular to the stacking direction of the power generating element is 60% or more. According to the present invention, in an all-solid-state battery having a positive electrode active material layer containing a binder, it is possible to improve the strength of the positive electrode active material layer while minimizing decreases in energy density and energy output.
[0013] The following describes the above-described embodiments of the present invention with reference to the drawings. However, the technical scope of the present invention should be defined based on the claims and is not limited to the following embodiments. Note that the dimensional ratios in the drawings are exaggerated for convenience of explanation and may differ from the actual ratios. Below, the present invention will be described using as an example a non-bipolar (internal parallel connection) flat stacked all-solid-state secondary battery (hereinafter simply referred to as a "stacked battery" or "all-solid-state battery"), which is one form of all-solid-state battery. As described above, the solid electrolyte constituting an all-solid-state secondary battery is a material composed mainly of an ion conductor capable of ion conduction in a solid. Therefore, all-solid-state secondary batteries have the advantage that, in principle, they do not encounter various problems associated with flammable organic electrolytes, as in conventional liquid-based lithium secondary batteries. Furthermore, generally, the use of a high-potential, high-capacity positive electrode material and a high-capacity negative electrode material has the advantage of significantly improving the output density and energy density of the battery.
[0014] Fig. 1 is a perspective view showing the appearance of a stacked battery according to one embodiment of the present invention. Fig. 2 is a cross-sectional view taken along line 2-2 shown in Fig. 1. The stacked structure allows the battery to be compact and have a high capacity.
[0015] 1, the stacked battery 10a has a flat, rectangular shape, and a positive current collector 27 and a negative current collector 25 for extracting power are pulled out from both sides of the stacked battery 10a. The power generating element 21 is wrapped in a battery exterior material (laminate film 29) of the stacked battery 10a, and the periphery is heat-sealed, with the positive current collector 27 and the negative current collector 25 pulled out to the outside.
[0016] There are also no particular limitations on how the current collector plates (27, 25) shown in Fig. 1 are taken out. The positive current collector plate 27 and the negative current collector plate 25 may be taken out from the same side, or each of the positive current collector plate 27 and the negative current collector plate 25 may be divided into multiple pieces and taken out from each side, and so on, and are not limited to what is shown in Fig. 1.
[0017] 2, the stacked battery 10a of this embodiment has a structure in which a flat, generally rectangular power generating element 21, where charge and discharge reactions actually proceed, is sealed inside a laminate film 29, which is a battery exterior material. Here, the power generating element 21 has a configuration in which a positive electrode, a solid electrolyte layer 17, and a negative electrode are stacked. The positive electrode has a structure in which positive electrode active material layers 15 containing a positive electrode active material are disposed on both sides of a positive electrode current collector 11". The negative electrode has a structure in which negative electrode active material layers 13 containing a negative electrode active material are disposed on both sides of a negative electrode current collector 11'. Specifically, the positive electrode, solid electrolyte layer, and negative electrode are stacked in this order such that one positive electrode active material layer 15 faces the adjacent negative electrode active material layer 13 with the solid electrolyte layer 17 interposed therebetween. As a result, the adjacent positive electrode, solid electrolyte layer, and negative electrode constitute one unit cell layer 19. Therefore, it can be said that the stacked battery 10a shown in FIG. 1 has a structure in which a plurality of unit cell layers 19 are stacked and electrically connected in parallel.
[0018] A positive electrode current collector (tab) 27 and a negative electrode current collector (tab) 25 that are electrically connected to the electrodes (positive and negative electrodes) are attached to the positive electrode current collector 11" and the negative electrode current collector 11', respectively, and are configured to be sandwiched between the ends of a laminate film 29 that is a battery exterior material and extended to the outside of the laminate film 29. The positive electrode current collector 27 and the negative electrode current collector 25 may be attached to the positive electrode current collector 11" and the negative electrode current collector 11' of the electrodes, respectively, via a positive electrode lead and a negative electrode lead (not shown) by ultrasonic welding, resistance welding, or the like, as needed.
[0019] FIG. 3 is a schematic diagram showing an enlarged cross section of a cell layer 19 constituting the power generating element 21 of the stacked battery 10a shown in FIGS. 1 and 2. As shown in FIG. 3, the cell layer 19 according to this embodiment is a laminate in which a negative electrode current collector 11′, a negative electrode active material layer 13, a solid electrolyte layer 17, a positive electrode active material layer 15, and a positive electrode current collector 11″ are laminated in this order, which constitute the cell layer 19. The positive electrode active material layer 15 contains a binder 30, and the binder has an orientation rate of 60% or more in a direction perpendicular to the stacking direction of the power generating element (the direction of the arrow in the figure). The “orientation rate of the binder” will be described in detail later.
[0020] The main components of the all-solid-state secondary battery according to this embodiment will be described below.
[0021] [Current collector] The current collector has a function of mediating the transfer of electrons from the electrode active material layer. There are no particular limitations on the material constituting the current collector. For example, metals and conductive resins can be used as the material constituting the current collector.
[0022] Specifically, examples of the metal include aluminum, nickel, iron, stainless steel, titanium, and copper. Other examples include clad materials of nickel and aluminum, and clad materials of copper and aluminum. Furthermore, foils in which aluminum is coated on a metal surface may also be used. Among these, aluminum, stainless steel, copper, and nickel are preferred from the viewpoints of electronic conductivity, battery operating potential, and adhesion of the negative electrode active material to the current collector by sputtering.
[0023] Furthermore, examples of the resin having electrical conductivity include conductive polymer materials and resins in which conductive fillers are added to non-conductive polymer materials.
[0024] The conductive filler can be any material having electrical conductivity without any particular limitation. For example, metals and conductive carbons can be used as materials having excellent electrical conductivity, potential resistance, or lithium ion blocking properties.
[0025] The current collector may have a single layer structure made of a single material, or may have a laminate structure made of an appropriate combination of layers made of these materials. From the viewpoint of reducing the weight of the current collector, it is preferable that the current collector include at least a conductive resin layer made of a resin having electrical conductivity. Furthermore, from the viewpoint of blocking the movement of lithium ions between the cell layers, a metal layer may be provided on a part of the current collector.
[0026] [Cathode active material layer] The positive electrode active material layer according to this embodiment includes a positive electrode active material and a binder.
[0027] (Cathode active material) The type of positive electrode active material is not particularly limited, but may be layered rock salt active materials such as LiCoO2, LiMnO2, LiNiO2, LiVO2, and Li(Ni-Mn-Co)O2; LiMn2O4, LiNi 0.5 Mn 1.5 Examples of oxide active materials include spinel-type active materials such as LiFePO4 and LiMnPO4, olivine-type active materials such as LiFeSiO4 and LiMnSiO4, and Si-containing active materials such as LiFeSiO4 and LiMnSiO4. 12 Among these, composite oxides containing lithium and nickel are preferably used, and more preferably Li(Ni-Mn-Co)O2 and those in which part of the transition metal is replaced by another element (hereinafter also simply referred to as "NMC composite oxides"). NMC composite oxides have a layered crystal structure in which lithium atomic layers and transition metal (Mn, Ni, and Co arranged in an orderly manner) atomic layers are alternately stacked with oxygen atomic layers interposed between them, and contain one Li atom per atom of the transition metal M. The amount of Li that can be extracted is twice that of spinel-based lithium manganese oxides, i.e., the supply capacity is doubled, resulting in high capacity.
[0028] As described above, the NMC composite oxide also includes composite oxides in which a portion of the transition metal element is replaced with another metal element, such as Ti, Zr, Nb, W, P, Al, Mg, V, Ca, Sr, Cr, Fe, B, Ga, In, Si, Mo, Y, Sn, V, Cu, Ag, or Zn. Among these, Ti, Zr, Nb, W, P, Al, Mg, V, Ca, Sr, or Cr is preferred, Ti, Zr, P, Al, Mg, or Cr is more preferred, and Ti, Zr, Al, Mg, or Cr is even more preferred from the viewpoint of improving cycle characteristics.
[0029] Furthermore, in one preferred embodiment, a sulfur-based positive electrode active material is used. Examples of the sulfur-based positive electrode active material include particles or thin films of organic sulfur compounds or inorganic sulfur compounds, and any material can be used as long as it is capable of releasing lithium ions during charging and absorbing lithium ions during discharging by utilizing the oxidation-reduction reaction of sulfur.
[0030] In some cases, two or more kinds of positive electrode active materials may be used in combination. Of course, positive electrode active materials other than those mentioned above may also be used. The content of the positive electrode active material in the positive electrode active material layer is not particularly limited, but is preferably in the range of 35 to 99 mass %, and more preferably in the range of 40 to 90 mass %.
[0031] (binder) The positive electrode active material layer according to this embodiment contains a binder, and the orientation rate of the binder in the direction perpendicular to the stacking direction of the power generating element (also simply referred to as the "plane direction") is 60% or more. In the all-solid-state battery according to this embodiment, the orientation rate of the binder in the positive electrode active material layer is 60% or more in the plane direction, so that the strength of the positive electrode active material layer can be improved while minimizing decreases in energy density and output.
[0032] Although the mechanism by which the above-described effects are achieved is not completely clear, the following is presumed. That is, by arranging the binder so as to be oriented in the plane direction, even if an external force (e.g., compressive stress or bending stress) is applied to the positive electrode active material layer from the stacking direction, an internal force that can counteract this can be generated, resulting in sufficient strength of the positive electrode active material layer. Similarly, even when an external force (e.g., tensile stress or shear stress) is applied to the positive electrode active material layer from the plane direction, by arranging the binder as described above, an internal force that can counteract the external force can be generated, resulting in sufficient strength of the positive electrode active material layer. As a result, even when the all-solid-state battery repeatedly expands and contracts due to charge and discharge, it is thought that cracking and collapse of the positive electrode active material layer due to external forces can be prevented, thereby preventing a decrease in output power of the all-solid-state battery.
[0033] Increasing the binder content in the positive electrode active material layer is one way to increase the strength of the positive electrode active material layer, but this reduces the energy density of the all-solid-state battery. In the positive electrode active material layer according to this embodiment, the binder is arranged so as to be oriented in the plane direction, and the above-mentioned mechanism allows sufficient strength to be maintained, so the binder content can be reduced. This is thought to enable an all-solid-state battery that maintains sufficient strength and has a high energy density, even with a low binder content.
[0034] In the secondary battery according to this embodiment, the orientation rate of the binder in the positive electrode active material layer can be calculated as follows.
[0035] First, the state of binder arrangement in a cross section of the positive electrode active material layer parallel to the stacking direction of the power generating element is identified. The state of binder arrangement can be identified by observing the cross section with SEM-EDX and mapping elements specific to the binder. Note that if results equivalent to those of SEM-EDX can be obtained, binder mapping in the cross section may also be performed using AES (Auger electron spectroscopy), EPMA (electron probe microanalysis), or the like.
[0036] Next, the average aspect ratio of the binders is calculated from the arrangement of each binder in the cross section of the positive electrode active material layer. The average aspect ratio of the binders is calculated as follows: First, 100 or more binders are extracted from all binders included in the observed image of the cross section.
[0037] Next, the aspect ratio is calculated for each of the extracted binders. Specifically, in the above-mentioned observation image, as shown in FIG. 4, a rectangle (the rectangle indicated by the dashed line in FIG. 4) having a side parallel to the stacking direction of the power generating element (vertical side, H in FIG. 4) and a perpendicular side (horizontal side, W in FIG. 4) is set so that the binder 30 is inscribed. Then, the length of the horizontal side of the rectangle is divided by the length of the vertical side to calculate the aspect ratio (1 / tan θ). Then, the average value of the aspect ratios of each of the extracted binders is calculated, and this is set as the average aspect ratio (1 / tan θ) of the binders.
[0038] Next, θ [°] is calculated from the calculated average value of the aspect ratios (1 / tan θ). Next, a value calculated from this θ value using the following formula 1 is defined as the orientation rate (%) of the binder in the positive electrode active material layer.
[0039]
number
[0040] Since the binder is considered to be uniformly dispersed in the positive electrode active material layer, the orientation rate calculated by observing at least one cross section of the positive electrode active material layer can be used as the orientation rate of the binder in the entire positive electrode active material layer.
[0041] The lower limit of the orientation rate of the binder in the positive electrode active material layer according to this embodiment is 60% or more, preferably 65% or more, more preferably 70% or more, even more preferably 75% or more, particularly preferably 80% or more, and most preferably 85% or more. Having the binder orientation rate within this range allows the positive electrode active material layer to have sufficient strength when an external force (e.g., compressive stress or bending stress) is applied to the positive electrode active material layer from the stacking direction. Furthermore, the upper limit of the orientation rate of the binder according to this embodiment is preferably 90% or less. Having the binder orientation rate within this range allows the positive electrode active material layer to exert sufficient internal force when an external force (e.g., tensile stress or shear stress) is applied from a direction perpendicular to the stacking direction. That is, the orientation rate of the binder according to this embodiment is preferably 60% or more and 90% or less, more preferably 65% or more and 90% or less, even more preferably 70% or more and 90% or less, even more preferably 75% or more and 90% or less, particularly preferably 80% or more and 90% or less, and most preferably 85% or more and 90% or less.
[0042] The upper limit of the binder content in the positive electrode active material layer according to this embodiment is preferably 3.2% by mass or less, more preferably 3.1% by mass or less, and even more preferably 3.0% by mass or less, relative to the total mass of the positive electrode active material layer. Having the binder content within this range ensures that the energy density and energy output of the all-solid-state battery are sufficiently high. Meanwhile, the lower limit of the binder content in the positive electrode active material layer according to this embodiment is preferably 0.6% by mass or more, more preferably 0.7% by mass or more, even more preferably 0.8% by mass or more, particularly preferably 1.0% by mass or more, and most preferably 1.5% by mass. Having the binder content within this range ensures that the strength of the positive electrode active material layer is more sufficient. That is, the content of the binder in the positive electrode active material layer according to this embodiment is preferably 0.6% by mass or more and 3.2% by mass or less, more preferably 0.7% by mass or more and 3.1% by mass or less, even more preferably 0.8% by mass or more and 3.0% by mass or less, particularly preferably 1.0% by mass or more and 3.0% by mass or less, and most preferably 1.5% by mass or more and 3.0% by mass or less, relative to the total mass of the positive electrode active material layer.
[0043] The binder is not particularly limited, but examples thereof include the following materials:
[0044] Thermoplastic polymers such as polybutylene terephthalate, polyethylene terephthalate, polyvinylidene fluoride (PVDF) (including compounds in which hydrogen atoms are substituted with other halogen elements), polyethylene, polypropylene, polymethylpentene, polybutene, polyethernitrile, polytetrafluoroethylene, polyacrylonitrile, polyimide, polyamide, ethylene-vinyl acetate copolymer, polyvinyl chloride, styrene-butadiene rubber (SBR), ethylene-propylene-diene copolymer, styrene-butadiene-styrene block copolymer and its hydrogenated products, styrene-isoprene-styrene block copolymer and its hydrogenated products, tetrafluoroethylene-hexafluoropropylene copolymer (FEP), tetrafluoroethylene-perfluoroalkyl vinyl ether copolymer (PFA), ethylene-tetrafluoroethylene copolymer (ETFE), polychlorotrifluoroethylene (PCTFE), ethylene Examples of such fluororesins include vinylidene fluoride-based fluororubbers such as vinylidene fluoride-hexafluoropropylene fluororubber (VDF-HFP fluororubber), vinylidene fluoride-hexafluoropropylene-tetrafluoroethylene fluororubber (VDF-HFP-TFE fluororubber), vinylidene fluoride-pentafluoropropylene fluororubber (VDF-PFP fluororubber), vinylidene fluoride-pentafluoropropylene-tetrafluoroethylene fluororubber (VDF-PFP-TFE fluororubber), vinylidene fluoride-perfluoromethylvinyl ether-tetrafluoroethylene fluororubber (VDF-PFMVE-TFE fluororubber), and vinylidene fluoride-chlorotrifluoroethylene fluororubber (VDF-CTFE fluororubber), as well as epoxy resins. Among these, it is preferable that the binder contains a fibrous binder, from the viewpoint that the strength of the positive electrode active material layer can be made more sufficient by being entangled with other components.In this specification, the term "fibrous binder" refers to a binder mainly composed of fibers having an aspect ratio of 10 or more and a minimum Feret diameter of 0.2 μm or less in an image obtained by observing the cross section of a positive electrode active material layer using a scanning electron microscope (SEM). Here, the aspect ratio is calculated by dividing the maximum Feret diameter of the binder by the minimum Feret diameter. The maximum Feret diameter is the maximum distance between two parallel lines when the outline of the binder is sandwiched between the lines, and the minimum Feret diameter is the minimum distance between the lines when the outline of the binder is sandwiched between the lines. When a binder is "mainly composed" of the above fibers, it means that the area ratio of the above fiber portion to the total area of the binder in the SEM observation image is 50% or more. A single fibrous binder may include non-fiber portions (portions with an aspect ratio of less than 10 or portions with a minimum Feret diameter of more than 0.2 μm) having an aspect ratio of 10 or more and a minimum Feret diameter of 0.2 μm or less. However, the area ratio of non-fiber portions to the total area of the fibrous binder in an SEM observation image must be less than 50%, preferably 20% or less, more preferably 10% or less, and even more preferably 5% or less (the lower limit is 0%). Fibrous binders include not only those composed of a single fiber but also those having a structure in which two or more fibers are connected to each other. Specific shapes of binders having a structure in which two or more fibers are connected to each other include branched, radial, and network shapes, as well as shapes combining these. Here, we will explain how to determine the maximum and minimum Feret diameters of binders having a structure in which two or more fibers are connected to each other. Figure 5 is a schematic diagram showing an example of a branched fibrous binder. The binder 30 shown in FIG. 5 has a configuration in which fiber X, fiber Y, and fiber Z are connected to one another. Each dashed line represents a line connecting the centers of the fiber widths (half width), and points A, B, and C represent the ends of each dashed line. The ends of each dashed line coincide with the ends of the fibers. Point D represents the intersection of the three dashed lines.That is, the binder 30 shown in FIG. 5 can be said to have a shape in which fiber X from point A to point D, fiber Y from point B to point D, and fiber Z from point C to point D are bonded at point D. The maximum Feret diameter of fiber X in the binder 30 shown in FIG. 5 is defined as the distance from point A to point D. Similarly, the maximum Feret diameter of fiber Y is the distance from point B to point D, and the maximum Feret diameter of fiber Z is the distance from point C to point D. The minimum Feret diameter of fiber X is the minimum distance between two parallel lines when the outline of the binder (fiber) from point A to point D is sandwiched between the lines. The same applies to the minimum Feret diameters of fiber Y and fiber Z. In the binder 30 shown in FIG. 5, fiber Y and fiber Z have an aspect ratio of 10 or more and a minimum Feret diameter of 0.2 μm or less, while fiber X has an aspect ratio of less than 10. However, since the area of the fiber X portion of the binder 30 is less than 50% of the total area, the binder shown in FIG. 5 can be considered a fibrous binder. The type of fibrous binder is not particularly limited as long as it has the above-mentioned shape in the positive electrode active material layer, but a binder that fibrillates when shear force is applied is preferably used. Preferred types of such fibrillizable binders include polytetrafluoroethylene (PTFE), carboxymethyl cellulose, polyvinyl alcohol, polyethylene, nanofibers such as cellulose nanofibers, and Kevlar (registered trademark, polyparaphenylene terephthalamide) fibers, with polytetrafluoroethylene (PTFE) being more preferred. One type of fibrous binder may be used alone, or two or more types may be used in combination. In this specification, the compound names used for binders may refer not only to the compounds indicated by the compound names, but also to forms in which the terminals or part of the side chains are substituted (modified) with other substituents. In cases where a portion of the terminals or side chains are substituted (modified) with other substituents, the proportion of structural units whose terminals or side chains are substituted (modified) with other substituents relative to 100 mol % of all structural units is preferably 10 mol % or less, and more preferably 5 mol % or less.
[0045] The length of the fibrous binder is preferably 5 to 50 μm, more preferably 8 to 15 μm. The diameter of the fibrous binder is preferably 20 to 500 nm, more preferably 50 to 200 nm. By setting the binder size within this range, the strength of the positive electrode active material layer becomes more sufficient. The length and diameter of the fibrous binder can be the average value of several to several tens of pieces measured using a transmission electron microscope (TEM) or a scanning electron microscope (SEM).
[0046] (solid electrolyte) The positive electrode active material layer preferably further contains a solid electrolyte. By including a solid electrolyte in the positive electrode active material layer, the ionic conductivity of the positive electrode active material layer can be improved. Examples of solid electrolytes include sulfide solid electrolytes and oxide solid electrolytes, but from the viewpoint of high ionic conductivity, it is preferable to include a sulfide solid electrolyte. In this specification, the solid electrolyte refers to a material mainly composed of an ion conductor capable of ion conduction in a solid, and in particular, a material having a lithium ion conductivity of 1×10 at room temperature (25° C.). -5 S / cm or more, and this lithium ion conductivity is preferably 1×10 -4 The ionic conductivity is 100 S / cm or more. Here, the value of the ionic conductivity can be measured by an AC impedance method.
[0047] Examples of sulfide solid electrolytes include LiI-Li2S-SiS2, LiI-Li2S-P2O5, LiI-Li3PO4-P2S5, Li2S-P2S5, LiI-Li3PS4, and LiI-LiBr-Li3PS 4、 Li3PS4, Li2S-P2S5-LiI, Li2S-P2S5-Li2O, Li2S-P2S5-Li2O-LiI, Li2S-SiS2, Li2S-SiS2-LiI, Li2S- SiS2-LiBr, Li2S-SiS2-LiCl, Li2S-SiS2-B2S3-LiI, Li2S-SiS2-P2S5-LiI, Li2S-B2S3, Li2S-P2S5-Z m S n(However, m and n are positive numbers, and Z is any one of Ge, Zn, and Ga), Li2S-GeS2, Li2S-SiS2-Li3PO4, Li2S-SiS2-Li x MO y (However, x and y are positive numbers, and M is any one of P, Si, Ge, B, Al, Ga, and In), etc. Note that the description of "Li2S-P2S5" means a sulfide solid electrolyte formed using a raw material composition containing Li2S and P2S5, and the same applies to other descriptions.
[0048] The sulfide solid electrolyte may, for example, have a Li3PS4 skeleton, a Li4P2S7 skeleton, or a Li4P2S6 skeleton. Examples of the sulfide solid electrolyte having a Li3PS4 skeleton include LiI-Li3PS4, LiI-LiBr-Li3PS 4、 Li3PS4. Examples of the sulfide solid electrolyte having a Li4P2S7 skeleton include, for example, a Li-P-S-based solid electrolyte called LPS (for example, Li7P3S 11 ). Also, as the sulfide solid electrolyte, for example, Li (4-x) Ge (1-x) P x S4 (where x satisfies 0 < x < 1), such as LGPS, may be used. Among them, the sulfide solid electrolyte is preferably a sulfide solid electrolyte containing a P element, and more preferably a material mainly composed of Li2S-P2S5. Furthermore, the sulfide solid electrolyte may contain a halogen (F, Cl, Br, I). In a preferred embodiment, the sulfide solid electrolyte contains Li6PS5X (where X is Cl, Br, or I, preferably Cl).
[0049] Also, when the sulfide solid electrolyte is of the Li2S-P2S5 type, the ratio of Li2S and P2S5 is preferably within the range of Li2S:P2S5 = 50:50 to 100:0 in terms of molar ratio, and among them, Li2S:P2S5 = 70:30 to 80:20 is preferable.
[0050] The sulfide solid electrolyte may be sulfide glass, crystallized sulfide glass, or a crystalline material obtained by a solid-phase method. The sulfide glass can be obtained, for example, by mechanical milling (ball mill, etc.) a raw material composition. The crystallized sulfide glass can be obtained, for example, by heat treating the sulfide glass at a temperature equal to or higher than the crystallization temperature. The ionic conductivity (e.g., Li ion conductivity) of the sulfide solid electrolyte at room temperature (25°C) is, for example, 1 × 10 -5 S / cm or more is preferable, and 1×10 -4 It is more preferable that the ionic conductivity is S / cm or more. The ionic conductivity value of the solid electrolyte can be measured by an AC impedance method.
[0051] The shape of the solid electrolyte may be, for example, a particulate shape such as a spherical shape or an oval spherical shape, or a thin film shape. When the solid electrolyte is particulate, its average particle diameter (D50) is not particularly limited, but is preferably 40 μm or less, more preferably 20 μm or less, and even more preferably 10 μm or less. On the other hand, the average particle diameter (D50) is preferably 0.01 μm or more, and more preferably 0.1 μm or more.
[0052] The content of the solid electrolyte in the positive electrode active material layer is, for example, preferably in the range of 1 to 60 mass %, and more preferably in the range of 10 to 50 mass %.
[0053] (Conductive additive) The positive electrode active material layer according to this embodiment may contain a conductive additive. When the positive electrode active material layer contains a conductive additive, an electronic network is effectively formed within the positive electrode active material layer, which may contribute to improving the output characteristics of the battery. Examples of conductive additives include metals such as aluminum, stainless steel (SUS), silver, gold, copper, and titanium, alloys or metal oxides containing these metals, carbon fibers (specifically, vapor-grown carbon fibers (VGCF), polyacrylonitrile-based carbon fibers, pitch-based carbon fibers, rayon-based carbon fibers, activated carbon fibers, etc.), carbon nanotubes (CNTs), and carbon black (specifically, acetylene black, Ketjen Black (registered trademark), furnace black, channel black, thermal lamp black, etc.), but are not limited to these. Furthermore, particulate ceramic materials or resin materials coated with the above-mentioned metal materials by plating or the like can also be used as conductive additives. Among these conductive additives, from the viewpoint of electrical stability, it is preferable to include at least one selected from the group consisting of aluminum, stainless steel, silver, gold, copper, titanium, and carbon, more preferable to include at least one selected from the group consisting of aluminum, stainless steel, silver, gold, and carbon, and even more preferable to include at least one carbon. These conductive additives may be used alone or in combination of two or more. The electronic conductivity of the conductive additive is preferably 1 S / m or more, and 1×10 2 S / m or more is more preferable, and 1×10 4 S / m or more is more preferable, and 1×10 5 The upper limit of the electronic conductivity of the conductive additive is not particularly limited, but is usually 1×10 7 S / m or less.
[0054] The shape of the conductive additive is not particularly limited, but is preferably fibrous or flat, and more preferably fibrous. When the conductive additive has such a shape, the strength of the positive electrode active material layer becomes sufficient, and in particular, when the conductive additive has a fibrous shape, the conductive additive becomes entangled with other components of the positive electrode active material layer, thereby further increasing the strength of the positive electrode active material layer.
[0055] Examples of fibrous conductive additives include carbon fibers such as PAN-based carbon fibers and pitch-based carbon fibers, conductive fibers obtained by uniformly dispersing highly conductive metals or graphite in synthetic fibers, metal fibers obtained by fiberizing metals such as stainless steel, conductive fibers obtained by coating the surface of organic fibers with a metal, and conductive fibers obtained by coating the surface of organic fibers with a resin containing a conductive substance. Among these, carbon fibers are preferred because of their excellent conductivity and light weight.
[0056] When the conductive additive is fibrous, its length is preferably 5 to 20 μm, more preferably 8 to 15 μm. Furthermore, when the conductive additive is fibrous, its diameter is preferably 20 to 500 nm, more preferably 50 to 300 nm. By setting the size of the conductive additive within this range, the strength of the positive electrode active material layer becomes more sufficient. The length and diameter of the fibrous conductive additive can be the average value of several to several tens of pieces measured using a transmission electron microscope (TEM) or a scanning electron microscope (SEM).
[0057] The conductive additive may be fibrous or particulate in shape. The particle shape is not particularly limited and may be any of powder, sphere, rod, needle, plate, column, irregular shape, scale, spindle, etc. When the conductive additive is particulate, the average particle diameter (primary particle diameter) is not particularly limited, but is preferably 0.01 to 10 μm from the viewpoint of the electrical properties of the battery. In this specification, the "particle diameter of the conductive additive" refers to the longest distance L between any two points on the contour line of the conductive additive. The value of the "average particle diameter of the conductive additive" is calculated as the average particle diameter of particles observed within several to several tens of fields of view using an observation means such as a scanning electron microscope (SEM) or a transmission electron microscope (TEM).
[0058] When the positive electrode active material layer contains a conductive additive, the content of the conductive additive in the positive electrode active material layer is not particularly limited, but is preferably 0 to 10 mass %, more preferably 1.0 to 8 mass %, and even more preferably 2.0 to 5.0 mass %, relative to the total mass of the positive electrode active material layer. Within such a range, a stronger electron conduction path can be formed in the positive electrode active material layer, which can effectively contribute to improving battery characteristics.
[0059] The lower limit of the orientation rate of the conductive additive in the positive electrode active material layer according to this embodiment in the direction perpendicular to the stacking direction of the power generating element (plane direction) is preferably 55% or more in the plane direction, more preferably 60% or more, even more preferably 65% or more, and particularly preferably 70% or more. When the orientation rate of the conductive additive is within the above range, the strength of the positive electrode active material layer can be made more sufficient. Furthermore, the upper limit of the orientation rate of the conductive additive according to this embodiment is preferably 90% or less. When the upper limit of the orientation rate of the conductive additive is within this range, the positive electrode active material layer can exert sufficient internal force when an external force (e.g., tensile stress or shear stress) is applied to the positive electrode active material layer from the plane direction. That is, the orientation rate of the conductive additive according to this embodiment is preferably 55% to 90% or less, more preferably 60% to 90% or less, even more preferably 65% to 90% or less, and particularly preferably 70% to 90%. The orientation rate of the conductive additive is calculated using the same method as that for the orientation rate of the binder described above.
[0060] The thickness of the positive electrode active material layer varies depending on the intended configuration of the all-solid-state battery, but is preferably within the range of 0.1 to 1000 μm, and more preferably 40 to 100 μm, for example.
[0061] [Solid electrolyte layer] The solid electrolyte layer contains a solid electrolyte as a main component and is a layer interposed between the negative electrode active material layer and the positive electrode active material layer. The specific form of the solid electrolyte contained in the solid electrolyte layer is the same as that described above, and therefore a detailed description thereof will be omitted here.
[0062] The content of the solid electrolyte in the solid electrolyte layer is, for example, preferably in the range of 10 to 100 mass %, more preferably in the range of 50 to 100 mass %, and even more preferably in the range of 90 to 100 mass %.
[0063] The solid electrolyte layer may further contain a binder in addition to the above-described solid electrolyte. The specific form of the binder that can be contained in the solid electrolyte layer is the same as that described above, and therefore detailed description thereof will be omitted here.
[0064] The thickness of the solid electrolyte layer varies depending on the configuration of the intended all-solid-state battery, but from the viewpoint of improving the volumetric energy density of the battery, it is preferably 600 μm or less, more preferably 500 μm or less, and even more preferably 400 μm or less. On the other hand, there is no particular restriction on the lower limit of the thickness of the solid electrolyte layer, but it is preferably 1 μm or more, more preferably 5 μm or more, and even more preferably 10 μm or more.
[0065] [Negative electrode active material layer] The negative electrode active material layer contains a negative electrode active material. The type of negative electrode active material is not particularly limited, but includes carbon materials, metal oxides, and metal active materials. Furthermore, a lithium-containing metal may be used as the negative electrode active material. Such a negative electrode active material is not particularly limited as long as it is a lithium-containing active material, and examples thereof include metallic lithium and lithium-containing alloys. Examples of lithium-containing alloys include alloys of Li with at least one of In, Al, Si, Sn, Mg, Au, Ag, and Zn. The negative electrode active material preferably contains metallic lithium or a lithium-containing alloy, a silicon-based negative electrode active material, or a tin-based negative electrode active material, and more preferably contains metallic lithium or a lithium-containing alloy. When metallic lithium or a lithium-containing alloy is used as the negative electrode active material, the all-solid-state battery according to this embodiment may be a so-called lithium deposition type battery in which lithium metal is deposited on the negative electrode current collector during charging. Therefore, in this configuration, the thickness of the negative electrode active material layer increases as the charging process progresses and decreases as the discharging process progresses. The negative electrode active material layer does not need to be present during full discharge, but in some cases, a negative electrode active material layer made of a certain amount of lithium metal may be present during full discharge.
[0066] On the other hand, when the all-solid-state battery is not of the lithium deposition type, the negative electrode active material layer preferably further contains a solid electrolyte, a binder, and a conductive additive in addition to the negative electrode active material, similar to the above-mentioned positive electrode active material layer. Specific examples and preferred forms of these materials are as described above in the section on the positive electrode active material layer.
[0067] The content of the negative electrode active material in the negative electrode active material layer is not particularly limited, but is preferably within the range of 40 to 99 mass %, and more preferably within the range of 50 to 90 mass %, for example.
[0068] [Positive and negative electrode leads] Although not shown, the current collector and the current collector plate may be electrically connected via a positive electrode lead and a negative electrode lead. Materials used in known lithium-ion secondary batteries may be used as the constituent materials of the positive electrode and negative electrode lead. The portion removed from the exterior is preferably covered with a heat-resistant, insulating heat-shrinkable tube or the like to prevent contact with peripheral devices or wiring, resulting in electrical leakage and affecting products (e.g., automotive parts, particularly electronic devices).
[0069] [Battery exterior materials] As the battery exterior material, a known metal can case can be used, or a bag-shaped case made of an aluminum-containing laminate film that can cover the power generating element can be used as shown in Figures 1 and 2.
[0070] Although one embodiment of the all-solid-state battery has been described above, the present invention is not limited to the configuration described in the above embodiment, and can be modified as appropriate based on the claims.
[0071] For example, in the all-solid-state battery according to the present embodiment, the solid electrolyte layer may further contain a conventionally known liquid electrolyte (electrolytic solution). There is no particular limitation on the amount of liquid electrolyte (electrolytic solution) that can be contained in the solid electrolyte layer, but it is preferably an amount that allows the shape of the solid electrolyte layer formed by the solid electrolyte to be maintained and prevents leakage of the liquid electrolyte (electrolytic solution).
[0072] [Manufacturing method for all-solid-state battery (positive electrode active material layer)] The method for manufacturing the all-solid-state battery according to this embodiment is not particularly limited. Here, an example of a method for manufacturing a cathode active material layer, which is a characteristic feature of the all-solid-state battery according to this embodiment, will be described. In this manufacturing method, first, a powder composition (cathode mixture) containing a cathode active material and a binder, and optionally a solid electrolyte and a conductive additive, is prepared. Next, this powder composition (cathode mixture) is rolled using a roll press to produce a cathode active material layer. That is, according to another embodiment of the present invention, there is also provided a method for manufacturing a cathode active material layer for use in an all-solid-state battery according to one embodiment of the present invention. This manufacturing method is characterized by including a molding step of supplying a powder composition (cathode mixture) containing a cathode active material and a binder (and optionally a solid electrolyte and a conductive additive) to a roll press, and using the roll press to roll the powder composition two or more times to form it into a sheet, thereby obtaining the cathode active material layer.
[0073] In this specification, the term "roll press" refers to a machine that includes at least a pair of cylindrical pressure rolls arranged parallel to each other with their outer peripheral surfaces facing each other and a rotation drive mechanism for the rolls, and that sandwiches the powder composition (positive electrode mixture) between the pair of rolls and rolls it into a sheet. The material and size of the rolls, the type of the rotation mechanism, and the arrangement of the rolls and rotation mechanism are not particularly limited. The direction in which the positive electrode active material layer is extruded from between the pair of rolls is not particularly limited, and may be horizontal or downward.
[0074] Here, we first explain the powder composition (electrode mixture) used as a raw material in the above-mentioned manufacturing method. This powder composition essentially contains a positive electrode active material and a binder, and preferably further contains a solid electrolyte and a conductive additive. The term "powder composition" refers to a mixture composed of solid components that is substantially free of liquid components such as solvents. The content of liquid components in the powder composition is preferably 5% by mass or less, more preferably 3% by mass or less, even more preferably 1% by mass or less, even more preferably 0.5% by mass or less, particularly preferably 0.1% by mass or less, and most preferably 0% by mass, relative to 100% by mass of the powder composition.
[0075] There are no particular limitations on the method for obtaining the powder composition; the components constituting the powder composition may be added and mixed in any order. There are also no particular limitations on the mixing means used; methods using conventionally known mixing means such as a mortar, mixer, or mill may be appropriately employed. There are no particular limitations on the method for blending the binder into the powder mixture; the binder may be prepared separately and mixed with the other components. Furthermore, when a fibrous binder is to be included in the powder mixture, the fibrous binder may be produced in the powder composition by applying shear force to the fibrillizable binder, which is a precursor of the fibrous binder, when mixing the fibrillizable binder with the other components, thereby fibrillating the fibrillizable binder.
[0076] In the manufacturing method according to the present embodiment, a powder composition (cathode mixture) containing a cathode active material and a binder (and, if necessary, a solid electrolyte and a conductive additive) is supplied to a roll press, and the powder composition is rolled using the roll press to form it into a sheet. At this time, the powder composition is rolled two or more times using the roll press to form it into a sheet.
[0077] FIG. 6 is a diagram schematically illustrating an example of a molding step in one embodiment of a manufacturing method for manufacturing a positive electrode active material layer 15. As shown in FIG. 6, in the molding step of the manufacturing method according to this embodiment, a powder composition (positive electrode mixture) 100 is supplied to a roll press, and the powder composition (positive electrode mixture) 100 is rolled using the roll press (specifically, compressed by rolls 110 of the roll press) to form the powder composition (positive electrode mixture) into a sheet. The powder composition (positive electrode mixture) 100 formed into a sheet becomes a positive electrode active material layer 15, and is discharged horizontally and then laminated on the surface of a substrate 200. Note that the direction in which the powder composition (positive electrode mixture) formed into a sheet in the molding step is discharged is not particularly limited, and the positive electrode active material layer may be discharged, for example, vertically.
[0078] The substrate 200 may be moved in one direction depending on the speed at which the powder composition (cathode mixture) 100 is molded. The means for moving the substrate 200 in one direction is not particularly limited, but as shown in FIG. 6, the substrate 200 may be moved in one direction (the direction indicated by arrow A in FIG. 6) by a substrate conveying means 210 consisting of a mounting unit 210a and a driving unit 210b. Furthermore, if the substrate 200 itself has sufficient mechanical strength, the substrate 200 may be moved in one direction by a method such as placing the substrate 20 directly on the driving unit 210b without providing the mounting unit 210a.
[0079] In the production method, the powder composition is rolled two or more times using a roll press to form it into a sheet. At this time, conditions such as the linear pressure of the roll press, the number of times of rolling, and the rotation speed of the rolls are appropriately adjusted to obtain a positive electrode active material layer for use in an all-solid-state battery according to one embodiment of the present invention.
[0080] The number of times that the powder composition is rolled using a roll press is difficult to define uniquely, but is preferably 4 to 10 times, and more preferably 5 to 6 times. By setting the number of times that the rolling is performed within the above range, it becomes easier to achieve a desired orientation rate of the binder (and further the conductive additive).
[0081] The linear pressure applied by the roll press to the powder composition is preferably 35 to 3500 N / cm. The linear pressure applied by the roll press to the powder composition refers to the linear pressure calculated from the load measured by a load cell attached to the roll press and the electrode width after pressing. The spacing between the rolls of the roll press is not particularly limited, but is preferably 100 to 1000 μm from the viewpoint of the linear pressure applied to the powder composition and adjusting the film thickness of the positive electrode active material layer. The rotation speed of the rolls of the roll press is not particularly limited, but is preferably 1 to 20 m / min from the viewpoint of maintaining a sufficient pressing time.
[0082] According to the manufacturing method of this embodiment, a positive electrode active material layer can be obtained by a simple operation of molding a powder composition containing a positive electrode active material using a roll press, which reduces molding errors and increases yield. Furthermore, shear force can be applied to the binder contained in the powder composition in the flow direction of the roll press during molding. By performing this rolling process multiple times, the binder (preferably a fibrous binder) that was randomly oriented in the powder composition becomes oriented in a direction (plane direction) perpendicular to the stacking direction of the power generating element.
[0083] The second or subsequent rolling treatment using a roll press may be performed, for example, by folding the positive electrode active material layer obtained by one or more rolling treatments to form a laminate, and setting the gap between the rolls of the roll press so that the thickness of the laminate is half or less of the thickness of the laminate. There are no particular restrictions on the way the positive electrode active material layer is folded, and examples include folding it in half, in three, or in four.
[0084] An all-solid-state battery having a positive electrode active material layer produced as described above is produced, for example, as follows. First, a positive electrode current collector, a positive electrode active material layer, a solid electrolyte layer, and a negative electrode current collector are laminated in this order and bonded together using a hydrostatic press or the like to obtain a power generating element. Next, a positive electrode lead and a negative electrode lead are connected to the obtained power generating element, which is then placed inside a battery exterior such as an aluminum laminate film and vacuum sealed. This allows the all-solid-state battery according to this embodiment to be produced. If necessary, a negative electrode active material layer can also be provided between the solid electrolyte layer and the negative electrode current collector.
[0085] Although one embodiment of the all-solid-state battery has been described above, the present invention is not limited to the configuration described in the above embodiment, and can be modified as appropriate based on the claims. [Example]
[0086] The present invention will be described in more detail below with reference to examples, although the technical scope of the present invention is not limited to the following examples.
[0087] <<Preparation of Positive Electrode Active Material Layer, Solid Electrolyte Layer, and Test Cell>> (Preparation of positive electrode active material layer) [Comparative Example 1] The positive electrode active material layer is made of NMC composite oxide (LiNi 0.8 Mn 0.1 Co 0.1O2), a lithium-ion conductive halogen-containing sulfide solid electrolyte (Argyrodite-type solid electrolyte Li6PS5Cl, average particle size (D50) 0.8 μm), a fibrous conductive additive (vapor-grown carbon fiber (VGCF)), and a fibrillizable binder (polytetrafluoroethylene (PTFE)) were prepared. In a glove box with an argon atmosphere and a dew point of -68°C or less, the NMC composite oxide, solid electrolyte, binder (PTFE), and fibrous conductive additive (VGCF) were weighed out in a mass ratio of 78.8:15.3:2.9:3.0, mixed in an agate mortar, and then further mixed and stirred in a planetary ball mill. This fibrillated the binder (PTFE), yielding a powder composition (cathode mixture). After confirming that the PTFE had fibrillated into a fibrous form, the resulting powder composition (cathode mixture) was fed into the powder inlet of a roll press. The powder composition was then rolled using a roll press (conditions are shown below) to form the powder composition into a sheet, thereby producing the positive electrode active material layer of Comparative Example 1. The binder content in the positive electrode active material layer was 2.9 mass %, and the conductive additive content was 3.0 mass %.
[0088] (Roll press machine conditions) Roll size: 250mmφ×400mm Roll rotation speed: 1m / min Pressure: 10kN (Linear pressure: 25kN / m).
[0089] [Positive electrode active material layer of Comparative Example 2] A positive electrode active material layer of Comparative Example 2 was obtained in the same manner as in Comparative Example 1, except that the binder content in the positive electrode active material layer was set to 3.3 mass %.
[0090] [Positive electrode active material layer of Comparative Example 3] A positive electrode active material layer of Comparative Example 3 was produced in the same manner as in Comparative Example 1, except that the binder content in the positive electrode active material layer was set to 0.5 mass %.
[0091] [Positive electrode active material layer of Comparative Example 4] A positive electrode active material layer of Comparative Example 4 was produced in the same manner as in Comparative Example 1, except that the positive electrode active material layer was obtained in the same manner as in Comparative Example 1, and the positive electrode active material layer was folded in half and rolled twice using a roll press to compress it. Here, the second and subsequent rolling processes were performed by setting the gap between the rolls to half or less of the thickness of the powder composition to be supplied (the same applies hereinafter).
[0092] [Positive electrode active material layer of Example 1] The positive electrode active material layer of Example 1 was produced in the same manner as in Comparative Example 4, except that the positive electrode active material layer produced by the method of Comparative Example 4 was further folded in half and subjected to rolling treatment twice by compressing using a roll press.
[0093] [Positive electrode active material layer of Example 2] The positive electrode active material layer of Example 1 was produced in the same manner as in Comparative Example 1, except that the positive electrode active material layer was obtained in the same manner as in Comparative Example 1, and the positive electrode active material layer was folded into three and compressed using a roll press machine, followed by rolling treatment four times.
[0094] [Positive electrode active material layer of Example 3] The positive electrode active material layer of Example 3 was produced in the same manner as in Example 2, except that the positive electrode active material layer obtained by the method of Example 2 was further folded into three and subjected to a rolling treatment once in which the layer was compressed using a roll press.
[0095] [Positive electrode active material layer of Example 4] Except for using carbon black (CB) as the conductive additive, a positive electrode active material layer was produced in the same manner as in Comparative Example 1. Subsequently, the positive electrode active material layer was folded into thirds and subjected to a rolling treatment of compressing using a roll press four times, and then further folded into fourths and subjected to a rolling treatment of compressing using a roll press two times to produce a positive electrode active material layer of Example 4.
[0096] (Preparation of solid electrolyte layer) A lithium-ion conductive halogen-containing sulfide solid electrolyte, an argyrodite-type solid electrolyte (Li6PS5Cl, average particle size (D50) 3 μm), and a binder, polyvinylidene fluoride (PVdF), were mixed in a mass ratio of 95:5, and an appropriate amount of butyl acetate was added as a solvent. The resulting mixture was mixed to prepare a solid electrolyte slurry. The solid electrolyte slurry was then applied to one surface of a stainless steel (SUS430LX) foil (thickness 10 μm) used as a negative electrode current collector, and dried to form a solid electrolyte layer (basis weight 3.7 mg / cm). 2 (The thickness after pressing was 20 μm.) This resulted in a laminate of the solid electrolyte layer and the negative electrode current collector.
[0097] (Preparation of test cell) Aluminum foil (20 μm thick) as a positive electrode current collector, the positive electrode active material layers of Comparative Examples 1 to 4 and Examples 1 to 4 prepared above, and a laminate of the solid electrolyte layer and negative electrode current collector prepared above were stacked in the order of positive electrode current collector / positive electrode active material layer / solid electrolyte layer / negative electrode current collector, and then bonded together using a hydrostatic press (700 MPa, 25°C, 1 minute) to obtain a laminate of positive electrode current collector / positive electrode active material layer / solid electrolyte layer / negative electrode current collector. Next, a positive electrode lead and a negative electrode lead were connected to the obtained laminate, which was then placed inside an aluminum laminate film and vacuum-sealed to produce test cells for Comparative Examples 1 to 4 and Examples 1 to 4.
[0098] <Evaluation of the positive electrode active material layer> (Evaluation of binder orientation rate) The cross sections of the positive electrode active material layers obtained in the above-mentioned Comparative Examples 1 to 4 and Examples 1 to 4 were observed, and the orientation rate of the binder in the direction perpendicular to the stacking direction (plane direction) of the test cell was calculated.
[0099] First, cross sections of the positive electrode active material layers of Comparative Examples 1 to 4 and Examples 1 to 4 were extracted, and the state of binder arrangement in the cross sections of the positive electrode active material layers was identified using SEM-EDX. Specifically, the cross sections were observed using SEM-EDX, and elements specific to the binder (here, fluorine (F)) were mapped to identify the state of binder arrangement. The SEM (scanning electron microscope) used was a Regulus 8230 manufactured by Hitachi High-Tech Corporation, and the EDX (energy dispersive X-ray analyzer) used was an Ultim (registered trademark) Extreme manufactured by Oxford Instruments.
[0100] Next, the obtained mapping data was input into an image processing device, and 100 or more binders were extracted from all binders included in the cross-sectional observation image. Then, for each of the extracted binders, the lengths of the vertical and horizontal sides of the rectangle inscribed in the binder were measured, as shown in Figure 4, and the aspect ratio (horizontal side length / vertical side length; 1 / tan θ) was calculated. The average aspect ratio of each binder was then calculated, and this was taken as the average aspect ratio of the binders. The results are shown in Table 1.
[0101] Next, θ [°] was calculated from the average aspect ratio (1 / tan θ) of the obtained binder, and the orientation rate (%) of the binder was calculated based on the following formula 1. The results are shown in Table 1.
[0102]
number
[0103] (Evaluation of the orientation rate of the conductive additive) The cross sections of the positive electrode active material layers obtained in the above-mentioned Comparative Examples 1 to 4 and Examples 1 to 4 were observed, and the orientation rate of the conductive additive in the direction perpendicular to the stacking direction (plane direction) of the test cell was calculated.
[0104] First, cross sections of the positive electrode active material layers of Comparative Examples 1 to 4 and Examples 1 to 4 were taken, and the state of arrangement of the binder in the cross section of the positive electrode active material layer was identified using SEM-EDX. Specifically, the cross section was observed using SEM-EDX, and the elements (here, carbon (C) element) constituting the conductive additive were mapped, and the state of arrangement of the conductive additive was identified from the difference with the mapping result of the binder.
[0105] The obtained mapping data was then input into an image processing device, and 100 or more binders were extracted from all binders included in the cross-sectional observation image. For each of the extracted conductive additives, the lengths of the vertical and horizontal sides of the rectangle inscribed with the conductive additive were measured, as shown in Figure 4, and the aspect ratio (horizontal side length / vertical side length; 1 / tan θ) was calculated. The average aspect ratio of each conductive additive was then calculated, and this was taken as the average aspect ratio of the conductive additives. The results are shown in Table 1.
[0106] Next, θ [°] was calculated from the obtained average aspect ratio (1 / tan θ), and further, the orientation rate (%) of the conductive additive was calculated based on the above-mentioned formula 1. The results are shown in Table 1.
[0107] (Tensile test of positive electrode active material layer) The tensile modulus was measured using a tensile tester in accordance with JIS K7161:2014. The samples used were dumbbell-shaped punched-out specimens from the positive electrode active material layers obtained in Comparative Examples 1 to 4 and Examples 1 to 4. The test was performed at a speed of 1 mm / s, with the above-mentioned surface direction as the tensile direction, until the test piece was broken. The results are shown in Table 1, where the test results for each Comparative Example and Example are divided by the test result for Comparative Example 1.
[0108] <Test cell evaluation> (Performance evaluation of test cells) Using an electrochemical diagnostic device (VSP-300, manufactured by BioLogic) in a constant temperature bath set at 25°C, the cycle durability of the test cells of Comparative Examples 1 to 4 and Examples 1 to 4 prepared above was evaluated by the following cycle test.
[0109] After full charging at 25°C under the conditions of a 0.01C cutoff current by constant current / constant voltage charging at 0.05C-3.1V, the cells were discharged at 0.05C with a cutoff voltage of 1.1V. The discharge capacity retention rate at the 50th cycle [%] was calculated as the percentage of the discharge capacity at the 50th cycle relative to the discharge capacity at the first cycle. The results shown in Table 1 are values obtained by dividing the discharge capacity retention rates of Comparative Example 2 and Examples 1 to 4 by the discharge capacity retention rate of Comparative Example 2. In Comparative Examples 1, 2, and 4, a short circuit occurred before the 50th cycle.
[0110] (Evaluation of cracks in the positive electrode active material layer) After the cycle test, the test cells of Comparative Examples 1 to 4 and Examples 1 to 4 were disassembled and visually inspected for cracks in the positive electrode active material layer. The results are shown in Table 1.
[0111] [Table 1]
[0112] The positive electrode active material layers of Examples 1 to 4, in which the binder orientation rate was 60% or more, showed superior strength in the tensile test to those of Comparative Examples 1 to 4, in which the orientation rate was less than 60%. Similarly, the test cells of Examples 1 to 4 showed superior performance in the cycle test to those of Comparative Examples 1 to 4, and no cracks occurred in the positive electrode active material layer after the cycle test. [Explanation of symbols]
[0113] 10a stacked battery, 11' negative electrode current collector, 11” positive electrode current collector, 13 negative electrode active material layer, 15 positive electrode active material layer, 17 solid electrolyte layer, 19 cell layer, 21 power generation elements, 25 negative current collector plate, 27 positive current collector plate, 29 Laminating film, 30 binders, 110 rolls, 200 base material, 210 substrate conveying means; 210a placing portion, 210b drive unit, H vertical side, W side.
Claims
1. a positive electrode including a positive electrode active material layer containing a positive electrode active material, a solid electrolyte, and a fibrous binder; a negative electrode; an all-solid-state battery having a power generating element including a solid electrolyte layer interposed between the positive electrode and the negative electrode and containing a solid electrolyte, the orientation rate of the fibrous binder contained in the positive electrode active material layer in a direction perpendicular to the stacking direction of the power-generating element is 60% or more, an amount of the fibrous binder in the positive electrode active material layer of 1.5% by mass or more and 3.2% by mass or less, based on the total mass of the positive electrode active material layer;
2. The all-solid-state battery according to claim 1 , wherein the orientation rate of the fibrous binder is 60% or more and 90% or less.
3. The all-solid-state battery according to claim 1 , wherein the orientation rate of the fibrous binder is 75% or more and 90% or less.
4. 2. The all-solid-state battery according to claim 1, wherein the fibrous binder comprises one or more selected from the group consisting of polytetrafluoroethylene (PTFE), carboxymethyl cellulose, polyvinyl alcohol, polyethylene, nanofibers, and Kevlar fibers.
5. The all-solid-state battery according to any one of claims 1 to 3, wherein the positive electrode active material layer further contains a conductive additive.
6. 6. The all-solid-state battery according to claim 5, wherein the conductive additive contained in the positive electrode active material layer has an orientation rate of 55% or more in a direction perpendicular to the stacking direction of the power-generating element.
7. The all-solid-state battery according to claim 5 , wherein the conductive additive has a fibrous or flat shape.
8. A method for producing a positive electrode active material layer for use in the all-solid-state battery according to claim 1, comprising: a forming step of supplying a powder composition containing the positive electrode active material and the fibrous binder to a roll press machine, and performing a rolling process on the powder composition two or more times using the roll press machine to form it into a sheet, thereby obtaining the positive electrode active material layer.
9. The negative electrode comprises a negative electrode current collector and a negative electrode active material layer, the negative electrode active material including lithium metal or a lithium-containing alloy; 2. The all-solid-state battery according to claim 1, which is a lithium deposition type battery in which lithium metal as a negative electrode active material is deposited on the negative electrode current collector during charging.
10. 2. The all-solid-state battery according to claim 1, wherein the length of the fibrous binder is 8 to 15 μm.
11. The all-solid-state battery according to claim 1 , wherein the fibrous binder includes those having a branched chain shape, a radial shape, a mesh shape, or a shape that is a combination of these.
12. 4. The all-solid-state battery according to claim 1, wherein the solid electrolyte is in a particulate form, and the average particle diameter (D50) of the solid electrolyte is 0.1 μm or more and 10 μm or less.
Citation Information
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