Secondary batteries
By aligning a fibrous binder within the electrode active material layer of secondary batteries, the mechanical strength is enhanced, addressing the structural weaknesses in existing all-solid-state lithium secondary batteries.
Patent Information
- Application Number
- JP2024521378
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-05-19
- Publication Date
- 2026-01-16
- Estimated Expiration
- 2042-05-19
AI Technical Summary
Existing secondary batteries, particularly all-solid-state lithium secondary batteries, face challenges in achieving sufficient mechanical strength in the electrode active material layer, despite incorporating fibrils to enhance structural support.
Incorporating a fibrous binder into the electrode active material layer of the secondary battery, oriented in a direction parallel or perpendicular to the sides of a rectangular shape, enhances the mechanical strength by aligning the fibrous binder and conductive additive within specific orientation limits.
This configuration significantly improves the mechanical strength of the electrode active material layer, making the battery more resilient to external stresses and ensuring structural integrity.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a secondary 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 non-aqueous electrolyte secondary batteries, such as secondary batteries for driving motors, which hold the key to putting these vehicles into practical use.
[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 lithium 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. Therefore, all-solid-state lithium 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 the battery.
[0006] In a typical all-solid-state lithium secondary battery, an electrode has a configuration in which an electrode active material layer is disposed on the surface of a current collector, and the electrode active material layer further contains, in addition to the electrode active material, a solid electrolyte for improving lithium ion conductivity in the electrode active material layer, a binder for binding the electrode active material particles and the solid electrolyte particles to each other and to the current collector, and, if necessary, a conductive aid for improving electronic conductivity in the electrode active material layer.
[0007] Here, International Publication No. 2014 / 138242 (JP 2016-513860 A) discloses a technology for incorporating electronically nonconductive fibrils or polymer fibrils, such as glucose or cellulose (derivatives), having a maximum cross-sectional diameter of less than about 1 μm and an aspect ratio of about 10:1 or more into an electrode active material layer in an electrochemical battery such as a lithium secondary battery. According to the disclosure in this publication, the use of the fibrils mechanically strengthens elements in an electrochemical battery, makes it possible to apply anisotropic forces without structurally damaging or interfering with the battery, and can replace or supplement conventional binders to provide structural support for the battery elements. Summary of the Invention [Problem to be solved by the invention]
[0008] However, according to the inventors' investigations, it has been found that even if the technology described in the above publication is adopted, it may not be possible to sufficiently improve the strength of the electrode active material layer of the secondary battery, and there is still room for improvement.
[0009] Therefore, an object of the present invention is to provide a means for further improving the mechanical strength of an electrode active material layer in a secondary battery provided with the electrode active material layer. [Means for solving the problem]
[0010] 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 incorporating a fibrous binder into at least one electrode active material layer included in a rectangular power generating element of a secondary battery, and configuring the electrode active material layer so that the fibrous binder is oriented in a direction parallel to or perpendicular to one side of the rectangular shape when viewed in plan, thereby completing the present invention.
[0011] That is, one aspect of the present invention relates to a secondary battery including a power generating element having a rectangular shape with four sides in a plan view, the power generating element being formed by stacking an electrode having an electrode active material layer containing an electrode active material disposed on the surface of a current collector and a solid electrolyte layer containing a solid electrolyte. The secondary battery is characterized in that the electrode active material layer includes at least one binder-oriented active material layer. The binder-oriented active material layer is an active material layer containing a fibrous binder, and in which, when the electrode active material layer is viewed in a plan view, the degree of orientation of the fibrous binder in a direction parallel to or perpendicular to a pair of opposite sides of the rectangular shape is less than 45°. [Brief explanation of the drawings]
[0012] [Figure 1] FIG. 1 is a perspective view showing the appearance of a flat laminated type all-solid-state lithium secondary 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 illustrating the configuration of a positive electrode active material layer of a stacked secondary battery according to one embodiment of the present invention, in which Fig. 3(a) is a schematic diagram of the positive electrode active material layer when viewed from above, and Fig. 3(b) is a schematic diagram of the YZ cross section of the positive electrode active material layer. [Figure 4] FIG. 4 is a schematic diagram showing an example of a branched chain fibrous binder. [Figure 5] FIG. 5 is a diagram schematically illustrating an example of a forming step in one embodiment of the manufacturing method (I) for producing a positive electrode active material layer. [Figure 6]FIG. 6 is a schematic diagram showing an example of how the powder composition (electrode mixture) is molded to produce the positive electrode active material layer 15 in the molding step of the manufacturing method (I). [Figure 7] FIG. 7 is a schematic diagram showing an example of how a powder composition (electrode mixture) is molded to produce a positive electrode active material layer through the preliminary molding step (a) and molding step (b) of the production method (II). [Figure 8] Figure 8 is an explanatory diagram for explaining a method for measuring the angle θ formed by the line segment connecting the start point and end point of the fibrous binder and the fibrous conductive assistant with the reference direction in the observation image when measuring the degree of orientation. DETAILED DESCRIPTION OF THE INVENTION
[0013] One aspect of the present invention is a secondary battery including a power generating element having a rectangular shape with four sides in a plan view, the power generating element being formed by stacking an electrode including an electrode active material layer containing an electrode active material disposed on the surface of a current collector and a solid electrolyte layer containing a solid electrolyte, at least one of the electrode active material layers containing a fibrous binder, and including a binder-oriented active material layer in which the orientation degree of the fibrous binder in a direction parallel to one pair of opposite sides of the rectangular shape or a direction perpendicular to the opposite sides is less than 45° when the electrode active material layer is viewed in a plan view. According to the present invention, the mechanical strength of the electrode active material layer in a secondary battery including the electrode active material layer can be further improved.
[0014] The above-described embodiments of the present invention will be described below 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 proportions in the drawings are exaggerated for convenience of explanation and may differ from the actual proportions. The present invention will be described below using as an example a flat stacked (internal parallel connection) all-solid-state lithium secondary battery (hereinafter simply referred to as a "stacked battery"), which is one form of secondary battery. However, in terms of the internal electrical connection form (electrode structure) of the secondary battery according to this embodiment, it can be applied to both non-bipolar (internal parallel connection) batteries and bipolar (internal series connection) batteries.
[0015] Fig. 1 is a perspective view showing the appearance of a flat laminated type all-solid-state lithium secondary battery according to one embodiment of the present invention, and Fig. 2 is a cross-sectional view taken along line 2-2 shown in Fig. 1.
[0016] As shown in Fig. 1, the stacked battery 10a has a flat rectangular shape, with a negative current collector 25 and a positive current collector 27 extending from both sides to extract power. The power generating element 21 is wrapped in the battery exterior material (laminate film 29) of the stacked battery 10a, and the periphery is heat-sealed, with the negative current collector 25 and the positive current collector 27 extending to the outside. Note that the current collectors (25, 27) shown in Fig. 1 may be such that the negative current collector 25 and the positive current collector 27 extend from the same side, or the negative current collector 25 and the positive current collector 27 may each be divided into multiple pieces and extended from each side.
[0017] 2, the stacked battery 10a of this embodiment has a structure in which a power generating element 21, where charge and discharge reactions actually proceed, is sealed inside a laminate film 29, which is a battery exterior material. The power generating element 21 has a flattened rectangular shape with four sides. 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 laminated in this order such that one positive electrode active material layer 15 and an adjacent negative electrode active material layer 13 face each other with a 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, in the stacked battery 10a shown in FIG. 1, the unit cell layer 19 By stacking multiple layers, the stacked battery 10a can be said to have a configuration in which the power generating elements 21 are electrically connected in parallel. Furthermore, a restraining pressure is applied to the stacked battery 10a in the stacking direction of the power generating elements 21 by a restraining member (pressure member) (not shown). Therefore, the volume of the power generating elements 21 is kept constant. In the following description, the stacking direction of the power generating elements 21 will be referred to as the Z direction, and the short and long directions of the rectangular shape of the power generating elements 21, among the directions parallel to the main surfaces of each layer, will sometimes be referred to as the X direction and the Y direction, respectively. Furthermore, in this specification, "plan view" means an XY plan view unless otherwise specified.
[0018] A negative electrode current collector (tab) 25 and a positive electrode current collector (tab) 27 that are electrically connected to the electrodes (positive and negative electrodes) are attached to the negative electrode current collector 11′ and the positive 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 illustrating the configuration of a positive electrode active material layer 15 of a stacked secondary battery according to one embodiment of the present invention. FIG. 3(a) is a schematic diagram of the positive electrode active material layer 15 when viewed in plan, and FIG. 3(b) is a schematic diagram of a YZ cross section of the positive electrode active material layer 15. In this embodiment, the positive electrode active material layer 15 contains a fibrous binder 31 and a fibrous conductive additive 33 in addition to a positive electrode active material and a solid electrolyte (not shown). As shown in FIG. 3(a), when the positive electrode active material layer 15 is viewed in plan, both the fibrous binder 31 and the fibrous conductive additive 33 are oriented along the Y direction. Specifically, the orientation of the fibrous binder 31 and the fibrous conductive additive 33 is aligned along the Y direction so that the degree of orientation in the Y direction, which will be described later, is less than 45°. Furthermore, as shown in FIG. 3(b), in the YZ cross section of the positive electrode active material layer 15, both the fibrous binder 31 and the fibrous conductive additive 33 are oriented along the Z direction. Specifically, the orientation of the fibrous binder 31 and the fibrous conductive additive 33 is aligned along the Z direction so that the degree of orientation in the Z direction, which will be described later, is less than 45°. This also applies to the XZ cross section of the positive electrode active material layer 15. In this specification, an electrode active material layer that satisfies the requirement that "it contains a fibrous binder, and when the active material layer is viewed in plan, the degree of orientation of the fibrous binder in a direction parallel to one pair of opposite sides of the rectangular shape of the power generating element or in a direction perpendicular to the opposite sides is less than 45°" is also referred to as a "binder-oriented active material layer."
[0020] The stacked secondary battery 10a according to this embodiment preferably includes a power generating element 21 sealed in a laminate film 29 as shown in FIG. 1 , and the power generating element 21 sealed in the laminate film 29 is sandwiched between two plate-like members and further fastened using a fastening member. As a result, the plate-like members and fastening members function as pressure members that pressurize (restrain) the power generating element 21 in the stacking direction. Examples of the plate-like members include metal plates and resin plates. Examples of the fastening members include bolts and nuts. However, the pressure members are not particularly limited as long as they can pressurize the power generating element 21 in the stacking direction. A typical pressure member is a combination of a plate made of a rigid material, like the plate-like members, and the fastening members described above. The fastening members may be not only bolts and nuts, but also tension plates that fix the ends of the plate-like members so as to restrain the power generating element 21 in the stacking direction. The lower limit of the load applied to the power generating element 21 (restraint pressure in the stacking direction of the power generating element) is, for example, 0.1 MPa or more, preferably 1 MPa or more, more preferably 3 MPa or more, and even more preferably 5 MPa or more. The upper limit of the restraint pressure in the stacking direction of the power generating element is, for example, 100 MPa or less, preferably 70 MPa or less, more preferably 40 MPa or less, and even more preferably 10 MPa or less.
[0021] The main components of the above-described stacked secondary battery 10a will be described below.
[0022] [Positive electrode current collector] The positive electrode current collector is a conductive member that functions as a flow path for electrons that are released from the positive electrode toward an external load or flow from a power source toward the positive electrode as the battery reaction (charge / discharge reaction) progresses. There are no particular limitations on the material that constitutes the positive electrode current collector. Examples of materials that can be used for the positive electrode current collector include metals and conductive resins.
[0023] Specifically, examples of metals include aluminum, nickel, iron, stainless steel, titanium, and copper. In addition, a clad material of nickel and aluminum, a clad material of copper and aluminum, and the like may also be used. Furthermore, a foil in which a metal surface is coated with aluminum may also be used. Among these, aluminum, stainless steel, copper, and nickel are preferred from the viewpoints of electronic conductivity, battery operating potential, and the like.
[0024] The latter conductive resin may be a resin obtained by adding a conductive filler to a non-conductive polymer material as required.
[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] There is no particular limitation on the thickness of the positive electrode current collector, but an example is 10 to 100 μm.
[0027] [Cathode active material layer] The positive electrode constituting the lithium secondary battery according to this embodiment has a positive electrode active material layer containing a positive electrode active material capable of absorbing and releasing lithium ions.
[0028] The positive electrode active material is not particularly limited as long as it can release lithium ions during the charging process of the secondary battery and absorb lithium ions during the discharging process. An example of such a positive electrode active material is one containing an M1 element and an O element, where the M1 element contains at least one element selected from the group consisting of Li, Mn, Ni, Co, Cr, Fe, and P. Examples of such a positive electrode active material include layered rock salt active materials such as LiCoO2, LiMnO2, LiNiO2, and Li(Ni-Mn-Co)O2; LiMn2O4; and LiNi 0.5 Mn 1.5Examples 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 , LiVO2. In some cases, two or more positive electrode active materials may be used in combination. Of course, positive electrode active materials other than those mentioned above may also be used.
[0029] In a preferred embodiment, the positive electrode active material layer 15 constituting the lithium secondary battery according to this embodiment contains a layered rock salt active material (e.g., Li(Ni-Mn-Co)O2) containing lithium and cobalt as the positive electrode active material from the viewpoint of output characteristics.
[0030] The shape of the positive electrode active material may be, for example, particulate (spherical, fibrous), thin film, etc. When the positive electrode active material is particulate, its average particle size (D 50 ) is, for example, preferably in the range of 1 nm to 100 μm, more preferably in the range of 10 nm to 50 μm, even more preferably in the range of 100 nm to 20 μm, and particularly preferably in the range of 1 to 20 μm. In this specification, the average particle size (D 50 The value of can be measured by a laser diffraction scattering method.
[0031] 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 30 to 99 mass %, more preferably in the range of 40 to 90 mass %, and even more preferably in the range of 45 to 80 mass %.
[0032] In the lithium secondary battery according to this embodiment, the positive electrode active material layer 15 preferably further contains a solid electrolyte. Examples of the solid electrolyte include sulfide solid electrolytes, resin solid electrolytes, and oxide solid electrolytes. In this specification, the term "solid electrolyte" refers to a material mainly composed of an ion conductor capable of conducting ions in a solid state, and in particular, a material having a lithium ion conductivity of 1×10 at room temperature (25°C). -5A material with a conductivity of 1 S / cm or more, and this lithium ion conductivity is preferably 1×10 -4 S / cm or more. Here, the value of the ion conductivity can be measured by the AC impedance method.
[0033] In another preferred embodiment of the secondary battery according to this form, the solid electrolyte exhibits excellent lithium ion conductivity and is preferably a sulfide solid electrolyte containing S element from the viewpoint of being more able to follow the volume change of the electrode active material accompanying charge and discharge. More preferably, it is a sulfide solid electrolyte containing Li element, M element and S element, and the M element contains at least one element selected from the group consisting of P, Si, Ge, Sn, Ti, Zr, Nb, Al, Sb, Br, Cl and I. Even more preferably, it is a sulfide solid electrolyte containing S element, Li element and P element.
[0034] The sulfide solid electrolyte may 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-Li3PS4, and Li3PS4. Further, examples of the sulfide solid electrolyte having a Li4P2S7 skeleton include a Li-P-S-based solid electrolyte called LPS. 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. More specifically, for example, LPS (Li2S-P2S5), Li7P3S 11 、Li 3.2 P 0.96 S、Li 3.25 Ge 0.25 P 0.75 S4、Li 10 GeP2S 12, or Li6PS5X (where X is Cl, Br, or I). The term "Li2S-P2S5" refers to a sulfide solid electrolyte obtained using a raw material composition containing Li2S and P2S5, and the same applies to other terms. Among these, sulfide solid electrolytes are preferably LPS (Li2S-P2S5), Li6PS5X (where X is Cl, Br, or I), Li7P3S, etc., from the viewpoint that they have high ionic conductivity and a low bulk modulus and can therefore follow the volume change of the electrode active material during charge and discharge. 11 , Li 3.2 P 0.96 S and Li3PS4.
[0035] The content of the solid electrolyte in the positive electrode active material layer is not particularly limited, but is preferably within the range of 1 to 70 mass %, more preferably within the range of 10 to 60 mass %, and even more preferably within the range of 20 to 55 mass %.
[0036] (binder) The positive electrode active material layer preferably further contains a binder in addition to the positive electrode active material. The type of binder is not particularly limited, and conventionally known materials can be appropriately used as binders for electrode active material layers of secondary batteries. Among these, the binder preferably contains a fibrous binder. 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 a cross section of the 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. The expression "mainly composed" of a binder means that the area ratio of the fiber portion to the total area of the binder in an SEM observation image is 50% or more. A fibrous binder may include a non-fiber portion having an aspect ratio of 10 or more and a minimum Feret diameter of 0.2 μm or less (a portion having an aspect ratio of less than 10 or a portion having a minimum Feret diameter of more than 0.2 μm). However, the area ratio of the non-fiber portion 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 only one 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 mesh-like shapes, as well as combinations of these. Here, we will explain how to determine the maximum and minimum Feret diameters of a binder having a structure in which two or more fibers are connected to each other. Figure 4 is a schematic diagram showing an example of a branched fibrous binder. The binder 30 shown in Figure 4 has a structure in which fiber X, fiber Y, and fiber Z are connected to each other.Each dashed line represents a line connecting the center of the fiber width (1 / 2 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. In other words, the binder 30 shown in FIG. 4 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. 4 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. 4, 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 fiber X accounts for less than 50% of the total area of binder 30, the binder shown in FIG. 4 can be said to be 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 binders that fibrillate upon application of shear force are preferably used. Examples of such fibrillizable binders include polytetrafluoroethylene (PTFE), carboxymethyl cellulose, polyvinyl alcohol, and polyethylene, 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 name of the binder may refer not only to the compound indicated by the compound name, but also to forms in which the terminal or part of the side chain is 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.
[0037] When the positive electrode active material layer contains a binder, it may contain a binder other than a fibrous binder (a non-fibrous binder). The type of non-fibrous binder is not particularly limited, but styrene-butadiene rubber (SBR), polyvinylidene fluoride (PVDF), ethyl cellulose, and acrylic resin are preferred, with polyvinylidene fluoride (PVDF) being more preferred. A single non-fibrous binder may be used, or two or more may be used in combination. As mentioned above, the binder may have a terminal or a portion of its side chain substituted (modified) with another substituent. However, the mass ratio of the fibrous binder to the total binder in the positive electrode active material layer is preferably 50% by mass or more, more preferably 80% by mass or more, even more preferably 90% by mass or more, even more preferably 95% by mass or more, particularly preferably 98% by mass or more, and most preferably 100% by mass.
[0038] (Conductive additive) The positive electrode active material layer preferably contains a conductive additive in addition to the positive electrode active material. The conductive additive preferably has an electronic conductivity of 1 S / m or more, and more preferably has an electronic conductivity of 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.
[0039] The type of conductive additive is not particularly limited, and conventionally known materials can be appropriately used as conductive additives for the electrode active material layer of a secondary battery. Among these, the conductive additive preferably contains a fibrous conductive additive, and more preferably contains fibrous carbon. In this specification, the term "fibrous conductive additive" refers to a conductive additive having an aspect ratio of 10 or more and a minimum Feret diameter of 0.2 μm or less in an image observed using a scanning electron microscope (SEM). The type of fibrous carbon is not particularly limited as long as it has the above-mentioned shape, and examples thereof include carbon fiber (specifically, vapor-grown carbon fiber (VGCF), polyacrylonitrile-based carbon fiber, pitch-based carbon fiber, rayon-based carbon fiber, activated carbon fiber, etc.), graphene, and carbon nanotubes (single-walled carbon nanotubes and multi-walled carbon nanotubes). Among these, carbon fiber is preferred. The fibrous conductive additive (preferably fibrous carbon) may be used alone or in combination of two or more types.
[0040] In addition, when the positive electrode active material layer contains a conductive additive, it may contain a conductive additive other than the fibrous conductive additive (non-fibrous conductive additive). The type of non-fibrous conductive additive is not particularly limited, but examples include metals such as aluminum, stainless steel (SUS), silver, gold, copper, and titanium, alloys or metal oxides containing these metals, and carbon such as carbon black (specifically, acetylene black, Ketjen Black (registered trademark), furnace black, channel black, thermal lamp black, etc.). Furthermore, a particulate ceramic material or resin material coated with the above-mentioned metal material by plating or the like can also be used as a conductive additive. Only one type of non-fibrous conductive additive may be used alone, or two or more types may be used in combination. However, when the positive electrode active material layer contains a conductive additive, the mass proportion of the fibrous conductive additive in the entire conductive additive is preferably 50 mass% or more, more preferably 80 mass% or more, even more preferably 90 mass% or more, still more preferably 95 mass% or more, particularly preferably 98 mass% or more, and most preferably 100 mass%.
[0041] The thickness of the positive electrode active material layer varies depending on the intended configuration of the lithium secondary battery, but is preferably within the range of 0.1 to 1000 μm, and more preferably 40 to 100 μm, for example.
[0042] [Solid electrolyte layer] The solid electrolyte layer is a layer interposed between the positive electrode active material layer and the negative electrode current collector, and contains a solid electrolyte (usually as a main component). 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.
[0043] 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 %, relative to the total mass of the solid electrolyte layer.
[0044] The solid electrolyte layer may further contain a binder in addition to the above-mentioned solid electrolyte.
[0045] The thickness of the solid electrolyte layer varies depending on the configuration of the intended lithium secondary battery, but is preferably within the range of 0.1 to 1000 μm, and more preferably 10 to 40 μm, for example.
[0046] [Negative electrode current collector] The negative electrode current collector is a conductive member that functions as a flow path for electrons that are released from the negative electrode toward the power source as the battery reaction (charge / discharge reaction) progresses, or that flow from an external load toward the negative electrode. There are no particular limitations on the material that constitutes the negative electrode current collector. For example, metals and conductive resins can be used as materials for the negative electrode current collector. There are no particular limitations on the thickness of the negative electrode current collector, but an example is 10 to 100 μm.
[0047] [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 particularly 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 secondary battery according to this embodiment may be a so-called lithium deposition type in which lithium metal as the negative electrode active material 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 containing a certain amount of lithium metal may be present during full discharge. Note that, when the secondary battery according to this embodiment is a lithium deposition type, the negative electrode active material layer does not contain a fibrous binder. Therefore, in a secondary battery having such a configuration, only the positive electrode active material layer can be a binder-oriented active material layer.
[0048] On the other hand, when the secondary battery is not of the lithium deposition type, the negative electrode active material layer preferably further contains, in addition to the negative electrode active material, a solid electrolyte, a binder (fibrous binder), and a conductive additive (fibrous conductive additive), 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.
[0049] 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.
[0050] [Characteristics of the electrode active material layer] In the secondary battery according to this embodiment, the power generating element includes one or more electrode active material layers (negative and / or positive electrode active material layers). This embodiment is characterized in that at least one of the electrode active material layers is a binder-oriented active material layer as shown in FIG. 3(a). This binder-oriented active material layer may be a positive electrode active material layer or a negative electrode active material layer. As described above, in the binder-oriented active material layer, when the active material layer is viewed in plan, the orientation angle of the fibrous binder in the direction parallel to or perpendicular to a pair of opposite sides of the rectangular shape of the power generating element is less than 45°. Therefore, when the electrode active material layer is viewed in plan, not only the configuration in which the fibrous binder is oriented along the longitudinal direction of the rectangular shape of the power generating element as shown in FIG. 3(a) but also the configuration in which the fibrous binder is oriented along the lateral direction of the rectangular shape are within the scope of the present invention. However, because the amount of deformation in the longitudinal direction of the rectangular shape is greater, orienting the fibrous binder along the longitudinal direction can further improve mechanical strength. The orientation degree of the fibrous binder (and the fibrous conductive additive) is measured by the method described in the Examples section below. The orientation degree of the fibrous binder in the binder-oriented active material layer is preferably 40° or less, more preferably 35° or less, even more preferably 30° or less, particularly preferably 25° or less, and most preferably 20° or less.
[0051] In a preferred embodiment of the secondary battery according to this embodiment, as shown in FIG. 3(b), in a thickness direction cross section of the binder-oriented active material layer (here, the positive electrode active material layer 15), the orientation degree of the fibrous binder in the thickness direction of the binder-oriented active material layer is less than 45°. This configuration makes it possible to improve the mechanical strength in the direction of the largest deformation when a bending stress is applied to the laminate constituting the power generating element. Furthermore, the orientation degree of the fibrous conductive additive in the thickness direction of the binder-oriented active material layer is preferably 40° or less, more preferably 35° or less, even more preferably 30° or less, particularly preferably 25° or less, and most preferably 20° or less.
[0052] Furthermore, it is preferable that the binder-oriented active material layer further contains a fibrous conductive additive. In this case, it is more preferable that the orientation of the fibrous conductive additive in the orientation direction of the fibrous binder is less than 45°. Here, the "orientation direction of the fibrous binder" refers to the "direction parallel to a pair of opposite sides or a direction perpendicular to the pair of opposite sides" used as the basis for determining the orientation of the fibrous binder when the orientation of the fibrous binder in the direction parallel to a pair of opposite sides or a direction perpendicular to the pair of opposite sides of the rectangular shape of the power generating element is less than 45°. Therefore, in this case, when the binder-oriented active material layer further contains a fibrous conductive additive, it is preferable that the orientation of the fibrous conductive additive in the "direction parallel to a pair of opposite sides or a direction perpendicular to the pair of opposite sides" is less than 45°. Furthermore, when the orientation of the fibrous binder in the thickness direction of the binder-oriented active material layer is less than 45° in the thickness direction cross section of the binder-oriented active material layer, and the binder-oriented active material layer further contains a fibrous conductive additive, the orientation of the fibrous conductive additive in the "thickness direction of the binder-oriented active material layer" is preferably less than 45°. This configuration further improves the mechanical strength of the electrode active material layer (and thus the secondary battery). As shown in FIG. 1, a current collector is preferably electrically connected to at least one of a pair of opposite sides (preferably the positive electrode current collector or negative electrode current collector constituting the electrode) perpendicular to the orientation direction of the fibrous binder of an electrode (positive electrode or negative electrode) containing the binder-oriented active material layer. It is more preferable that a current collector is connected to both (both ends) of the pair of opposite sides. This configuration has the advantage that the mechanical strength in the orientation direction of the fibrous binder is improved, making the current collector less likely to peel off from the electrode even when an external force (tensile stress or shear stress) is applied in the direction in which the current collector is connected (the orientation direction of the fibrous binder).
[0053] As described above, the power generating element may include multiple electrode active material layers. Preferably, the power generating element includes two or more binder-aligned active material layers among the multiple electrode active material layers. When the power generating element includes two or more binder-aligned active material layers, the two or more binder-aligned active material layers may be a positive electrode active material layer and a negative electrode active material layer that constitute one cell layer, two or more positive electrode active material layers that constitute different cell layers, two or more negative electrode active material layers that constitute different cell layers, or a combination of a positive electrode active material layer and a negative electrode active material layer that constitute different cell layers. In any of the above-described embodiments, the two or more binder-aligned active material layers may be arranged in the power generating element so that the orientation directions of the fibrous binders in at least two binder-aligned active material layers are aligned, or the two or more binder-aligned active material layers may be arranged so that the orientation directions of the fibrous binders in at least two binder-aligned active material layers are perpendicular to each other. In any of the embodiments, the mechanical strength of the entire secondary battery cell can be improved. In addition, when the secondary battery according to this embodiment includes a plurality of unit cell layers, there is also the advantage that the mechanical strength of the entire cell of the secondary battery can be optimally controlled by appropriately adjusting the direction in which each unit cell layer is arranged.
[0054] [Method of manufacturing electrode active material layer] The electrode active material layer (i.e., binder-aligned active material layer) for use in the secondary battery according to one embodiment of the present invention can be produced by using a roll press to form a sheet from an electrode mixture (a mixture of constituent materials for the electrode active material layer) in the form of a dry powder composition substantially free of liquid components such as solvents. That is, according to another embodiment of the present invention, a method for producing an electrode active material layer (binder-aligned active material layer) for use in a secondary battery according to one embodiment of the present invention is also provided. This production method is characterized by including a forming step of supplying a powder composition (electrode mixture) containing an electrode active material (positive electrode active material or negative electrode active material), a solid electrolyte, and a fibrous binder (and, if necessary, a conductive additive (preferably a fibrous conductive additive)) to a roll press, and then rolling the powder composition using the roll press to form it into a sheet, thereby obtaining the electrode active material layer. This production method produces an electrode active material layer for use in a secondary battery according to one embodiment of the present invention. In other words, the electrode active material layer obtained by this production method is a binder-aligned active material layer. This manufacturing method is also referred to as "manufacturing method (I)."
[0055] Another aspect of the present invention also provides a method for producing an electrode active material layer in which the fibrous binder is oriented not only in the X or Y direction of the electrode active material layer but also in the Z direction in the YZ cross section of the electrode active material layer as shown in Figure 3(b). Specifically, the production method includes a pre-molding step of subjecting a powder composition (electrode mixture) containing an electrode active material (positive electrode active material or negative electrode active material), a solid electrolyte, and a fibrous binder (and, if necessary, a conductive additive (preferably a fibrous conductive additive)) to a spreading treatment to obtain a pre-molded body in which the fibrous binder is oriented, and a molding step of feeding the pre-molded body to a roll press and rolling the pre-molded body using the roll press to form it into a sheet, thereby obtaining the electrode active material layer. The production method is characterized in that the pre-molded body is fed to the roll press so that the orientation direction of the fibrous binder in the pre-molded body (the direction stretched in the spreading treatment) is substantially the same as the thickness direction of the electrode active material layer. According to this manufacturing method, an electrode active material layer for use in a secondary battery according to one embodiment of the present invention can be obtained in which the fibrous binder is oriented in the X direction or Y direction of the electrode active material layer and is oriented along the Z direction in the YZ cross section of the electrode active material layer. This manufacturing method is also referred to as "manufacturing method (II)".
[0056] 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 (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 electrode active material layer is extruded from between the pair of rolls is not particularly limited, and may be horizontal or downward.
[0057] First, the powder composition (electrode mixture) used as a raw material in both production methods (I) and (II) will be described. This powder composition essentially contains an electrode active material (positive electrode active material or negative electrode active material), a solid electrolyte, and a fibrous binder. The powder composition may also contain a conductive additive as needed. When a conductive additive is contained, the conductive additive is a fibrous conductive additive. Agent It is preferable that
[0058] 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, still more preferably 0.5% by mass or less, particularly preferably 0.1% by mass or less, and most preferably 0% by mass, based on 100% by mass of the powder composition.
[0059] 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, and methods using conventionally known mixing means such as a mortar, mixer, or mill may be appropriately employed. Here, there are no particular limitations on the method for blending the fibrous binder into the powder mixture; a fibrous binder may be prepared separately and mixed with other components. Furthermore, when a fibrillizable binder, which is a precursor of the fibrous binder, is mixed with other components, a shear force may be applied to the fibrillizable binder to fibrillate it, thereby producing the fibrous binder in the powder composition.
[0060] (Manufacturing method (I)) In manufacturing method (I), a powder composition (electrode mixture) containing an electrode active material (positive electrode active material or negative electrode active material), a solid electrolyte, and a fibrous binder (and, if necessary, a conductive additive (preferably a fibrous conductive additive)) is supplied to a roll press, and the powder composition is rolled using the roll press to form it into a sheet. This produces an electrode active material layer (binder-oriented active material layer) for use in a secondary battery according to one embodiment of the present invention.
[0061] Fig. 5 is a diagram schematically illustrating an example of a molding step in one embodiment of manufacturing method (I) for manufacturing the positive electrode active material layer 15. Fig. 6 is a diagram schematically illustrating an example of how the powder composition (electrode mixture) 100 is molded by the molding step of manufacturing method (I) to manufacture the positive electrode active material layer 15.
[0062] As shown in FIG. 5, in the molding step of production method (I), a powder composition (electrode mixture) 100 is supplied to a roll press, and the powder composition (electrode mixture) 100 is rolled using the roll press (specifically, compressed by rolls 110 of the roll press) to form a sheet. In this case, the rolling process can be repeated multiple times as necessary until a sheet of the desired thickness is obtained. The powder composition (electrode mixture) 100 formed into a sheet becomes a positive electrode active material layer 15, which is discharged horizontally and then laminated on the surface of a substrate 200. The direction in which the powder composition (electrode mixture) formed into a sheet in the molding step is discharged is not particularly limited, and the positive electrode active material layer 15 may be discharged, for example, vertically.
[0063] The substrate 200 may be moved in one direction depending on the speed at which the powder composition (electrode mixture) 100 is formed. The means for moving the substrate 200 in one direction is not particularly limited, but as shown in FIG. 5, the substrate 200 may be moved in one direction (the direction indicated by arrow A in FIG. 5) 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 200 directly on the driving unit 210b without providing the mounting unit 210a.
[0064] In production method (I), the linear pressure applied by the roll press to the powder composition (electrode mixture) is preferably 35 to 3500 N / cm. The linear pressure applied by the roll press to the powder composition (electrode mixture) 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 perspective of the linear pressure applied to the powder composition (electrode mixture) and adjusting the film thickness of the 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 perspective of maintaining a sufficient press holding time.
[0065] According to production method (I), an electrode active material layer can be obtained by a simple operation of molding a powder composition (electrode mixture) containing an electrode active material using a roll press, which reduces molding errors and increases yield. Furthermore, shear force can be applied to the fibrous binder contained in the powder composition in the flow direction of the roll press during molding. As a result, as shown in FIG. 6, the fibrous binder (and the fibrous conductive additive, if added as needed) that was randomly oriented in the powder composition (electrode mixture) 100 becomes oriented in the flow direction of the roll press (the Y direction in FIG. 6) in a plan view of the electrode active material layer (positive electrode active material layer 15 in FIG. 6) obtained through the molding process. Therefore, an electrode active material layer for use in a secondary battery according to one embodiment of the present invention can be obtained by cutting the continuous sheet-like electrode active material layer obtained in this manner so that the orientation direction of the fibrous binder is parallel to or perpendicular to a pair of opposite sides of the rectangular shape.
[0066] (Manufacturing method (II)) FIG. 7 is a schematic diagram showing an example of how a powder composition (electrode mixture) 100 is molded to produce a positive electrode active material layer 15 through the preliminary molding step (a) and molding step (b) of the manufacturing method (II).
[0067] As shown in FIG. 7(a), in manufacturing method (II), a powder composition (electrode mixture) 100 in which the fibrous binder is randomly oriented is not subjected to rolling using a roll press, but is instead subjected to a spreading treatment so that the fibrous binder is oriented to a certain degree. In this case, it is preferable to subject the powder composition (electrode mixture) to processes such as crushing, dispersing, and kneading, and then subject the resulting kneaded product to the spreading treatment. This results in a provisional compact 100'. In this provisional compact 100', it is sufficient that the fibrous binder (and the fibrous conductive additive, if added as needed) do not exhibit random orientation, but rather exhibit a certain degree of orientation. There are no particular limitations on the specific method of this spreading treatment, and various conventionally known methods for spreading powder compositions (e.g., a roll press, an extruder, etc.) can be appropriately employed.
[0068] Next, in manufacturing method (II), the provisionally formed body 100' obtained in the provisional forming step (a) described above is supplied to a roll press (see FIG. 5), and the provisionally formed body 100' is rolled using the roll press (specifically, compressed by rolls 110 of the roll press) to form it into a sheet. At this time, the rolling process can be repeated multiple times as necessary until a sheet of the desired thickness is obtained. The powder composition (electrode mixture) 100 formed into a sheet becomes a positive electrode active material layer 15 as shown in FIG. 7, and is discharged horizontally and then laminated on the surface of a substrate 200.
[0069] Here, in the molding step (b) of manufacturing method (II), the temporary compact 100′ is supplied to the roll press so that the orientation direction (Z direction shown in FIG. 7(b)) of the fibrous binder in the temporary compact 100′ supplied to the roll press is substantially the same as the thickness direction of the resulting electrode active material layer (positive electrode active material layer 15 in FIG. 7(b)). With this configuration, as shown in FIG. 7(b), the orientation (Z direction orientation shown in FIG. 7(b)) of the fibrous binder (and the fibrous conductive additive added as needed) is maintained in the thickness direction cross section of the electrode active material layer (positive electrode active material layer 15 in FIG. 7) obtained through the molding step, and is oriented in the thickness direction in the thickness direction cross section of the electrode active material layer (positive electrode active material layer 15). This is because the orientation of the fibrous binder in the temporary compact 100′ is somewhat aligned in the thickness direction of the electrode active material layer (positive electrode active material layer 15). On the other hand, the fibrous binder (and the fibrous conductive additive added as needed) are oriented in the roll press flow direction (Y direction shown in FIG. 7(b)) in a plan view of the electrode active material layer (positive electrode active material layer 15). Therefore, by cutting the continuous sheet-like electrode active material layer obtained in this manner so that the orientation direction of the fibrous binder is parallel to one pair of opposite sides of the rectangular shape or perpendicular to the opposite sides, an electrode active material layer for use in a secondary battery according to one embodiment of the present invention can be obtained.
[0070] [Positive and negative current collector plates] The material constituting the current collector plates (25, 27) is not particularly limited, and known highly conductive materials conventionally used as current collector plates for secondary batteries can be used. Metallic materials such as aluminum, carbon-coated aluminum, copper, titanium, nickel, stainless steel (SUS), and alloys thereof are preferred as the constituent material of the current collector plates. From the viewpoints of light weight, corrosion resistance, and high conductivity, aluminum and copper are more preferred, and aluminum is particularly preferred. The negative electrode current collector plate 25 and the positive electrode current collector plate 27 may be made of the same material or different materials.
[0071] [Positive and negative leads] Although not shown, the current collectors (11", 11') and the current collector plates (27, 25) may be electrically connected via positive and negative electrode leads. Materials used in known lithium secondary batteries may be used as the constituent materials of the positive and negative electrode leads. The parts removed from the exterior are 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., automobile parts, particularly electronic devices).
[0072] [Battery exterior] As the battery exterior, a known metal can case can be used, or a bag-shaped case using an aluminum-containing laminate film 29 that can cover the power-generating element as shown in FIG. 1 can be used. The laminate film can be, for example, a three-layer laminate film formed by laminating PP, aluminum, and nylon in this order, but is not limited to these. A laminate film is desirable from the viewpoint of achieving high output and excellent cooling performance, making it suitable for use in batteries for large devices such as EVs and HEVs. Furthermore, an aluminum-containing laminate film is more preferable for the exterior because it allows for easy adjustment of the collective pressure applied to the power-generating element from the outside.
[0073] Although the above description has been given taking the case where the secondary battery according to the present embodiment is an all-solid-state lithium secondary battery as an example, the lithium secondary battery according to the present embodiment does not have to be an all-solid-state type. That is, 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 preferable that the amount is such that the shape of the solid electrolyte layer formed by the solid electrolyte is maintained and leakage of the liquid electrolyte (electrolytic solution) does not occur. Note that, as the liquid electrolyte (electrolytic solution), a solution in the form of a conventionally known lithium salt dissolved in a conventionally known organic solvent is used. The liquid electrolyte (electrolytic solution) may further contain additives other than the organic solvent and the lithium salt. These additives may be used alone or in combination of two or more. Furthermore, when an additive is used in the electrolyte solution, the amount used can be appropriately adjusted. [Example]
[0074] The present invention will be described in more detail below with reference to examples. However, the technical scope of the present invention is not limited to the following examples. In the following, the instruments and devices used in the glove box were thoroughly dried beforehand.
[0075] <Example of manufacturing a positive electrode active material layer> [Example 1] A positive electrode for an all-solid-state lithium secondary battery was produced by the following method.
[0076] First, as the constituent material of the positive electrode active material layer, the positive electrode active material NMC composite oxide (LiNi 0.8 Mn 0.1 Co 0.1The following materials were prepared: O2, average particle diameter (D50): 1 μm; a solid electrolyte, an argyrodite-type sulfide solid electrolyte (Li6PS5Cl, average particle diameter (D50): 0.2 μm); a fibrous conductive additive, carbon nanofiber (CNF) (manufactured by Showa Denko K.K., VGCF®, aspect ratio: 60, average fiber diameter: approximately 150 nm, average fiber length: approximately 9 μm); and a fibrillizable binder, polytetrafluoroethylene (PTFE). In a glove box with an argon atmosphere at a dew point of −68°C or below, predetermined amounts of the prepared positive electrode active material, solid electrolyte, and conductive additive were kneaded in an agate mortar to obtain a uniform mixture. Next, a predetermined amount of PTFE was added to the mixture, and the mixture was further kneaded in an agate mortar to obtain a solvent-free dry powder composition (positive electrode-forming mixture). The resulting mixture resembled udon dough. The compounding ratio of the components in the mixture was 79:16:3:2 (mass ratio of positive electrode active material: solid electrolyte: fibrous conductive additive: binder).
[0077] After confirming that the PTFE had been fibrillated by kneading, the resulting powder composition (positive electrode-forming mixture) was fed into a powder inlet of a roll press, and then rolled using the roll press (conditions are described below) to form the powder composition into a sheet.
[0078] (Roll press machine conditions) Roll size: 250mmφ×400mm Roll rotation speed: 1m / min Roll gap: 100μm Pressure: 10kN (Linear pressure: 25kN / m).
[0079] Next, the sheet was punched into a rectangular shape of 19 mm square so that one pair of opposite sides was parallel to the direction of rolling treatment by a roll press, thereby obtaining a positive electrode active material layer of this example. The positive electrode active material layer obtained in this manner was firmly solidified to such an extent that it would not break even when placed on a glass plate and moved. The thickness of the positive electrode active material layer (measured with a micrometer) was uniform at 80 μm, and it had a smooth surface.
[0080] [Comparative Example 1] A powder composition (positive electrode-forming mixture) was obtained by the same method as in Example 1 described above.
[0081] After confirming that the PTFE had been fibrillated by kneading, the resulting powder composition (positive electrode-forming mixture) was formed into a sheet using a hand roller. The sheet was then punched into a 19 mm square rectangle with one pair of opposite sides parallel to the direction of the hand roller molding process, yielding a positive electrode active material layer for this comparative example. The positive electrode active material layer thus obtained was firmly solidified to such an extent that it would not break even when placed on a glass plate and moved. The positive electrode active material layer had a uniform thickness of 80 μm (measured with a micrometer) and a smooth surface.
[0082] <Evaluation of the positive electrode active material layer> (Evaluation of the orientation of fibrous binder and fibrous conductive additive) For each of the positive electrode active material layers produced in Example 1 or Comparative Example 1, the orientation of the fibrous binder and fibrous conductive additive when the active material layer was viewed in plan was evaluated by the following method.
[0083] First, a cross section parallel to the main surface of the obtained positive electrode active material layer was observed using a scanning electron microscope (SEM) to obtain an observation image.
[0084] Next, the presence of the fibrous binder (PTFE) was detected by mapping the fluorine (F) element in the image obtained above using energy dispersive X-ray analysis (EDX). Similarly, the presence of the fibrous conductive additive was detected by mapping the carbon (C) element using EDX, as a difference from the fibrous binder (PTFE). The field of view (magnification) used to obtain the SEM images was adjusted so that at least 100 fibrous binders and at least 100 fibrous conductive additives were included in one field of view. While EDX was used to detect the presence of the binder, other methods, such as Auger electron spectroscopy (AES) and electron probe microanalysis (EPMA), may also be used to detect the presence of the binder by mapping, provided that the same results are obtained.
[0085] The mapping data obtained as described above was input into an image processing device, and for at least 100 pieces of the observed fibrous binder and fibrous conductive assistant, the angle θ [°] between the reference direction and the direction of rolling using a roll press or hand roller (the Y direction shown in FIG. 6) was measured. Here, in measuring θ for each fibrous binder and fibrous conductive assistant, the absolute value of the angle between the reference direction and the line segment connecting the start and end points where the fibrous binder and fibrous conductive assistant could be observed in the observation image (fibrous binder 31 in FIG. 8) was measured. The arithmetic mean value of the angle θ for all the observed fibrous binders and fibrous conductive assistants was calculated, and this was defined as the orientation degree [°]. As a result, the orientation degree of Example 1, in which the fibrous binder and fibrous conductive assistant were oriented in the Y direction, was 20 [°]. In contrast, in Comparative Example 1, in which the fibrous binder and the fibrous conductive assistant were randomly oriented, the degree of orientation was 45°.
[0086] (Mechanical strength measurement) The positive electrode active material layer prepared in Example 1 or Comparative Example 1 was punched into a dumbbell shape to use as a test piece, and the tensile strength in the flow direction (Y direction) of the rolling treatment was measured in accordance with JIS K 7161:2014 (Plastics - Testing methods for tensile properties). As a result, the tensile strength of the positive electrode active material layer prepared in Example 1 was 1.9 times that of the positive electrode active material layer prepared in Comparative Example 1.
[0087] <Example of evaluation cell production> (Fabrication of solid electrolyte layer) In a glove box with an argon atmosphere and a dew point of -68°C or less, 95 parts by mass of an argyrodite-type sulfide solid electrolyte (Li6PS5Cl) as a solid electrolyte and a binder solution (5 parts by mass of styrene-butadiene rubber (SBR) as a binder dissolved in mesitylene as a solvent) were mixed to prepare a solid electrolyte slurry. The obtained solid electrolyte slurry was applied to the surface of a stainless steel foil support using an applicator, dried, and then punched into a 25 mm square rectangular shape to obtain a 40 μm thick solid electrolyte layer.
[0088] (Fabrication of the negative electrode intermediate layer) Silver nanoparticles and carbon black nanoparticles were weighed and mixed in a mass ratio of 1:3. Five parts by mass of the resulting mixture was added to a binder solution (0.5 parts by mass of styrene-butadiene rubber (SBR) as a binder dissolved in mesitylene as a solvent) and mixed to prepare a negative electrode intermediate layer slurry. The resulting negative electrode intermediate layer slurry was applied to the surface of a stainless steel foil negative electrode current collector using an applicator, dried, and then punched into a rectangular shape with a diameter of 21 mm to obtain a negative electrode intermediate layer with a thickness of 10 μm.
[0089] (Preparation of evaluation cells) The positive electrode active material layer prepared in Example 1 or Comparative Example 1 was placed on an aluminum foil (19 mm square rectangular shape) serving as a positive electrode current collector. The solid electrolyte layer formed on the stainless steel foil prepared above was transferred to the exposed surface of this positive electrode active material layer by cold isostatic pressing (CIP) so that the exposed surface of the solid electrolyte layer faced the positive electrode active material layer. The stainless steel foil was then peeled off, and the negative electrode intermediate layer formed on the stainless steel foil prepared above was placed on the exposed surface of the solid electrolyte layer so that the exposed surface of the negative electrode intermediate layer faced the solid electrolyte layer. Pressurization was then performed by cold isostatic pressing (CIP) to obtain a cell for evaluation (a lithium deposition-type all-solid-state lithium secondary battery).
[0090] <Evaluation of the evaluation cell> A positive electrode lead and a negative electrode lead were connected to the positive electrode current collector and the negative electrode current collector of the evaluation cell prepared above, respectively, and one cycle of charge and discharge was performed under the following charge and discharge test conditions: During this test, a restraining pressure of 3 MPa was applied in the stacking direction of the evaluation cell using a pressure member.
[0091] (Charge / discharge test conditions) 1) Charge / discharge conditions [Voltage range] 3.0~4.3V [Charging process] CCCV (0.01C cutoff) [Discharge process]CC [Charge / discharge rate] 0.1C (After charging and discharging, rest for 30 minutes each time) 2) Evaluation temperature: 298K (25℃).
[0092] The evaluation cells were charged in a constant current / constant voltage (CCCV) mode in a thermostatic chamber set at the evaluation temperature, from 3.0 V to 4.3 V at the above charge / discharge rate (0.01 C cutoff) during the charging process (to deposit lithium metal on the negative electrode current collector). The cells were then discharged in constant current (CC) mode at the above charge / discharge rate (0.01 C cutoff) during the discharging process (to dissolve lithium metal on the negative electrode current collector). Here, 1 C refers to the current value at which the battery is fully charged (100% charged) after one hour of charging. The charge / discharge efficiency was calculated as the ratio of the discharge capacity (0.1 C) to the charge capacity (0.1 C). No significant difference was observed between the measured discharge capacity (0.1 C) and the calculated charge / discharge efficiency for the evaluation cells of Example 1 and Comparative Example 1.
[0093] The above results demonstrate that the present invention can improve the mechanical strength of secondary batteries while minimizing adverse effects on battery characteristics such as discharge capacity and charge / discharge efficiency. This is believed to be due to the fact that the electrode active material layer contains a fibrous binder and that the orientation of the fibrous binder is aligned along a direction parallel to a pair of opposing sides of the rectangular power generating element, thereby suppressing the occurrence of localized regions where strength cannot be controlled. It was also demonstrated that the manufacturing method using a roll press machine, as shown in Example 1, can easily produce an electrode active material layer having the above configuration. [Explanation of symbols]
[0094] 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, 31 Fibrous binders, 33 Fibrous conductive additive, 100 Powder composition (electrode mixture), 100' temporary compact; 110 rolls, 200 base material, 210 substrate conveying means; 210a placing portion, 210b Drive unit.
Claims
1. The power generating element has a rectangular shape with four sides in a plan view, and is formed by laminating an electrode in which an electrode active material layer containing an electrode active material is disposed on the surface of a current collector and a solid electrolyte layer containing a solid electrolyte, the electrode active material layer contains a fibrous binder, and includes a binder-oriented active material layer in which, when the electrode active material layer is viewed in plan, the degree of orientation of the fibrous binder in a direction parallel to a pair of opposite sides of the rectangular shape or in a direction perpendicular to the opposite sides is 40° or less; A secondary battery, wherein the power generating element includes two or more binder-oriented active material layers, and the two or more binder-oriented active material layers are arranged in the power generating element so that the orientation directions of the fibrous binder in at least two of the binder-oriented active material layers are aligned when the electrode active material layer is viewed in a plane.
2. The power generating element has a rectangular shape with four sides in a plan view, and is formed by laminating an electrode in which an electrode active material layer containing an electrode active material is disposed on the surface of a current collector and a solid electrolyte layer containing a solid electrolyte, the electrode active material layer contains a fibrous binder, and includes a binder-oriented active material layer in which, when the electrode active material layer is viewed in plan, the degree of orientation of the fibrous binder in a direction parallel to a pair of opposite sides of the rectangular shape or in a direction perpendicular to the opposite sides is 40° or less; A secondary battery, wherein the power generating element includes two or more binder-oriented active material layers, and the two or more binder-oriented active material layers are arranged in the power generating element so that the orientation directions of the fibrous binder in at least two of the binder-oriented active material layers are perpendicular to each other when the electrode active material layer is viewed in a plane.
3. 3. The secondary battery according to claim 1, wherein the degree of orientation of the fibrous binder in the thickness direction of the binder oriented active material layer is less than 45° in a cross section in the thickness direction of the binder oriented active material layer.
4. 3. The secondary battery according to claim 1, wherein the rectangular shape has a longitudinal direction and a lateral direction, and the fibrous binder of the binder-oriented active material layer is oriented along the longitudinal direction.
5. 3. The secondary battery according to claim 1, wherein the degree of orientation of the fibrous binder in a direction parallel to a pair of opposite sides of the rectangular shape or a direction perpendicular to the opposite sides when the electrode active material layer is viewed in a plane is 35° or less.
6. 6. The secondary battery according to claim 5, wherein the degree of orientation of the fibrous binder in a direction parallel to a pair of opposite sides of the rectangular shape or a direction perpendicular to the opposite sides when the electrode active material layer is viewed in a plane is 30° or less.
7. 7. The secondary battery according to claim 6, wherein the degree of orientation of the fibrous binder in a direction parallel to a pair of opposite sides of the rectangular shape or a direction perpendicular to the opposite sides when the electrode active material layer is viewed in a plane is 25° or less.
8. 8. The secondary battery according to claim 7, wherein the degree of orientation of the fibrous binder in a direction parallel to a pair of opposite sides of the rectangular shape or a direction perpendicular to the opposite sides when the electrode active material layer is viewed in a plane is 20° or less.
9. 3. The secondary battery according to claim 1, wherein the binder-oriented active material layer further contains a fibrous conductive additive, and the orientation degree of the fibrous conductive additive in the orientation direction of the fibrous binder when the electrode active material layer is viewed in a plane is less than 45°.
10. 3. The secondary battery according to claim 1, wherein a current collector is electrically connected to at least one of a pair of opposite sides of the electrode including the binder-oriented active material layer that are perpendicular to the orientation direction of the fibrous binder when the electrode active material layer is viewed in a plane.
11. The secondary battery according to claim 1 or 2, which is an all-solid-state lithium secondary battery.
12. 3. A method for producing an electrode active material layer for use in the secondary battery according to claim 1 or 2, comprising a forming step of supplying a powder composition containing the electrode active material, the solid electrolyte, and a fibrous binder to a roll press machine, and rolling the powder composition using the roll press machine to form it into a sheet, thereby obtaining the electrode active material layer.
13. A method for producing an electrode active material layer for use in the secondary battery according to claim 3, comprising: a pre-molding step of subjecting a powder composition containing the electrode active material, the solid electrolyte, and a fibrous binder to a spreading treatment to obtain a pre-molded body in which the fibrous binder is oriented; a forming step of supplying the temporary compact to a roll press machine and using the roll press machine to roll the temporary compact into a sheet, thereby obtaining the electrode active material layer, wherein the temporary compact is supplied to the roll press machine so that the orientation direction of the fibrous binder in the temporary compact is substantially the same as the thickness direction of the electrode active material layer.
Citation Information
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