Solid-state battery and method for manufacturing the same
By structuring the solid-state battery with a Li-Mg or Li-X layer on the surface of the electrolyte, the battery achieves improved capacity retention through reduced interfacial resistance and enhanced lithium ion diffusion, addressing the low retention rate issue in conventional designs.
Patent Information
- Application Number
- JP2023046041
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-03-22
- Publication Date
- 2025-09-17
- Estimated Expiration
- 2043-03-22
AI Technical Summary
Solid-state batteries with conventional configurations exhibit low capacity retention rates after charge-discharge cycles.
The solid-state battery is structured with a negative electrode layer comprising a negative electrode current collector and a negative electrode active material layer, where the active material layer includes a Li layer, a Li-Mg layer, a Li-Mg-X layer, or a Li-X layer in specific orders, with the Li-X layer formed on the surface of the solid electrolyte layer, and X being Sn, Zn, or Al, to prevent reductive decomposition of the electrolyte.
This configuration enhances the capacity retention rate by minimizing interfacial resistance and promoting lithium ion diffusion, resulting in a higher capacity retention rate compared to conventional designs.
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Figure 0007740286000001
Abstract
Description
[Technical Field]
[0001] The present disclosure relates to solid-state batteries and methods for manufacturing solid-state batteries. [Background technology]
[0002] BACKGROUND ART Conventionally, solid-state batteries have been known as lithium-ion secondary batteries that are excellent in safety. Patent Document 1 discloses an all-solid-state secondary battery (hereinafter also referred to as "solid-state battery"). The solid-state battery disclosed in Patent Document 1 is formed by laminating an anode layer, a solid electrolyte layer, and a cathode layer in this order. The anode layer has an anode current collector and a coating layer that coats the anode current collector. The coating layer and the solid electrolyte layer face each other. In the solid-state battery disclosed in Patent Document 1, metallic lithium is deposited between the coating layer and the solid electrolyte layer during charging. Specifically, Patent Document 1 discloses a coating layer made of zinc that is formed by sputtering on the surface of the anode current collector. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2018-129159 Summary of the Invention [Problem to be solved by the invention]
[0004] However, the solid-state battery disclosed in Patent Document 1 may have a low capacity retention rate after charge-discharge cycles.
[0005] The present disclosure has been made in consideration of the above circumstances. An object of one embodiment of the present disclosure is to provide a solid-state battery with a high capacity retention rate and a method for manufacturing the solid-state battery. [Means for solving the problem]
[0006] The means for solving the above problems include the following embodiments. <1> A solid-state battery including a positive electrode layer, a solid electrolyte layer, and a negative electrode layer in this order, the negative electrode layer includes a negative electrode current collector and a negative electrode active material layer in this order in a direction from the negative electrode layer toward the solid electrolyte layer, when the solid-state battery is fully charged, the negative electrode active material layer has a Li layer, a Li-Mg layer or a Li-Mg-X layer, and a Li-X layer in this order in the direction; The X is at least one selected from the group consisting of Sn, Zn, and Al, A solid-state battery, wherein the Li-X layer is formed on the surface of the solid electrolyte layer. <2> the negative electrode active material layer has the Li-Mg layer or the Li-Mg-X layer and the Li-X layer when the solid-state battery is fully charged; <1> The solid-state battery according to claim 1. <3> When the solid-state battery is fully charged, the negative electrode active material layer has the Li—Mg layer and the Li—Sn layer in this order in the direction. <1> or <2> The solid-state battery according to claim 1. <4> When the solid-state battery is fully charged, the negative electrode active material layer has a Li—Mg—Zn layer and a Li—Zn layer in this order in the direction. <1> or <2> The solid-state battery according to claim 1. <5> When the solid-state battery is fully charged, the negative electrode active material layer has a Li—Mg—Al layer and a Li—Al layer in this order in the direction. <1> or <2> The solid-state battery according to claim 1. <6> When the solid-state battery is fully charged, the negative electrode active material layer has a Li layer and a Li-X layer in this order in the direction. <1> The solid-state battery according to claim 1. <7> When the solid-state battery is fully charged, the negative electrode active material layer has a Li layer and a Li—Sn layer in this order in the direction. <6> The solid-state battery according to claim 1. <8> A method for manufacturing a solid-state battery having a positive electrode layer, a solid electrolyte layer, and a negative electrode layer in this order, comprising: forming an X layer on the surface of the solid electrolyte layer on the negative electrode layer side, A method for producing a solid-state battery, wherein X is at least one selected from the group consisting of Sn, Zn, and Al. <9> the negative electrode layer has a negative electrode current collector, The method further comprises forming an Mg layer on the surface of the negative electrode current collector facing the solid electrolyte layer. <8> A method for manufacturing the solid state battery according to claim 1. [Effects of the Invention]
[0007] According to the present disclosure, a solid-state battery with a high capacity retention rate and a method for manufacturing the solid-state battery are provided. DETAILED DESCRIPTION OF THE INVENTION
[0008] In the present disclosure, a numerical range indicated using "to" means a range that includes the numerical values before and after "to" as the minimum and maximum values, respectively. In the numerical ranges described in stages in the present disclosure, the upper or lower limit value described in a certain numerical range may be replaced with the upper or lower limit value of another numerical range described in stages. In the numerical ranges described in the present disclosure, the upper or lower limit value described in a certain numerical range may be replaced with a value shown in the Examples. In the present disclosure, a combination of two or more preferred embodiments is a more preferred embodiment. In the present disclosure, when multiple substances corresponding to each component are present, the amount of each component means the total amount of multiple substances unless otherwise specified. In the present disclosure, the term "process" includes not only independent processes, but also processes that cannot be clearly distinguished from other processes, as long as the intended purpose of the process is achieved.
[0009] (1) Solid state battery The solid-state battery of the present disclosure includes a positive electrode layer, a solid electrolyte layer, and a negative electrode layer, in this order. The negative electrode layer includes a negative electrode current collector and a negative electrode active material layer, in this order, in a direction from the negative electrode layer toward the solid electrolyte layer (hereinafter also referred to as the "SE direction"). When the solid-state battery is fully charged (hereinafter also simply referred to as "fully charged"), the negative electrode active material layer includes a Li (lithium) layer, a Li-Mg (magnesium) layer or a Li-Mg-X layer, and a Li-X layer, in this order, in the SE direction. The X (hereinafter also referred to as "metal element X") is at least one selected from the group consisting of Sn (tin), Zn (zinc), and Al (aluminum). The Li-X layer is formed on the surface of the solid electrolyte layer.
[0010] In this disclosure, "a solid-state battery at full charge" refers to a state of charge (SOC) of a solid-state battery at 100%. SOC indicates the ratio of the charge capacity to the full charge capacity of a solid-state battery. At full charge, the SOC is 100%. The term "Li layer" refers to a metal layer containing lithium as a main component. Specifically, the term "Li layer" refers to a layer in which the ratio of lithium element is 98 atomic % or more relative to the total amount of all elements constituting the layer, and more preferably, a layer in which the ratio of lithium element is 99.8 atomic % or more relative to the total amount of all elements. The Li layer may have a ratio of lithium element of 100 atomic %. The Li layer may be formed by a deposition reaction of metallic lithium accompanying charging of the solid-state battery. The term "Li-Mg layer" refers to an alloy layer primarily composed of lithium and magnesium. Specifically, the term "Li-Mg layer" refers to a layer in which, relative to the total amount of all elements constituting the layer when the solid-state battery is fully charged, the ratio of lithium is 75 atomic % or more and the ratio of magnesium is 0.3 atomic % or more. The ratio of lithium may be 75 atomic % to 99.7 atomic %, and the ratio of magnesium may be 0.3 atomic % to 20 atomic %. The term "Li-Mg-X layer" refers to an alloy layer containing lithium, magnesium, and a metal element X as its main components. Specifically, the term "Li-Mg-X layer" refers to a layer in which, relative to the total amount of all elements constituting the layer, the ratio of lithium is 45 atomic % or more, the ratio of magnesium is 0.3 atomic % or more, and the ratio of metal element X is 0.1 atomic % or more. The ratio of metal element X may be 0.1 atomic % to 5 atomic %, the ratio of magnesium may be 0.3 atomic % to 45 atomic %, and the ratio of lithium may be 45 atomic % to 99.6 atomic %. The term "Li-X layer" refers to an alloy layer containing lithium element and metal element X as its main components. Specifically, the term "Li-X layer" refers to a layer in which the ratio of lithium element is 80 atomic % or more and the ratio of metal element X is 0.1 atomic % or more, relative to the total amount of all elements constituting the layer. The ratio of metal element X may be 0.1 atomic % to 15 atomic %, and the ratio of lithium element may be 80 atomic % to 99.9 atomic %. The phrase "the Li-X layer is formed on the surface of the solid electrolyte layer" means that no Li layer is present between the Li-X layer and the solid electrolyte layer when the solid battery is fully charged.
[0011] The solid state battery of the present disclosure has the above configuration and therefore has a high capacity retention rate. This effect is presumably due to, but not limited to, the following reasons. It is known that when a solid electrolyte layer comes into physical contact with metallic lithium during charging and discharging of a solid-state battery, a reductive decomposition reaction of the solid electrolyte layer proceeds. If the reductive decomposition reaction of the solid electrolyte layer proceeds, a layer that acts as an interfacial resistance (hereinafter also referred to as a "resistance layer") may be formed between the solid electrolyte layer and the negative electrode layer. As a result, the capacity retention rate of the solid-state battery may decrease. In the present disclosure, the Li-X layer is formed on the surface of the solid electrolyte layer. In other words, no Li layer is interposed between the Li-X layer and the solid electrolyte layer during charging of the solid battery. This means that the reductive decomposition reaction of the solid electrolyte layer is unlikely to proceed. As a result, a resistance layer is unlikely to form. Furthermore, in the present disclosure, during charging and discharging of the solid battery, lithium ions are more likely to diffuse at the interface between the solid electrolyte layer and the negative electrode layer than when a Li-X layer is not formed on the surface of the solid electrolyte layer. As a result, the solid battery of the present disclosure is presumed to have a high capacity retention rate.
[0012] (1.1)Battery structure The structure of a solid-state battery is a laminated structure of a positive electrode layer / solid electrolyte layer / negative electrode layer. The solid-state battery includes so-called all-solid-state batteries that use a solid electrolyte as the electrolyte, and the solid electrolyte may contain an electrolytic solution in an amount of less than 10 mass % relative to the total amount of the electrolyte. The solid electrolyte may also be a composite solid electrolyte containing an inorganic solid electrolyte and a polymer electrolyte.
[0013] When a set of a positive electrode layer, a solid electrolyte layer, and a negative electrode layer is defined as a power generation unit, the solid-state battery may have only one power generation unit or may have two or more power generation units. When the solid-state battery has two or more power generation units, the power generation units may be connected in series or in parallel.
[0014] The solid-state battery may be configured by sealing the end faces (side faces) of a stacked structure of a positive electrode layer / solid electrolyte layer / negative electrode layer with a resin. The shape of the solid-state battery is not particularly limited, and may be, for example, a coin type, a cylindrical type, a square type, a sheet type, a button type, a flat type, or a stacked type.
[0015] (1.2) Negative electrode layer The solid-state battery includes a negative electrode layer, which includes a negative electrode current collector and a negative electrode active material layer in this order in the SE direction.
[0016] (1.2.1) Negative electrode active material layer The negative electrode layer has a negative electrode active material layer. When fully charged, the negative electrode active material layer has a Li layer, a Li-Mg layer or a Li-Mg-X layer, and a Li-X layer in this order in the direction. The metal element X is at least one selected from the group consisting of Sn, Zn, and Al. The Li-X layer is formed on the surface of the solid electrolyte layer. The layer structure of the negative electrode active material layer was determined by the same method as that described in the Examples.
[0017] The metal element X may be one selected from the group consisting of Sn, Zn and Al. When the metal element X is Sn and the negative electrode active material layer contains Mg, the negative electrode active material layer at full charge tends to contain a Li-Mg layer but not a Li-Mg-Sn layer. This is presumably because the alloying potential of Sn and Li is higher than the Li deposition potential, causing the reaction to proceed in two stages. Specifically, it is presumed that during charging, the Li-Sn layer is formed first, and then the Li-Mg alloying reaction and Li deposition reaction occur, resulting in the formation of the Li-Mg layer. When the metal element X is Zn and the negative electrode active material layer contains Mg, the negative electrode active material layer at full charge tends to contain a Li-Mg-Zn layer but not a Li-Mg layer. This is presumably because the alloying potential of Li-Zn is lower than that of Li-Mg, and thus the Li-Zn layer is formed simultaneously with Li deposition, resulting in a structure mixed with Li-Mg. When the metal element X is Al and the negative electrode active material layer contains Mg, the negative electrode active material layer at full charge tends to contain a Li-Mg-Al layer but not a Li-Mg layer. This is presumably because the alloying potential of Li-Al is lower than that of Li-Mg, and therefore the Li-Al layer is formed simultaneously with Li deposition, resulting in a structure mixed with Li-Mg.
[0018] When the negative electrode active material layer does not contain Mg, the ratio of the metal element X and the ratio of Li at full charge are preferably within the following ranges from the viewpoint of increasing the capacity retention rate of the solid-state battery. That is, the ratio of the metal element X is preferably 0.05 atomic % to 15.0 atomic %, more preferably 0.12 atomic % to 2.0 atomic %, and even more preferably 0.3 atomic % to 1.0 atomic %, relative to the total amount of the negative electrode active material layer. The ratio of Li is not particularly limited, and is preferably 85.0 atomic % to 99.5 atomic %, more preferably 98.0 atomic % to 99.88 atomic %, and even more preferably 99.0 atomic % to 99.7 atomic %, relative to the total amount of the negative electrode active material layer.
[0019] The ratio is calculated by removing the negative electrode layer from a fully charged all-solid-state battery, performing ICP (Inductively Coupled Plasma) analysis on the negative electrode layer, and calculating the element ratio of the alloy contained in the negative electrode layer. The same method of calculating the ratio is used hereinafter.
[0020] When the negative electrode active material layer does not contain Mg, the thickness of the Li layer and the Li-X layer may each be within the following ranges when fully charged. The thickness of the Li layer is not particularly limited and may be 1 μm to 30 μm. The thickness of the Li-X layer is not particularly limited and may be 10 nm to 3000 nm.
[0021] When the negative electrode active material layer contains Mg, the ratio of the metal element X, the ratio of Li, and the ratio of Mg are preferably within the following ranges from the viewpoint of increasing the capacity retention rate of the solid-state battery at full charge. That is, the ratio of the metal element X is preferably 0.05 atomic % to 15.0 atomic %, more preferably 0.12 atomic % to 2.0 atomic %, and even more preferably 0.3 atomic % to 1.0 atomic %, relative to the total amount of the negative electrode active material layer. The ratio of Li is not particularly limited, and is preferably 85.0 atomic % to 99.5 atomic %, more preferably 98.0 atomic % to 99.88 atomic %, and even more preferably 99.0 atomic % to 99.7 atomic %, relative to the total amount of the negative electrode active material layer. The proportion of Mg is not particularly limited, and is preferably 0.1 atomic % to 25.0 atomic %, more preferably 0.3 atomic % to 20.0 atomic %, and even more preferably 0.8 atomic % to 6.0 atomic %, relative to the total amount of the negative electrode active material layer.
[0022] When the negative electrode active material layer contains Mg, the thickness of the Li-Mg layer, the thickness of the Li-Mg-X layer, and the thickness of the Li-X layer may each be within the following ranges when fully charged. The thickness of the Li-Mg layer is not particularly limited and may be 1 μm to 30 μm. The thickness of the Li-Mg-X layer is not particularly limited and may be 1 μm to 30 μm. The thickness of the Li-X layer is not particularly limited and may be 10 nm to 3000 nm. When the negative electrode active material layer contains Mg, the Li-Mg layer or Li-Mg-X layer is preferably formed on the surface of the negative electrode current collector. The phrase "the Li-Mg layer or Li-Mg-X layer is formed on the surface of the negative electrode current collector" means that no Li layer is present between the Li-Mg layer or Li-Mg-X layer and the negative electrode current collector when the solid-state battery is fully charged.
[0023] When the solid-state battery is fully charged, the negative electrode active material layer preferably has a Li layer and a Li-X layer in this order in the SE direction. This allows the capacity retention rate of the solid electrolyte to be higher than when the negative electrode active material layer is a conventional negative electrode active material layer. A conventional negative electrode active material layer has a Li-Zn layer and a Li layer in this order in the SE direction.
[0024] When the solid-state battery is fully charged, the negative electrode active material layer preferably has a Li layer and a Li—Sn layer in this order in the SE direction, thereby providing a higher capacity retention rate of the solid electrolyte than when the negative electrode active material layer has a Li layer and a Li—Al layer or a Li—Zn layer in this order in the SE direction.
[0025] When the solid-state battery is fully charged, the negative electrode active material layer preferably has the Li-Mg layer or the Li-Mg-X layer and the Li-X layer, thereby providing a higher capacity retention rate than when the negative electrode active material layer has a Li layer and a Li-X layer in this order in the SE direction. The Li-X layer is relatively thin, and may be formed to conform to the surface texture (i.e., uneven shape) of the solid electrolyte layer. The Li-Mg layer or Li-Mg-Zn layer easily absorbs lithium ions and expands when the solid-state battery is fully charged. This increases the number of contact points between the Li-Mg layer or Li-Mg-Zn layer and the Li-Zn layer. In other words, the number of reaction sites between the solid electrolyte layer and the negative electrode layer increases. As a result, it is expected that the capacity retention rate of the solid-state battery will be high.
[0026] When the solid-state battery is fully charged, the negative electrode active material layer preferably has a Li-Mg-Al layer and a Li-Al layer in this order in the SE direction, thereby providing a higher capacity retention rate than when the negative electrode active material layer has a Li layer and a Li-X layer in this order in the SE direction.
[0027] When the solid-state battery is fully charged, the negative electrode active material layer comprises a Li-Mg-Zn layer and a Li It is preferable that the solid-state battery has a -Zn layer in this order in the above direction. The retention rate was measured when the negative electrode active material layer consisted of a Li-Mg-Al layer and a Li-Al layer in the SE direction in this order. Higher than if 。
[0028] When the solid-state battery is fully charged, the negative electrode active material layer preferably has the Li-Mg layer and the Li-Sn layer in this order in the SE direction, thereby providing a higher capacity retention rate than when the negative electrode active material layer has the Li-Mg layer and the Li-Sn layer in this order in the SE direction.
[0029] When fully charged, the negative electrode active material layer may have a Li alloy layer between the Li layer, Li-Mg layer, or Li-Mg-X layer and the Li-X layer, within a range that does not impair the effects of the present disclosure. Examples of the Li alloy layer include a Li-In alloy.
[0030] From the viewpoint of increasing the capacity retention rate of the solid-state battery when fully charged, the negative electrode active material layer preferably comprises a Li layer, a Li-Mg layer or a Li-Mg-X layer, and a Li-X layer.
[0031] During discharge (for example, SOC: 0%), the negative electrode active material layer may not have a Li layer.
[0032] (1.2.2) Negative electrode current collector The negative electrode layer has a negative electrode current collector that collects current from the negative electrode layer and is disposed on the opposite side of the negative electrode layer from the solid electrolyte layer. The negative electrode current collector may be made of a material that does not alloy with Li, such as stainless steel, aluminum, copper, nickel, iron, titanium, carbon, etc., and is preferably made of copper. The negative electrode current collector may be in the form of, for example, a foil or a mesh. The negative electrode current collector may have a buffer layer, an elastic layer, or a PTC (Positive Temperature Coefficient) thermistor layer disposed on the surface thereof.
[0033] (1.3) Solid electrolyte layer The solid-state battery includes a solid electrolyte layer. The solid electrolyte layer may include a solid electrolyte. The solid electrolyte preferably includes at least one selected from the group consisting of a sulfide solid electrolyte, an oxide solid electrolyte, and a halide solid electrolyte.
[0034] The sulfide solid electrolyte preferably contains sulfur (S) as the main anion element, and more preferably contains, for example, Li, A, and S. The A element is at least one selected from the group consisting of P, As, Sb, Si, Ge, Sn, B, Al, Ga, and In. The sulfide solid electrolyte may further contain at least one of O and a halogen element. Examples of the halogen element (X) include F, Cl, Br, and I. The composition of the sulfide solid electrolyte is not particularly limited, and examples include xLiS·(100-x)P2S5 (70≦x≦80), yLiI·zLiBr·(100-yz)(xLiS·(1-x)P2S5) (0.7≦x≦0.8, 0≦y≦30, 0≦z≦30). The sulfide solid electrolyte may have a composition represented by the following general formula (1): Formula (1): Li 4-x Ge 1-x P x S4(0 <x<1) In formula (1), at least a portion of the Ge may be substituted with at least one selected from the group consisting of Sb, Si, Sn, B, Al, Ga, In, Ti, Zr, V, and Nb. At least a portion of the P may be substituted with at least one selected from the group consisting of Sb, Si, Sn, B, Al, Ga, In, Ti, Zr, V, and Nb. At least a portion of the Li may be substituted with at least one selected from the group consisting of Na, K, Mg, Ca, and Zn. At least a portion of the S may be substituted with a halogen. The halogen is at least one of F, Cl, Br, and I.
[0035] As the oxide solid electrolyte, it is preferable to contain oxygen (O) as the main component of the anion element. For example, it may contain Li, Q element (Q represents at least one of Nb, B, Al, Si, P, Ti, Zr, Mo, W, and S), and O. Examples of the oxide solid electrolyte include garnet-type solid electrolyte, perovskite-type solid electrolyte, NASICON-type solid electrolyte, Li-P-O-based solid electrolyte, Li-B-O-based solid electrolyte, etc. Examples of the garnet-type solid electrolyte include, for example, Li7La3Zr2O 12 、Li 7-x La3(Zr 2-x Nb x )O 12 (0≦x≦2), Li5La3Nb2O 12 etc. Examples of the perovskite-type solid electrolyte include, for example, (Li, La)TiO3, (Li, La)NbO3, (Li, Sr)(Ta, Zr)O3, etc. Examples of the NASICON-type solid electrolyte include, for example, Li(Al, Ti)(PO4)3, Li(Al, Ga)(PO4)3, etc. Examples of the Li-P-O-based solid electrolyte include Li3PO4, LIPON (a compound in which a part of O in Li3PO4 is replaced by N), and examples of the Li-B-O-based solid electrolyte include Li3BO3, a compound in which a part of O in Li3BO3 is replaced by C, etc.
[0036] As the halide solid electrolyte, a solid electrolyte containing Li, M, and X (M represents at least one of Ti, Al, and Y, and X represents F, Cl, or Br) is suitable. Specifically, Li 6ー3z Y z X6 (X represents Cl or Br, and z satisfies 0<z<2), Li 6-(4-x)b (Ti 1-x Al x ) b F6 (0<x<1, 0<b≦1.5) is preferable. Among Li 6ー3z Y z X6, Li3YX6 (X represents Cl or Br) is more preferable in terms of excellent lithium ion conductivity, and further Li3YCl6 is preferable. Also, Li 6-(4-x)b (Ti 1-x Al x ) bF6 (0 < x < 1, 0 < b ≤ 1.5) is preferably included together with a solid electrolyte such as a sulfide solid electrolyte from the viewpoint of suppressing, for example, the oxidative decomposition of the sulfide solid electrolyte.
[0037] The solid electrolyte layer may have a single-layer structure or a multilayer structure of two or more layers.
[0038] The solid electrolyte layer may contain a binder. Examples of the binder that can be included in the solid electrolyte layer include vinyl halide resins, rubbers, polyolefin resins, etc. Examples of the vinyl halide resin include polyvinylidene fluoride (PVdF), a copolymer of polyvinylidene fluoride and hexafluoropropylene (PVdF-HFP), etc. Examples of the polyolefin resin include butadiene rubber (BR), acrylate butadiene rubber (ABR), styrene-butadiene rubber (SBR), acrylonitrile-butadiene rubber (NBR), butyl rubber (isobutylene-isoprene rubber), etc. Examples of the polyolefin resin include polyethylene, polypropylene, etc. The binder (C) may be a diene-based rubber containing a double bond in the main chain, for example, a butadiene-based rubber in which butadiene occupies 30 mol% or more of the whole.
[0039] (1.4) Positive electrode layer The solid battery includes a positive electrode layer. The positive electrode layer may have a positive electrode current collector and a positive electrode active material layer. The positive electrode active material layer is laminated on the main surface on the solid electrolyte layer side of the positive electrode current collector.
[0040] (1.4.1) Positive electrode active material layer The positive electrode active material layer may contain a positive electrode active material.
[0041] (1.4.1.1) Positive electrode active material The positive electrode active material preferably contains a lithium composite oxide. The lithium composite oxide may contain at least one element selected from the group consisting of F, Cl, N, S, Br, and I. The lithium composite oxide may have a crystal structure belonging to at least one space group selected from the space groups R-3m, Immm, and P63-mmc (also referred to as P63mc or P6 / mmc). The lithium composite oxide may have an O2-type structure in which the transition metal, oxygen, and lithium are primarily arranged.
[0042] Examples of lithium composite oxides having a crystal structure belonging to R-3m include Li x Me y O α X β (Me represents at least one selected from the group consisting of Mn, Co, Ni, Fe, Al, Cu, V, Nb, Mo, Ti, Cr, Zr, Zn, Na, K, Ca, Mg, Pt, Au, Ag, Ru, W, B, Si, and P, and X represents at least one selected from the group consisting of F, Cl, N, S, Br, and I, and satisfy the conditions 0.5≦x≦1.5, 0.5≦y≦1.0, 1≦α<2, and 0<β≦1.)
[0043] Examples of lithium composite oxides having a crystal structure belonging to Immm include Li x1 M 1 A 1 2(1.5≦x1≦2.3, M 1 contains at least one selected from the group consisting of Ni, Co, Mn, Cu and Fe, and A 1 contains at least oxygen, and A 1 The ratio of oxygen in the oxide is 85 atomic % or more. x1 M 1A 1-x2 M 1B x2 O 2-y A 2 y (0≦x2≦0.5, 0≦y≦0.3, and at least one of x2 and y is not 0, M 1Arepresents at least one selected from the group consisting of Ni, Co, Mn, Cu and Fe, and M 1B represents at least one selected from the group consisting of Al, Mg, Sc, Ti, Cr, V, Zn, Ga, Zr, Mo, Nb, Ta and W, and A2 represents at least one selected from the group consisting of F, Cl, Br, S and P.). Examples thereof include composite oxides represented by
[0044] Examples of the lithium composite oxide having a crystal structure belonging to P63-mmc include, for example, M1 x M2 y O2 (where M1 represents an alkali metal (at least one of Na and K is preferred), M2 represents a transition metal (at least one selected from the group consisting of Mn, Ni, Co and Fe is preferred), and x + y satisfies 0 < x + y ≤ 2).). Examples thereof include composite oxides represented by
[0045] Examples of the lithium composite oxide having an O2-type structure include, for example, Li x [Li α (Mn a Co b M c ) 1-α O2 (0.5 < x < 1.1, 0.1 < α < 0.33, 0.17 < a < 0.93, 0.03 < b < 0.50, 0.04 < c < 0.33, and M represents at least one selected from the group consisting of Ni, Mg, Ti, Fe, Sn, Zr, Nb, Mo, W and Bi.). Examples thereof include composite oxides represented by, and specific examples include Li 0.744 [Li 0.145 Mn 0.625 Co 0.115 Ni 0.115 O2 and the like.
[0046] (1.4.1.2) Solid electrolyte group The positive electrode layer preferably contains a solid electrolyte selected from the group of solid electrolytes consisting of a sulfide solid electrolyte, an oxide solid electrolyte, and a halide solid electrolyte, in addition to the positive electrode active material. A mode in which at least a part of the surface of the positive electrode active material is coated with a sulfide solid electrolyte, an oxide solid electrolyte, or a halide solid electrolyte is more preferable. As the halide solid electrolyte that coats at least a part of the surface of the positive electrode active material, Li 6-(4-x)b (Ti 1-x Al x ) b F6 (0 < x < 1, 0 < b ≤ 1.5) [LTAF electrolyte] is preferable.
[0047] (1. Four. One. Three) Conductive aid The positive electrode layer may contain a conductive aid. Examples of the conductive aid include a carbon material, a metal material, and a conductive polymer material. Examples of the carbon material include carbon black (for example, acetylene black, furnace black, ketjen black, etc.), fibrous carbon (for example, vapor-grown carbon fiber, carbon nanotube, carbon nanofiber, etc.), graphite, carbon fluoride, etc. Examples of the metal material include metal powder (for example, aluminum powder, etc.), conductive whisker (for example, zinc oxide, potassium titanate, etc.), conductive metal oxide (for example, titanium oxide, etc.), etc. Examples of the conductive polymer material include polyaniline, polypyrrole, polythiophene, etc. The conductive aid may be used alone as only one kind, or two or more kinds may be mixed and used.
[0048] (1. Four. One. Four) Binder The positive electrode layer may contain a binder. Examples of the binder that can be contained in the positive electrode layer are the same as those exemplified as the binder that can be contained in the solid electrolyte layer.
[0049] (1. Four. One. Five) Other components The positive electrode layer may contain other components. Examples of the other components include a thickener, a surfactant, a dispersant, a wetting agent, an antifoaming agent, etc.
[0050] (1.4.2) Positive electrode current collector The positive electrode layer may further include a positive electrode current collector that collects current from the positive electrode layer and is disposed on the opposite side of the positive electrode layer from the solid electrolyte layer. The positive electrode current collector may be made of, for example, stainless steel, aluminum, copper, nickel, iron, titanium, or carbon, and is preferably an aluminum alloy foil or aluminum foil. The aluminum alloy foil or aluminum foil may be manufactured using powder. The positive electrode current collector may be, for example, in the form of a foil or a mesh. The positive electrode current collector may have a buffer layer, an elastic layer, or a PTC (Positive Temperature Coefficient) thermistor layer disposed on the surface thereof.
[0051] (2) Manufacturing method of solid-state batteries The method for manufacturing a solid-state battery according to the present disclosure is a method for manufacturing a solid-state battery having a positive electrode layer, a solid electrolyte layer, and a negative electrode layer in this order. The method for manufacturing a solid-state battery according to the present disclosure includes a step of forming an X layer on the surface of the solid electrolyte layer facing the negative electrode layer (hereinafter also referred to as an "X layer forming step"). The X is at least one element selected from the group consisting of Sn, Zn, and Al.
[0052] In the present disclosure, the term "X layer" refers to a metal layer containing metal element X as a main component. The ratio of metal element X to the total amount of all elements constituting the X layer may be 100 atomic %. The "X layer" is a precursor of the "Li-X layer" in the present disclosure. Specifically, the X layer becomes a Li-X layer by incorporating lithium ions when the solid-state battery is charged.
[0053] The method for manufacturing a solid-state battery according to the present disclosure has the above configuration, and therefore the solid-state battery according to the present disclosure can be manufactured.
[0054] The method for manufacturing a solid state battery according to the present disclosure includes a first embodiment and a second embodiment, which will be described later.
[0055] (2.1) First embodiment The method for manufacturing the solid state battery according to the first embodiment includes an X layer forming step, a first lamination step (described later), and a first charging step (described later). The X layer forming step, the first lamination step, and the first charging step are performed in this order.
[0056] According to the first embodiment, a first solid-state battery is obtained. The first solid-state battery includes a positive electrode layer, a solid electrolyte layer, and a negative electrode layer, in this order. The negative electrode layer includes a negative electrode current collector and a negative electrode active material layer, in this order, in the SE direction. When the first solid-state battery is fully charged, the negative electrode active material layer includes a Li layer and a Li-X layer, in this order, in the SE direction. The Li-X layer is formed on the surface of the solid electrolyte layer.
[0057] (2.1.1) X layer formation process In the X layer forming step, an X layer is formed on the surface of the solid electrolyte layer facing the negative electrode layer. This results in a solid electrolyte layer with an X layer. The solid electrolyte layer with an X layer has a solid electrolyte layer and an X layer formed on the surface of the solid electrolyte layer facing the negative electrode layer.
[0058] The method for preparing the solid electrolyte layer may be any known method, such as a pressing method. Examples of the pressing method include roll pressing and cold isostatic pressing (CIP). The pressing pressure is usually 1 MPa to 600 MPa. Examples of the solid electrolyte layer include the same as those exemplified as the solid electrolyte layer included in the solid battery of the present disclosure.
[0059] The method for forming the X layer is not particularly limited, and any known method may be used, including a dry process and a wet process. In the dry process, the X layer is formed by a process in a gas phase or vacuum. Specifically, examples of the dry process include physical vapor deposition (e.g., vacuum deposition, ion plating, sputtering, etc.), chemical vapor deposition (e.g., thermal CVD (Chemical Vapor Deposition), plasma CVD, etc.), and thermal spraying (e.g., flame spraying, arc spraying, plasma spraying, etc.). In the wet process, the X film is formed using a solution. Specifically, examples of the wet process include plating (for example, electroplating, electroless plating, electroforming, etc.) and electrolytic polymerization.
[0060] Among these, physical vapor deposition and chemical vapor deposition are preferred as methods for forming the X layer. This method provides better uniformity of the initial X layer and better adhesion between the X layer and the solid electrolyte layer than methods for forming the X layer such as pressing or fine particle coating. As a result, a solid-state battery with a higher capacity retention rate can be obtained. This is presumably due to the following reasons. In physical vapor deposition or chemical vapor deposition, the X layer is formed thinner and with a uniform thickness that conforms to the uneven surface of the solid electrolyte interface. In addition, the adhesive strength between the solid electrolyte and the X layer is strong. Therefore, voids are less likely to form at the interface between the solid electrolyte layer and the X layer. As a result, the battery performance of the solid-state battery is less likely to deteriorate. On the other hand, when using the pressing method or fine particle coating, the X layer is likely to be formed with an uneven thickness depending on the location of the solid electrolyte interface. For example, the X layer may be embedded in the uneven surface of the solid electrolyte layer or may accumulate in large amounts in the recesses of the solid electrolyte interface. This may result in uneven progress of the Li deposition reaction, resulting in the presence of voids at the interface between the X layer and the Li layer. In addition, the uneven thickness of the X layer and the weak adhesion between the X layer and the solid electrolyte layer may result in the presence of areas where the solid electrolyte layer is partially exposed. This may cause the reaction with the solid electrolyte to progress, resulting in a deterioration of the battery performance of the solid-state battery.
[0061] The thickness of the X layer is not particularly limited and may be from 1 nm to 1000 nm.
[0062] (2.1.2) First lamination process In the first lamination step, a negative electrode current collector, a solid electrolyte layer with an X layer, and a positive electrode layer are laminated in this order to form a first battery precursor. The first battery precursor is formed by laminating a negative electrode current collector, an X layer, a solid electrolyte layer, and a positive electrode layer in this order.
[0063] The negative electrode current collector and the positive electrode layer may be prepared by a known method. Examples of the negative electrode current collector include those exemplified as the negative electrode current collector included in the solid-state battery of the present disclosure. Examples of the positive electrode layer include those exemplified as the positive electrode layer included in the solid-state battery of the present disclosure.
[0064] Examples of lamination methods include a pressing method. A slurry may be used when forming the positive electrode layer. Examples of pressing methods include roll pressing and cold isostatic pressing (CIP). The pressing pressure is usually 1 MPa to 600 MPa.
[0065] (2.1.3) First charging process In the first charging step, the first battery precursor is charged to produce a first solid state battery.
[0066] When the first charging step is performed, lithium ions migrate from the positive electrode layer to the negative electrode layer. This causes metallic lithium to deposit between the X layer and the negative electrode current collector layer. As a result, a Li layer is selectively formed between the X layer and the negative electrode current collector layer. This is presumably due to the following reason: After charging the solid-state battery, the X layer reacts with Li to form a Li-X layer. The Li-X layer has lithium ion conductivity. Therefore, lithium ions migrated from the positive electrode pass through the Li-X layer and reach and deposit on the negative electrode current collector (or on already deposited Li). As a result, a Li layer is selectively formed between the X layer and the negative electrode current collector layer.
[0067] The charging conditions for the first charging step are not particularly limited and may be appropriately selected depending on the thickness of the X layer and the like.
[0068] (2.2) Second embodiment The method for manufacturing a solid state battery according to the second embodiment includes an X-layer forming step, a step of forming an Mg layer on the surface of the negative electrode current collector facing the solid electrolyte layer (hereinafter also referred to as the "Mg layer forming step"), a second battery precursor forming step, and a second charging step. The order in which the X-layer forming step and the Mg layer forming step are performed is not particularly limited. After the X-layer forming step and the Mg layer forming step are performed, the second battery precursor forming step and the second charging step are performed in this order.
[0069] According to the second embodiment, a second solid-state battery is obtained. The second solid-state battery includes a positive electrode layer, a solid electrolyte layer, and a negative electrode layer, in this order. The negative electrode layer includes a negative electrode current collector and a negative electrode active material layer, in this order, in the SE direction. When the second solid-state battery is fully charged, the negative electrode active material layer includes a Li-Mg layer or Li-Mg-X layer and a Li-X layer, in this order, in the SE direction. The Li-X layer is formed on the surface of the solid electrolyte layer.
[0070] (2.2.1) X layer formation process The X layer forming step is the same as the X layer forming step exemplified in the first embodiment.
[0071] (2.2.2) Mg layer formation process In a second embodiment, the negative electrode layer includes a negative electrode current collector. In the Mg layer forming step, a Mg layer is formed on the surface of the negative electrode current collector facing the solid electrolyte layer. This results in a negative electrode current collector with an Mg layer. The negative electrode current collector with an Mg layer includes a negative electrode current collector and a Mg layer formed on the surface of the negative electrode current collector facing the solid electrolyte layer.
[0072] The negative electrode current collector may be prepared by a known method. Examples of the negative electrode current collector include those exemplified as the negative electrode current collector included in the solid state battery of the present disclosure.
[0073] The method for forming the Mg layer is not particularly limited, and includes the same methods as those exemplified as the method for forming layer X. Among them, physical vapor deposition or chemical vapor deposition is preferred as the method for forming the Mg layer.
[0074] The thickness of the Mg layer is not particularly limited and may be 30 nm to 3000 nm.
[0075] (2.2.3) Second lamination process In the second lamination step, a negative electrode current collector with an Mg layer, a solid electrolyte layer with an X layer, and a positive electrode layer are laminated in this order to form a second battery precursor. The second battery precursor is formed by laminating a negative electrode current collector, an Mg layer, an X layer, a solid electrolyte layer, and a positive electrode layer in this order.
[0076] The positive electrode layer may be prepared by any known method. Examples of the positive electrode layer include the same positive electrode layers as those exemplified as the positive electrode layer included in the solid state battery of the present disclosure.
[0077] Examples of lamination methods include a pressing method. A slurry may be used when forming the positive electrode layer. Examples of pressing methods include roll pressing and cold isostatic pressing (CIP). The pressing pressure is usually 1 MPa to 600 MPa.
[0078] (2.2.4) Second charging process In the second charging step, the second battery precursor is charged to produce a second solid state battery.
[0079] When the second charging step is performed, lithium ions migrate from the positive electrode layer to the negative electrode layer. The lithium ions are incorporated into the Mg layer and the X layer, forming a Li-Mg layer or a Li-Mg-X layer and a Li-X layer. At this time, no Li layer is formed between the solid electrolyte layer and the negative electrode current collector. This is presumably because the deposited Li and Mg diffuse together, and the concentration difference acts as a driving force to form the Li-Mg layer or the Li-Mg-X layer.
[0080] The charging conditions for the second charging step are not particularly limited and may be appropriately selected depending on the thickness of the Mg layer and the thickness of the X layer, etc. [Example]
[0081] The present disclosure will be described in more detail below with reference to examples, but the invention of the present disclosure is not limited to these examples.
[0082] [1] Examples and Comparative Examples [1.1] Example 1 [1.1.1] Solid state battery LiNi 1 / 3 Co 1 / 3 Mn 1 / 3 A positive electrode mixture containing O2, a binder, and a solvent was applied to one side of an Al current collector foil to obtain a positive electrode layer. A mixture of a Li2S-P2S5-based material containing LiBr and LiI as a sulfide-based solid electrolyte, a binder, and a solvent was prepared. This mixture was applied to a resin film to produce a thin solid electrolyte film. The thin solid electrolyte film was applied at a density of 7 ton / cm. 2 The solid electrolyte layer was obtained by pressing the substrate at a pressure of 1000 kJ / cm. A Sn material was prepared as a raw material for the modification layer. Using the Sn material and a magnetron sputtering device, Sn was deposited on one surface of the solid electrolyte layer to form a 100 nm-thick Sn layer (i.e., modification layer). A Ni current collector foil was placed as a negative electrode current collector on the side of the solid electrolyte layer where the Sn layer was placed. A positive electrode layer was placed on the side opposite to the side where the Sn layer was placed so that the solid electrolyte layer and the positive electrode layer were in contact with each other. These were then cold isostatically pressed (CIP) at 4 ton / cm. 2 The solid-state battery had a positive electrode current collector, a positive electrode layer, a solid electrolyte layer, an Sn layer, and a negative electrode current collector, in this order.
[0083] [1.1.2] Negative electrode active material layer of a fully charged solid-state battery The charged solid-state battery was cross-sectionally processed, and the negative electrode active material layer was observed using a secondary electron microscope (SEM). The thickness of the layer that appeared to be a Li layer was confirmed. The type and concentration of contained metal species and the thickness of the Li-Sn layer were estimated from elemental mapping and spectral analysis of each layer using an energy dispersive X-ray analyzer (EDX). This revealed that the negative electrode active material layer of Example 1 had a Li layer and a Li-Sn layer in this order in the SE direction when the solid-state battery was fully charged.
[0084] [1.2] Example 2 [1.2.1] Solid state battery Except for changing the Sn material to an Al material, a solid battery was obtained in the same manner as in Example 1. The solid battery had a positive electrode current collector, a positive electrode layer, a solid electrolyte layer, an Al layer, and a negative electrode current collector in this order.
[0085] [1.2.2] Negative electrode active material layer of a fully charged solid-state battery The cross section of the charged solid state battery was processed, and the negative electrode active material layer was analyzed in the same manner as in Example 1. This revealed that the negative electrode active material layer of Example 2 had a Li layer and a Li-Al layer in this order in the SE direction when the solid state battery was fully charged.
[0086] [1.3] Example 3 [1.3.1] Solid state battery Except for changing the Sn material to a Zn material, a solid battery was obtained in the same manner as in Example 1. The solid battery had a positive electrode current collector, a positive electrode layer, a solid electrolyte layer, a Zn layer, and a negative electrode current collector in this order.
[0087] [1.3.2] Negative electrode active material layer of a fully charged solid-state battery The cross section of the charged solid state battery was processed, and the negative electrode active material layer was analyzed in the same manner as in Example 1. This revealed that the negative electrode active material layer of Example 3 had a Li layer and a Li-Zn layer in this order in the SE direction when the solid state battery was fully charged.
[0088] [1.4] Example 4 [1.4.1] Solid state battery LiNi 1 / 3 Co 1 / 3 Mn 1 / 3 A positive electrode mixture containing O2, a binder, and a solvent was applied to one side of an Al current collector foil to obtain a positive electrode layer. A mixture of a Li2S-P2S5-based material containing LiBr and LiI as a sulfide-based solid electrolyte, a binder, and a solvent was prepared. This mixture was applied to a resin film to produce a thin solid electrolyte film. The thin solid electrolyte film was applied at a density of 7 ton / cm. 2The solid electrolyte layer was obtained by pressing the substrate at a pressure of 1000 kJ / cm. A Sn material was prepared as a raw material for the modification layer. Using the Sn material and a magnetron sputtering device, Sn was deposited on one surface of the solid electrolyte layer to form a 100 nm thick Sn layer (ie, modification layer). Using an electron beam evaporation apparatus, Mg was deposited on one surface of a Ni foil serving as a negative electrode current collector to form a 1000 nm thick Mg layer. A Ni current collector foil with an Mg layer on one side was placed on the side of the solid electrolyte layer where the Sn layer was placed. A positive electrode layer was placed on the side opposite to the side where the Sn layer was placed so that the solid electrolyte layer and the positive electrode layer were in contact. These were cold isostatically pressed (CIP) at 4 ton / cm. 2 The solid-state battery was obtained by press-molding under a pressure of 1000 kJ / cm2. The solid-state battery had a positive electrode current collector, a positive electrode layer, a solid electrolyte layer, an Sn layer, an Mg layer, and a negative electrode current collector in this order.
[0089] [1.4.2] Negative electrode active material layer of a fully charged solid-state battery The cross section of the charged solid state battery was processed, and the negative electrode active material layer was analyzed in the same manner as in Example 1. This revealed that the negative electrode active material layer of Example 4 had a Li-Mg layer and a Li-Sn layer in this order in the SE direction when the solid state battery was fully charged.
[0090] [1.5] Example 5 [1.5.1] Solid state battery Except for changing the Sn material to an Al material, a solid-state battery was obtained in the same manner as in Example 4. The solid-state battery had a positive electrode current collector, a positive electrode layer, a solid electrolyte layer, an Al layer, an Mg layer, and a negative electrode current collector, in this order.
[0091] [1.5.2] Negative electrode active material layer of a fully charged solid-state battery The cross section of the charged solid state battery was processed, and the negative electrode active material layer was analyzed in the same manner as in Example 1. This revealed that the negative electrode active material layer of Example 5 had a Li-Mg-Al layer and a Li-Al layer in this order in the SE direction when the solid state battery was fully charged.
[0092] [1.6] Example 6 [1.6.1] Solid state battery Except for changing the Sn material to a Zn material, a solid-state battery was obtained in the same manner as in Example 4. The solid-state battery had a positive electrode current collector, a positive electrode layer, a solid electrolyte layer, a Zn layer, an Mg layer, and a negative electrode current collector, in this order.
[0093] [1.6.2] Negative electrode active material layer of a fully charged solid-state battery The cross section of the charged solid state battery was processed, and the negative electrode active material layer was analyzed in the same manner as in Example 1. This revealed that the negative electrode active material layer of Example 6 had a Li-Mg-Zn layer and a Li-Zn layer in this order in the SE direction when the solid state battery was fully charged.
[0094] [1.7] Comparative Example 1 [1.7.1] Solid state battery LiNi 1 / 3 Co 1 / 3 Mn 1 / 3 A positive electrode mixture containing O2, a binder, and a solvent was applied to one side of an Al current collector foil to obtain a positive electrode layer. A mixture of a Li2S-P2S5-based material containing LiBr and LiI as a sulfide-based solid electrolyte, a binder, and a solvent was prepared. This mixture was applied to a resin film to produce a thin solid electrolyte film. The thin solid electrolyte film was applied at a density of 7 ton / cm. 2 The solid electrolyte layer was obtained by pressing the substrate at a pressure of 1000 kJ / cm. A Ni current collector foil was placed on one side of the solid electrolyte layer as a negative electrode current collector. A positive electrode layer was placed on the side of the solid electrolyte layer opposite to the side on which the Ni current collector was placed so that the solid electrolyte layer and the positive electrode layer were in contact with each other. These were then cold isostatically pressed (CIP) at 4 ton / cm. 2 The solid-state battery had a positive electrode current collector, a positive electrode layer, a solid electrolyte layer, and a negative electrode current collector in this order.
[0095] [1.7.2] Negative electrode active material layer of a fully charged solid-state battery The solid state battery of Comparative Example 1 experienced a short circuit during charging, and therefore did not function as a battery.
[0096] [1.8] Comparative Example 2 [1.8.1] Solid state battery LiNi 1 / 3 Co 1 / 3 Mn 1 / 3 A positive electrode mixture containing O2, a binder, and a solvent was applied to one side of an Al current collector foil to obtain a positive electrode layer. A mixture of a Li2S-P2S5-based material containing LiBr and LiI as a sulfide-based solid electrolyte, a binder, and a solvent was prepared. This mixture was applied to a resin film to produce a thin solid electrolyte film. The thin solid electrolyte film was applied at a density of 7 ton / cm. 2 The solid electrolyte layer was obtained by pressing the substrate at a pressure of 1000 kJ / cm. Using an electron beam evaporation apparatus, Mg was deposited on one surface of a Ni foil serving as a negative electrode current collector to form an Mg layer having a thickness of 1000 nm. A Ni current collector foil having an Mg layer on one side was placed on one side of the solid electrolyte layer. A positive electrode layer was placed on the side of the solid electrolyte layer opposite to the side on which the Mg layer was placed so that the solid electrolyte layer and the positive electrode layer were in contact with each other. These were cold isostatically pressed (CIP) at 4 ton / cm. 2 The solid-state battery had a positive electrode current collector, a positive electrode layer, a solid electrolyte layer, an Mg layer, and a negative electrode current collector, in this order.
[0097] [1.8.2] Negative electrode active material layer of a fully charged solid-state battery The cross section of the charged solid state battery was processed, and the negative electrode active material layer was analyzed in the same manner as in Example 1. This revealed that the negative electrode active material layer of Comparative Example 2 had a Li-Mg layer and a Li layer in this order in the SE direction when the solid state battery was fully charged.
[0098] [1.9] Comparative Example 3 [1.9.1] Solid state battery LiNi 1 / 3 Co 1 / 3 Mn 1 / 3 A positive electrode mixture containing O2, a binder, and a solvent was applied to one side of an Al current collector foil to obtain a positive electrode layer. A mixture of a Li2S-P2S5-based material containing LiBr and LiI as a sulfide-based solid electrolyte, a binder, and a solvent was prepared. This mixture was applied to a resin film to produce a thin solid electrolyte film. The thin solid electrolyte film was applied at a density of 7 ton / cm. 2 The solid electrolyte layer was obtained by pressing the substrate at a pressure of 1000 kJ / cm. Using a magnetron sputtering device, Zn was deposited on one surface of a Ni foil serving as a negative electrode current collector to form a Zn layer having a thickness of 100 nm. A Ni current collector foil having a Zn layer on one side was placed on one side of the solid electrolyte layer. A positive electrode layer was placed on the side of the solid electrolyte layer opposite to the Zn layer so that the solid electrolyte layer and the positive electrode layer were in contact with each other. These were cold isostatically pressed (CIP) at 4 ton / cm. 2 The solid-state battery had a positive electrode current collector, a positive electrode layer, a solid electrolyte layer, a Zn layer, and a negative electrode current collector, in this order.
[0099] [1.9.2] Negative electrode active material layer of a fully charged solid-state battery The cross section of the charged solid state battery was processed, and the negative electrode active material layer was analyzed in the same manner as in Example 1. This revealed that the negative electrode active material layer of Comparative Example 3 had a Li-Zn layer and a Li layer in this order in the SE direction when the solid state battery was fully charged.
[0100] [2] Capacity retention measurement The capacity retention rate was calculated by the following formula (2) by comparing the initial discharge capacity with the discharge capacity after 20 repeated charge / discharge cycles. Equation (2): Capacity retention rate (%) = (discharge capacity after 20 cycles / discharge capacity after 1 cycle) × 100 The measurement results of the capacity retention rate are shown in Table 1. In Comparative Example 1, the capacity retention rate could not be measured due to the occurrence of a short circuit. The acceptable range for the capacity retention rate is 75.0% or more.
[0101] [Table 1]
[0102] In Table 1, "-" in "Negative electrode active material layer" indicates that there is no layer. In "Capacity retention rate," "-" indicates that the capacity retention rate could not be measured. "CC side" in "Uncharged" indicates a layer formed on the surface of the negative electrode current collector. "SE side" in "Uncharged" indicates a layer formed on the surface of the solid electrolyte layer. "CC side" in "Fully charged" indicates a layer of the negative electrode active material layer on the negative electrode current collector side. "SE side" in "Fully charged" indicates a layer of the negative electrode active material layer on the solid electrolyte layer side.
[0103] The negative electrode layer of Comparative Example 1 did not have a negative electrode active material layer, and therefore, the solid state battery of Comparative Example 1 experienced a short circuit during charging. The negative electrode active material layers of Comparative Examples 2 and 3 did not have a Li layer, a Li-Mg layer or a Li-Mg-X layer, and a Li-X layer arranged in this order in the SE direction when the solid state batteries were fully charged, and therefore the capacity retention rates of Comparative Examples 2 and 3 were less than 75.0%. From these results, it was found that the solid state batteries of Comparative Examples 1 to 3 did not have a high capacity retention rate.
[0104] The negative electrode active material layer of Example 1 has a Li layer and a Li—Sn layer in this order in the SE direction when the solid state battery is fully charged. The Li—Sn layer is formed on the surface of the solid electrolyte layer. The negative electrode active material layer of Example 2 has a Li layer and a Li—Al layer in this order in the SE direction when the solid state battery is fully charged. The Li—Al layer is formed on the surface of the solid electrolyte layer. The negative electrode active material layer of Example 3 has a Li layer and a Li-Zn layer in this order in the SE direction when the solid state battery is fully charged. The Li-Zn layer is formed on the surface of the solid electrolyte layer. The negative electrode active material layer of Example 4 has a Li—Mg layer and a Li—Sn layer in this order in the SE direction when the solid state battery is fully charged. The Li—Sn layer is formed on the surface of the solid electrolyte layer. The negative electrode active material layer of Example 5 has a Li—Mg—Al layer and a Li—Al layer in this order in the SE direction when the solid state battery is fully charged. The Li—Al layer is formed on the surface of the solid electrolyte layer. The negative electrode active material layer of Example 6 has a Li-Mg-Zn layer and a Li-Zn layer in this order in the SE direction when the solid state battery is fully charged. The Li-Zn layer is formed on the surface of the solid electrolyte layer. Therefore, the capacity retention rates of Examples 1 to 6 were 75.0% or more. From these results, it was found that the solid state batteries of Examples 1 to 6 were solid state batteries with high capacity retention rates.
Claims
1. A solid-state battery including a positive electrode layer, a solid electrolyte layer, and a negative electrode layer in this order, the negative electrode layer includes a negative electrode current collector and a negative electrode active material layer in this order in a direction from the negative electrode layer toward the solid electrolyte layer, when the solid-state battery is fully charged, the negative electrode active material layer has a Li layer, a Li—Mg layer or a Li—Mg—X layer, and a Li—X layer in this order in the direction; the Li layer, the Li—Mg layer, or the Li—Mg—X layer is in contact with the Li—X layer; X is at least one selected from the group consisting of Sn, Zn, and Al, A solid-state battery, wherein the Li—X layer is formed on the surface of the solid electrolyte layer.
2. 2. The solid state battery according to claim 1, wherein the negative electrode active material layer has the Li—Mg layer or the Li—Mg—X layer and the Li—X layer when the solid state battery is fully charged.
3. 3. The solid state battery according to claim 1, wherein the negative electrode active material layer has the Li—Mg layer and the Li—Sn layer in this order in the direction when the solid state battery is fully charged.
4. 3. The solid state battery according to claim 1, wherein the negative electrode active material layer has a Li—Mg—Zn layer and a Li—Zn layer in this order in the direction when the solid state battery is fully charged.
5. 3. The solid state battery according to claim 1, wherein the negative electrode active material layer has a Li—Mg—Al layer and a Li—Al layer in this order in the direction when the solid state battery is fully charged.
6. 2. The solid-state battery according to claim 1, wherein the negative electrode active material layer has a Li layer and a Li-X layer in this order in the direction when the solid-state battery is fully charged.
7. 7. The solid-state battery according to claim 6, wherein the negative electrode active material layer has a Li layer and a Li—Sn layer in this order in the direction when the solid-state battery is fully charged.
8. A method for manufacturing a solid-state battery having a positive electrode layer, a solid electrolyte layer, and a negative electrode layer in this order, comprising: forming an X layer on the surface of the solid electrolyte layer on the negative electrode layer side, the negative electrode layer includes a negative electrode current collector and a negative electrode active material layer in this order in a direction from the negative electrode layer toward the solid electrolyte layer, when the solid-state battery is fully charged, the negative electrode active material layer has a Li layer, a Li—Mg layer or a Li—Mg—X layer, and a Li—X layer in this order in the direction; the Li layer, the Li—Mg layer, or the Li—Mg—X layer is in contact with the Li—X layer; X is at least one selected from the group consisting of Sn, Zn, and Al, The Li—X layer is formed on the surface of the solid electrolyte layer.
9. the negative electrode layer has a negative electrode current collector, The method for producing a solid state battery according to claim 8 , further comprising the step of forming an Mg layer on a surface of the negative electrode current collector on the side facing the solid electrolyte layer.
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