Battery
The use of a porous carbon sheet as a current collector with controlled surface roughness and active material distribution in sheet-type batteries addresses internal resistance issues, enhancing conductivity and load characteristics.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-08-06
- Publication Date
- 2026-03-13
AI Technical Summary
Sheet-type batteries face issues with increased internal resistance due to conductive paste coatings being in contact with only one side of the active material layer, leading to deteriorated load characteristics.
The battery design incorporates a porous carbon sheet as a current collector, with the positive electrode active material layer partially or fully housed within its voids, and the surface roughness controlled to minimize short circuits and resistance, using a separator with larger voids.
This structure reduces internal resistance, improves electron and ion conductivity, and enhances load characteristics while maintaining energy density, preventing short circuits.
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Abstract
Description
[Technical Field]
[0001] This invention relates to a battery with excellent load characteristics. [Background technology]
[0002] Primary and secondary batteries, used as power sources for various devices, generally come in two forms: a wound electrode body, where the positive and negative electrodes are stacked with a separator in between and wound in a spiral shape, housed in a cylindrical metal container; or a flat, coin-shaped or button-shaped battery, where the stacked electrode body, where the positive and negative electrodes are stacked with a separator in between, is housed in a flat metal container.
[0003] However, in recent years, there has been a need for applications where the aforementioned metal containers are difficult to use, such as thin electronic devices. To meet these demands, sheet batteries using laminate film casings have also been developed.
[0004] As this type of battery, a so-called printed battery has been proposed in which a conductive paste is applied to the surface of a substrate (such as a plastic film) that constitutes the outer casing to serve as a current collector, and a layer containing an active material (active material layer) is formed on the conductive paste coating to constitute the electrodes, and the battery is assembled (Patent Documents 1-3).
[0005] However, in the case of a sheet-type battery using electrodes as described above, the conductive paste coating is in contact with only one side of the active material layer. Furthermore, because the coating contains an insulating binder to maintain the shape of the coating, it is difficult to reduce the resistance of the electrode responsible for current collection. This results in a problem where the internal resistance of the battery increases, leading to a deterioration of the load characteristics. [Prior art documents] [Patent Documents]
[0006] [Patent Document 1] Special Publication No. 2008-535194
Patent Document 2
Patent Document 3
Summary of the Invention
Problems to be Solved by the Invention
[0007] The present invention has been made in view of the above circumstances, and an object thereof is to provide a battery having excellent load characteristics.
Means for Solving the Problems
[0008] The battery of the present invention has a positive electrode, a negative electrode, and a separator disposed between the positive electrode and the negative electrode, and the positive electrode has a porous carbon sheet and a positive electrode active material layer containing a positive electrode active material held in voids of the porous carbon sheet.
[0009] Further, in the battery of the present invention, the positive electrode active material layer covers the surface of the porous carbon sheet on the separator side and a part thereof is held in the voids of the porous carbon sheet, and on the surface of the positive electrode active material layer on the separator side, the arithmetic mean roughness (Ra) is 10 μm or less, or the maximum height roughness (Rz) is 50 μm or less, which is a preferred embodiment.
Effects of the Invention
[0010] According to the present invention, a battery having excellent load characteristics can be provided.
Brief Description of the Drawings
[0011] [Figure 1] It is a plan view schematically showing an example of the battery of the present invention. [Figure 2] It is a sectional view taken along line I-I of FIG. 1. [Figure 3] It is a graph showing the results of measuring the gas generation amount of a zinc foil. [Figure 4]This graph shows the discharge characteristic evaluation results for a sheet-type air battery used for discharge characteristic evaluation. [Modes for carrying out the invention]
[0012] The battery of the present invention comprises a positive electrode having a porous carbon sheet and a positive electrode active material layer containing a positive electrode active material, and a separator. The positive electrode active material layer of the positive electrode contains the positive electrode active material held within the voids of the porous carbon sheet. That is, at least a portion of the positive electrode active material layer containing the positive electrode active material is formed within the voids of the porous carbon sheet and held by the porous carbon sheet.
[0013] Furthermore, the positive electrode active material layer of the positive electrode covers the separator-side surface of the porous carbon sheet, and a portion of it is held within the voids of the porous carbon sheet. It is desirable that the surface roughness of the separator-side is 10 μm or less in arithmetic mean roughness (Ra), or 50 μm or less in maximum height roughness (Rz).
[0014] In batteries, to reduce internal resistance and improve load characteristics, it is desirable to increase the electronic and ionic conductivity within the electrodes, as well as the ionic conductivity between the electrodes (positive and negative).
[0015] In the battery of the present invention, the type of separator is not limited, but for example, if a material with large voids, such as nonwoven fabric, is used as the separator, the ion permeability is higher compared to using a separator made of a resin microporous membrane or an ion-permeable film without voids (such as cellophane film) that is commonly used in batteries, and therefore the ion conductivity between electrodes can be further improved.
[0016] Furthermore, current collectors are often used in battery electrodes, and while metal foils are common as such current collectors, using a porous carbon sheet allows the active material to be held within the voids of the carbon sheet. Therefore, compared to electrodes with a layer containing the active material formed on the surface of metal foils, the distance between the active material and the current collector can be shortened, which is expected to improve the electron conductivity within the electrode.
[0017] Furthermore, porous carbon sheets are more difficult to thin than, for example, metal foil, and have a lower density. Therefore, when used as a current collector, the proportion of the current collector in the battery's internal volume tends to be larger than that of metal foil, which is disadvantageous in terms of improving the battery's energy density. However, by creating an electrode structure in which the active material is held within the voids of the porous carbon sheet, the overall density of the electrode can be increased, thus avoiding the problem of reduced battery energy density due to increased current collector thickness.
[0018] On the other hand, electrodes with a structure in which the entire active material is held within the voids of a porous carbon sheet have relatively large surface irregularities due to reasons such as the edges of the carbon (fibrous carbon, etc.) that make up the carbon sheet protruding from the surface. While there are no problems when such electrodes are combined with separators made of cellophane film, combining them with separators that have relatively large voids (such as nonwoven fabric separators) may cause a short circuit due to contact with the counter electrode.
[0019] In such a case, a part of the positive electrode active material layer containing the positive electrode active material is retained in the voids of the porous carbon sheet, and the surface on the separator side of the porous carbon sheet is covered with the remaining part of the positive electrode active material layer, and it is desirable to reduce its surface roughness to 10 μm or less in terms of arithmetic mean roughness (Ra) or 50 μm or less in terms of maximum height roughness (Rz). Thereby, even when a positive electrode using the porous carbon sheet is combined with a separator having large voids such as a nonwoven separator, it is possible to highly suppress the occurrence of short circuits and reduce the internal resistance, thereby achieving an improvement in load characteristics.
[0020] The battery of the present invention can take the form of a battery [alkaline battery (alkaline primary battery, alkaline secondary battery), manganese battery, air battery, etc.] having an electrolyte solution composed of an aqueous solution with water as a solvent, and can also take the form of a battery [non-aqueous electrolyte battery (non-aqueous electrolyte primary battery, non-aqueous electrolyte secondary battery)] having a non-aqueous electrolyte using a non-aqueous solvent as the electrolyte.
[0021] <Positive electrode> The positive electrode related to the battery has a porous carbon sheet and a positive electrode active material layer containing a positive electrode active material.
[0022] Examples of positive electrode active materials that can be used when the battery is an alkaline battery include silver oxide (such as silver(I) oxide, silver(II) oxide); manganese oxides such as manganese dioxide; nickel oxyhydroxide; composite oxides of silver and cobalt, nickel or bismuth; etc. Also, manganese oxides such as manganese dioxide are used as the positive electrode active material when the battery is a manganese battery.
[0023] Furthermore, examples of positive electrode active materials that can be used when the battery is a non-aqueous electrolyte battery include manganese dioxide; sulfides such as vanadium oxide, niobium oxide, titanium oxide, iron disulfide; graphite fluoride; Li x Mn3O6(0 < x < 2), Li x MnO2(0 < x < 1) and other lithium-containing manganese oxides, Li x Ti 5 / 3O4 (4 / 3 ≤ x < 7 / 3), spinel-structured composite oxides such as LiMn2O4 and those in which some of its elements are substituted with other elements, Li 1+x M 1 O2 (-0.1 < x < 0.1, M 1 : Co, Ni, Mn, Al, Mg, etc.), lithium-containing composite oxides with a layered structure represented by LiM 2 PO4 (M 2 : Co, Ni, Mn, Fe, etc.), various lithium-containing composite oxides such as olivine-type compounds represented by LiM
[0024] Examples of the lithium-containing composite oxides with a layered structure include lithium cobaltate such as LiCoO2 and LiNi 1-a Co a-b Al b O2 (0.1 ≤ a ≤ 0.3, 0.01 ≤ b ≤ 0.2), etc. In addition, oxides containing at least Co, Ni, and Mn (LiMn 1 / 3 Ni 1 / 3 Co 1 / 3 O2, LiMn 5 / 12 Ni 5 / 12 Co 1 / 6 O2, LiNi 3 / 5 Mn 1 / 5 Co 1 / 5 O2, etc.) can be exemplified.
[0025] From the perspective of facilitating the filling of the active material into the voids of the porous carbon sheet and reducing the surface roughness on the separator side of the positive electrode, that is, the surface roughness on the separator side of the positive electrode active material layer covering the surface of the porous carbon sheet, the average particle diameter of the positive electrode active material is preferably 30 μm or less, and more preferably 20 μm or less. Also, in order to facilitate dispersion when made into a paint (a composition for forming a positive electrode active material layer containing a solvent described later), the average particle diameter of the positive electrode active material is preferably 0.1 μm or more, and more preferably 1 μm or more. Note that the positive electrode active material may be primary particles or secondary particles in which primary particles are aggregated.
[0026] The average particle diameter of the positive electrode active material as used herein, and the particle size of the zinc-based particles described later, are values measured by dispersing these particles in a non-dissolving medium using a laser scattering particle size distribution analyzer (e.g., Horiba LA-920), and the average particle diameter is the particle size (D) at a cumulative frequency of 50% based on volume. 50 )
[0027] The positive electrode active material layer may contain only the positive electrode active material, or it may contain other components along with the positive electrode active material. Examples of such components include conductive additives and binders. In other words, the positive electrode active material layer can be formed by a positive electrode mixture containing the positive electrode active material along with conductive additives and / or binders.
[0028] Examples of conductive additives include natural graphite; carbon blacks such as acetylene black, Ketjen black, channel black, furnace black, lamp black, and thermal black; carbon fibers; conductive fibers such as metal fibers; fluorinated carbon; metal powders such as copper and nickel; and organic conductive materials such as polyphenylene derivatives.
[0029] Furthermore, the binder can be made from water-insoluble resins such as acrylic resins (polyacrylic acid esters, etc.), polyvinylidene fluoride (PVDF), polytetrafluoroethylene (PTFE), and styrene-butadiene rubber (SBR), as well as water-soluble resins such as polyacrylates (sodium polyacrylate, ammonium polyacrylate, etc.), carboxymethylcellulose (CMC), polyvinyl alcohol (PVA), and poly-N-vinylacetamide (PNVA).
[0030] However, if a binder is included in the voids of the porous carbon sheet that serves as the current collector along with the positive electrode active material, there is a risk that the effect of reducing the resistance value of the positive electrode will be reduced. Therefore, in the positive electrode active material layer, at least in the portion held within the voids of the porous carbon sheet, it is preferable to keep the binder content as low as possible, and it is even more preferable to omit the binder altogether.
[0031] As mentioned above, the porous carbon sheet used in the positive electrode functions as a current collector. However, if the electrolyte of the battery is an aqueous solution with a pH of 12 or less, especially an acidic aqueous solution, using a metal positive electrode current collector may lead to corrosion depending on the material. However, with a current collector made of a porous carbon sheet, this concern does not exist, allowing for a wider variety of configurations to be adopted in batteries.
[0032] As porous carbon sheets, porous sheets composed of fibrous carbon, such as carbon paper, carbon cloth, and carbon felt, can be preferably used. These sheets may have a single-layer structure, a multi-layer structure in which carbon paper is laminated to another carbon paper, another carbon cloth to another carbon felt, or a multi-layer structure in which two or more of the carbon paper, carbon cloth, and carbon felt are laminated. Furthermore, porous sheets composed of expanded graphite can also be used as porous carbon sheets.
[0033] The fiber diameter of the fibrous carbon constituting the sheet is preferably 2 to 30 μm, taking into consideration conductivity and other factors.
[0034] From the viewpoint of increasing the energy density of the battery, the thickness of the porous carbon sheet is preferably 0.5 mm or less. The lower limit of the thickness of the porous carbon sheet is usually 0.05 mm, considering ease of handling, availability, and ensuring sufficient battery reaction and current collection function at the positive electrode.
[0035] The porosity of the porous carbon sheet is preferably between 50% and 95% from the viewpoint of being able to properly hold the positive electrode active material layer and ensuring sufficient strength.
[0036] For porous carbon sheets, you can simply select and use commercially available products that meet the aforementioned physical properties.
[0037] In the positive electrode, the positive electrode active material layer is formed in part within the voids of a porous carbon sheet, and preferably has a portion formed on the outside of the carbon sheet, which preferably covers the surface of the porous carbon sheet.
[0038] Furthermore, the surface on the separator side of the positive electrode, that is, the surface on the side facing the negative electrode where a porous carbon sheet is covered with a positive electrode active material layer, preferably has an arithmetic mean roughness (Ra) of 10 μm or less, more preferably 5 μm or less, or a maximum height roughness (Rz) of 50 μm or less, more preferably 25 μm or less. This suppresses the occurrence of short circuits in the battery even when combined with a separator having large voids (for example, a nonwoven fabric separator). Note that the lower limit of the surface roughness on the separator side of the positive electrode also varies depending on the average particle size of the positive electrode active material, but is usually about 0.5 μm for arithmetic mean roughness (Ra) and about 3 μm for maximum height roughness (Rz).
[0039] In this specification, the surface roughness of the positive electrode separator side refers to the arithmetic mean roughness (Ra) or maximum height roughness (Rz) as defined in Japanese Industrial Standard (JIS) B 0601 (2013). Specifically, the arithmetic mean roughness (Ra) is obtained by observing four 90 μm × 90 μm fields of view at 50x magnification using a confocal laser microscope (Lasertec Corporation's "Real-time scanning laser microscope 1LM-21D"), measuring each field at 900 × 900 pixels, and arithmetically averaging the absolute values from the mean line of each point. The values for each field of view are then arithmetically averaged. The maximum height roughness (Rz) is obtained by arithmetically averaging the sum of the maximum peak height and maximum valley depth measured in the four fields of view under the same conditions as above.
[0040] From the viewpoint of increasing the amount of positive electrode active material that can be introduced into the battery as much as possible and thereby increasing the energy density of the battery, it is preferable that the entire void of the porous carbon sheet is filled with positive electrode active material. However, even if only a portion of the voids, for example, only a range of about 10% of the total thickness of the porous carbon sheet is filled with positive electrode active material, it is still possible to reduce internal resistance and improve load characteristics.
[0041] Furthermore, it is desirable that the portion of the positive electrode active material layer that covers the surface of the porous carbon sheet be formed in such a way that the carbon sheet fibers do not protrude from the positive electrode active material layer. While there are no particular limitations on the thickness of the portion covering the surface of the carbon sheet, if the portion covering the surface of the porous carbon sheet is too thick, there is a risk that the effect of improving the electron conductivity of the positive electrode by using the porous carbon sheet will be reduced. Therefore, from the viewpoint of further improving the electron conductivity of the positive electrode, the thickness of the portion of the positive electrode active material layer that covers the surface of the porous carbon sheet is preferably, for example, 50 μm or less, and more preferably 30 μm or less.
[0042] The positive electrode can be manufactured, for example, by applying a composition for forming a positive electrode active material layer (paste, slurry, etc.), which is a dispersion of positive electrode active material, conductive additives and binders as needed, in a solvent, to a porous carbon sheet, drying it to form a positive electrode active material layer, and then applying a press treatment as needed.
[0043] The solvent for the composition for forming the positive electrode active material layer may be water; an aqueous organic solvent such as ethanol; or a non-aqueous organic solvent such as N-methyl-2-pyrrolidone (NMP).
[0044] Furthermore, since porous carbon sheets are typically water-repellent, when using a composition for forming a positive electrode active material layer that uses an aqueous solvent such as water or ethanol, it may be difficult to penetrate into the voids even when applied to a porous carbon sheet.
[0045] Therefore, when used in a composition for forming a positive electrode active material layer that uses water or an aqueous solvent as a solvent, it is preferable to further incorporate a surfactant, for example, to increase its affinity with the porous carbon sheet. This makes it possible to penetrate the composition for forming the positive electrode active material layer more effectively into the voids of the porous carbon sheet.
[0046] To enhance affinity with porous carbon sheets, any of the following surfactants can be used in the composition for forming the positive electrode active material layer: cationic surfactants, anionic surfactants, nonionic surfactants, and amphoteric surfactants. Examples include fluorine-based surfactants such as polyoxyethylene nonylphenyl ether, polyoxyethylene octylphenyl ether, sulfonates of higher fatty acid esters, perfluoroalkyl carboxylic acids, perfluoroalkyl sulfonic acids, and oxyethylene perfluoroalkyl ethers.
[0047] Furthermore, the amount of surfactant in the composition for forming the positive electrode active material layer is preferably 0.3% by mass or more, from the viewpoint of increasing affinity with the porous carbon sheet and enabling better penetration into the voids. However, since the surfactant may remain in the formed positive electrode active material layer and act as a resistive component, it is preferable to use a small amount. Therefore, the amount of surfactant in the composition for forming the positive electrode active material layer is preferably, for example, 5% by mass or less.
[0048] The total content of all components (including surfactants, if present) in the composition for forming the positive electrode active material layer, excluding the solvent, is typically 20 to 50% by mass.
[0049] Furthermore, a cathode active material layer forming composition (A) containing a surfactant for penetration into the voids of the porous carbon sheet, and a cathode active material layer forming composition (B) without a surfactant for covering the surface of the porous carbon sheet, can also be prepared and used separately. In this case, although some surfactant may migrate from the portion of the cathode active material layer held in the voids of the porous carbon sheet during its formation, the surfactant is essentially absent from the portion covering the surface of the porous carbon sheet. Therefore, the total amount of surfactant acting as a resistive component in the cathode active material layer can be further reduced.
[0050] Composition (A) and composition (B) for forming a positive electrode active material layer may have the same component composition, except for the presence or absence of a surfactant, and the component composition may be changed as needed. For example, composition (A) for forming a positive electrode active material layer may be prepared using a positive electrode active material, a surfactant, and a solvent, while composition (B) for forming a positive electrode active material layer may be prepared by adding a conductive additive and / or a binder along with the positive electrode active material and a solvent. The amount of surfactant in composition (A) for forming a positive electrode active material layer may be 0.3% by mass or more and 5% by mass or less, as described above.
[0051] Furthermore, the composition (A) for forming a positive electrode active material layer to penetrate into the voids of the porous carbon sheet may be one type or two or more types with different component compositions as needed, and the composition (B) for forming a positive electrode active material layer to cover the surface of the porous carbon sheet may also be one type or two or more types with different component compositions as needed.
[0052] The amount of positive electrode active material in the positive electrode is determined by using a porous carbon sheet 1 cm² to ensure a certain minimum capacity. 2 The amount is preferably 5 mg or more per unit, and more preferably 10 mg or more. On the other hand, in order to increase the reactivity of the positive electrode active material, the amount of positive electrode active material in the positive electrode is such that the amount of the positive electrode active material is such that the amount of the porous carbon sheet is 1 cm 2The amount per unit is preferably 100 mg or less, and more preferably 50 mg or less. Furthermore, when conductive additives and binders are used together with the positive electrode active material, the proportion of these in the positive electrode mixture is preferably positive electrode active material: 80-98% by mass, conductive additive: 1.5-10% by mass, and binder: 0.5-10% by mass.
[0053] The positive electrode can be provided with a positive electrode terminal for connecting to external devices. The positive electrode terminal may be formed by attaching a terminal portion made of another material to a part of a porous carbon sheet that serves as the positive electrode current collector, but it is preferable to use a part of the porous carbon sheet that constitutes the positive electrode current collector as the positive electrode terminal. That is, when cutting the porous carbon sheet, it is possible to create a shape having a main body portion that holds the positive electrode active material layer and a terminal portion that constitutes the positive electrode terminal, and to manufacture the positive electrode by holding the positive electrode active material layer etc. only in the main body portion. By forming the positive electrode terminal in this way, it is possible to increase the productivity of the positive electrode, and consequently the productivity of the battery.
[0054] <Negative electrode> For alkaline batteries (primary or secondary batteries) or manganese batteries, zinc-based materials (a general term encompassing zinc materials and zinc alloy materials) are used for the negative electrode.
[0055] A specific example of a negative electrode containing zinc-based materials is a negative electrode containing zinc-based particles (this term is used to refer collectively to zinc particles and zinc alloy particles).
[0056] Examples of alloying components of zinc alloy particles include indium (e.g., content of 0.005 to 0.05% by mass), bismuth (e.g., content of 0.005 to 0.25% by mass, preferably 0.01% or more, and preferably 0.05% or less), and aluminum (e.g., content of 0.001 to 0.15% by mass).
[0057] Furthermore, considering the reduction of environmental impact when disposing of batteries, it is preferable that the zinc-based material used for the negative electrode has low content of mercury, cadmium, lead, and chromium. More preferably, the content is 0.1% or less by mass for mercury, 0.01% or less for cadmium, 0.1% or less for lead, and 0.1% or less for chromium.
[0058] As for the particle size of the zinc-based particles, for example, it is preferable that the proportion of particles with a particle size of 75 μm or less is 50% by mass or less, more preferably 30% by mass or less, and that the proportion of particles with a particle size of 100 to 200 μm is 50% by mass or more, more preferably 90% by mass or more.
[0059] In the case of a negative electrode containing zinc-based particles, a gelling agent (such as sodium polyacrylate or carboxymethylcellulose) and a binder may be added as needed, and a negative electrode agent (such as a gel-like negative electrode) can be used by adding an electrolyte to this. The amount of gelling agent in the negative electrode is preferably 0.5 to 1.5% by mass, and the amount of binder is preferably 0.5 to 3% by mass.
[0060] The electrolyte for the negative electrode containing zinc-based particles can be the same as the one injected into the battery.
[0061] The zinc-based particle content in the negative electrode is preferably, for example, 60% by mass or more, more preferably 65% by mass or more, and preferably 95% by mass or less, and more preferably 90% by mass or less.
[0062] The negative electrode containing zinc-based particles preferably also contains an indium compound. The indium compound in the negative electrode more effectively prevents the generation of hydrogen gas due to the corrosion reaction between the zinc-based particles and the electrolyte.
[0063] Examples of the aforementioned indium compounds include indium oxide and indium hydroxide.
[0064] The amount of indium compound used in the negative electrode is preferably 0.003 to 1 by mass ratio per 100 zinc-based particles.
[0065] Furthermore, a zinc-based sheet (such as zinc foil or zinc alloy foil) having the same composition as the zinc-based particles can also be used for the negative electrode. In the case of such a negative electrode, its thickness is preferably 10 μm or more, more preferably 20 μm or more, and from the viewpoint of flexibility, preferably 1000 μm or less, more preferably 500 μm or less, and particularly preferably 100 μm or less.
[0066] By using a zinc-based sheet for the negative electrode, the resistance value of the negative electrode can be lowered, thereby reducing the internal resistance of the battery and further improving its load characteristics.
[0067] Furthermore, in order to further suppress gas generation due to corrosion of the negative electrode during battery storage and to further improve the storage characteristics of the battery, it is preferable to use a zinc alloy foil containing Bi in a proportion of 0.01 to 0.25 mass% for the negative electrode.
[0068] From the viewpoint of ensuring a good gas generation suppression effect due to the inclusion of Bi, the proportion of Bi in the zinc alloy foil is preferably 0.01% by mass or more, and more preferably 0.02% by mass or more. However, if the Bi content is too high, the reaction resistance during discharge of the negative electrode increases, which can lower the operating voltage of the battery or conversely reduce the gas generation suppression effect. Therefore, the proportion of Bi in the zinc alloy foil is preferably 0.25% by mass or less, and more preferably 0.1% by mass or less.
[0069] Furthermore, in (in) has the effect of increasing the hardness of zinc alloy foil. If the in content is too high, the formed foil may become hard and brittle, which may impair the productivity of the negative electrode and the flexibility of the sheet-shaped battery. For this reason, zinc alloy foil should not contain in, or if it does, the proportion of in should be 0.04% by mass or less, and more preferably 0.02% by mass or less.
[0070] By using electrolytic zinc foil, which allows for easy adjustment of the crystal grain size to a suitable range (0.2 μm to 8 μm) and easy uniform distribution of additive elements, gas generation due to zinc corrosion within the battery can be further suppressed compared to when rolled zinc foil is used.
[0071] Furthermore, a current collector may be used in the negative electrode containing zinc-based material as needed. Examples of current collectors for a negative electrode containing zinc-based material include metal meshes, foils, expanded metal, and perforated metal made of nickel, copper, stainless steel, etc.; carbon sheets and meshes; and carbon paste coatings. The thickness of the current collector of the negative electrode is preferably 5 μm or more, more preferably 10 μm or more, and preferably 300 μm or less.
[0072] In the case of a non-aqueous electrolyte battery (primary or secondary battery), the negative electrode can be constructed in a manner in which a negative electrode mixture layer containing a negative electrode active material and a binder is formed on one or both sides of the current collector, or by using metal foil as the negative electrode active material as is, or by laminating the metal foil that serves as the negative electrode active material with the current collector.
[0073] Examples of negative electrode active materials for non-aqueous electrolyte primary batteries include metallic lithium and lithium alloys (lithium-aluminum alloys).
[0074] Examples of negative electrode active materials for non-aqueous electrolyte secondary batteries include metallic lithium, lithium alloys (lithium-aluminum alloys), as well as carbon materials such as graphite, pyrolytic carbons, cokes, glassy carbon, calcined organic polymer compounds, mesophase carbon microbeads, carbon fibers, and activated carbon; alloys containing elements that can be alloyed with lithium, such as Si and Sn; and oxides of Si and Sn.
[0075] In the case of a negative electrode having a negative electrode mixture layer, the same binders as those previously exemplified for the positive electrode active material layer can be used as the binder. Furthermore, the negative electrode mixture layer may contain a conductive additive, and in that case, the same conductive additives as those previously exemplified for the positive electrode active material layer can be used as the conductive additive.
[0076] In the case of a negative electrode having a negative electrode mixture layer and a current collector, for example, a negative electrode mixture-containing composition (slurry, paste, etc.) can be prepared by dispersing the negative electrode active material, binder, and optionally a conductive additive in water or an organic solvent such as NMP (the binder may be dissolved in the solvent), and this can be applied to a current collector, dried, and optionally subjected to a pressing process such as calendering.
[0077] The composition of the negative electrode mixture layer is preferably such that the negative electrode active material content is 70 to 99% by mass, and the binder content is preferably 1 to 30% by mass. Furthermore, when a conductive additive is used, the content of the conductive additive in the negative electrode mixture layer is preferably 1 to 20% by mass. In addition, the thickness of the negative electrode mixture layer is preferably 1 to 100 μm per side of the current collector.
[0078] For a negative electrode current collector having a negative electrode mixture layer, for example, foil, punched metal, expanded metal, or mesh made of copper, stainless steel, nickel, titanium, or alloys thereof; or carbon sheets or meshes may be used, but copper foil with a thickness of 5 μm to 30 μm is usually preferred.
[0079] Furthermore, for negative electrodes containing zinc-based materials for alkaline batteries and manganese batteries, and for negative electrodes for non-aqueous electrolyte batteries, if the battery uses a sheet-like casing (a casing made of resin film), carbon paste can be applied to the surface that is intended to become the inner surface of the sheet-like casing, or a metal layer constituting the sheet-like casing can be used. The thickness of the carbon paste layer is preferably 50 to 200 μm.
[0080] A negative electrode terminal can be formed on the negative electrode as needed. The negative electrode terminal can be formed, for example, by connecting a metal foil (plate) or wire, which can constitute the negative electrode current collector, to the negative electrode current collector via a lead body, or by directly connecting it to the negative electrode current collector. When the negative electrode terminal is a foil (plate), its thickness is preferably 20 μm to 500 μm. When the negative electrode terminal is a wire, its diameter is preferably 50 μm to 1500 μm.
[0081] Furthermore, in the case of a negative electrode composed of the aforementioned zinc-based sheet, a portion of this sheet can be used as a lead for the negative electrode and connected to the negative electrode terminal, or a portion of this sheet can also serve as the negative electrode terminal.
[0082] <Separator> A separator made of nonwoven fabric is preferably used as the separator interposed between the positive and negative electrodes. Examples of nonwoven fabrics that make up the separator include nonwoven fabrics mainly composed of vinylon and rayon, vinylon-rayon nonwoven fabrics (vinylon-rayon blended paper), polyamide nonwoven fabrics, polyolefin-rayon nonwoven fabrics, and polyolefin (polyethylene, polypropylene, ethylene-propylene copolymer, polymethylpentene, etc.) nonwoven fabrics. In addition, vinylon paper, vinylon-linter pulp paper, vinylon-mercerized pulp paper, cellophane graft film, and microporous polyolefin film (microporous polyethylene film, microporous polypropylene film, etc.) can also be used. These separators may have their surfaces treated to make them hydrophilic in order to improve their wettability with the electrolyte (electrolyte).
[0083] The thickness of the separator is preferably, for example, 10 to 500 μm, preferably 10 to 50 μm in the case of a microporous film, and preferably 20 to 500 μm, and more preferably 50 to 500 μm, in the case of a nonwoven fabric.
[0084] Furthermore, when using a porous separator, the porosity is preferably 40 to 90% by volume.
[0085] In this specification, the porosity P(%) of the separator can be calculated by determining the sum for each component i using the following equation (1), based on the thickness of the separator, the mass per unit area, and the density of the constituent components.
[0086] P = {1-(m / t) / (Σa i ·ρ i )} × 100 (1)
[0087] Here, in equation (1) above, a i : The ratio of component i when the total mass is set to 1, ρ i : Density of component i (g / cm³) 3 ), m: Mass per unit area of the separator (g / cm²) 2 ), t: thickness of the separator (cm). The mass m per unit area of the separator is calculated by measuring the mass of a 20cm square piece of separator using an electronic balance, and then measuring the mass per 1cm 2 This is calculated as the mass per unit, and the separator thickness t was obtained by measuring the thickness at 10 random points using a micrometer and averaging the results.
[0088] <Electrolytes> If the battery is an alkaline or manganese battery, an aqueous solution of the electrolyte salt is used as the electrolyte.
[0089] When a battery is an alkaline battery, an alkaline electrolyte is used as the electrolyte. The alkaline electrolyte can be an alkaline aqueous solution consisting of an aqueous solution of an alkali metal hydroxide such as potassium hydroxide, sodium hydroxide, or lithium hydroxide, or a solution to which zinc oxide has been added. The concentration of the alkali metal hydroxide in the alkaline electrolyte is preferably 28-38% by mass in the case of potassium hydroxide, and preferably 1.0-4.0% by mass when using zinc oxide.
[0090] When the battery is a manganese battery, an aqueous solution with a pH in the range of 3 to 12 is used as the electrolyte. To prevent corrosion of the negative electrode active material, the pH of the aqueous solution is preferably 4 or higher, and more preferably 5 or higher. Examples of the aforementioned electrolyte salts include chlorides such as sodium chloride, potassium chloride, magnesium chloride, calcium chloride, ammonium chloride, and zinc chloride; hydroxides of alkali metals and alkaline earth metals (sodium hydroxide, potassium hydroxide, magnesium hydroxide, etc.), acetates (sodium acetate, potassium acetate, magnesium acetate, etc.), nitrates (sodium nitrate, potassium nitrate, magnesium nitrate, etc.), sulfates (sodium sulfate, potassium sulfate, magnesium sulfate, etc.), phosphates (sodium phosphate, potassium phosphate, magnesium phosphate, etc.), borates (sodium borate, potassium borate, magnesium borate, etc.), citrates (sodium citrate, potassium citrate, magnesium citrate, etc.), glutamates (sodium glutamate, potassium glutamate, magnesium glutamate, etc.); alkali metal bicarbonates (sodium bicarbonate, potassium bicarbonate, etc.); alkali metal percarbonates (sodium percarbonate, potassium percarbonate, etc.); halogen-containing compounds such as fluorides; polycarboxylic acids; and so on. The electrolyte only needs to contain one or more of these electrolyte salts. Among these, it is preferable to use an aqueous solution of zinc chloride as the electrolyte, and the concentration of zinc chloride is preferably 10 to 40% by mass.
[0091] Furthermore, when a zinc-based sheet is used as the negative electrode, there is a risk that the negative electrode may break due to corrosion by the aqueous electrolyte, preventing sufficient capacity from being drawn out. However, if a thickening agent is added to the aqueous electrolyte, and more preferably a gel-like substance (gel-like electrolyte), the occurrence of such problems can be suppressed. Examples of thickening agents that can be added to the electrolyte include cellulose derivatives such as carboxymethylcellulose (CMC) and carboxyethylcellulose (CEC); polyalkylene glycols such as polyethylene glycol (PEG) (however, those with a molecular weight of 1000 or more are preferable, and those with a molecular weight of 10000 or more are more preferable); polyvinylpyrrolidone; polyvinyl acetate; starch; guar gum; xanthan gum; sodium alginate; hyaluronic acid; gelatin; polyacrylic acid; and various other synthetic or natural polymers. In addition, when using a thickening agent among the examples above that has a functional group consisting of a carboxyl group or a salt thereof (-COOH, -COONa, etc.) in its molecule, it is also preferable to add a polyvalent metal salt that acts as a gelation accelerator to the electrolyte. The amount of thickener in the electrolyte is preferably 0.1 to 5% by mass. Furthermore, when a gelling accelerator is used, it is preferable that the proportion of the gelling accelerator is 1 to 30 by mass, with the proportion of the thickener being 100.
[0092] In the case of a non-aqueous electrolyte battery, the electrolyte used is a solution (non-aqueous electrolyte) in which a lithium salt is dissolved in a non-aqueous solvent. Examples of lithium salts in this case include inorganic lithium salts such as LiClO4, LiPF6, LiBF4, LiAsF6, LiSbF6; LiCF3SO3, LiCF3CO2, Li2C2F4(SO3)2, LiN(CF3SO2)2, LiC(CF3SO2)3, LiC n F 2n+1 Examples include organolithium salts such as SO3 (n≧2) and LiN(RfOSO2)2 (where Rf is a fluoroalkyl group).
[0093] Furthermore, examples of non-aqueous solvents for non-aqueous electrolytes include cyclic carbonates such as ethylene carbonate, propylene carbonate, butylene carbonate, and vinylene carbonate; linear carbonates such as dimethyl carbonate, diethyl carbonate, and methyl ethyl carbonate; linear esters such as methyl propionate; cyclic esters such as γ-butyrolactone; linear ethers such as dimethoxyethane, diethyl ether, 1,3-dioxolane, diglyme, triglime, and tetraglime; cyclic ethers such as dioxane, tetrahydrofuran, and 2-methyltetrahydrofuran; nitriles such as acetonitrile, propionitrile, and methoxypropionitrile; and sulfite esters such as ethylene glycol sulfite. These can be used individually or in combination of two or more. In order to obtain a battery with better characteristics, it is desirable to use a combination that can obtain high conductivity, such as a mixed solvent of ethylene carbonate and linear carbonate. Furthermore, additives such as vinylene carbonates, 1,3-propanesalton, diphenyl disulfide, cyclohexylbenzene, biphenyl, fluorobenzene, and t-butylbenzene may be added to these non-aqueous electrolytes as appropriate to improve properties such as safety, charge-discharge cycleability, and high-temperature storage capacity.
[0094] The concentration of the lithium salt in the non-aqueous electrolyte is preferably 0.5 to 1.5 mol / l, and more preferably 0.9 to 1.25 mol / l.
[0095] Furthermore, aqueous electrolytes and non-aqueous electrolytes may be made into a gel (gel-like electrolyte) using a gelling agent such as a known polymer.
[0096] <Battery type, etc.> Figures 1 and 2 show schematic diagrams illustrating an example of the battery of the present invention. Figure 1 is a plan view of the battery, and Figure 2 is a cross-sectional view taken along line II of Figure 1.
[0097] The battery 1 shown in Figures 1 and 2 is an example of a sheet-type battery in which an electrode body, in which a positive electrode 10 and a negative electrode 20 are stacked with a separator 30 in between, and an electrolyte (not shown) are housed within a laminate film casing 40 made of two metal laminate films. The laminate film casing 40 is sealed by heat-sealing the upper and lower metal laminate films at its outer periphery.
[0098] Note that in Figure 2, in order to avoid making the drawing complicated, the individual layers constituting the laminate film outer casing 40, as well as the individual layers of the positive electrode 10 and the negative electrode 20, are not shown separately.
[0099] The positive electrode 10 is connected to the positive terminal 11 within the battery 1, and although not shown in the diagram, the negative electrode 20 is also connected to the negative terminal 21 within the battery 1. The positive terminal 11 and the negative terminal 21 have one end exposed to the outside of the laminate film casing 40 so that they can be connected to external devices.
[0100] There are no particular limitations on the form of the battery of the present invention. In addition to the sheet-like (laminated) form shown in Figure 1, it can take various forms such as flat (including coin-shaped and button-shaped) and cylindrical (cylindrical and rectangular (rectangular)) shapes. Furthermore, as the outer casing (battery case) that houses the negative electrode, positive electrode, separator, and electrolyte, a resin film can be used, or a combination of a metal can with an opening (outer can) and a lid (sealed can) can be used.
[0101] Examples of resin films that make up the exterior include nylon film (such as nylon 66 film) and polyester film (such as polyethylene terephthalate (PET) film).
[0102] A sheet-like exterior body made of a resin film may have a resin layer and a heat-sealable resin layer laminated together to facilitate sealing by heat welding. Examples of heat-sealable resins that make up the heat-sealable resin layer include modified polyolefin film (such as modified polyolefin ionomer film), polypropylene and its copolymers, etc. The thickness of the heat-sealable resin layer is preferably 20 to 200 μm.
[0103] Furthermore, a metal layer may be laminated onto the resin film. The metal layer can be made of aluminum film (aluminum foil, including aluminum alloy foil), stainless steel film (stainless steel foil), etc. The thickness of the metal layer is preferably 10 to 150 μm.
[0104] Furthermore, it is preferable that the resin film constituting the sheet-like exterior body has an electrically insulating water vapor barrier layer. In this case, the electrically insulating resin film may be a single-layer structure in which the electrically insulating resin film itself also acts as the water vapor barrier layer, or it may be a multilayer structure having multiple layers of electrically insulating resin film in which at least one of the layers acts as the water vapor barrier layer, or it may be a multilayer structure having an electrically insulating water vapor barrier layer on the surface of a base layer made of resin film.
[0105] Among such resin films, those in which a water vapor barrier layer, composed of at least an inorganic oxide, is formed on the surface of a base layer made of resin film are preferably used.
[0106] Examples of inorganic oxides that constitute the water vapor barrier layer include aluminum oxide and silicon oxide. A water vapor barrier layer composed of silicon oxide tends to have a higher ability to suppress the permeation of moisture from the electrolyte in the battery compared to a water vapor barrier layer composed of aluminum oxide. Therefore, it is more preferable to use silicon oxide as the inorganic oxide that constitutes the water vapor barrier layer.
[0107] A water vapor barrier layer composed of inorganic oxides can be formed on the surface of a substrate layer, for example, by a vapor deposition method. The thickness of the water vapor barrier layer is preferably 10 to 300 nm.
[0108] In addition to the aforementioned nylon film and polyester film, the base layer of the resin film having a water vapor barrier layer can also be made of polyolefin film, polyimide film, polycarbonate film, etc. The thickness of the base layer is preferably 5 to 100 μm.
[0109] In the case of a resin film having a water vapor barrier layer and a substrate layer, a protective layer for protecting the water vapor barrier layer may be formed on the surface of the water vapor barrier layer (the side opposite to the substrate layer).
[0110] Furthermore, in the case of a resin film having a water vapor barrier layer and a substrate layer, the above-mentioned heat-sealing resin It is acceptable for there to be further layers of fat.
[0111] The overall thickness of the sheet-like outer casing is preferably 10 μm or more, from the viewpoint of providing sufficient strength to the sheet-like battery, and preferably 200 μm or less, from the viewpoint of suppressing an increase in the thickness of the sheet-like battery and a decrease in energy density.
[0112] A sheet-like (laminated) battery can be manufactured by overlapping two sheet-like outer casings or by folding a single sheet-like outer casing and sealing the edges together. Furthermore, flat or cylindrical batteries can be manufactured by crimping the outer casing and sealing casing together with a gasket, or by welding the outer casing and sealing casing together.
[0113] Furthermore, when using an outer casing with a crimped seal, the gasket material interposed between the outer casing and the sealed casing can be made of polypropylene (PP), nylon, etc. In addition, if particularly high heat resistance is required due to the battery's application, fluororesins such as tetrafluoroethylene-perfluoroalkoxyethylene copolymer (PFA), and heat-resistant resins with a melting point or thermal decomposition temperature of 200°C or higher, such as polyphenylene ether (PEE), polysulfone (PSF), polyarylate (PAR), polyethersulfone (PES), PPS, and PEEK, can also be used. Moreover, when the battery is applied to an application requiring heat resistance, a glass hermetic seal can be used for the seal. [Examples]
[0114] The present invention will be described in detail below based on examples. However, the following examples are not intended to limit the present invention.
[0115] Example 1 <Positive electrode> Composition (B) for forming the positive electrode active material layer was prepared by mixing 87.5 parts by mass of electrolytic manganese dioxide [Tosoh Corporation "SP-A" (average particle size 0.5 μm)], 10 parts by mass of graphite [Nippon Graphite Co., Ltd. "SP-20" (average particle size 30 μm)], 2.5 parts by mass of ammonium polyacrylate, and 150 parts by mass of water.
[0116] On porous carbon paper [thickness: 0.15 mm, porosity: 75%, air permeability (Gurley): 70 seconds / 100 ml], the composition (B) for forming the positive electrode active material layer was applied, with a coating amount of 18 mg / cm² after drying. 2 By applying a stripe coating in this manner and drying it, a carbon paper was obtained having a region where the surface is covered with a positive electrode active material layer (hereinafter referred to as "region A") and a region where only carbon paper is present and no positive electrode active material layer is formed (hereinafter referred to as "region B"). This was punched out into a shape having a main body portion that holds the positive electrode active material, consisting of region A measuring 30 mm x 30 mm, and a positive electrode terminal consisting of region B measuring 10 mm x 20 mm, thereby fabricating a positive electrode with a theoretical capacity of 30 mAh.
[0117] The resulting positive electrode has a density of 471 mg / cm³. 3 The surface roughness of the surface coated with the positive electrode active material layer was 2.1 μm. The composition (B) for forming the positive electrode active material layer penetrated only the surface layer in the thickness direction of the carbon paper, and the positive electrode active material layer was mostly formed on the carbon paper, with a portion formed within the voids of the carbon paper.
[0118] <Negative electrode> An electrolytic zinc foil (thickness: 0.03 mm) made of a zinc alloy containing 0.05 mass% Bi as an additive element and no In was punched out into a shape having a main body of 30 mm x 30 m and a negative electrode terminal of 10 mm x 20 mm to produce a negative electrode.
[0119] <Electrolyte> The electrolyte used was an aqueous solution (pH=5.1) containing zinc chloride (concentration: 20% by mass) and ammonium chloride (concentration: 5% by mass).
[0120] <Separator> The separator is made of PP nonwoven fabric film (thickness: 50 μm, basis weight: 12 g / m²). 2 ) was used.
[0121] <Sheet-like exterior material> A sheet-like outer casing was created using two 50mm x 50mm aluminum laminate films (thickness: 65μm) each, each having a polyethylene terephthalate film on the outer surface of the aluminum foil and a PP film as a heat-sealable resin layer on the inner surface.
[0122] <Battery assembly> The positive electrode, the separator, and the negative electrode were layered in order on one aluminum laminate film, and then the other aluminum laminate film was placed on top. Next, the three sides of the two aluminum laminate films were heat-sealed together to form a bag, and then 0.1 ml of the electrolyte was injected through the opening. Finally, the opening was heat-sealed to create a sheet-type battery.
[0123] Example 2 Composition (A) for forming a positive electrode active material layer was prepared by mixing 87.5 parts by mass of electrolytic manganese dioxide [Tosoh Corporation "SP-A" (average particle size 0.5 μm)], 10 parts by mass of graphite [Nippon Graphite Co., Ltd. "SP-20" (average particle size 30 μm)], 2.5 parts by mass of ammonium polyacrylate, 1 part by mass of a fluorine-based surfactant [AGC Seimi Chemical Co., Ltd. "Surflon S-242 (product name)"], and 150 parts by mass of water.
[0124] On the same porous carbon paper used in Example 1, the cathode active material layer forming composition (A) was applied in a dry coating amount of 6.7 mg / cm². 2 The carbon paper is coated in stripes and dried to form a positive electrode active material layer within the voids of the porous carbon paper. Subsequently, the same positive electrode active material layer forming composition (B) prepared in Example 1 is applied to the surface on which the positive electrode active material layer forming composition (A) was applied, with a coating amount of 8.3 mg / cm² after drying. 2 A positive electrode with a theoretical capacity of 30 mAh was obtained in the same manner as in Example 1, except that the stripe coating was applied and dried, and the surface was covered with a layer derived from the positive electrode active material layer forming composition (B).
[0125] The resulting positive electrode has a density of 534 mg / cm³. 3 The surface roughness of the surface coated with the positive electrode active material layer was 2.1 μm. Furthermore, the composition (A) for forming the positive electrode active material layer penetrated throughout the voids of the porous carbon paper, and the positive electrode active material layer was formed.
[0126] Then, a sheet-type battery was fabricated in the same manner as in Example 1, except that this positive electrode was used.
[0127] Example 3 A positive electrode with a theoretical capacity of 30 mAh was obtained in the same manner as in Example 2, except that the electrolytic manganese dioxide used in positive electrode active material layer formation composition (A) and positive electrode active material layer formation composition (B) had an average particle size of 8 μm.
[0128] The resulting positive electrode has a density of 643 mg / cm³. 3 The surface roughness of the surface coated with the positive electrode active material layer was 2.1 μm. Furthermore, the composition (A) for forming the positive electrode active material layer penetrated throughout the voids of the porous carbon paper, and the positive electrode active material layer was formed.
[0129] Then, a sheet-type battery was fabricated in the same manner as in Example 1, except that this positive electrode was used.
[0130] Example 4 A positive electrode with a theoretical capacity of 30 mAh was obtained in the same manner as in Example 2, except that the electrolytic manganese dioxide used in positive electrode active material layer formation composition (A) and positive electrode active material layer formation composition (B) had an average particle size of 43 μm.
[0131] The resulting positive electrode has a density of 446 mg / cm³. 3 The surface roughness of the surface coated with the positive electrode active material layer was 6 μm. Furthermore, the composition (A) for forming the positive electrode active material layer penetrated throughout the voids of the porous carbon paper, forming the positive electrode active material layer.
[0132] Then, a sheet-type battery was fabricated in the same manner as in Example 1, except that this positive electrode was used.
[0133] Comparative Example 1 <Positive electrode> In Example 1, a carbon conductive paste was screen-printed onto the PP film side of the same aluminum laminate film (size: 50mm x 50mm) used to form the sheet-like exterior, so that the thickness after drying was 0.05mm, to form a current collector layer. The current collector layer was formed with a main body measuring 30mm x 30mm on which a positive electrode mixture layer was formed on its surface, and a positive electrode terminal measuring 10mm x 10mm.
[0134] Subsequently, a positive electrode active material layer was formed on the surface of the main body of the current collector layer by screen printing the same positive electrode active material layer formation composition (B) used in Example 1, such that the thickness after drying was 0.150 mm, thereby producing a positive electrode with a theoretical capacity of 30 mAh.
[0135] Furthermore, the aluminum laminate film had a 10mm x 5mm cutout made in advance to expose a portion of the opposing negative terminal.
[0136] <Negative electrode> A negative electrode mixture-containing composition was prepared by mixing 70 parts by mass of zinc alloy particles (average particle size 30 μm) containing In: 500 ppm (by mass; the same applies to the content of added elements below), Bi: 400 ppm, and Al: 10 ppm as additive elements, 20 parts by mass of graphite "SP-20" (average particle size 30 μm) manufactured by Nippon Graphite Co., Ltd., the same as that used for the positive electrode, 10 parts by mass of ammonium polyacrylate, and 150 parts by mass of water.
[0137] In Example 1, a carbon conductive paste was screen-printed onto the PP film side of the same aluminum laminate film (size: 50mm x 50mm) used to form the sheet-like exterior, so that the thickness after drying was 0.05mm, to form a current collector layer. The current collector layer was formed with a main body measuring 30mm x 30mm on which a layer containing the negative electrode active material was formed on its surface, and a negative electrode terminal measuring 10mm x 10mm.
[0138] Subsequently, the negative electrode was fabricated by forming a negative electrode mixture layer on the surface of the main body of the current collector layer by screen printing the negative electrode mixture-containing composition so that its thickness after drying was 0.125 mm.
[0139] Furthermore, the aluminum laminate film had a 10mm x 5mm cutout made in advance to expose a portion of the opposing positive terminal.
[0140] <Battery assembly> An aluminum laminate film having a current collector layer and a positive electrode active material layer was placed on the side with the positive electrode active material layer, and the same separator used in Example 1 was placed on top of it. Then, an aluminum laminate film having a current collector layer and a negative electrode mixture layer was placed on top of the separator, with the side with the negative electrode mixture layer facing the separator. The positions of each component were adjusted so that the end of the negative electrode terminal was exposed through a notch formed in the positive electrode aluminum laminate film, and the end of the positive electrode terminal was exposed through a notch formed in the negative electrode aluminum laminate film. Next, the three sides of the two aluminum laminate films were heat-sealed together to form a bag, and then 0.3 ml of the same electrolyte used in Example 1 was injected through the opening, and the opening was heat-sealed to create a sheet-type battery.
[0141] Example 5 A sheet-type battery was fabricated in the same manner as in Example 1, except that the separator was changed to a laminated film (YG2152, manufactured by Yuasa Membrane Systems Co., Ltd.) consisting of a cellophane film with a thickness of 20 μm and a graft film with a thickness of 30 μm composed of a graft copolymer having a polyethylene main chain in which acrylic acid is graft copolymerized.
[0142] Example 6 A positive electrode was fabricated in the same manner as in Example 2, except that a positive electrode active material layer derived from composition (A) for positive electrode active material layer formation was formed in the voids of porous carbon paper, and the surface was not coated with a positive electrode active material layer derived from composition (B) for positive electrode active material layer formation.
[0143] The resulting positive electrode has a density of 232 mg / cm³. 3 The surface roughness of the surface coated with the positive electrode active material layer was 11.4 μm, and the carbon paper fibers were exposed on the surface.
[0144] Then, a sheet-type battery was fabricated in the same manner as in Example 1, except that this positive electrode was used.
[0145] The following evaluations were performed on the sheet-type batteries of the examples and comparative examples.
[0146] (Short-circuit occurrence rate) For 10 sheet-type batteries each in the examples and comparative examples, the open-circuit voltage was measured 24 hours after assembly. The presence or absence of a short circuit was determined based on this value, and the occurrence rate was calculated.
[0147] (Measurement of internal resistance) The internal resistance of each sheet-shaped battery in the examples and comparative examples was measured by applying a 1 kHz AC voltage at room temperature. Batteries with low internal resistance in this evaluation are judged to have superior load characteristics because the voltage drop during discharge is small.
[0148] (Measurement of discharge utilization rate) Assuming the design capacity of the positive electrode is C (mAh), each battery was discharged at a current value that is 1 / 500 C (mA). The discharge capacity until the battery voltage dropped to 2V was measured, and the average value for 10 batteries was calculated. The ratio of the discharge capacity (average value) to the design capacity of the positive electrode, C, was also calculated as the discharge utilization rate.
[0149] Table 1 shows the configuration of the positive electrode and separator in the sheet-type batteries of the examples and comparative examples, and Table 2 shows the evaluation results for each.
[0150] [Table 1]
[0151] In Table 1, a "○" in the "Coating of Current Collector Surface" column indicates that the surface of the positive electrode current collector is coated with a positive electrode active material layer, while a "×" indicates that it is not coated. Furthermore, "Cellophane Film / Graft Film" in the "Separator" column refers to a laminated film of cellophane film and graft film.
[0152] [Table 2]
[0153] In Table 2, the "-" in the columns for internal resistance and discharge utilization rate indicates that measurement was not possible because all batteries were short-circuited.
[0154] As shown in Tables 1 and 2, the sheet batteries of Examples 1 to 5, which used a positive electrode with an appropriate surface roughness achieved by covering the surface of porous carbon paper with a positive electrode active material layer, exhibited low internal resistance and excellent load characteristics. Furthermore, the batteries of Examples 1 to 5 did not exhibit short circuits and had high discharge utilization rates. In particular, the sheet batteries of Examples 1 to 4, which used a nonwoven fabric separator, were able to further reduce internal resistance, improve load characteristics, and increase discharge utilization rates compared to the sheet battery of Example 5, which used a laminated film of cellophane film and graft film as the separator. In addition, the batteries of Examples 1 to 3, which used a positive electrode with a more suitable average particle size, resulting in a smaller surface roughness, were able to achieve higher discharge utilization rates compared to the battery of Example 4, which used a positive electrode with a larger average particle size, resulting in a relatively larger surface roughness.
[0155] Furthermore, in the batteries of Examples 2 to 4, in which the positive electrode active material was filled throughout the voids using a composition (A) for forming a positive electrode active material layer with high permeability to porous carbon paper, the carbon paper functioned better as a current collector and internal resistance was reduced compared to the battery of Example 1, in which the positive electrode active material was filled only in a portion of the voids of the porous carbon paper.
[0156] In contrast, the battery in Comparative Example 1, which used a carbon conductive paste layer as the current collecting layer for the positive electrode instead of porous carbon paper, had high internal resistance, poor load characteristics, and a low discharge utilization rate.
[0157] In Example 6, the battery used a positive electrode with a rougher surface because the surface of the porous carbon paper was not covered with a positive electrode active material layer. As a result, the edges of the carbon constituting the carbon sheet penetrated the nonwoven fabric separator, causing all the manufactured batteries to short-circuit. However, this problem can be prevented by using a laminated film of cellophane film and graft film as the separator, as used in Example 5, or by increasing the thickness of the separator. For example, if the same separator as in Example 5 is used, a battery with an internal resistance of approximately 100 Ω can be constructed, and a discharge utilization rate similar to that of Example 5 can be obtained.
[0158] (Evaluation of zinc foil) Electrolytic zinc foil with a thickness of 50 μm having the composition shown in Table 3, and rolled zinc foil with a thickness of 50 μm having the composition shown in Table 4 were prepared, and flexibility evaluation tests and gas generation amount measurement tests were performed. Note that both electrolytic zinc foil and rolled zinc foil contain unavoidable impurities in addition to Zn and the elements shown in the tables.
[0159] [Table 3]
[0160] [Table 4]
[0161] [Flexibility evaluation test] Electrolytic zinc foil C, electrolytic zinc foil D, rolled zinc foil K, rolled zinc foil N, and rolled zinc foil O were each cut to a size of 30 mm x 15 mm to prepare evaluation samples. The evaluation samples were folded 90 degrees in the longitudinal direction, and the presence or absence of cracks in the center was checked.
[0162] Next, the evaluation sample was further bent so that both sides were in contact (180-degree bend), and the presence or absence of cracks in the central part was checked.
[0163] Furthermore, the evaluation sample was folded to the opposite side so that both sides were in contact (folded 180 degrees in opposite directions), and the presence or absence of cracks in the central part was checked.
[0164] No cracks occurred in electrolytic zinc foil C, rolled zinc foil K, and rolled zinc foil O during any of the bending tests. However, electrolytic zinc foil D, which contains 0.08 mass% (800 ppm) of In, fractured at a 90-degree bend, and rolled zinc foil N, which contains 0.1 mass% (1000 ppm) of In, fractured when bent 180 degrees in the opposite direction.
[0165] From these results, it was found that the flexibility of zinc foil tends to decrease with the inclusion of in, so it is preferable to reduce the in content in order to ensure the productivity of the negative electrode and to give flexibility to the battery formed in sheet form.
[0166] [Gas generation amount measurement test] Electrolytic zinc foils A-H and rolled zinc foils K-P were each cut to a size of 60 mm x 20 mm. By covering the 5 mm wide edges on both sides and the cut surfaces with adhesive tape, an exposed zinc foil area of 50 mm x 10 mm was formed in the center of each side, and evaluation samples were prepared.
[0167] The evaluation samples were configured so that only the exposed portion of the zinc foil was in contact with the electrolyte. Each sample was immersed in 15 g of an electrolyte consisting of a 20% by mass aqueous solution of ammonium chloride, and then held at a temperature of 60°C for 24 hours, during which time the amount of hydrogen gas generated was measured.
[0168] The measurement results are shown in Table 5. Figure 3 shows the results for zinc foil with a Bi content of 0.25% by mass (2500 ppm) or less.
[0169] [Table 5]
[0170] By adding Bi to electrolytic zinc foil, the amount of hydrogen gas generated was significantly reduced compared to rolled zinc foil. These results clearly demonstrate that using electrolytic zinc foil as the negative electrode in a battery configuration greatly improves the battery's storage characteristics. On the other hand, in rolled zinc foil, the effect of Bi addition was limited, and In was more effective in reducing hydrogen gas generation, indicating that the effects of the added elements differ between electrolytic zinc foil and rolled zinc foil.
[0171] [Discharge characteristics evaluation test] Next, a sheet-type air battery for evaluating discharge characteristics was assembled using the electrolytic zinc foils A-C, E, and F, and the operating voltage was measured to evaluate the discharge characteristics.
[0172] Each electrolytic zinc foil was punched out to form a negative electrode, having a main body measuring 15 mm x 15 mm and a negative electrode terminal measuring 5 mm x 15 mm. The negative electrode was then housed inside a resin film casing with pre-formed air holes on the air electrode side, along with an air electrode using carbon black as a catalyst, a separator made of laminated graft film and cellophane film, a water-repellent film of microporous PE film, and an electrolyte consisting of a 20% by mass aqueous solution of ammonium chloride, thereby forming a sheet-like air battery.
[0173] A 3.9kΩ discharge resistor was connected to each sheet-type air battery, and the discharge characteristics were evaluated by measuring the battery voltage (CCV) when the discharged amount reached 10mAh. The results are shown in Figure 4.
[0174] As is clear from the results shown in Figure 4, when the Bi content of the electrolytic zinc foil constituting the negative electrode increases, the reaction resistance during discharge of the negative electrode increases and the operating voltage of the battery decreases. Therefore, from the viewpoint of the battery's discharge characteristics, it is preferable to reduce the Bi content of the electrolytic zinc foil.
[0175] [Measurement of the resistance value of the negative electrode] A negative electrode mixture-containing composition was prepared by mixing 70 parts by mass of zinc alloy particles (average particle size 30 μm) containing In: 500 ppm (by mass; the same applies to the content of added elements below), Bi: 400 ppm, and Al: 10 ppm as additive elements, 20 parts by mass of graphite "SP-20" manufactured by Nippon Graphite Co., Ltd. (average particle size 30 μm), 10 parts by mass of ammonium polyacrylate, and 150 parts by mass of water.
[0176] A 50mm x 50mm aluminum laminate film (thickness: 65μm) had a PET film on the outer surface of the aluminum foil and a polypropylene film as a heat-sealable resin layer on the inner surface. A carbon conductive paste was screen printed onto the surface of the polypropylene film to form a current collector layer, with a thickness of 0.05mm after drying. Furthermore, the negative electrode mixture-containing composition was applied to the surface of the current collector layer to create a negative electrode S having a negative electrode mixture layer with a thickness of 0.4mm.
[0177] Furthermore, a negative electrode T was prepared in the same manner as in Example 1, except that an electrolytic zinc foil with the same composition as in Example 1 and a thickness of 60 μm was used.
[0178] When the surface resistivity of each negative electrode was measured by pressing the four-probe probe of Mitsubishi Chemical's resistivity meter "Loresta-GP" against the surface of each negative electrode, the surface resistivity of negative electrode S was 30 Ω / □, while the surface resistivity of negative electrode T, which used electrolytic zinc foil, was 0.0013 Ω / □, demonstrating a significant reduction in surface resistivity. This result shows that it is possible to reduce the resistance value of the negative electrode by using zinc foil.
[0179] The present invention can also be implemented in forms other than those described herein, without departing from its spirit. The embodiments disclosed herein are examples, and the present invention is not limited to these embodiments. The scope of the present invention shall be interpreted in accordance with the claims attached, which take precedence over the description herein, and all modifications within the scope equivalent to the claims are included in the claims. [Industrial applicability]
[0180] The battery of the present invention can be applied to the same applications as conventional primary and secondary batteries that are used. [Explanation of symbols]
[0181] 1 Sheet-type battery 10 positive electrode 11 Positive terminal 20 negative electrode 21 Negative terminal 30 Separators 40 Sheet-like outer covering
Claims
1. A battery having a positive electrode, a negative electrode, and a separator disposed between the positive electrode and the negative electrode, The positive electrode comprises a porous carbon sheet and a positive electrode active material layer containing positive electrode active material held within the voids of the porous carbon sheet. The positive electrode active material layer covers the separator-side surface of the porous carbon sheet, and a portion of it is held within the voids of the porous carbon sheet. On the separator-side surface of the positive electrode active material layer, the arithmetic mean roughness (Ra) is 10 μm or less, and the maximum height roughness (Rz) is 50 μm or less. The positive electrode active material has an average particle diameter of 0.1 μm or more and 30 μm or less. The electrolyte contains an aqueous solution in which an electrolyte salt is dissolved. A battery characterized in that the separator is made of nonwoven fabric.
2. The battery according to claim 1, wherein the arithmetic mean roughness (Ra) on the separator side of the positive electrode active material layer is 5 μm or less.
3. The battery according to claim 1 or 2, wherein the thickness of the nonwoven fabric is 500 μm or less.
4. The battery according to any one of claims 1 to 3, wherein the porosity of the nonwoven fabric is 90% by volume or less.
5. The battery according to any one of claims 1 to 4, wherein the negative electrode is made of a zinc alloy foil containing Bi in a proportion of 0.01 to 0.25% by mass.
6. The battery according to claim 5, wherein the zinc alloy foil is electrolytic zinc foil with an In content of 0.04% by mass or less.
7. The battery according to any one of claims 1 to 6, wherein the porous carbon sheet is a porous sheet composed of fibrous carbon.
8. The battery according to any one of claims 1 to 7, wherein the electrolyte contains an aqueous solution having a pH of 3 or more and 12 or less.
Citation Information
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