Zinc secondary battery

By vertically arranging electrode plates and using a nonwoven fabric to absorb excess electrolyte, the battery prevents electrolyte depletion, enhancing charge/discharge efficiency and extending the life of zinc secondary batteries.

JP7724280B2Active Publication Date: 2025-08-15NGK CORP
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Patent Information

Application Number
JP2023508623
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-03-26
Filing Date
2021-12-16
Publication Date
2025-08-15
Estimated Expiration
2041-12-16

AI Technical Summary

Technical Problem

Zinc secondary batteries face issues with electrolyte depletion in the positive electrode compartment, leading to deterioration of charge/discharge characteristics and reduced cycle and calendar life due to zinc dendrite formation and electrolyte drying up.

Method used

The positive and negative electrode plates are arranged vertically, with excess electrolyte stored below their lower ends, and a nonwoven fabric covering the positive electrode has a downward extension to absorb electrolyte through capillary action, preventing drying up and replenishing lost electrolyte.

Benefits of technology

This configuration effectively prevents electrolyte depletion, maintaining efficient charge/discharge characteristics and extending the cycle and calendar life of the battery.

✦ Generated by Eureka AI based on patent content.

Smart Images

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Abstract

The present invention provides a zinc secondary battery which is capable of effectively preventing liquid depletion in a positive electrode section. This zinc secondary battery comprises: a unit cell including a positive electrode plate that includes a positive electrode active material layer, a negative electrode plate that includes a negative electrode active material layer, nonwoven fabric that covers or encompasses the positive electrode plate and the negative electrode plate, a hydroxide ion conduction separator that separates the positive electrode plate from the negative electrode plate in a manner such that hydroxide ion conduction is possible, and an electrolyte; and a battery container that accommodates the unit cell. Each of the positive electrode plate, the negative electrode plate, and the hydroxide ion conduction separator is disposed in a vertical orientation, and excess electrolyte is constantly stored in the bottom part of the battery container in an amount with which the liquid surface is below the lower ends of the positive electrode plate and the negative electrode plate. The nonwoven fabric that covers or encompasses the positive electrode plate has a downward extension part which can make contact with the excess electrolyte. The lower end of the downward extension part is constantly positioned below the liquid surface of the extra electrolyte, and thus the nonwoven fabric can upwardly absorb the extra electrolyte from the lower end using the capillarity of the nonwoven fabric.
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Description

[Technical Field]

[0001] The present invention relates to a zinc secondary battery. [Background technology]

[0002] In zinc secondary batteries, such as nickel-zinc secondary batteries and air-zinc secondary batteries, metallic zinc precipitates in the form of dendrites from the negative electrode during charging, penetrates the pores of the separator (e.g., nonwoven fabric) and reaches the positive electrode, resulting in a short circuit. Such short circuits caused by zinc dendrites shorten the battery's life after repeated charging and discharging.

[0003] To address the above-mentioned problems, batteries have been proposed that include a layered double hydroxide (LDH) separator that selectively allows hydroxide ions to pass through while preventing zinc dendrites from penetrating. For example, Patent Document 1 (WO 2013 / 118561) discloses a nickel-zinc secondary battery in which an LDH separator is provided between the positive and negative electrodes. Patent Document 2 (WO 2016 / 076047) also discloses a separator structure that includes an LDH separator fitted or bonded to a resin outer frame, and that the LDH separator has such high density that it is gas- and / or water-impermeable. This document also discloses that the LDH separator can be composited with a porous substrate. Patent Document 3 (WO 2016 / 067884) also discloses various methods for forming a dense LDH film on the surface of a porous substrate to obtain a composite material. This method includes the steps of uniformly attaching a starting substance capable of providing starting points for LDH crystal growth to a porous substrate, and then subjecting the porous substrate to hydrothermal treatment in a raw material aqueous solution to form a dense LDH membrane on the surface of the porous substrate. LDH separators have also been proposed that achieve further densification by roll-pressing an LDH / porous substrate composite material produced through hydrothermal treatment. For example, Patent Document 4 (WO 2019 / 124270) discloses an LDH separator that includes a polymeric porous substrate and an LDH filled in the porous substrate, and has an in-line transmittance of 1% or more at a wavelength of 1000 nm.

[0004] Additionally, although not classified as LDHs, LDH-like compounds are known as hydroxides and / or oxides with a layered crystal structure similar to LDHs, and they exhibit hydroxide ion conductive properties similar enough to be collectively referred to as hydroxide ion-conducting layered compounds together with LDHs. For example, Patent Document 5 (WO 2020 / 255856) discloses a hydroxide ion-conducting separator comprising a porous substrate and a layered double hydroxide (LDH)-like compound that plugs the pores of the porous substrate, in which the LDH-like compound is a hydroxide and / or oxide with a layered crystal structure containing Mg and one or more elements, including at least Ti, selected from the group consisting of Ti, Y, and Al. This hydroxide ion-conducting separator is said to have superior alkali resistance compared to conventional LDH separators and to be able to more effectively suppress short circuits caused by zinc dendrites.

[0005] Incidentally, Patent Document 6 (WO 2019 / 069760) and Patent Document 7 (WO 2019 / 077953) propose a zinc secondary battery configured in which the entire negative electrode active material layer is covered or wrapped with a liquid-retaining member and an LDH separator, and the positive electrode active material layer is covered or wrapped with a nonwoven fabric. This configuration is said to eliminate the need for complicated sealing and joining between the LDH separator and the battery container, and to enable extremely simple and highly productive production of a zinc secondary battery (particularly a stacked battery thereof) that can prevent zinc dendrite extension. [Prior art documents] [Patent documents]

[0006] [Patent Document 1] International Publication No. 2013 / 118561 [Patent Document 2] International Publication No. 2016 / 076047 [Patent Document 3] International Publication No. 2016 / 067884 [Patent Document 4] International Publication No. 2019 / 124270 [Patent Document 5] International Publication No. 2020 / 255856 [Patent Document 6] International Publication No. 2019 / 069760 [Patent Document 7] International Publication No. 2019 / 077953 Summary of the Invention

[0007] There is a demand for further extension of the cycle life and calendar life of zinc secondary batteries. However, in zinc secondary batteries with conventional configurations such as those described in Patent Documents 6 and 7, a phenomenon in which the electrolyte in the positive electrode compartment is depleted (hereinafter referred to as "depletion of electrolyte") can occur. Such depletion of electrolyte leads to deterioration of charge / discharge characteristics, resulting in a decrease in the cycle life and calendar life.

[0008] The inventors have now discovered that in a zinc secondary battery having positive and negative electrode plates oriented vertically, excess electrolyte is always stored in an amount that results in a liquid level lower than the lower ends of the positive and negative electrode plates, and that the nonwoven fabric covering or enveloping the positive electrode plate has a downward extension that can come into contact with the excess electrolyte, thereby effectively preventing liquid drying up in the positive electrode.

[0009] Therefore, an object of the present invention is to provide a zinc secondary battery that can effectively prevent liquid drying up in the positive electrode compartment.

[0010] According to one aspect of the present invention, a positive electrode plate including a positive electrode active material layer; a negative electrode plate including a negative electrode active material layer containing at least one selected from the group consisting of zinc, zinc oxide, zinc alloys, and zinc compounds; a nonwoven fabric covering or enveloping each of the positive electrode plate and the negative electrode plate; a hydroxide ion conductive separator that separates the positive electrode plate and the negative electrode plate so as to be conductive with hydroxide ions; An electrolyte; and a battery container that houses the unit cell, the positive electrode plate, the negative electrode plate, and the hydroxide ion conductive separator are each arranged vertically, and excess electrolyte is always stored at the bottom of the battery container in an amount that results in a liquid level that is lower than the lower ends of the positive electrode plate and the negative electrode plate, regardless of changes in the liquid amount due to charging and discharging; A zinc secondary battery is provided in which the nonwoven fabric covering or enveloping the positive electrode plate has a downward extension that can come into contact with the excess electrolyte, and the lower end of the downward extension is always located below the liquid level of the excess electrolyte regardless of changes in the liquid volume due to charging and discharging, thereby allowing the nonwoven fabric to absorb the excess electrolyte upward from the lower end through capillary action caused by itself. [Brief explanation of the drawings]

[0011] [Figure 1] 1 is a schematic cross-sectional view showing an example of a zinc secondary battery according to the present invention. [Figure 2] FIG. 2 is a diagram schematically showing a cross section of the zinc secondary battery shown in FIG. 1 taken along line AA'. [Figure 3] FIG. 2 is a diagram schematically showing a positive electrode plate wrapped in nonwoven fabric, which constitutes the zinc secondary battery shown in FIG. 1. [Figure 4] FIG. 2 is a perspective view schematically showing a battery element of the zinc secondary battery shown in FIG. [Figure 5] FIG. 2 is a cross-sectional view schematically showing a battery element of the zinc secondary battery shown in FIG. [Figure 6] FIG. 2 is a schematic cross-sectional view conceptually showing the liquid absorption structure in the zinc secondary battery of the present invention. [Figure 7] FIG. 1 is a schematic cross-sectional view conceptually showing the configuration of a conventional zinc secondary battery. DETAILED DESCRIPTION OF THE INVENTION

[0012] Zinc secondary battery The zinc secondary battery of the present invention is not particularly limited as long as it uses zinc as the negative electrode and an alkaline electrolyte (typically an aqueous alkali metal hydroxide solution). Therefore, it can be a nickel-zinc secondary battery, a silver oxide-zinc secondary battery, a manganese oxide-zinc secondary battery, an air-zinc secondary battery, or any other type of alkaline zinc secondary battery. For example, it is preferable that the positive electrode active material layer contains nickel hydroxide and / or nickel oxyhydroxide, thereby forming the zinc secondary battery into a nickel-zinc secondary battery. Alternatively, the positive electrode active material layer may be an air cathode layer, thereby forming the zinc secondary battery into an air-zinc secondary battery.

[0013] 1 to 6 show an embodiment of a zinc secondary battery according to the present invention and its internal structure. The zinc secondary battery 10 shown in these figures comprises a battery element 11 housed in a battery container 20. The battery element 11 includes a unit cell 10a including a positive electrode plate 12, a negative electrode plate 14, a nonwoven fabric 17, a hydroxide ion conductive separator 16, and an electrolyte 18. The positive electrode plate 12 includes a positive electrode active material layer. The negative electrode plate 14 includes a negative electrode active material layer 14a, which includes at least one material selected from the group consisting of zinc, zinc oxide, a zinc alloy, and a zinc compound. The nonwoven fabric 17 covers or encases each of the positive electrode plate 12 and the negative electrode plate 14. The hydroxide ion conductive separator 16 separates the positive electrode plate 12 and the negative electrode plate 14 so as to allow hydroxide ion conductivity. The positive electrode plate 12, the negative electrode plate 14, and the hydroxide ion conductive separator 16 are each arranged vertically. Excess electrolyte 18 is always stored in the bottom of battery container 20 in an amount that keeps the liquid level lower than the lower ends of positive electrode plate 12 and negative electrode plate 14, regardless of changes in the liquid volume due to charging and discharging. Nonwoven fabric 17 covering or enveloping positive electrode plate 12 has downward extension 17e that can come into contact with excess electrolyte 18, and the lower end of downward extension 17e is always located below the liquid level of excess electrolyte 18, regardless of changes in the liquid volume due to charging and discharging. This allows nonwoven fabric 17 to absorb excess electrolyte 18 upward from its lower end through capillary action caused by itself. In this way, in a zinc secondary battery 10 having a positive electrode plate 12 and a negative electrode plate 14 arranged vertically, excess electrolyte 18 is always stored in an amount that results in a liquid level lower than the lower ends of the positive electrode plate 12 and the negative electrode plate 14, and by configuring the nonwoven fabric 17 covering or enveloping the positive electrode plate 12 to have a downward extension 17e that can come into contact with the excess electrolyte 18, it is possible to effectively prevent liquid from drying up in the positive electrode compartment.

[0014] As mentioned above, in zinc secondary batteries with conventional configurations such as those described in Patent Documents 6 and 7, a phenomenon known as electrolyte depletion (depletion of electrolyte) can occur in the positive electrode compartment. This depletion leads to deterioration of charge / discharge characteristics, resulting in reduced cycle life and calendar life. As shown in FIG. 7, electrolyte depletion can occur for two reasons: 1) water consumption due to oxygen gas generation in the positive electrode during charge / discharge and self-discharge, and 2) the inability of the positive electrode plate 12 to absorb water released from the nonwoven fabric 17 when the positive electrode plate 12 expands (point E in the figure) during contraction (point S in the figure). This depletion can lead to a decrease in charge / discharge efficiency due to increased resistance and overcharging due to localized current concentration caused by electrolyte depletion. The configuration of the present invention conveniently solves these problems. That is, in the present invention, as shown in Fig. 6, the nonwoven fabric 17 covering or enveloping the positive electrode plate 12 is extended downward to form a downward extension 17e so that the nonwoven fabric 17 is always in contact with the excess electrolyte 18. This enables the nonwoven fabric 17 to automatically absorb the excess electrolyte 18 upward from its lower end through capillary action (A in the figure). As a result, i) the amount of water consumed due to oxygen gas generation can be replenished from the excess electrolyte 18, and 2) the water discharged from the nonwoven fabric 17 when the positive electrode plate 12 expands (E in the figure) can be replenished from the excess electrolyte 18 when the positive electrode plate 12 contracts (S in the figure). In other words, by eliminating the two causes of this problem, it is possible to effectively prevent liquid drying up in the positive electrode compartment.

[0015] The positive electrode plate 12 includes a positive electrode active material layer 12a. The positive electrode active material constituting the positive electrode active material layer 12a may be selected appropriately from known positive electrode materials depending on the type of zinc secondary battery, and is not particularly limited. For example, in the case of a nickel-zinc secondary battery, a positive electrode containing nickel hydroxide and / or nickel oxyhydroxide may be used. Alternatively, in the case of an air-zinc secondary battery, an air electrode may be used as the positive electrode. The positive electrode plate 12 further includes a positive electrode current collector (not shown), which preferably has a positive electrode current collector tab 12b extending in a predetermined direction (e.g., upward) from an end (e.g., the upper end) of the positive electrode plate 12. A preferred example of a positive electrode current collector is a nickel porous substrate such as a foamed nickel plate. In this case, a positive electrode plate consisting of a positive electrode and a positive electrode current collector can be preferably fabricated by, for example, uniformly applying a paste containing an electrode active material such as nickel hydroxide onto a nickel porous substrate and drying it. At this time, it is also preferable to press the dried positive electrode plate (i.e., the positive electrode / positive electrode current collector) to prevent the electrode active material from falling off and improve electrode density. The positive electrode plate 12 shown in FIG. 5 includes a positive electrode current collector (e.g., nickel foam), but this is not shown. This is because, in the case of a nickel-zinc secondary battery, the positive electrode current collector is integrally integrated with the positive electrode active material, making it impossible to depict the positive electrode current collector separately. The positive electrode current collector tab 12b may be made of the same material as the positive electrode current collector, or may be made of a different material. If the positive electrode current collector is a porous nickel substrate such as a nickel foam plate, it can be processed into a tab shape by pressing. In either case, the positive electrode current collector tab 12b may be extended by attaching another current collecting member such as a tab lead to the tab. In either case, it is preferable that multiple positive electrode current collector tabs 12b be joined to a single positive electrode terminal 26 or a member electrically connected thereto to form a positive electrode tab joint (not shown). This allows for space-efficient current collection with a simple configuration and also facilitates connection to the positive electrode terminal 26. The positive electrode current collecting tab 12b can be joined to a member such as a terminal using a known joining method such as ultrasonic welding (ultrasonic welding), laser welding, TIG welding, or resistance welding.

[0016] The positive electrode plate 12 may contain at least one additive selected from the group consisting of a silver compound, a manganese compound, and a titanium compound, which can promote the positive electrode reaction of absorbing hydrogen gas generated by the self-discharge reaction. The positive electrode plate 12 may also contain cobalt. The cobalt is preferably contained in the positive electrode plate 12 in the form of cobalt oxyhydroxide. In the positive electrode plate 12, cobalt functions as a conductive additive, thereby contributing to improving the charge / discharge capacity.

[0017] The negative electrode plate 14 includes a negative electrode active material layer 14a. The negative electrode active material constituting the negative electrode active material layer 14a includes at least one selected from the group consisting of zinc, zinc oxide, zinc alloys, and zinc compounds. Zinc may be contained in any form, such as zinc metal, zinc compounds, or zinc alloys, as long as it has electrochemical activity suitable for a negative electrode. Preferred examples of negative electrode materials include zinc oxide, zinc metal, and calcium zincate, with a mixture of zinc metal and zinc oxide being more preferred. The negative electrode active material may be in a gel form or may be mixed with an electrolyte solution 18 to form a negative electrode composite. For example, a gelled negative electrode can be easily obtained by adding an electrolyte solution and a thickener to the negative electrode active material. Examples of thickeners include polyvinyl alcohol, polyacrylate, CMC, and alginic acid, with polyacrylic acid being preferred due to its excellent chemical resistance to strong alkalis.

[0018] The zinc alloy can be a mercury- and lead-free zinc alloy known as a mercury-free zinc alloy. For example, a zinc alloy containing 0.01 to 0.1 mass% indium, 0.005 to 0.02 mass% bismuth, and 0.0035 to 0.015 mass% aluminum is preferred because it suppresses hydrogen gas generation. In particular, indium and bismuth are advantageous in improving discharge performance. The use of a zinc alloy for the negative electrode can improve safety by slowing the rate of self-dissolution in alkaline electrolyte, thereby suppressing hydrogen gas generation.

[0019] The shape of the negative electrode material is not particularly limited, but it is preferably in powder form, which increases the surface area and enables it to withstand large current discharge. In the case of a zinc alloy, the average particle size of the negative electrode material is preferably in the range of 3 to 100 μm in minor axis. Within this range, the large surface area makes it suitable for withstanding large current discharge, and it is also easy to mix uniformly with the electrolyte and gelling agent, making it easy to handle during battery assembly.

[0020] The negative electrode plate 14 preferably further includes a negative electrode current collector 14b. The negative electrode current collector 14b is provided inside and / or on the surface of the negative electrode active material layer 14a, except for a portion that extends as a negative electrode current collector tab 14c. That is, the negative electrode active material layer 14a may be provided on both sides of the negative electrode current collector 14b, or the negative electrode active material layer 14a may be provided on only one side of the negative electrode current collector 14b. The negative electrode current collector tab 14c is 、 The negative electrode current collector tab 14c extends in a predetermined direction (e.g., upward) from an end (e.g., the upper end) of the negative electrode plate 14 at a position that does not overlap with the positive electrode current collector tab 12b. The negative electrode current collector tab 14c is preferably provided at a position that does not overlap with the positive electrode current collector tab 12b. The negative electrode current collector tab 14c may be made of the same material as the negative electrode current collector 14b, or may be made of a different material. In either case, the negative electrode current collector tab 14c may be extended by adding another current collecting member such as a tab lead to the tab. In either case, it is preferable to form a negative electrode tab joint 30 by joining multiple negative electrode current collector tabs 14c to one negative electrode terminal 28 or a member electrically connected thereto. This allows for space-efficient current collection with a simple configuration and facilitates connection to the negative electrode terminal 28. The negative electrode current collector tab 14c can be joined to a member such as a terminal using a known joining method such as ultrasonic welding (ultrasonic welding), laser welding, TIG welding, or resistance welding.

[0021] The negative electrode current collector 14b is preferably a metal plate with multiple (or many) openings from the viewpoint of fixing the negative electrode active material to the current collector. Preferred examples of such a negative electrode current collector 14b include expanded metal, punched metal, metal mesh, and combinations thereof. More preferred are copper expanded metal, copper punched metal, and combinations thereof, with copper expanded metal being particularly preferred. In this case, a negative electrode plate consisting of a negative electrode / negative electrode current collector can be preferably produced by applying a mixture containing zinc oxide powder and / or zinc powder, and optionally a binder (e.g., polytetrafluoroethylene particles), to the copper expanded metal. In this case, it is also preferable to press the dried negative electrode plate (i.e., the negative electrode / negative electrode current collector) to prevent the electrode active material from falling off and improve electrode density. The expanded metal is a mesh-like metal plate produced by expanding a metal plate while making staggered cuts using an expanding machine and then shaping the cuts into a diamond or tortoiseshell pattern. Punched metal, also known as perforated metal, is a metal plate with holes punched into it. Metal mesh is a metal product with a wire mesh structure, and is different from expanded metal and perforated metal.

[0022] The hydroxide ion conductive separator 16 is provided to separate the positive electrode plate 12 and the negative electrode plate 14 so as to allow hydroxide ion conductivity. For example, as shown in FIG. 5, the negative electrode plate 14 may be configured to be covered or wrapped with the hydroxide ion conductive separator 16. It is particularly preferable that the hydroxide ion conductive separator 16 is covered or wrapped from the outside of a nonwoven fabric 17 that covers or wraps the negative electrode plate 14. This eliminates the need for a complicated sealing joint between the hydroxide ion conductive separator 16 and the battery container, making it possible to produce a zinc secondary battery (particularly a stacked battery thereof) that can prevent zinc dendrite extension extremely easily and with high productivity. However, a simple configuration in which the hydroxide ion conductive separator 16 is arranged on one side of the positive electrode plate 12 or the negative electrode plate 14 may also be used.

[0023] The hydroxide ion-conductive separator 16 is not particularly limited as long as it is a separator capable of separating the positive electrode plate 12 and the negative electrode plate 14 in a hydroxide ion-conductive manner. Typically, however, it is a separator containing a hydroxide ion-conductive solid electrolyte and selectively passing hydroxide ions solely by utilizing hydroxide ion conductivity. A preferred hydroxide ion-conductive solid electrolyte is a layered double hydroxide (LDH) and / or an LDH-like compound. Therefore, the hydroxide ion-conductive separator 16 is preferably an LDH separator. In this specification, an "LDH separator" is defined as a separator containing LDH and / or an LDH-like compound and selectively passing hydroxide ions solely by utilizing the hydroxide ion conductivity of the LDH and / or LDH-like compound. In this specification, an "LDH-like compound" is a hydroxide and / or oxide with a layered crystal structure similar to LDH, which may not be called LDH but can be considered an equivalent of LDH. However, in a broader sense, "LDH" can also be interpreted as encompassing not only LDH but also LDH-like compounds. The LDH separator is preferably composited with a porous substrate. Therefore, the LDH separator preferably further comprises a porous substrate, and is composited with the porous substrate in a form in which the pores of the porous substrate are filled with LDH and / or LDH-like compounds. That is, in a preferred LDH separator, the pores of the porous substrate are filled with LDH and / or LDH-like compounds so as to exhibit hydroxide ion conductivity and gas impermeability (and therefore function as an LDH separator exhibiting hydroxide ion conductivity). The porous substrate is preferably made of a polymer material, and it is particularly preferred that the LDH and / or LDH-like compounds are incorporated throughout the entire thickness of the porous substrate made of a polymer material. For example, known LDH separators such as those disclosed in Patent Documents 1 to 7 can be used. The thickness of the LDH separator is preferably 5 to 100 μm, more preferably 5 to 80 μm, even more preferably 5 to 60 μm, and particularly preferably 5 to 40 μm.

[0024] As shown in FIG. 5 , the nonwoven fabric 17 is provided so as to cover or encase each of the positive electrode plate 12 and the negative electrode plate 14. The presence of the nonwoven fabric 17 allows the electrolyte solution 18 to be evenly distributed between the positive electrode plate 12 and the negative electrode plate 14 and the hydroxide ion conductive separator 16, thereby enabling efficient exchange of hydroxide ions between the positive electrode plate 12 and the negative electrode plate 14 and the hydroxide ion conductive separator 16. The nonwoven fabric 17 preferably has a thickness of 50 to 150 μm, more preferably 50 to 120 μm, and even more preferably 50 to 100 μm. A thickness within the above range allows a sufficient amount of electrolyte solution 18 to be retained within the nonwoven fabric 17 while keeping the overall size of the positive electrode structure and / or the negative electrode structure compact and efficient. Furthermore, the efficiency of liquid absorption from the downward extension 17e is improved. From the viewpoint of liquid retention and absorption performance, nonwoven fabric 17 is preferably made of at least one material selected from polyolefin (e.g., polyethylene or polypropylene), cellulose, and vinylon. Polyolefin (e.g., polyethylene or polypropylene) is particularly preferred because it is also suitable for thermal welding. The surface of nonwoven fabric 17 is preferably subjected to a hydrophilization treatment to improve liquid retention and absorption performance. Examples of hydrophilization treatments include sulfonation, fluorine gas treatment, plasma treatment, graft treatment (e.g., electron beam graft polymerization), and corona treatment. The liquid absorption performance of nonwoven fabric 17 may be further improved by adding a surfactant.

[0025] When the positive electrode plate 12 and / or the negative electrode plate 14 are covered or wrapped with the nonwoven fabric 17 and / or the separator 16, it is preferable that the outer edges thereof are closed (except for the edges from which the positive electrode current collector tab 12b and the negative electrode current collector tab 14c extend). In this case, the closed edges of the outer edges of the nonwoven fabric 17 and / or the separator 16 are preferably realized by folding the nonwoven fabric 17 and / or the separator 16, or by sealing the nonwoven fabrics 17 together and / or the separators 16 together. Preferred examples of sealing methods include adhesives, heat welding, ultrasonic welding, adhesive tape, sealing tape, and combinations thereof. In particular, an LDH separator including a porous substrate made of a polymer material has the advantage of being flexible and therefore easily bendable. Therefore, it is preferable to form the LDH separator into a long shape and then fold it to close one edge of the outer edge. Thermal welding and ultrasonic welding can be performed using a commercially available heat sealer, etc., but when sealing LDH separators together, it is preferable to perform thermal welding and ultrasonic welding by sandwiching the outer periphery of the nonwoven fabric 17 between the LDH separators that make up the outer periphery, as this allows for more effective sealing. Commercially available adhesives, adhesive tapes, and sealing tapes can be used, but those containing alkali-resistant resins are preferred to prevent deterioration in alkaline electrolyte. From this perspective, preferred examples of adhesives include epoxy resin-based adhesives, natural resin-based adhesives, modified olefin resin-based adhesives, and modified silicone resin-based adhesives, with epoxy resin-based adhesives being particularly preferred due to their excellent alkali resistance. An example of a commercially available epoxy resin-based adhesive is the epoxy adhesive Hysol (registered trademark) (manufactured by Henkel).

[0026] As described above, the lower end of the downward extension 17e of the nonwoven fabric 17 covering or enveloping the positive electrode plate 12 is always located below the liquid level of the excess electrolyte 18, which allows the nonwoven fabric 17 to absorb the excess electrolyte 18 upward from the lower end through capillary action caused by the nonwoven fabric 17 itself. Therefore, at the lower end of the downward extension 17e, a portion (welded portion) where the liquid absorption performance of the nonwoven fabric 17 has been impaired by welding does not absorb the electrolyte 18 even when in contact with the electrolyte 18. For this reason, the lower end of the downward extension 17e of the nonwoven fabric 17 covering or enveloping the positive electrode plate 12 may have a portion (welded portion) where the liquid absorption performance of the nonwoven fabric 17 has been impaired. In this case, however, it is desirable that the lower end of the downward extension 17e have a separate, unwelded portion (unwelded portion) where the liquid absorption performance of the nonwoven fabric 17 is not impaired.

[0027] Preferably, the nonwoven fabric 17 in contact with one surface of the positive electrode plate 12 and the nonwoven fabric 17 in contact with the other surface of the positive electrode plate 12 are sealed to each other by heat welding at a portion of their downward extensions 17e to form a welded portion 17b, while the remaining portion of the downward extensions 17e is an unwelded portion 17a that is not heat-welded, and the lower end of the unwelded portion 17a is always located below the liquid level of the excess electrolyte 18. With this configuration, the upper end of the welded portion 17b can maintain the lower end of the positive electrode plate 12 at a position higher than the liquid level of the electrolyte 18, while the nonwoven fabric 17 can efficiently absorb the excess electrolyte 18 through the unwelded portion 17a. In particular, an intermittent welding configuration in which the unwelded portions 17a and welded portions 17b are alternately provided, as shown in Figures 1, 3, and 4, is particularly preferred from the viewpoint of both positioning the positive electrode plate 12 and liquid absorption performance.

[0028] The outer edge of one side of the separator 16, which is the upper end, is preferably open. This open-top configuration can address problems that occur during overcharging in nickel-zinc batteries and the like. Specifically, when a nickel-zinc battery or the like is overcharged, oxygen (O2) can be generated at the positive electrode plate 12. However, the LDH separator has a high density that allows only hydroxide ions to pass through, preventing O2 from passing through. In this regard, the open-top configuration allows O2 to escape above the positive electrode plate 12 and be transported to the negative electrode plate 14 through the open-top portion within the battery container 20. This allows O2 to oxidize the Zn negative electrode active material back to ZnO. By undergoing this oxygen reaction cycle, the use of the open-top battery element 11 in a sealed zinc secondary battery can improve overcharge resistance. Even if the outer edge of one side of the separator 16 or nonwoven fabric 17, which is the upper end, is closed, providing a vent hole in part of the closed outer edge can be expected to achieve the same effect as the open-top configuration. For example, the vent hole may be opened after sealing the outer edge of one side that will be the upper end of the LDH separator, or during sealing, part of the outer edge may be left unsealed so that the vent hole is formed.

[0029] The electrolyte 18 preferably contains an aqueous solution of an alkali metal hydroxide. Although the electrolyte 18 is only partially illustrated in FIG. 5 , this is because it is distributed throughout the positive and negative electrode plates 12 and 14. Examples of alkali metal hydroxides include potassium hydroxide, sodium hydroxide, lithium hydroxide, and ammonium hydroxide, with potassium hydroxide being preferred. To suppress the self-dissolution of zinc and / or zinc oxide, a zinc compound such as zinc oxide or zinc hydroxide may be added to the electrolyte. As mentioned above, the electrolyte may be mixed with the positive electrode active material and / or the negative electrode active material to form a positive electrode composite and / or a negative electrode composite. The electrolyte may also be gelled to prevent leakage of the electrolyte. A polymer that absorbs the solvent in the electrolyte and swells is preferably used as the gelling agent. Examples of suitable gelling agents include polymers such as polyethylene oxide, polyvinyl alcohol, and polyacrylamide, as well as starch.

[0030] 1 to 5, the battery element 11 includes a plurality of positive electrode plates 12, a plurality of negative electrode plates 14, and a plurality of separators 16, and is in the form of a positive and negative electrode laminate in which the unit of positive electrode plate 12 / separator 16 / negative electrode plate 14 is repeatedly stacked. That is, the zinc secondary battery 10 has a plurality of unit cells 10a, and the plurality of unit cells 10a as a whole form a multi-layer cell. This is the configuration of a so-called assembled battery or stacked battery, and is advantageous in that it can obtain a high voltage and a large current.

[0031] The battery container 20 is preferably made of resin. The resin constituting the battery container 20 is preferably a resin resistant to alkali metal hydroxides such as potassium hydroxide, more preferably a polyolefin resin, ABS resin, or modified polyphenylene ether, and even more preferably an ABS resin or modified polyphenylene ether. The battery container 20 has a top lid 20a. The battery container 20 (for example, the top lid 20a) may have a pressure relief valve for releasing gas. Furthermore, a group of containers in which two or more battery containers 20 are arranged may be housed in an outer frame to form a battery module.

[0032] LDH-like compounds According to a preferred embodiment of the present invention, the LDH separator may contain an LDH-like compound. The definition of the LDH-like compound is as described above. Preferred LDH-like compounds are: (a) a hydroxide and / or oxide having a layered crystal structure containing Mg and one or more elements selected from the group consisting of Ti, Y, and Al, including at least Ti; or (b) a hydroxide and / or oxide having a layered crystal structure containing (i) Ti, Y, and optionally Al and / or Mg, and (ii) an additional element M which is at least one selected from the group consisting of In, Bi, Ca, Sr, and Ba, or (c) A hydroxide and / or oxide having a layered crystal structure containing Mg, Ti, Y, and optionally Al and / or In, in which the LDH-like compound is present in the form of a mixture with In(OH)3.

[0033] According to a preferred embodiment (a) of the present invention, the LDH-like compound may be a hydroxide and / or oxide having a layered crystal structure containing Mg and one or more elements, including at least Ti, selected from the group consisting of Ti, Y, and Al. Therefore, a typical LDH-like compound is a composite hydroxide and / or composite oxide of Mg, Ti, optionally Y, and optionally Al. While the above elements may be replaced with other elements or ions to the extent that the basic properties of the LDH-like compound are not impaired, it is preferable that the LDH-like compound does not contain Ni. For example, the LDH-like compound may further contain Zn and / or K. This can further improve the ionic conductivity of the LDH separator.

[0034] LDH-like compounds can be identified by X-ray diffraction. Specifically, when X-ray diffraction is performed on the surface of an LDH separator, peaks derived from LDH-like compounds are typically detected in the range of 5°≦2θ≦10°, more typically in the range of 7°≦2θ≦10°. As mentioned above, LDH is a substance with an alternating layer structure in which exchangeable anions and HO exist as intermediate layers between stacked hydroxide base layers. In this regard, when LDH is measured by X-ray diffraction, a peak inherently derived from the crystalline structure of LDH (i.e., the (003) peak of LDH) is detected at 2θ=11-12°. In contrast, when an LDH-like compound is measured by X-ray diffraction, a peak is typically detected in the above-mentioned range, shifted to a lower angle than the peak position of LDH. Furthermore, the interlayer distance of the layered crystalline structure can be determined by the Bragg equation using 2θ corresponding to the peak derived from the LDH-like compound in X-ray diffraction. The interlayer distance of the layered crystal structure constituting the LDH-like compound determined in this manner is typically 0.883 to 1.8 nm, and more typically 0.883 to 1.3 nm.

[0035] In the LDH separator according to aspect (a), the atomic ratio of Mg / (Mg + Ti + Y + Al) in the LDH-like compound, as determined by energy dispersive X-ray analysis (EDS), is preferably 0.03 to 0.25, more preferably 0.05 to 0.2. The atomic ratio of Ti / (Mg + Ti + Y + Al) in the LDH-like compound is preferably 0.40 to 0.97, more preferably 0.47 to 0.94. The atomic ratio of Y / (Mg + Ti + Y + Al) in the LDH-like compound is preferably 0 to 0.45, more preferably 0 to 0.37. The atomic ratio of Al / (Mg + Ti + Y + Al) in the LDH-like compound is preferably 0 to 0.05, more preferably 0 to 0.03. Within these ranges, the LDH separator exhibits superior alkali resistance and more effectively suppresses short circuits caused by zinc dendrites (i.e., dendrite resistance). Incidentally, conventionally known LDH separators have the general formula: M 2+ 1-x M 3+ x (OH)2A n- x / n ·mH2O (in the formula, M 2+ is a divalent cation, M 3+ is a trivalent cation, and A n- is an n-valent anion, n is an integer of 1 or more, x is 0.1 to 0.4, and m is 0 or more. In contrast, the atomic ratios in the LDH-like compounds generally deviate from the general formula of LDH. Therefore, it can be said that the LDH-like compounds in this embodiment generally have compositional ratios (atomic ratios) different from those of conventional LDH. Note that EDS analysis is preferably performed using an EDS analyzer (e.g., X-act, manufactured by Oxford Instruments) by 1) capturing images at an accelerating voltage of 20 kV and a magnification of 5,000x, 2) analyzing three points spaced about 5 μm apart in point analysis mode, 3) repeating the above steps 1) and 2) once more, and 4) calculating the average value of the six points in total.

[0036] According to another preferred embodiment (b) of the present invention, the LDH-like compound may be a hydroxide and / or oxide having a layered crystal structure containing (i) Ti, Y, and optionally Al and / or Mg, and (ii) an additional element M. Thus, a typical LDH-like compound is a composite hydroxide and / or composite oxide of Ti, Y, the additional element M, optionally Al, and optionally Mg. The additional element M is In, Bi, Ca, Sr, Ba, or a combination thereof. While the above elements may be replaced with other elements or ions to the extent that the basic properties of the LDH-like compound are not impaired, it is preferred that the LDH-like compound does not contain Ni.

[0037] In the LDH separator according to the above aspect (b), the atomic ratio of Ti / (Mg+Al+Ti+Y+M) in the LDH-like compound, as determined by energy dispersive X-ray analysis (EDS), is preferably 0.50 to 0.85, more preferably 0.56 to 0.81. The atomic ratio of Y / (Mg+Al+Ti+Y+M) in the LDH-like compound is preferably 0.03 to 0.20, more preferably 0.07 to 0.15. The atomic ratio of M / (Mg+Al+Ti+Y+M) in the LDH-like compound is preferably 0.03 to 0.35, more preferably 0.03 to 0.32. The atomic ratio of Mg / (Mg+Al+Ti+Y+M) in the LDH-like compound is preferably 0 to 0.10, more preferably 0 to 0.02. The atomic ratio of Al / (Mg+Al+Ti+Y+M) in the LDH-like compound is preferably 0 to 0.05, more preferably 0 to 0.04. Within the above range, the alkali resistance is more excellent, and the effect of suppressing short circuits caused by zinc dendrites (i.e., dendrite resistance) can be more effectively realized. Incidentally, LDHs conventionally known for LDH separators are represented by the general formula: M 2+ 1-x M 3+ x (OH)2A n- x / n ·mH2O (in the formula, M 2+ is a divalent cation, M 3+ is a trivalent cation, and A n-is an n-valent anion, n is an integer of 1 or more, x is 0.1 to 0.4, and m is 0 or more. In contrast, the atomic ratios in the LDH-like compounds generally deviate from the general formula of LDH. Therefore, it can be said that the LDH-like compounds in this embodiment generally have compositional ratios (atomic ratios) different from those of conventional LDH. Note that EDS analysis is preferably performed using an EDS analyzer (e.g., X-act, manufactured by Oxford Instruments) by 1) capturing images at an accelerating voltage of 20 kV and a magnification of 5,000x, 2) analyzing three points spaced about 5 μm apart in point analysis mode, 3) repeating the above steps 1) and 2) once more, and 4) calculating the average value of the six points in total.

[0038] According to yet another preferred embodiment (c) of the present invention, the LDH-like compound is a hydroxide and / or oxide having a layered crystal structure containing Mg, Ti, Y, and optionally Al and / or In, and the LDH-like compound may exist in the form of a mixture with In(OH)3. The LDH-like compound of this embodiment is a hydroxide and / or oxide having a layered crystal structure containing Mg, Ti, Y, and optionally Al and / or In. Therefore, a typical LDH-like compound is a composite hydroxide and / or composite oxide of Mg, Ti, Y, optionally Al, and optionally In. The In contained in the LDH-like compound may not only be intentionally added to the LDH-like compound, but may also be unavoidably mixed into the LDH-like compound due to the formation of In(OH)3, etc. While the above elements may be replaced with other elements or ions to the extent that the basic properties of the LDH-like compound are not impaired, it is preferable that the LDH-like compound does not contain Ni. Conventionally known LDHs for LDH separators are represented by the general formula: M 2+ 1-x M 3+ x (OH)2A n- x / n ·mH2O (in the formula, M 2+ is a divalent cation, M 3+ is a trivalent cation, and A n-is an n-valent anion, n is an integer of 1 or more, x is 0.1 to 0.4, and m is 0 or more. In contrast, the atomic ratios in LDH-like compounds generally deviate from the above general formula of LDH. Therefore, it can be said that the LDH-like compounds in this embodiment generally have compositional ratios (atomic ratios) different from those of conventional LDHs.

[0039] The mixture according to the above aspect (c) contains not only an LDH-like compound but also In(OH)3 (typically composed of an LDH-like compound and In(OH)3). The inclusion of In(OH)3 can effectively improve the alkali resistance and dendrite resistance of the LDH separator. The content of In(OH)3 in the mixture is preferably an amount that can improve the alkali resistance and dendrite resistance without substantially impairing the hydroxide ion conductivity of the LDH separator, and is not particularly limited. In(OH)3 may have a cubic crystal structure, or may have a structure in which In(OH)3 crystals are surrounded by the LDH-like compound. In(OH)3 can be identified by X-ray diffraction.

Claims

1. a positive electrode plate including a positive electrode active material layer; a negative electrode plate including a negative electrode active material layer containing at least one selected from the group consisting of zinc, zinc oxide, zinc alloys, and zinc compounds; a nonwoven fabric covering or enveloping each of the positive electrode plate and the negative electrode plate; a hydroxide ion conductive separator that separates the positive electrode plate and the negative electrode plate so as to be conductive with hydroxide ions; An electrolyte; and a battery container that houses the unit cell, the positive electrode plate, the negative electrode plate, and the hydroxide ion conductive separator are each arranged vertically, and excess electrolyte is always stored at the bottom of the battery container in an amount that results in a liquid level that is lower than the lower ends of the positive electrode plate and the negative electrode plate, regardless of changes in the liquid amount due to charging and discharging; A zinc secondary battery in which the nonwoven fabric covering or enveloping the positive electrode plate has a downward extension that can come into contact with the excess electrolyte, and the lower end of the downward extension is always located below the liquid level of the excess electrolyte regardless of changes in the amount of liquid due to charging and discharging, thereby allowing the nonwoven fabric to absorb the excess electrolyte upward from the lower end through capillary action caused by itself.

2. The nonwoven fabric in contact with one side of the positive electrode plate and the nonwoven fabric in contact with the other side of the positive electrode plate are sealed to each other by heat welding in part of their downward extensions to form a welded portion, while the remaining part of the downward extension is an unwelded portion that is not heat welded, and the lower end of the unwelded portion is always located below the liquid level of the excess electrolyte.

3. The zinc secondary battery according to claim 1 or 2, wherein the nonwoven fabric has a thickness of 50 to 150 μm.

4. The zinc secondary battery according to any one of claims 1 to 3, wherein the nonwoven fabric is made of at least one material selected from polyolefin, cellulose, and vinylon.

5. The zinc secondary battery according to any one of claims 1 to 4, wherein the negative electrode plate is covered or wrapped with the hydroxide ion conductive separator from the outside of the nonwoven fabric that covers or wraps the negative electrode plate.

6. 6. The zinc secondary battery according to claim 1, wherein the hydroxide ion-conducting separator is an LDH separator containing a layered double hydroxide (LDH) and / or an LDH-like compound.

7. The zinc secondary battery described in claim 6, wherein the LDH separator further comprises a porous substrate, and the LDH and / or LDH-like compound is composited with the porous substrate in a form filled in the pores of the porous substrate.

8. The zinc secondary battery according to claim 7 , wherein the porous substrate is made of a polymer material.

9. The zinc secondary battery according to any one of claims 1 to 8, wherein the positive electrode active material layer contains nickel hydroxide and / or nickel oxyhydroxide, thereby forming the zinc secondary battery as a nickel-zinc secondary battery.

10. The zinc secondary battery according to any one of claims 1 to 8, wherein the positive electrode active material layer is an air electrode layer, thereby forming the zinc secondary battery into an air-zinc secondary battery.

11. 11. The zinc secondary battery according to claim 1, comprising a plurality of the unit cells, the plurality of unit cells forming a multi-layer cell as a whole.

Citation Information

Patent Citations

  • Metal fuel cell

    JP2010073338A

  • Eco magnesium air battery

    JP2015082497A

  • Zinc secondary cell

    WO2013118561A1

  • Method for forming layered double hydroxide dense membrane

    WO2016067884A1

  • Separator structure body for use in zinc secondary battery

    WO2016076047A1