Alkaline electrochemical cell comprising increased zinc oxide level

By integrating solid zinc oxide or zinc hydroxide into the anode and dissolving it in the electrolyte, the battery's zinc utilization is enhanced, overcoming the passivation layer issue and improving performance in high-drain devices.

JP2025168363AActive Publication Date: 2025-11-07ENERGIZER BRANDS LLC
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Patent Information

Application Number
JP2025134321
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2019-11-05
Filing Date
2025-08-12
Publication Date
2025-11-07
Estimated Expiration
2040-01-23

AI Technical Summary

Technical Problem

Alkaline electrochemical batteries face performance limitations due to the formation of a passivation layer from zinc oxide during discharge, which inhibits efficient zinc utilization, particularly in high-drain devices.

Method used

Incorporating solid zinc oxide or zinc hydroxide into the anode and dissolving zinc oxide or zinc hydroxide in the electrolyte solution to enhance zinc utilization, with optional cationic or anionic substitution to improve solubility and conductivity.

Benefits of technology

Enhances specific capacity and run time by increasing zinc utilization efficiency, addressing the passivation issue and improving battery performance in high-drain devices.

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Abstract

To provide an alkaline electrochemical battery.SOLUTION: Alkaline electrochemical cells are provided, wherein dissolved zinc oxide or zinc hydroxide is included at least in the free electrolyte solution, and / or solid zinc oxide or zinc hydroxide is included in the anode, so as to slow formation of a zinc oxide passivation layer on a zinc electrode. Methods for preparing such cells are also provided.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of U.S. Provisional Patent Application No. 62 / 795,750, filed January 23, 2019, and U.S. Patent Application No. 16 / 674,828, filed November 5, 2019, the contents of which are hereby incorporated by reference in their entireties. [Background technology]

[0002] Alkaline electrochemical batteries are commercially available in cell sizes known as LR6 (AA), LR03 (AAA), LR14 (C), and LR20 (D). The batteries have a cylindrical shape that must comply with dimensional standards set by organizations such as the International Electrochemical Commission. Electrochemical batteries are utilized by consumers to power a wide range of electrical devices, such as clocks, radios, toys, electronic games, film cameras commonly containing flashlight units, and digital cameras. Such electrical devices possess a wide range of discharge conditions, such as low drain to relatively high drain. Due to the increasing use of high drain devices such as digital cameras, it is desirable for manufacturers to produce batteries that possess desirable high drain discharge characteristics.

[0003] Because the shape and size of batteries are often fixed, battery manufacturers must modify the battery characteristics to provide performance improvements. Attempts to address the problem of how to improve battery performance in a particular device, such as a digital camera, have typically involved changes to the battery's internal construction. For example, battery construction has been modified by increasing the amount of active material utilized within the battery.

[0004] Zinc (Zn) is a well-known substance commonly used as the active anode material in electrochemical cells, such as dry cell batteries. During discharge of an electrochemical cell, zinc is oxidized to form zinc oxide (ZnO). This zinc oxide reaction product forms a passivation layer that can inhibit the efficient discharge of the remaining zinc, reducing battery performance. Summary of the Invention [Problem to be solved by the invention]

[0005] It is with the objective of overcoming the limitations of the above-mentioned and other such batteries that embodiments of the present invention are designed. [Means for solving the problem]

[0006] An embodiment is an alkaline electrochemical cell including: a) a container; and b) an electrode assembly disposed within the container and including a cathode, an anode, a separator positioned between the cathode and the anode, and a free electrolyte solution, wherein the anode includes 1) solid zinc, and 2) solid zinc oxide or solid zinc hydroxide, and the free electrolyte solution includes dissolved zinc oxide or dissolved zinc hydroxide. [Brief explanation of the drawings]

[0007] [Figure 1] 1 is a cross-sectional elevation view of an embodiment of an alkaline electrochemical cell. [Figure 2A] 1 is a photograph of a control anode according to embodiments described herein. [Figure 2B] 1 is a photograph of an anode according to an embodiment described herein. [Figure 3A] This is an enlarged photograph of the photograph in FIG. 2A. [Figure 3B] This is an enlarged photograph of the photograph in FIG. 2B. DETAILED DESCRIPTION OF THE INVENTION

[0008] Various embodiments will now be described more fully below with reference to the accompanying drawings, which illustrate some, but not all, embodiments. Indeed, various embodiments may be embodied in many different forms and should not be construed as limited to the embodiments set forth herein; rather, these embodiments are provided so that this disclosure will satisfy applicable legal requirements. Like numbers refer to like elements throughout. In the following description, various components may be described as having specific values ​​or parameters, but these items are provided as exemplary embodiments. In fact, many equivalent parameters, sizes, ranges, and / or values ​​may be implemented, and these exemplary embodiments do not limit various aspects and concepts thereof. Terms such as "first" and "second," "primary," "exemplary," and "secondary," etc., do not denote any order, quantity, or importance, but rather are used to distinguish one element from another. Furthermore, the terms "a," "an," and "the" do not denote a limitation of quantity, but rather denote the presence of "at least one" of the referenced items.

[0009] It is contemplated that each embodiment disclosed herein is applicable to each of the other disclosed embodiments. All combinations and subcombinations of the various elements described herein are within the scope of the embodiments.

[0010] When providing a parameter range, it is understood that all integers and ranges within that range, and tenths and hundredths thereof, are also contemplated by embodiments of the present disclosure. For example, "5-10%" includes 5%, 6%, 7%, 8%, 9%, and 10%, as well as 5.0%, 5.1%, 5.2%,...9.8%, 9.9%, and 10.0%, as well as 5.00%, 5.01%, 5.02%,...9.98%, 9.99%, and 10.00%, including, for example, 6-9%, 5.1%-9.9%, and 5.01%-9.99%.

[0011] As used herein, "about" in the context of a numerical value or range means a range of plus or minus 10% of the recited or claimed numerical value or range.

[0012] As used herein, "total battery electrolyte mass" means the total mass of electrolyte in the battery, and "total battery electrolyte concentration" means the total concentration of electrolyte in the battery. The total battery electrolyte concentration can be determined according to the calculation (total battery electrolyte mass) / (total battery electrolyte mass + total water mass in the battery), multiplied by 100 when reported as a percentage. The total additive weight percent in the total battery electrolyte solution can be determined by the calculation (total mass of additives in the battery) / (total mass of additives in the battery + total battery electrolyte mass + total water mass in the battery) x 100.

[0013] As used herein, the "total weight percent" of zinc compounds in a battery or portion thereof refers to the total weight of zinc compounds in the battery or portion thereof compared to the total mass or weight of the zinc compounds, electrolyte, and water. For example, the "total zinc oxide weight percent" of a battery is calculated as (zinc oxide mass) / (zinc oxide mass + electrolyte mass + water mass) x 100%.

[0014] The "total dissolved zinc oxide weight percent" in the entire battery electrolyte is calculated as (mass dissolved zinc oxide in battery) / (mass dissolved zinc oxide in battery + mass electrolyte in battery + mass water in battery) × 100%. This measurement does not take into account the mass of solid (i.e., undissolved) zinc oxide in the anode.

[0015] As used herein, the "percent electrolyte concentration" of an electrode refers to the total weight of electrolyte in the electrode compared to the total weight of electrolyte and water in the electrode. For example, the "percent KOH by weight" of an electrode is calculated as (mass of KOH in electrode) / (mass of KOH in electrode + mass of water in electrode) x 100%.

[0016] As used herein, "improvement" with respect to specific capacity means that the specific capacity is increased. Generally, an "improvement" in a performance attribute or metric of a material or electrochemical cell means that the performance attribute or metric is different (compared to a different material or electrochemical cell) in a way that a user or manufacturer of the material or cell would find desirable (i.e., lower cost, longer life, delivers more power, is more durable, is easier or quicker to manufacture, etc.).

[0017] As used herein, "specific capacity" means the total amount of charge in an electrochemical cell when discharged at a particular rate. Specific capacity is typically measured in ampere-hours.

[0018] As used herein, "run time" means the length of time that an electrochemical cell will be capable of supplying a certain level of charge.

[0019] As used herein, describing a solution as "X% saturated" with a solute means that it contains X% of the solute, which is the maximum amount of solute that can be dissolved in the solution at the same temperature, pressure, etc., taking into account all other components of the solution (e.g., dissolved electrolytes).

[0020] When describing an electrochemical cell as having "X% overall cell saturation" of a compound, both the compound dissolved in the free electrolyte solution and the presence of that compound in the anode are taken into account. For example, to calculate the overall cell saturation of zinc oxide in an electrochemical cell, it would be necessary to determine the amount of zinc oxide dissolved in the free electrolyte solution along with the solid and dissolved zinc oxide in the anode. This may result in an overall cell saturation percentage that exceeds 100%.

[0021] As used herein, a "zincate ion source" refers to a zincate ion source that, when placed in solution, generates zincate ions (Zn(OH) 2-) refers to any compound that produces zinc oxide (ZnO), zinc hydroxide (Zn(OH)). Non-limiting examples include Zn, zinc oxide (ZnO), and zinc hydroxide (Zn(OH)). In embodiments, the term may refer to only ZnO and Zn(OH).

[0022] An embodiment is an alkaline electrochemical cell including: a) a container; and b) an electrode assembly disposed within the container and including a cathode, an anode, a separator positioned between the cathode and the anode, and a free electrolyte solution, wherein the anode includes 1) solid zinc, and 2) solid zinc oxide or solid zinc hydroxide, and the free electrolyte solution includes dissolved zinc oxide or dissolved zinc hydroxide.

[0023] In an embodiment, the anode comprises solid zinc oxide and the free electrolyte solution comprises dissolved zinc oxide.

[0024] In an embodiment, the free electrolyte solution comprises dissolved zinc oxide in an amount greater than 2.0 weight percent. In yet another embodiment, the free electrolyte solution comprises dissolved zinc oxide in an amount between about 4.0 and 6.5 weight percent.

[0025] In embodiments, the anode comprises a gelled electrolyte prepared by combining a gelling agent with a first aqueous alkaline electrolyte solution comprising an alkali metal hydroxide electrolyte and dissolved zinc oxide. In yet other embodiments, the first aqueous alkaline electrolyte solution comprises dissolved zinc oxide in an amount of ≥2.5, ≥2.6, ≥2.7, ≥2.8, ≥2.9, ≥3.0, ≥3.1, ≥3.2, ≥3.3, ≥3.4, ≥3.5, ≥3.6, ≥3.7, ≥3.8, ≥3.9, or ≥4.0 weight percent. In embodiments, the first aqueous alkaline electrolyte solution comprises dissolved zinc oxide in an amount of about 2.7 to 3.3 weight percent.

[0026] In an embodiment, the cathode includes a second aqueous alkaline electrolyte solution including an alkali metal hydroxide electrolyte and dissolved zinc oxide. In yet another embodiment, the second aqueous alkaline electrolyte solution includes dissolved zinc oxide in an amount of ≧2.5, ≧2.6, ≧2.7, ≧2.8, ≧2.9, ≧3.0, ≧3.1, ≧3.2, ≧3.3, ≧3.4, ≧3.5, ≧3.6, ≧3.7, ≧3.8, ≧3.9, or ≧4.0 weight percent. In yet another embodiment, the second aqueous alkaline electrolyte solution includes dissolved zinc oxide in an amount of about 2.5 to 4.0 weight percent or about 2.7 to 3.3 weight percent.

[0027] In an embodiment, the first aqueous alkaline electrolyte solution and the second aqueous alkaline electrolyte solution are the same.

[0028] In an embodiment, the total dissolved zinc oxide weight percent in the total cell electrolyte solution of the electrochemical cell is about 1.5 to 4.5 weight percent. In an embodiment, the total zinc oxide weight percent in the total cell electrolyte solution of the electrochemical cell is about 2.0 to 4.0 or about 2.5 to 3.5 weight percent. In an embodiment, the total zinc oxide weight percent in the total cell electrolyte solution of the electrochemical cell is higher than about 4.5 weight percent. In an embodiment, the total zinc oxide weight percent in the total cell electrolyte solution of the electrochemical cell is about 0.5 to 4.5 weight percent, about 0.5 to 3.0 weight percent, or about 0.5 to 2.0 weight percent.

[0029] In an embodiment, the total cell electrolyte of the electrochemical cell is saturated with dissolved zinc oxide at more than 40%.

[0030] In an embodiment, solid zinc oxide or solid zinc hydroxide is replaced and includes a cationic substituent or an anionic substituent, and the substituted solid zinc oxide or the substituted solid zinc hydroxide is less soluble than the unsubstituted solid zinc oxide or the substituted solid zinc hydroxide.

[0031] In an embodiment, the substituted solid zinc oxide is Zn 1-x Y xIt has the chemical formula of O.

[0032] In an embodiment, the substituted solid zinc hydroxide has the chemical formula of Zn 1-x Y x (OH)2 when Y is at least one cationic substituent and 0 < x ≦ 0.50.

[0033] In an embodiment, the substituted solid zinc oxide has the chemical formula of ZnO 1-w A (2w / z) when A is at least one anionic substituent, 0 < w ≦ 0.50, and z is the charge of the anionic substituent.

[0034] In an embodiment, the substituted solid zinc hydroxide has the chemical formula of Zn(OH) 2-w A (w / z) when A is at least one anionic substituent, 0 < w ≦ 0.50, and z is the charge of the anionic substituent.

[0035] In an embodiment, the substituted solid zinc oxide has the chemical formula of Zn 1-x Y x O 1-w (OH) 2w when Y is at least one cationic substituent, 0 < x ≦ 0.50, and 0 < w ≦ 0.50.

[0036] In an embodiment, the substituted solid zinc oxide is a mixed oxide hydroxide that is cation-substituted and anion-substituted. In yet another embodiment, the mixed oxide hydroxide that is cation-substituted and anion-substituted has the chemical formula of Zn 1-x Y x O 1-w-t (OH) 2w A (2t / z) when Y is at least one cationic substituent, 0 < x ≦ 0.50, A is at least one anionic substituent, 0 < w ≦ 0.50, 0 < t ≦ 0.50, and z is the charge of the anionic substituent.

[0037] In embodiments, the cationic substituents are selected from the group consisting of Mg, Ca, Bi, Ba, Al, Si, Be, Cd, Ni, Co, Sn, and Sr, and any combination thereof.

[0038] In embodiments, the anionic substituent is CO 2- and PO4 3- and any combination thereof.

[0039] In embodiments, the anode comprises solid zinc oxide in an amount of about 0.2 to 5 volume percent based on its total volume. In embodiments, the anode comprises solid zinc oxide in an amount of about 0.3 to 1.5 volume percent based on its total volume. In embodiments, the anode comprises solid zinc oxide in an amount of about 0.66 volume percent based on its total volume.

[0040] In embodiments, the alkaline electrochemical cell includes a total zinc oxide weight percent of about 3.0-8.8%. In embodiments, the alkaline electrochemical cell includes a total zinc oxide weight percent of about 3.0-4.0%, about 4.0-5.0%, about 5.0-6.0%, about 6.0-7.0%, about 7.0-8.0%, and about 8.0-9.0%. In embodiments, the alkaline electrochemical cell includes a total zinc oxide weight percent greater than about 3.0%. In embodiments, the alkaline electrochemical cell includes a total zinc oxide weight percent greater than or equal to about 3.5%, 4.0%, 4.5%, 5.0%, 5.5%, 6.0%, 6.5%, 7.0%, 7.5%, 8.0%, and 8.5%. The alkaline electrochemical cell includes a total zinc oxide weight percent of about 4.75%.

[0041] In embodiments, the anode comprises a percent electrolyte concentration of about 16.0-30.0%. In embodiments, the anode comprises a percent electrolyte concentration of about 18.0-22.0%. In embodiments, the anode comprises a percent electrolyte concentration of less than about 22.0%.

[0042] In an embodiment, the total battery electrolyte concentration is about 26.0-30.0%. In an embodiment, the total battery electrolyte concentration is less than 29.0%.

[0043] In embodiments, the zinc oxide or zinc hydroxide has an overall cell saturation of at least about 40%. In embodiments, the zinc oxide or zinc hydroxide has an overall cell saturation of at least about 40-125%. In embodiments, the zinc oxide or zinc hydroxide has an overall cell saturation of at least about 40-125%. In embodiments, the zinc oxide or zinc hydroxide has an overall cell saturation of at least about 40%, 45%, 50%, 55%, 60%, 70%, 75%, 80%, 85%, 90%, 95%, 100%, 105%, 110%, 115%, 120%, or 125%.

[0044] In an embodiment, the electrochemical cell is a primary battery. In an alternative embodiment, the electrochemical cell is a secondary battery.

[0045] In embodiments, the free electrolyte solution includes potassium hydroxide (KOH), sodium hydroxide (NaOH), lithium hydroxide (LiOH), magnesium hydroxide (Mg(OH)), calcium hydroxide (Ca(OH)), magnesium perchlorate (Mg(ClO)), magnesium chloride (MgCl), or magnesium bromide (MgBr).

[0046] In embodiments, the alkaline electrochemical cell has a specific capacity or run time that is higher than that of a similar alkaline electrochemical cell lacking dissolved zinc oxide in the free electrolyte, hi yet other embodiments, the specific capacity or run time is from greater than 1% to greater than 100%, from greater than 5% to greater than 90%, from greater than 10% to greater than 80%, from greater than 15% to greater than 70%, from greater than 20% to greater than 60%, from greater than 25% to greater than 50%, or from greater than 30% to greater than 40%.

[0047] In embodiments, the battery has a voltage between 0.1V and 2.0V, 0.2V and 1.9V, 0.3V and 1.8V, 0.4V and 1.7V, 0.5V and 1.6V, 0.6V and 1.5V, 0.7V and 1.4V, 0.8V and 1.3V, 0.9V and 1.2V, 1.0V and 1.1V, or is 0.1V, 0.2V, 0.3V, 0.4V, 0.5V, 0.6V, 0.7V, 0.8V, 0.9V, 1.0V, 1.1V, 1.2V, 1.3V, 1.4V, 1.5V, 1.6V, 1.7V, 1.8V, 1.9V, or 2.0V.

[0048] The embodiments may be better understood with reference to FIG. 1 , which shows in elevational cross-section a cylindrical battery 1 that is particularly well-suited for the embodiments, with the battery having a nail- or bobbin-type configuration and dimensions comparable to conventional LR6 (AA)-sized alkaline batteries. However, it should be understood that batteries according to these embodiments can have other sizes and shapes, such as prismatic or button-type shapes, and electrode configurations known in the art. The materials and designs for the electrochemical cell components shown in FIG. 1 are for illustrative purposes, and other materials and designs can be substituted. Furthermore, in certain embodiments, the cathode and anode materials can be coated onto the surfaces of the separator and / or current collector and wound to form a “jelly roll” configuration.

[0049] FIG. 1 shows an electrochemical cell 1 including a container or can 10 having a closed bottom end 24, a top end 22, and a sidewall 26 therebetween. The closed bottom end 24 includes a terminal cover 20 that includes a protrusion. The can 10 has an interior wall 16. In this embodiment, the positive terminal cover 20 is welded or otherwise attached to the bottom end 24. In one embodiment, the terminal cover 20 may be formed using plated steel, for example, having a protruding hump in its central region. The container 10 may preferably be formed of a metal such as steel internally plated with nickel, cobalt, and / or other metals or alloys, or other material having sufficient structural properties to accommodate various packing materials within an electrochemical cell. A label 28 may be formed around the exterior of the container 10 and on the periphery of the positive terminal cover 20 and the negative terminal cover 46, so long as the negative terminal cover 46 is electrically insulated from the container 10 and the positive terminal 20.

[0050] Disposed within container 10 are first electrode 18 and second electrode 12 with separator 14 sandwiched therebetween. First electrode 18 is disposed within a space defined by separator 14 and a closure assembly 40 secured to open end 22 of container 10. Closed end 24, sidewall 26, and closure assembly 40 define a cavity in which the battery's electrodes are housed.

[0051] The closure assembly 40 includes a closure member 42, such as a gasket, a current collector 44, and a conductive terminal 46 in electrical contact with the current collector 44. The closure member 42 preferably includes a pressure relief vent that will rupture the closure member if the battery's internal pressure becomes excessive. The closure member 42 can be formed from a polymeric or elastomeric material, e.g., nylon-6,6 or nylon-6,12, an injection-moldable polymer blend such as a polypropylene matrix combined with poly(phenylene oxide) or polystyrene, or another material such as a metal, so long as the current collector 44 and conductive terminal 46 are electrically insulated from the container 10, which serves as a current collector for the second electrode 12. In the illustrated embodiment, the current collector 44 is an elongated, nail- or bobbin-shaped component. The current collector 44 is fabricated from a metal or metal alloy, such as copper or brass, a conductively plated metal or plastic collector, or the like. Other suitable materials may be utilized. The current collector 44 is inserted through a preferably centrally located hole in the closure member 42 .

[0052] First electrode 18 is preferably the negative electrode or anode. The negative electrode comprises a mixture of zinc (as the active material), a conductive material, solid zinc oxide, and a surfactant. The negative electrode may optionally include other additives, such as binders or gelling agents. Preferably, the volume of active material utilized in the negative electrode is sufficient to maintain desirable particle-to-particle contact and a desirable anode to cathode (A:C) ratio.

[0053] Interparticle contact must be maintained throughout the useful life of the battery. If the volume of active material in the negative electrode is too small, the battery's voltage may suddenly drop to an unacceptably low value when the battery is powering a device. This voltage drop is believed to be caused by a loss of continuity in the negative electrode's conductive matrix. The conductive matrix can be formed from undischarged active material particles, electrochemically formed conductive oxides, or a combination thereof. The voltage drop may occur after oxide formation begins but before a sufficient network has formed bridging between all of the active material particles present.

[0054] Zinc suitable for use in the above-described embodiments can be purchased from several different commercial sources under various designations, such as BIA100 and BIA115. Umicore SA of Brussels, Belgium, is an example of a zinc supplier. In a preferred embodiment, the zinc powder has approximately 25 to 40 percent fine particles smaller than 75 μm, preferably 28 to 38 percent. Generally, a lower percentage of fine particles will not result in desirable DSC operation, and a higher percentage of fine particles may result in increased gassing. The proper zinc alloy is necessary to reduce negative electrode gassing in the battery and maintain test operation results.

[0055] A surfactant is present in the negative electrode, which may be either a nonionic or anionic surfactant, or a combination thereof. In an embodiment, the surfactant is a phosphate ester surfactant. Addition of solid zinc oxide alone increases anode resistance during discharge, but this is mitigated by the addition of a surfactant. The addition of a surfactant increases the surface charge density of the solid zinc oxide, reducing the anode resistance as shown above. The use of a surfactant is believed to help form a more porous discharge product when the surfactant accumulates on the outer surface of the solid zinc oxide. Surfactants are negatively charged when anionic, and in alkaline solutions, surfactant adsorbed onto the surface of the solid zinc oxide is believed to change the surface charge density of the solid zinc oxide particles. The adsorbed surfactant is believed to result in repulsive electrostatic interactions between the solid zinc oxide particles. The surfactant adsorbed onto the solid zinc oxide results in a high surface charge density on the solid zinc oxide particle surface, thereby reducing the increase in anode resistance caused by the addition of solid zinc oxide. The larger the BET area of ​​the solid zinc oxide, the more surfactant can be adsorbed onto the solid zinc oxide surface. In an embodiment, the surfactant concentration is about 5 to 50 ppm by weight relative to the electrode active material, hi an embodiment, the surfactant concentration is 10 to 20 ppm.

[0056] In an embodiment, the negative electrode contains zinc oxide in an amount from about 0.2 weight percent to 5 weight percent based on the total weight of the negative electrode. In an embodiment, the negative electrode contains zinc oxide in an amount from about 1 weight percent to 4 weight percent. In a preferred embodiment, the negative electrode contains zinc oxide in an amount from about 0.3 weight percent to 1 weight percent. Further, in a preferred embodiment, the negative electrode contains zinc oxide in an amount of about 0.66 weight percent.

[0057] In an embodiment, zinc oxide is substituted to reduce its solubility. In an embodiment, a portion of the zinc in the zinc oxide is substituted with another cation. In an embodiment, the substituted zinc oxide has the chemical formula Zn 1-x Y x O when Y is at least one cation substituent and 0 < x ≤ 0.50. In an embodiment, the cation substituent is selected from the group consisting of Mg, Ca, Bi, Ba, Al, Si, Be, Cd, Ni, Co, Sn, and Sr, and any combination thereof. In an embodiment, x is 0.01 - 0.40, 0.02 - 0.35, 0.04 - 0.30, 0.05 - 0.25, or 0.10 - 0.20. In an embodiment, x is ≥ 0.01, ≥ 0.02, ≥ 0.04, ≥ 0.06, ≥ 0.08, ≥ 0.10, ≥ 0.12, ≥ 0.14, ≥ 0.16, ≥ 0.18, ≥ 0.20, ≥ 0.25, ≥ 0.30, ≥ 0.35, or ≥ 0.40.

[0058] In an embodiment, a portion of the oxygen in the zinc oxide is substituted with another anion. In an embodiment, the substituted zinc oxide has the chemical formula ZnO 1-w A (2w / z) when A is at least one anion substituent, 0 < w ≤ 0.50, and z is the charge of the anion substituent. In an embodiment, the anion substituent is CO3 2- and PO4 3-and any combination thereof. In embodiments, w is 0.01 to 0.40, 0.02 to 0.35, 0.4 to 0.30, 0.05 to 0.25, or 0.10 to 0.20. In embodiments, w is ≧0.01, ≧0.02, ≧0.04, ≧0.06, ≧0.08, ≧0.10, ≧0.12, ≧0.14, ≧0.16, ≧0.18, ≧0.20, ≧0.25, ≧0.30, ≧0.35, or ≧0.40. In embodiments, the solid zinc oxide comprises a cationic substituent and an anionic substituent.

[0059] The aqueous alkaline electrolyte solution (or simply "aqueous electrolyte solution") includes an alkali metal hydroxide, such as potassium hydroxide (KOH) or sodium hydroxide (NaOH), or a mixture thereof. Potassium hydroxide is preferred. The alkaline electrolyte used to form the gel electrolyte of the negative electrode contains from about 16 to about 36 weight percent, e.g., from about 16 to about 28 weight percent, particularly from about 18 to about 22 weight percent, or about 20 weight percent, of the alkali metal hydroxide, based on the total weight of the alkaline electrolyte solution. In embodiments, the alkali metal hydroxide is present in an amount between 16 and 36 weight percent. In embodiments, the alkali metal hydroxide is present in an amount greater than or equal to 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, or 36 weight percent. In embodiments, the alkali metal hydroxide is present in an amount less than or equal to 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, or 36 weight percent. In embodiments, the alkali metal hydroxide is present in an amount equal to about 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, or 36 weight percent.

[0060] The aqueous alkaline electrolyte solution also contains dissolved zinc oxide in an amount of from about 1.5 to 4 weight percent based on the total weight of the aqueous alkaline electrolyte solution.

[0061] As is known in the art, a gelling agent is preferably utilized in the negative electrode, e.g., a cross-linked polyacrylic acid such as Carbopol® 940, available from Noveon, Inc., Cleveland, Ohio, USA. Carboxymethyl cellulose, polyacrylamide, and sodium polyacrylate are examples of other gelling agents suitable for use in alkaline electrolyte solutions. The gelling agent is desirable to maintain a substantially uniform dispersion of zinc particles and zinc oxide particles within the negative electrode. The amount of gelling agent present is selected so that a low rate of electrolyte separation is obtained and the anode viscosity at yield stress is not excessively high, which could lead to problems associated with anode distribution.

[0062] Dissolved zinc oxide is preferably present in the anode by dissolution in the aqueous electrolyte solution to improve plating on the bobbin or nail current collector and to reduce gassing during use of the negative electrode. The added dissolved zinc oxide is separate and distinct from the zinc oxide present in the anode composition. In one embodiment, a level of dissolved zinc oxide in an amount of 3 to 4 weight percent based on the total weight of the negative electrode electrolyte solution is preferred. In embodiments, the dissolved zinc oxide is present in the negative electrode electrolyte solution in an amount greater than 3 weight percent. As noted above, soluble zinc oxide or dissolved zinc oxide typically has an area of ​​approximately 4 m2 as measured using a Tristar 3000 BET specific area analyzer with multipoint calibration from Micrometrics after degassing the zinc oxide at 150°C for 1 hour. 2 / g and has a particle size D50 (mean diameter) of about 1 micron as measured using a CILAS size analyzer.

[0063] Other components that may optionally be present in the negative electrode include, but are not limited to, gassing inhibitors, organic or inorganic corrosion inhibitors, plating agents, binders, or other surfactants. Examples of gassing inhibitors or corrosion inhibitors can include indium salts such as indium hydroxide, perfluoroalkylammonium salts, and alkali metal sulfides. In yet another embodiment, sodium silicate is preferably present in the negative electrode in an amount of about 0.3 weight percent based on the total weight of the negative electrode electrolyte to substantially prevent battery short circuits through the separator during battery discharge.

[0064] The negative electrode can be formed in several different ways known in the art: for example, the negative electrode components can be dry mixed and added to the battery, the alkaline electrolyte is added separately, or in preferred embodiments, a pre-gelled negative electrode process is utilized.

[0065] In one embodiment, zinc powder, solid zinc oxide powder, and any other optional powders other than the gelling agent are combined and mixed. A surfactant is then introduced into the mixture containing zinc and solid zinc oxide. A pregel containing alkaline electrolyte solution, soluble zinc oxide, and a gelling agent, and optionally other liquid components, is introduced into the mixture of surfactant, zinc, and solid zinc oxide and further mixed to obtain a substantially uniform mixture before addition to the battery. Alternatively, in yet another preferred embodiment, solid zinc oxide is pre-dispersed in a negative electrode pregel containing alkaline electrolyte, a gelling agent, soluble zinc oxide, and other desired liquids and mixed for, for example, about 15 minutes. The solid zinc oxide and surfactant are then added, and the negative electrode is mixed for an additional period, such as about 20 minutes. The amount of gel electrolyte utilized in the negative electrode is typically about 25 to about 35 weight percent, e.g., about 32 weight percent, based on the total weight of the negative electrode. The volume percent of the gel electrolyte can be about 70% based on the total volume of the negative electrode.

[0066] In addition to the aqueous alkaline electrolyte absorbed by the gelling agent during the negative electrode fabrication process, an additional amount of an aqueous solution of alkali metal hydroxide, i.e., "free electrolyte," is added to the battery during the fabrication process. The free electrolyte can be incorporated into the battery by placing it in the cavity defined by the positive or negative electrode, or a combination thereof. The method used to incorporate the free electrolyte into the battery is not important as long as the free electrolyte is in contact with the negative electrode, positive electrode, and separator. In one embodiment, the free electrolyte is added both before and after the addition of the negative electrode mixture. In one embodiment, approximately 0.97 grams of a 34 weight percent KOH solution is added as free electrolyte to an LR6-type battery, and approximately 0.87 grams is added to the cavity defined by the separator before the negative electrode is inserted. The remainder of the 34 weight percent KOH solution is injected into the cavity defined by the separator after the negative electrode is inserted. This free electrolyte solution contains dissolved zinc oxide in the range of approximately 0.01 to 6.0 weight percent. In embodiments, the free electrolyte solution is about 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1.0, 1.1, 1.2, 1.3, 1.4, 1.5, 1.6, 1.7, 1.8, 1.9, 2.0, 2.1, 2.2, 2.3, 2.4, 2.5, 2.6, 2.7, 2.8, 2.9, 3.0, 3.1, 3.2, 3.3, 3.4, 3.5, 3.6, 3.7, 3.8, 3.9, 4.0, 4.10, 4.11, 4.12, 4.13, 4.14, 4.15, 4.16, 4.17, 4.18, 4.19, 4.20, 4.21, 4.22, 4.23, 4.24, 4.25, 4.26, 4.27, 4.28, 4.29, 5.30, 5.31, 5.32, 5.33, 5.34, 5.35, 5.36, 5.37, 5.38, 5.39, 5.40, 5.41, 5.42, 5.43, 5.44, 5.45, 5.46, 5.47, 5.48, 5.49, 5.50, 5.51, 5.52, 5.53, 5.54, 5.55, 5.56, 5.57, 5.58, 5.59, 5 The free electrolyte solution may contain dissolved zinc oxide in an amount greater than, less than, or equal to 0.6, 3.7, 3.8, 3.9, 4.0, 4.1, 4.2, 4.3, 4.4, 4.5, 4.6, 4.7, 4.8, 4.9, 5.0, 5.1, 5.2, 5.3, 5.4, 5.5, 5.6, 5.7, 5.8, 5.9, 6.0 weight percent, or any range between two of these values. In a preferred embodiment, the free electrolyte solution contains dissolved zinc oxide in an amount between about 4.0 and 6.0 weight percent.The free electrolyte solution can be greater than or equal to about 50%, 51%, 52%, 53%, 54%, 55%, 56%, 57%, 58%, 59%, 60%, 61%, 62%, 63%, 64%, 65%, 66%, 67%, 68%, 69%, 70%, 71%, 72%, 73%, 74%, 75%, 76%, 77%, 78%, 79%, 80%, 81%, 82%, 83%, 84%, 85%, 86%, 87%, 88%, 89%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99%, or 100% saturated with dissolved zinc oxide.

[0067] The second electrode, also referred to herein as the positive electrode or cathode, comprises an electrochemically active material. Electrolytic manganese dioxide (EMD) is a commonly used electrochemically active material and is typically present in an amount of about 80 to about 92 weight percent, preferably about 86 to 92 weight percent, based on the total weight of the positive electrode, i.e., EMD, conductive material, positive electrode electrolyte, and additives, including organic additives, if present. The positive electrode is formed by combining and mixing the desired electrode components, dispensing a quantity of this mixture into the open end of a container, and then using a ram to form the mixture into a solid tubular configuration that defines a cavity within the container into which the separator 14 and first electrode 18 are subsequently placed. The second electrode 12 has a ledge 30 and an inner surface 32, as shown in FIG. 1 . Alternatively, the positive electrode can be formed by preforming a plurality of rings from a mixture containing EMD and, optionally, additives, and then inserting these rings into the container to form a tubular-shaped second electrode. The battery shown in Figure 1 would typically include three or four rings.

[0068] The positive electrode can include other components, such as a conductive material, e.g., graphite, that, when mixed with the EMD, provides a conductive matrix substantially throughout the positive electrode. The conductive material can be natural, i.e., mineral, or synthetic, i.e., manufactured. In one embodiment, the battery includes a positive electrode having an active material or oxide-to-carbon ratio (O:C ratio) ranging from about 12 to about 14. An excessively high oxide-to-carbon ratio reduces the resistance from the container to the cathode, which can affect the overall battery resistance and potentially affect high-rate tests, such as DSC tests, or higher cutoff voltages. Furthermore, the graphite can be expanded or unexpanded. Suppliers of graphite for use in alkaline batteries include Timcal America, Westlake, Ohio, USA; Superior Graphite Company, Chicago, Illinois, USA; and Lonza, Ltd., Basel, Switzerland. The conductive material is typically present in an amount of about 5 to about 10 weight percent based on the total weight of the positive electrode. Too much graphite can reduce EMD loading and therefore battery capacity, while too little graphite can increase the can-to-cathode contact resistance and / or bulk cathode resistance. An example of an additional additive is barium sulfate (BaSO4), available from Bario E. Derivati ​​SpA of Massa, Italy. Barium sulfate is typically present in an amount of about 1 to about 2 weight percent based on the total weight of the positive electrode. Other additives can include, for example, barium acetate, titanium dioxide, binders such as coastylene, and calcium stearate.

[0069] In one embodiment, the positive electrode components (such as EMD), conductive material, and barium sulfate, and optional additives, are mixed together to form a uniform mixture. During the mixing process, an alkaline electrolyte solution, e.g., about 37% to about 40% KOH solution, optionally containing organic additives, is evenly dispersed within the mixture, thereby ensuring uniform dispersion of the solution throughout the positive electrode material. In an embodiment, the alkaline electrolyte solution used to form the cathode contains any amount of dissolved zinc oxide, up to and including a saturated amount. This mixture is then added to a container and molded using a ram. The moisture content and composition of the container and positive electrode mixture before and after molding are preferably optimized to enable molding of a high-quality positive electrode. Optimizing the mixture moisture allows for molding the positive electrode while minimizing spattering and flashing caused by a wet mixture and spalling and excessive tool wear caused by a dry mixture, which helps achieve a desirable high cathode weight. The moisture content within the positive electrode mixture can affect the overall battery electrolyte balance and has implications for high-rate testing.

[0070] One of the parameters utilized by battery designers characterizes a battery design as the ratio of the electrochemical capacity of one electrode to the electrochemical capacity of the opposing electrode, e.g., the anode (A) to cathode (C) ratio, or A:C ratio. In an LR6-type alkaline primary battery utilizing zinc in the negative electrode or anode and MnO2 in the positive electrode or cathode, the A:C ratio can be greater than 1.32:1, e.g., greater than 1.34:1, and particularly 1.36:1 for impact-molded positive electrodes. The A:C ratio for ring-molded positive electrodes can be lower, such as from about 1.3:1 to about 1.1:1.

[0071] The separator 14 is provided to separate the first electrode 18 from the second electrode 12. The separator 14 maintains a physical dielectric separation of the electrochemically active material of the positive electrode from the electrochemically active material of the negative electrode, allowing ion transport between the electrode materials. Additionally, the separator functions as a wicking medium for the electrolyte and as a collar to prevent fragmented portions of the negative electrode from contacting the top of the positive electrode. The separator 14 can be a layered, ion-permeable nonwoven fabric. A typical separator typically includes two or more layers of paper. Conventional separators are typically formed either by preforming the separator material into a cup-shaped basket that is subsequently inserted beneath the cavity defined by the second electrode 12, its closed end 24, and any positive electrode material thereon, or by inserting two rectangular separator sheets into the cavity with the materials rotated 90° relative to each other during battery assembly. Conventional pre-formed separators typically consist of a nonwoven sheet that is rolled into a cylindrical shape that fits against the inner wall of the second electrode and has a closed bottom end.

[0072] The above cited references, as well as all references cited herein, are hereby incorporated by reference in their entirety.

[0073] While the embodiments have been illustrated and described in detail above, such illustration and description are to be considered illustrative or exemplary and not restrictive. It will be understood that changes and modifications may be made by those skilled in the art within the scope and spirit of the following claims. In particular, the embodiments include any combination of features from the various embodiments described above and below.

[0074] The embodiments are further described with reference to the following illustrative, non-limiting examples that provide a clearer understanding of the embodiments and their many advantages. The following examples are included to specify preferred embodiments. It should be appreciated by those skilled in the art that the techniques disclosed in the following examples represent techniques used in the embodiments that function well in practicing the embodiments, and therefore can be considered to constitute preferred modes for practicing them. However, those skilled in the art should, in light of the present disclosure, appreciate that many changes can be made to the specific embodiments disclosed without departing from the spirit and scope of the above-described embodiments and still obtain a like or similar result.

[0075] Discussion and Examples

[0076] Discharge of a zinc-based battery involves the oxidation of zinc at the anode, resulting in the formation of zinc oxide as described above. The zinc oxide reaction product forms a passivation layer that inhibits efficient discharge of the remaining zinc. The addition of dissolved ZnO (both in the free electrolyte solution and in the solution contained in the anode) and supplemental solid ZnO (within the anode) encourages this reaction product to deposit elsewhere. Preventing the passivation layer from coating the anode allows for better utilization of the zinc. This results in substantial improvements in run time during high-rate testing, particularly in digital still camera (DSC) ANSI standard testing.

[0077] Furthermore, nickel metal hydride (NiMH) chargers are not intended to charge primary alkaline batteries. Charging can create adverse conditions that can lead to battery leakage. In particular, constant current charging can lead to water decomposition until a safety mechanism releases the electrolyte, resulting in gas generation and high internal pressure. Zn(OH)4 2-The addition of a source of zinc oxide allows the battery to apply current at a voltage that prevents water decomposition, thereby delaying the possibility of leakage. This delay is achieved according to embodiments of the present invention, namely, by saturating or nearly saturating the electrolyte with dissolved zinc oxide and adding additional zinc oxide as a solid to the anode formulation. Larger amounts of zinc oxide will further delay the possibility of water decomposition.

[0078] Although much of the discussion herein refers to adding zinc oxide to the electrodes and electrolyte solution, other compounds that function as a source of zincate ions can be used instead of or in addition to zinc oxide. For example, embodiments described herein can include Zn(OH) in the electrodes and / or electrolyte solution instead of or in addition to zinc oxide.

[0079] Comparison of surface passivation at anodes with and without zinc oxide additions.

[0080] Two anodes were prepared to compare passivation with zinc oxide anodes with and without added solid zinc oxide. The compositions of the control and the anodes are shown in Table 1 below.

[0081] (Table 1) Table 1: Anode and free electrolyte compositions for surface passivation comparison TIFF2025168363000002.tif28155

[0082] Both anodes were discharged, and the surfaces of the discharged anodes after 56 and 76 minutes of digital still camera (DSC) testing can be seen in Figure 2A (control anode) and Figure 2B (zinc oxide-added anode), respectively. It is clear that the discharge reaction and reaction products are preferentially located around the anode near the separator.

[0083] 3A and 3B are further magnified images of the reaction zone for the control anode and the zinc oxide-added anode. Under closer magnification, the zinc particles in the control are covered with ZnO (i.e., passivated). For the solid zinc oxide-added anode, the ZnO reaction product precipitates at nucleation sites seeded by the added solid zinc oxide. Thus, the zinc surface is left clean and available for the discharge reaction. Higher ZnO levels and pre-saturation increase the probability that deposition will occur away from the zinc surface.

[0084] Digital still camera (DSC) testing

[0085] To test the benefits of adding solid zinc oxide to the anode versus dissolving zinc oxide in the electrolyte solution, digital still camera (DSC) tests were performed on various electrochemical cells. Each cell was tested to determine the amount of time required to reduce the cell voltage to 1.05 V. The results are shown in Table 2 below.

[0086] (Table 2) Table 2: DSC test results TIFF2025168363000003.tif60155

[0087] The addition of zinc oxide to the electrolyte solution and anode individually (in Battery 2 and Battery 3, respectively) has been shown to have a beneficial effect compared to Battery 1 (containing 1 wt. % ZnO in the electrolyte solution and no added solid ZnO). However, the combination of both (in Battery 4) shows a dramatic increase in performance in DSC tests. The interaction of both of these added zinc oxides caused a 59% increase compared to Battery 1 within the time that DSC tests could be performed on the cells. This result was not expected given the modest benefits shown in Battery 2 and Battery 3.

[0088] Relationship between zinc oxide and potassium hydroxide levels and battery swelling

[0089] Corrosion from zinc present in the electrodes can cause gas evolution, increasing the internal pressure of the battery. This can cause the battery to swell and subsequently explode during storage or while the battery is in use. This corrosion can also reduce the battery's run time. A comparison of batteries with relatively high and low levels of zinc oxide and high and low anode potassium hydroxide percentages was conducted to observe how these relative levels affect electrochemical cell swelling. The total zinc oxide saturation percentages in the table below take into account both the zinc oxide actually dissolved in the electrolyte solution and the solid zinc oxide in the anode, which is why the percentages may be greater than 100%. These batteries were prepared and then stored at 80°C for 8 weeks to simulate long-term aging at room temperature. Instead of directly measuring the internal pressure of the battery, the swelling in each battery was observed in units of mils (1 / 1000 of an inch). The results are shown in Table 3.

[0090] (Table 3) Table 3: Comparison of swelling of aged cells with varying levels of anode electrolyte concentration and cell ZnO saturation TIFF2025168363000004.tif34155

[0091] Lower KOH levels resulted in reduced cell swelling for both higher and lower levels of ZnO, i.e., it was found that reducing the KOH percentage in the anode allowed for increased run time by allowing increased levels of ZnO through mitigation of gassing problems caused by this increase.

[0092] Numerous modifications and other embodiments will occur to those skilled in the art having the benefit of the teachings of the present invention as set forth in the foregoing description and the associated drawings and in connection with the above-described embodiments. It is therefore to be understood that these embodiments are not limited to the specific embodiments disclosed, and that modifications and other embodiments are intended to be included within the scope of the claims and the list of embodiments disclosed herein. Although specific terms have been used herein, these terms are used in a generic and descriptive sense only and not for purposes of limitation. With respect to the embodiments described in this application, each embodiment disclosed herein is construed as being applicable to each of the other embodiments disclosed. For example, while this application describes embodiments primarily comprising solid zinc oxide and dissolved zinc oxide, similar embodiments in which all or a portion of the solid zinc oxide and / or dissolved zinc oxide is replaced by zinc hydroxide are also considered to be within the scope of these embodiments. [Explanation of symbols]

[0093] 1. Electrochemical Cell 10 Containers or cans 14 Separator 24 Closed bottom end 40 Closure Assembly

Claims

1. 1. An alkaline electrochemical cell comprising: a) a container, and b) an electrode assembly disposed within the container and including a cathode, an anode, a separator positioned between the cathode and the anode, and a free electrolyte solution; Including, the anode comprises 1) solid zinc, and 2) solid zinc oxide or solid zinc hydroxide, and the free electrolyte solution comprises dissolved zinc oxide or dissolved zinc hydroxide; A battery characterized by:

2. 10. The alkaline electrochemical cell of claim 1 wherein the anode comprises solid zinc oxide and the free electrolyte solution comprises dissolved zinc oxide.

3. 3. The alkaline electrochemical cell of claim 2 wherein said free electrolyte solution contains greater than 2.0 weight percent dissolved zinc oxide.

4. 4. The alkaline electrochemical cell of claim 3, wherein said free electrolyte solution comprises dissolved zinc oxide in an amount of about 4.0 to 6.5 weight percent.

5. 5. The alkaline electrochemical cell of claim 1, wherein the anode comprises a gelled electrolyte prepared by combining a gelling agent with a first aqueous alkaline electrolyte solution, the first aqueous alkaline electrolyte solution comprising an alkali metal hydroxide electrolyte and dissolved zinc oxide.

6. 6. The alkaline electrochemical cell of claim 5, wherein the first aqueous alkaline electrolyte solution comprises dissolved zinc oxide in an amount of ≥ 2.5, ≥ 2.6, ≥ 2.7, ≥ 2.8, ≥ 2.9, ≥ 3.0, ≥ 3.1, ≥ 3.2, ≥ 3.3, ≥ 3.4, ≥ 3.5, ≥ 3.6, ≥ 3.7, ≥ 3.8, ≥ 3.9, or ≥ 4.0 weight percent.

7. 7. The alkaline electrochemical cell of claim 6, wherein the first aqueous alkaline electrolyte solution comprises dissolved zinc oxide in an amount of about 2.7 to 3.3 weight percent.

8. 8. The alkaline electrochemical cell of claim 1, wherein the cathode comprises a second aqueous alkaline electrolyte solution, the second aqueous alkaline electrolyte solution comprising an alkali metal hydroxide electrolyte and dissolved zinc oxide.

9. 10. The alkaline electrochemical cell of claim 8, wherein the second aqueous alkaline electrolyte solution comprises dissolved zinc oxide in an amount of ≥ 2.5, ≥ 2.6, ≥ 2.7, ≥ 2.8, ≥ 2.9, ≥ 3.0, ≥ 3.1, ≥ 3.2, ≥ 3.3, ≥ 3.4, ≥ 3.5, ≥ 3.6, ≥ 3.7, ≥ 3.8, ≥ 3.9, or ≥ 4.0 weight percent.

10. 10. The alkaline electrochemical cell of claim 9, wherein the second aqueous alkaline electrolyte solution comprises dissolved zinc oxide in an amount of about 2.5 to 4.0 weight percent or about 2.7 to 3.3 weight percent.

11. 11. The alkaline electrochemical cell of any one of claims 8 to 10, wherein the first aqueous alkaline electrolyte solution and the second aqueous alkaline electrolyte solution are the same.

12. 12. The alkaline electrochemical cell of any one of claims 1 through 11, wherein the total dissolved zinc oxide weight percent within the total cell electrolyte solution of the electrochemical cell is between about 1.5 and 4.5 weight percent.

13. 13. An alkaline electrochemical cell according to any one of claims 1 to 12, wherein the entire cell electrolyte of the electrochemical cell is greater than 40% saturated with dissolved zinc oxide.

14. 14. The alkaline electrochemical cell of any one of claims 1 to 13, wherein the solid zinc oxide or solid zinc hydroxide is substituted to include cationic or anionic substituents, the substituted solid zinc oxide or substituted solid zinc hydroxide being less soluble than the unsubstituted solid zinc oxide or unsubstituted solid zinc hydroxide.

15. The substituted solid zinc oxide has the chemical formula Zn 1-x Y x 15. The alkaline electrochemical cell of claim 14, comprising: O, where Y is at least one cationic substituent, and 0<x≦0.

50.

16. The substituted solid zinc hydroxide has the chemical formula Zn 1-x Y x (OH) 2 15. The alkaline electrochemical cell of claim 14, having the formula: where Y is at least one cationic substituent and 0<x≦0.

50.

17. The substituted solid zinc oxide has the chemical formula ZnO 1-w A (2w / z) 15. The alkaline electrochemical cell of claim 14, having the formula: where A is at least one anionic substituent, 0<w≦0.50, and z is the charge of the anionic substituent.

18. The substituted solid zinc hydroxide has the chemical formula Zn(OH) 2-w A (w / z) 15. The alkaline electrochemical cell of claim 14, having the formula: where A is at least one anionic substituent, 0<w≦0.50, and z is the charge of the anionic substituent.

19. The substituted solid zinc oxide has the chemical formula Zn 1-x Y x O 1-w (OH) 2w 15. The alkaline electrochemical cell of claim 14 having the formula: wherein Y is at least one cationic substituent, where 0<x≦0.50, and where 0<w≦0.

50.

20. The substituted solid zinc oxide is a cation-substituted and anion-substituted mixed oxide hydroxide and has the chemical formula Zn 1-x Y x O 1-w-t (OH) 2w A (2t / z) 15. The alkaline electrochemical cell of claim 14, having the formula: wherein Y is at least one cationic substituent, where 0<x≦0.50, where A is at least one anionic substituent, 0<w≦0.50, 0<t≦0.50, and z is the charge of the anionic substituent.

21. 21. The alkaline electrochemical cell of any one of claims 14-16, 19, and 20, wherein the cationic substituents are selected from the group consisting of Mg, Ca, Bi, Ba, Al, Si, Be, Cd, Ni, Co, Sn, and Sr, and any combination thereof.

22. The anionic substituent is CO 3 2- and P.O. 4 3- 21. The alkaline electrochemical cell of any one of claims 14, 17, 18, and 20, wherein the alkaline electrochemical cell is selected from the group consisting of: and combinations thereof.

23. 3. The alkaline electrochemical cell of claim 2, wherein the anode comprises solid zinc oxide in an amount of about 0.2 to 5 volume percent based on the total volume of the anode.

24. 24. The alkaline electrochemical cell of claim 23, wherein the anode comprises solid zinc oxide in an amount of about 0.3 to 1.5 volume percent based on the total volume of the anode.

25. 24. The alkaline electrochemical cell of claim 23, wherein the anode comprises solid zinc oxide in an amount of about 0.66 volume percent based on the total volume of the anode.

26. 3. The alkaline electrochemical cell of claim 2 comprising a total zinc oxide weight percent of about 3.0 to 8.8%.

27. 27. The alkaline electrochemical cell of claim 26 comprising a total zinc oxide weight percent greater than about 7.0%.

28. 27. The alkaline electrochemical cell of claim 26 comprising a total zinc oxide weight percent of about 4.75%.

29. 3. The alkaline electrochemical cell of claim 2, wherein the anode comprises a percent electrolyte concentration of about 16.0 to 30.0%.

30. 30. The alkaline electrochemical cell of claim 29, wherein the anode comprises a percent electrolyte concentration of about 18.0 to 22.0%.

31. 3. The alkaline electrochemical cell of claim 2, wherein the anode comprises a percent electrolyte concentration of less than about 22.0%.

32. 10. The alkaline electrochemical cell of claim 1, wherein the total cell electrolyte concentration is about 26.0-30.0%.

33. 33. The alkaline electrochemical cell of claim 32, wherein the total cell electrolyte concentration is less than 29.0%.

34. 34. The alkaline electrochemical cell of any one of claims 1 through 33, wherein the zinc oxide or zinc hydroxide has an overall cell saturation of at least about 40%.

35. 35. The alkaline electrochemical cell of claim 34, wherein the overall cell saturation of zinc oxide or zinc hydroxide is at least about 40-125%.

36. 35. The alkaline electrochemical cell of claim 34, wherein the overall cell saturation of zinc oxide or zinc hydroxide is about 40-125%.

37. 37. The alkaline electrochemical cell of any one of claims 1 to 36, wherein the cell is a primary cell.

38. 37. The alkaline electrochemical cell of any one of claims 1 to 36, wherein the cell is a secondary cell.

39. The free electrolyte solution contains potassium hydroxide (KOH), sodium hydroxide (NaOH), lithium hydroxide (LiOH), magnesium hydroxide (Mg(OH) 2 ), calcium hydroxide (Ca(OH) 2 ), magnesium perchlorate (Mg(ClO 4 ) 2 ), magnesium chloride (MgCl 2 ), or magnesium bromide (MgBr 2 39. The alkaline electrochemical cell of any one of claims 1 to 38, comprising:

40. 40. The alkaline electrochemical cell of any one of claims 1 to 39, having a specific capacity or run time that exceeds that of a similar alkaline electrochemical cell lacking said dissolved zinc oxide in free electrolyte.

41. 41. The alkaline electrochemical cell of claim 40, wherein the specific capacity or run-time is from greater than 1% to greater than 100%, or from greater than 5% to greater than 90%, or from greater than 10% to greater than 80%, or from greater than 15% to greater than 70%, or from greater than 20% to greater than 60%, or from greater than 25% to greater than 50%, or from greater than 30% to greater than 40%.

42. 42. The alkaline electrochemical cell of any one of claims 1 to 41 having a voltage of 0.1V to 2.0V, 0.2V to 1.9V, 0.3V to 1.8V, 0.4V to 1.7V, 0.5V to 1.6V, 0.6V to 1.5V, 0.7V to 1.4V, 0.8V to 1.3V, 0.9V to 1.2V, 1.0V to 1.1V, or 0.1V, 0.2V, 0.3V, 0.4V, 0.5V, 0.6V, 0.7V, 0.8V, 0.9V, 1.0V, 1.1V, 1.2V, 1.3V, 1.4V, 1.5V, 1.6V, 1.7V, 1.8V, 1.9V, or 2.0V.

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