Oxidative delithiation of alkali nickel oxide
By employing peroxydisulfate or monopersulfate oxidizers at elevated temperatures, the method efficiently converts alkali metal-containing nickel oxides into high-capacity alkali metal-deficient nickel oxides, addressing inefficiencies in existing methods and reducing environmental impact.
Patent Information
- Application Number
- JP2025140786
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2020-01-23
- Filing Date
- 2025-08-26
- Publication Date
- 2025-12-09
AI Technical Summary
Existing methods for chemically charging alkali metal-containing transition metal oxides, such as lithium nickel oxide, are inefficient due to low yields, incomplete oxidation, and extended treatment times, often using expensive reagents like nitrosonium salts, and result in environmentally harmful sulfuric acid waste.
A method involving the use of peroxydisulfate or monopersulfate oxidizers at elevated temperatures (50°C or higher) to convert alkali metal-containing nickel oxides into alkali metal-deficient nickel oxides, achieving high yields and minimizing sulfuric acid production.
The method provides a high-yield, environmentally friendly process for producing alkali metal-deficient nickel oxides with improved discharge capacity, reducing processing time and minimizing harmful waste.
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Abstract
Description
[Technical Field]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit under 35 U.S.C. §119(E) of U.S. Provisional Patent No. 62 / 965,139, filed January 23, 2020, the entire disclosure of which is incorporated herein by reference.
[0002] The present disclosure relates generally to the oxidative demetallization of alkali nickel oxides. More specifically, the present disclosure relates to the oxidative demetallization of alkali nickel oxides using persulfates. [Background technology]
[0003] Alkali metal-containing transition metal oxides can be energetically activated or "charged" for the purpose of preparing highly oxidized cathode materials for use in both primary and secondary electrochemical cells. Charging alkali metal-containing transition metal oxides involves the partial or total oxidation of the transition metal and the removal of the alkali metal from the metal oxide crystal lattice to form alkali metal-deficient transition metal oxide electrochemically active cathode materials. Alkali metal-containing transition metal oxides can be chemically charged or electrochemically charged. Methods for chemically charging alkali metal-containing transition metal oxides can include oxidative demetallation and acid-promoted disproportionation of the transition metal, for example, by treatment with mineral acid.
[0004] Acid-promoted disproportionation of alkali-metal-containing transition metal oxides, including metals such as Mn and Ni, is known to result in the extraction of essentially all of the alkali metal ions present from the crystal lattice and the oxidation of up to 50% of the metal, e.g., from the M(III) oxidation state to the M(IV) oxidation state. The corresponding amount of M(III) is reduced to M(II), which dissolves in acid solution.
[0005] The acid-promoted disproportionation reaction can be summarized as follows in Equation 1, using stoichiometric layered lithium nickel oxide as an example: LiNiO2+2yH2SO4→(1-y)Li (1-2y) / (1-y) NiO2+yNiSO4+yLi2SO4+2yH2O(0≦y≦1 / 2)(1) Ni(II) ions are soluble and dissolve in acidic aqueous solutions. Therefore, the use of acid-promoted metal disproportionation reactions to chemically charge alkali-metal-containing transition metal oxides is highly inefficient, as at least half of the M(III) ions in the starting transition metal oxide are reduced to M(II) ions that are soluble in the acid solution and therefore extracted from the crystal structure.
[0006] Chemical charging of alkali metal-containing transition metal oxides with strong, soluble chemical oxidants can be used to directly oxidize the transition metal to a higher oxidation state, resulting in the removal of a proportional amount of alkali metal ions to maintain overall electroneutrality of the crystal lattice. Examples of oxidizing agents include strong oxidizing gases (e.g., ozone, chlorine, or bromine), strong oxidizing solid reagents (e.g., nitrosonium hexafluorophosphate, nitrosonium tetrafluoroborate, nitrosonium hexafluoroarsenate, nitrosonium tetrafluoroborate, nitrosonium hexafluorophosphate, nitrosonium hexafluoroarsenate), and water-soluble oxidizing agents (e.g., alkali or alkaline earth metal hypochlorites (e.g., Na + , K. + , Ca 2+ ), alkaline peroxydisulfates (e.g., Na + , K. + ), ammonium peroxydisulfate, and alkali monopersulfates (e.g., Na + , K. + Various reagents, such as HCl, ... + , Na + , Li + ) and alkali ferrates (e.g., K + The method using a water-soluble oxidizing agent is typically carried out at about room temperature for 24 to 48 hours, and often oxidizes the transition metal quickly and sufficiently and demetallates the starting alkali metal-containing transition metal oxide to give the compound of formula A.x MO2 or A x Lacking sufficient oxidizing strength to prepare alkali-metal-deficient metal oxides having the formula M2O4, where A is an alkali metal and M is a transition metal, for example, where x is less than about 0.3.
[0007] Therefore, known methods for chemically charging alkali metal-containing layered transition metal oxides have several drawbacks, such as low yields due to disproportionation of the transition metal, incomplete oxidation of the transition metal, and / or extended treatment times, e.g., 12 to 72 hours, and expensive reagents (e.g., nitrosonium salts, nitronium salts). Summary of the Invention
[0008] One aspect of the present disclosure is a compound of formula A 1-a Ni 1+a O2, wherein A comprises an alkali metal and a is greater than 0 and less than or equal to 0.2, combined with a fluid composition comprising an oxidizer comprising a peroxydisulfate, a monopersulfate, or a combination thereof to form a mixture; heating the mixture to a temperature of 50°C or greater; and heating the mixture to a temperature of 50°C or greater; x H y Ni 1+a and maintaining at that temperature for at least a period of time sufficient to form an alkali metal-deficient nickel oxide electrochemically active cathode material having O·nH0, wherein A comprises an alkali metal, x is greater than or equal to 0.08 and less than 0.2, y is greater than or equal to 0 and less than 0.3, a is greater than or equal to 0.02 and less than 0.2, and n is greater than 0 and less than 2.
[0009] Another aspect of the present disclosure is a compound of formula A 1-a Ni 1+a-z M zThe method includes the steps of: combining an alkali metal-containing nickel oxide having the general formula A, O2, wherein A comprises an alkali metal, 0 is greater than 0 and not greater than 0.2, M comprises a transition metal or a main group metal, and z is 0 or greater and 0.2 or less with a fluid composition including an oxidizer comprising a peroxodisulfate, a monopersulfate, or a combination thereof to form a mixture; heating the mixture to a temperature of 50°C or greater; and heating the mixture to a temperature of 50°C or greater; and heating the mixture to a fluid composition including an oxidizer having the general formula A, O2, wherein A comprises an alkali metal, 0 is greater than 0 and not greater than 0.2, M comprises a transition metal or a main group metal, and z is 0 or greater and 0.2 or less. x H y Ni 1+a-z M z and maintaining at that temperature for at least a period of time sufficient to form an alkali metal-deficient nickel oxide electrochemically active cathode material having the formula O·nH0, wherein A comprises an alkali metal; x is greater than or equal to 0.08 and less than 0.2; y is greater than or equal to 0 and less than 0.3; a is greater than or equal to 0.02 and less than 0.2; M comprises a transition metal or a main group metal; z is greater than or equal to 0 and less than 0.2; and n is greater than 0 and less than 2.
[0010] Further aspects and advantages will be apparent to those skilled in the art from a consideration of the following detailed description. While the compositions and methods are susceptible to embodiment in various forms, the following description includes specific embodiments, with the understanding that the disclosure is illustrative and is not intended to limit the disclosure to the specific embodiments described herein. [Brief explanation of the drawings]
[0011] While the specification concludes with claims particularly pointing out and distinctly claiming the subject matter regarded as forming the invention, it is believed the present invention will be better understood from the following description taken in conjunction with the accompanying drawings.
[0012] [Figure 1] FIG. 1 is a cross-sectional view of one embodiment of a primary alkaline battery of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION
[0013] The present disclosure provides a compound of formula A 1-a Ni 1+a The method includes the steps of: combining an alkali metal-containing nickel oxide having O2, wherein A comprises an alkali metal and a is greater than 0 and less than or equal to 0.2, with a fluid composition comprising an oxidizer comprising a peroxydisulfate, a monopersulfate, or a combination thereof to form a mixture; heating the mixture to a temperature of 50°C or greater; and heating the mixture to a temperature of 50°C or greater; and heating the mixture to a temperature of 50°C or greater; x H y Ni 1+a and maintaining at that temperature for at least a period of time sufficient to form an alkali metal-deficient nickel oxide electrochemically active cathode material having O·nH0, wherein A comprises an alkali metal, x is greater than or equal to 0.08 and less than 0.2, y is greater than or equal to 0 and less than 0.3, z is greater than or equal to 0 and less than 0.2, and n is greater than 0 and less than 2.
[0014] It is known in the art that peroxydisulfates and monopersulfates can undergo autocatalytic thermal decomposition in aqueous solution at temperatures above 50°C, particularly above 60°C, 65°C, 70°C, or about 80°C or higher, evolving oxygen gas and forming sulfuric acid as a decomposition product. Furthermore, it is known in the art that alkali metal-containing layered nickel oxides can undergo acid-promoted disproportionation in the presence of mineral acids such as sulfuric acid. This disproportionation reaction can be summarized, for example, for layered lithium nickel oxide, as follows: LiNiO2+2yH2SO4→(1-y)Li (1-2y) / (1-y) NiO2+yNiSO4+yLi2SO4+2yH2O(0≦y≦0.5). Therefore, one skilled in the art would expect that at temperatures above about 50° C., e.g., about 60° C. or higher, the oxidizing agent would begin to decompose and form sulfuric acid, which would promote the disproportionation of the alkali metal-containing nickel oxide, resulting in a yield of alkali metal-deficient nickel oxide of up to about 50% or less, based on the initial amount of alkali metal-containing nickel oxide.
[0015] Furthermore, it is known in the art that the solubilized Ni(II) ions formed during disproportionation can catalyze the decomposition of peroxydisulfate and monopersulfate, which form sulfuric acid as a decomposition product. Such further decomposition of the oxidant would be expected by one skilled in the art to further reduce the yield of alkali-metal-deficient layered nickel oxide due to the reduced amount of oxidant available for the oxidative demetallation reaction and the increased production of sulfuric acid available to drive the disproportionation reaction.
[0016] It has been surprisingly and unexpectedly discovered that the disclosed method for converting alkali metal-containing nickel oxide to alkali metal-deficient nickel oxide can include heating the alkali metal-containing nickel oxide with an oxidizer at temperatures above 50°C, typically from 60°C up to about 85°C, without significant reduction in yield due to decomposition of the oxidizer and / or disproportionation of the alkali metal-containing nickel oxide. While not intending to be bound by theory, it is believed that as the temperature of the fluid composition increases, the rate of conversion of the alkali metal-containing nickel oxide to alkali metal-deficient nickel oxide due to oxidative demetallation increases, and while the increase in temperature simultaneously promotes the decomposition of the oxidizer to sulfuric acid, significant thermal decomposition of the oxidizer (which would detrimentally affect the yield of the desired alkali metal-deficient nickel oxide) is advantageously not observed. Surprisingly and advantageously, the formation of alkali metal-deficient nickel oxide is achieved in yields greater than 50% over relatively short reaction times (e.g., less than 24 hours, less than 12 hours, or less than 6 hours).
[0017] In particular, based on knowledge in the art, it was unexpected that the reaction temperature could be increased, for example, above 50°C, above 60°C, and / or above 70°C without completely destroying the oxidant. In this regard, (a) thermal decomposition of the oxidant forms an acid, (b) the acid promotes the disproportionation of Ni(III) to Ni(IV) and Ni(II) in the alkali metal-containing nickel oxide, (c) the acid further solubilizes and leaches Ni(II) from the metal oxide structure, and (d) the solubilized Ni(II) further decomposes the remaining oxidant, thereby forming the reaction product of Equation A 1-a Ni 1+a One would expect a destructive cascade effect in which the alkali metal-containing nickel oxide with O2 would be consumed in a substantially unproductive manner, and therefore the formation of the desired alkali metal-deficient nickel oxide would be significantly reduced. Instead, surprisingly, at temperatures above 50°C, and particularly above 60°C or 70°C, the formation of alkali metal-deficient transition metal oxide was observed, particularly in yields superior to those expected when acid-promoted disproportionation occurs.
[0018] Therefore, the methods of the present disclosure advantageously provide one or more advantages, such as providing an oxidative demetallation process having a relatively short processing time, providing alkali metal-deficient nickel oxide in a relatively high yield (e.g., greater than about 70%), and providing Ni 2+ and minimizing environmentally harmful waste solutions containing sulfuric acid.
[0019] The term "about" is used in accordance with its ordinary meaning, e.g., to mean approximately or around. In one embodiment, the term "about" means ±10% of a stated value or range of values. In another embodiment, the term "about" means ±5% of a stated value or range of values. Values or ranges stated in conjunction with the term "about" also explicitly include the particular value and / or range (e.g., for a value stated as "about 40," "40" is also explicitly contemplated).
[0020] As used herein, an alkali metal-deficient nickel oxide electrochemically active positive electrode material having a "high discharge capacity" refers to an alkali metal-deficient nickel oxide having a gravimetric discharge capacity of about 420 mAh / g or greater when discharged at a low discharge rate as a positive electrode active material in an alkaline cell. As used herein, and unless otherwise specified, "low discharge rate" refers to a fully charged battery that discharges over the course of about 30 to about 40 hours, i.e., a battery having a C / 30 to C / 40 rate. C-rate is a measurement well understood in the art that conveys the discharge rate of a battery relative to its theoretical rated capacity. It is defined as the discharge current divided by the theoretical discharge current, and the battery delivers its total nominal / theoretical rated capacity in one hour. For example, a 1C discharge rate for a material with a gravimetric discharge capacity of about 420 mAh / g delivers a total of 420 mAh / g capacity in one hour. A 2C rate delivers a total of 420 mAh / g capacity in 0.5 hours. The C / 2 rate delivers 420 mAh / g in 2 hours, therefore the C / 40 rate for DLNO delivers a total of 420 mAh / g capacity in 40 hours.
[0021] Alkali-metal-deficient nickel oxide electrochemically active positive electrode materials prepared solely by treating alkali-metal-containing nickel oxide with aqueous sulfuric acid typically have low-rate (e.g., C / 40) gravimetric discharge capacities in the range of about 390 to about 420 mAh / g. Thus, the disclosed method can provide electrochemically active positive electrode materials with low-rate capacities comparable to, if not better than, materials prepared by other methods known in the art. In embodiments, the alkali metal-deficient layered nickel oxide electrochemically active positive electrode material has a gravimetric discharge capacity of about 420 mAh / g or greater when discharged at a low discharge rate as a positive electrode active material in an alkaline electrochemical cell, e.g., in the range of about 420 mAh / g to about 460 mAh / g, about 420 mAh / g to about 450 mAh / g, about 420 mAh / g to about 445 mAh / g, about 420 mAh / g to about 435 mAh / g, about 420 mAh / g to about 430 mAh / g, about 420 mAh / g, about 425 mAh / g, about 430 mAh / g, about 435 mAh / g, about 440 mAh / g, about 445 mAh / g, about 450 mAh / g, about 455 mAh / g, or about 460 mAh / g.
[0022] Alkali metal-containing nickel oxide Generally, the oxidatively demetallated alkali metal-containing nickel oxides can be stoichiometric or non-stoichiometric alkali metal-containing layered nickel oxides. Non-stoichiometric alkali metal-containing layered nickel oxides have the general formula A 1-a Ni 1+a O2, where A is an alkali metal and a is greater than 0 and less than or equal to 0.2. The alkali metal-containing layered nickel oxide has a layered structure. A can be selected from the group consisting of lithium, sodium, potassium, and combinations thereof. In embodiments, A includes lithium. In embodiments, a portion of the alkali metal in the alkali metal-containing layered nickel oxide is a metal ion having a similar ionic radius, such as Li, in the range of 0 to about 10 wt %, based on the total weight of A in the structure. + , Ni 2+ , Ni 3+ , Na + , K. + , Cs+ , Rb + , Ag + , Mg 2+ , Ca 2+ , and Bi 3+ Without intending to be bound by theory, Rb + and Cs + is considered too large to be a primary alkali metal, since it cannot form a stable layered structure with a structure equivalent to lithium nickel oxide or sodium nickel oxide.
[0023] In embodiments, the alkali metal-containing nickel oxide may include a metal dopant, M, and may be represented by the formula A 1-a Ni 1+a-z M z O2, wherein A comprises an alkali metal, a is greater than 0 and not greater than 0.2, M comprises a transition metal or a main group metal, and z is 0 or greater and 0.2 or less.
[0024] In embodiments of alkali metal-containing nickel oxides, a is greater than 0 and less than or equal to 0.2, e.g., 0.01-0.20, 0.01-0.18, 0.01-0.16, 0.01-0.15, 0.02-0.20, 0.02-0.18, 0.02-0.16, 0.02-0.15, 0.03-0.20, 0.03-0.19, 0.03-0.15, 0.03-0.12, 0.05-0.19, or 0.05-0.15. Because a is always greater than 0, the crystal lattice contains no alkali metal ions, but instead contains alkali metal sites that are either vacant or can be occupied by excess Ni(II) ions, thereby forming a compound of the general formula ANiO2 or ANi 1-z M z A non-stoichiometric amount of nickel and an alkali metal is provided relative to a stoichiometric counterpart with O2, wherein A is an alkali metal, M comprises a transition metal or a main group metal, and z is greater than or equal to 0 and less than or equal to 0.2.
[0025] In embodiments where the alkali metal-containing layered nickel oxide includes a metal dopant, M, the metal dopant can include a transition metal, a main group metal, or both. Generally, the metal dopant has access to an oxidation state of +3 or higher and has an ionic radius comparable to that of Ni(III) (about 0.60 Å), e.g., in the range of about 0.45 Å to about 0.75 Å. In embodiments, the transition metal is cobalt (Co 3 +, Co 4+ ), manganese (Mn 3+ , Mn 4+ , Mn 7+ ), iron (Fe 3+ , Fe 4+ ), chromium (Cr 3+ , Cr 4+ , Cr 5+ ), vanadium (V 3+ , V 5+ ), Titanium (Ti 3+ , Ti 4+ ), niobium (Nb 3+ , Nb 5+ ), zirconium (Zr 4+ ), or a combination thereof. In an embodiment, the transition metal comprises cobalt, manganese, iron, or a combination thereof. In an embodiment, the transition metal comprises cobalt. In an embodiment, the transition metal comprises manganese. In an embodiment, the transition metal comprises cobalt and manganese. The main group metals are aluminum (Al 3+ ), Gallium (Ga 3+ ), Bismuth (Bi 5+ ), and combinations thereof. In embodiments, the main group metal comprises aluminum.
[0026] In embodiments in which the alkali metal-containing nickel oxide includes a metal dopant, z can be 0≦z≦0.2, for example, 0 to 0.20, 0.01 to 0.20, 0.01 to 0.18, 0.01 to 0.16, 0.01 to 0.15, 0.02 to 0.20, 0.02 to 0.18, 0.02 to 0.16, 0.02 to 0.15, 0.03 to 0.20, 0.03 to 0.19, 0.03 to 0.15, 0.03 to 0.12, 0.05 to 0.19, or 0.05 to 0.15. Without intending to be bound by theory, it is believed that as the amount of metal dopant in the alkali metal-containing nickel oxide and the alkali metal-deficient nickel oxide prepared therefrom increases, the stability of the electrochemically active material including the alkali metal-deficient nickel oxide to aqueous hydroxide solutions, such as alkaline battery electrolytes, increases; however, the total discharge capacity may decrease, for example, when the dopant metal is not electrochemically active within the same voltage window as nickel.
[0027] Generally, the alkali metal-containing nickel oxide is essentially non-hydrated, but there may be excess alkali metal oxide and hydroxide present from the synthesis of the alkali metal-containing nickel oxide present on the surface of the alkali metal-containing nickel oxide particles, which can absorb water from the ambient air. The alkali metal oxide and hydroxide can also react with carbon dioxide in the ambient air to form alkali metal carbonate on the surface of the alkali metal-containing layered nickel particles.
[0028] Alkali-metal-deficient nickel oxide electrochemically active cathode materials Generally, the alkali metal-deficient nickel oxide electrochemically active positive electrode materials formed according to the methods disclosed herein have the general formula A x H y Ni 1+aO2·nH2O, where A comprises an alkali metal, x is greater than or equal to 0.08 and less than 0.2, y is greater than or equal to 0 and less than 0.3, z is greater than or equal to 0 and less than 0.2, and n is greater than 0 and less than 2. Alkali-metal-deficient nickel oxides are also referred to herein as alpha-demetalized nickel oxides. The average oxidation state of nickel in alpha-demetalized nickel oxides is generally 3+ to 4+ because alpha-demetalized nickel oxides contain a significant portion of nickel in the 4+ oxidation state as well as some nickel in the 3+ oxidation state. As explained below, alpha-demetalized nickel oxides also contain a portion of nickel in the 2+ or 3+ oxidation state located within alkali metal sites in the crystal lattice. It is understood that A in the formula for the alpha-demetalized nickel oxide electrochemically active positive electrode material is the same as A in the formula for the alkali-metal-containing nickel oxide material used to prepare the alpha-demetalized material. Therefore, A can be selected from the group consisting of lithium, sodium, potassium, and combinations thereof. In embodiments, A is lithium. In embodiments, a portion of the alkali metal in the alkali metal-containing nickel oxide is substituted with a metal ion having a similar ionic radius, e.g., Li + , Ni 2+ , Ni 3+ , Na + , K. + , Cs + , Rb + , Ag + , Mg 2+ , Ca 2+ , and Bi 3+ may be substituted with
[0029] In embodiments, the alpha-demetallized nickel oxide may include a metal dopant, M, and may be represented by the formula A x H y Ni 1+a-z M z O2·nH2O, wherein A comprises an alkali metal; x is 0.08 or greater and less than 0.2; y is 0 or greater and less than 0.3; a is 0.02 or greater and less than 0.2; M comprises a transition metal or a main group metal; z is 0 or greater and less than 0.2; and n is greater than 0 and less than 2.
[0030] In embodiments including a metal dopant, the alpha-demetallized nickel oxide has x greater than 0.08 and less than 0.2, e.g., in the ranges of 0.08 to 0.20, 0.08 to 0.18, 0.08 to 0.16, 0.08 to 0.15, 0.09 to 0.20, 0.09 to 0.19, 0.09 to 0.15, 0.09 to 0.12, 0.10 to 0.19, or 0.10 to 0.15. Values of x for alpha-demetallized nickel oxide below about 0.08 can be the result of one or more of an excessive amount of oxidant provided during oxidative demetallization, too high a reaction temperature during oxidative demetallization, and / or too long a reaction time for oxidative demetallization, and therefore it is desirable to control these parameters. Values of x for alpha-demetallated nickel oxide greater than about 0.2 may be the result of one or more of an insufficient amount of oxidizing agent provided during oxidative demetallation, too low a reaction temperature during oxidative demetallation, and / or too short a reaction time for oxidative demetallation, further demonstrating the desirability of controlling these parameters. Without intending to be bound by theory, it is believed that as the amount x of alkali metal, A, in the alpha-demetallated nickel oxide decreases below about 0.08, e.g., 0.06, 0.04, 0.02 or less, the alpha-demetallated nickel oxide becomes a desirable stabilized form of alkali-metal-deficient nickel oxide (having additional alkali metal ions inserted into vacant sites in the layer, as described in detail below, and having the formula A x A' v Ni 1+aO2·nH2O, where A includes Li or Na, A' includes K, Rb, or Cs, x is greater than or equal to 0.08 and less than 0.2, v is greater than 0.03 and less than 0.20, a is greater than 0.02 and less than 0.2, and n is greater than 0 and less than 2), may less favorably form gamma-nickel oxyhydroxide when treated with an aqueous solution of alkali hydroxide. Furthermore, without intending to be bound by theory, it is believed that as the amount of alkali metal A, x, in the alpha-demetallated nickel oxide increases above about 0.2, the capacity of the prepared alpha-demetallated nickel oxide (as well as stabilized nickel oxides prepared therefrom) decreases as a result of the presence of unoxidized Ni(III) (i.e., unconverted alkali-metal-containing layered nickel oxide starting material).
[0031] In embodiments including a metal dopant, the alpha-demetallized nickel oxide has y greater than or equal to 0 and less than 0.3, and can have a value of y in the ranges of, for example, 0 to 0.29, 0.05 to 0.29, 0.05 to 0.25, 0.5 to 0.20, 0.5 to 0.15, 0.08 to 0.29, 0.08 to 0.25, 0.08 to 0.20, 0.08 to 0.15, 0.10 to 0.29, 0.10 to 0.25, 0.10 to 0.20, or 0.10 to 0.15. + can be introduced into the crystal structure during the oxidative demetallation process via ion exchange with alkali metal cations. In particular, when oxidative demetallation is carried out in aqueous solution, under some conditions, water can react with the oxidizing agent to form H + Ions can be formed and then partially ion-exchanged with alkali metal cations, especially at elevated temperatures.
[0032] In embodiments including a metal dopant, the alpha-demetallized nickel oxide has a value of 0.02 or greater and 0.2 or less, for example, in the ranges of 0.02 to 0.20, 0.02 to 0.18, 0.02 to 0.16, 0.02 to 0.15, 0.03 to 0.20, 0.03 to 0.18, 0.03 to 0.16, 0.03 to 0.15, 0.04 to 0.20, 0.04 to 0.18, 0.04 to 0.15, 0.04 to 0.12, 0.05 to 0.19, or 0.05 to 0.15. Because a must be greater than 0, the crystal lattice does not contain alkali metal ions, but instead contains Ni 2+ or Ni 3+ There are alkali metal sites occupied by Li ions, thereby providing an excess of non-stoichiometric amounts of nickel. Some alkali metal sites in the crystal lattice may be vacant, and furthermore, charge neutrality of the structure is maintained by the presence of two Li ions. + 1 Ni per ion 2+ ions, or three Li + 1 Ni per ion 3+ ions (or one Ni 2+ ions and one Li + It will be understood by those skilled in the art that the cations are maintained by substitution of cations.
[0033] In embodiments where the alkali metal-containing nickel oxide-containing starting material includes a metal dopant, M, it will be understood that M in the formula for the alpha-demetallized nickel oxide electrochemically active positive electrode material is the same as M in the formula for the alkali metal-containing nickel oxide material used to prepare the alpha-demetallized material. Thus, M can include a transition metal, a main group metal, or both. Generally, metal dopants are metals that can access an oxidation state of +3 or higher and have an ionic radius comparable to that of Ni(III).
[0034] In an embodiment, the transition metal is cobalt (Co 3+ , Co 4+ ), manganese (Mn 3+ , Mn 4+ , Mn 7+ ), iron (Fe3+ , Fe 4+ ), chromium (Cr 3+ , Cr 4+ , Cr 5+ ), vanadium (V 3+ , V 5+ ), Titanium (Ti 3+ , Ti 4+ ), niobium (Nb 3+ , Nb 5+ ), zirconium (Zr 4+ ), or a combination thereof. In embodiments, the transition metal comprises cobalt, manganese, or a combination thereof. In embodiments, the transition metal comprises cobalt. In embodiments, the transition metal comprises manganese. In embodiments, the transition metal comprises cobalt and manganese. In embodiments, the transition metal comprises cobalt and manganese. The main group metals include aluminum (Al 3+ ), Gallium (Ga 3+ ), Bismuth (Bi 5+ ), and combinations thereof. In embodiments, the main group metal comprises aluminum.
[0035] In embodiments in which the alpha-demetallized nickel oxide material includes a metal dopant, z can be greater than or equal to 0 and less than or equal to 0.2, and can have a value in the ranges of, for example, 0 to 0.20, 0.01 to 0.20, 0.01 to 0.18, 0.01 to 0.16, 0.01 to 0.15, 0.02 to 0.20, 0.02 to 0.18, 0.02 to 0.16, 0.02 to 0.15, 0.03 to 0.20, 0.03 to 0.19, 0.03 to 0.15, 0.03 to 0.12, 0.05 to 0.19, or 0.05 to 0.15. Without intending to be bound by theory, it is believed that as the amount of metal dopant in the alpha-demetallized nickel oxide increases, the stability of the electrochemically active material including the alpha-demetallized nickel oxide to aqueous alkali metal hydroxide solutions, such as alkaline battery electrolytes, increases; however, the total discharge capacity may decrease, for example, when the dopant metal is not electrochemically active in the same voltage window as nickel.
[0036] Method for preparing electrochemically active positive electrode materials Generally, the method for preparing an electrochemically active positive electrode material comprises the steps of: 1-a Ni 1+a The method includes combining an alkali metal-containing nickel oxide having O2, where A comprises an alkali metal and a is greater than 0 and less than or equal to 0.2, with a fluid composition (e.g., a suspension, dispersion, or solution) comprising an oxidizer comprising a peroxydisulfate, a monopersulfate, or a combination thereof to form a mixture (e.g., a suspension, dispersion, or solution); heating the mixture to a temperature of 50°C or greater; and maintaining the mixture at that temperature for at least a period of time sufficient to form an alpha-demetallized nickel oxide electrochemically active positive electrode material.
[0037] The oxidizing agent is a chemical oxidizing agent and can include peroxydisulfate, monopersulfate, or a combination thereof. The terms peroxydisulfate and persulfate are used interchangeably herein. In embodiments, the oxidizing agent includes peroxydisulfate. In embodiments, the oxidizing agent includes monopersulfate. In embodiments, the oxidizing agent includes a combination of peroxydisulfate and monopersulfate. Peroxydisulfate and monopersulfate are generally water-soluble. As used herein, "water-soluble" means that at least about 10 mg of peroxydisulfate or monopersulfate is soluble in 1 ml of water at 25°C. The peroxydisulfate, monopersulfate, or both can include countercations selected from the group consisting of sodium, potassium, lithium, ammonium, or combinations thereof. In embodiments, the countercation of the oxidizing agent includes sodium cations. In embodiments, the countercation of the oxidizing agent includes potassium cations. In embodiments, the countercation of the oxidizing agent includes two different cations selected from the group consisting of ammonium, sodium, and potassium. In embodiments, the oxidizing agent is peroxydisulfate and the countercation is selected from the group consisting of ammonium, sodium, potassium, lithium, and combinations thereof. In embodiments, the oxidizing agent is peroxydisulfate and the countercation includes two different countercations selected from the group consisting of ammonium, sodium, and potassium. In embodiments, the oxidizing agent is peroxydisulfate and the countercation includes sodium. In embodiments, the oxidizing agent is peroxydisulfate and the countercation includes potassium. In embodiments, the oxidizing agent is peroxydisulfate and the countercation includes ammonium. In embodiments, the oxidizing agent includes peroxydisulfate, and the peroxydisulfate is a combination of sodium peroxydisulfate and potassium peroxydisulfate. Other water-soluble oxidizing agents include alkali metal (e.g., sodium, potassium) permanganates, alkali (e.g., lithium, sodium, potassium) metal hypochlorites, alkaline earth (e.g., calcium) metal hypochlorites, and alkali metal (e.g., potassium) ferrates.
[0038] The ratio of the alkali metal-containing nickel oxide and the oxidizing agent is about 1:0.75 to about 1:2, for example, about 1:0.75 to about 1:2, about 1:0.8 to about 1:2, about 1:0.9 to about 1:2, about 1:1 to about 1:2, about 1:0.75 to about 1:1.25, about 1:0.75 to about 1:1.1, about 1:0.75 to about 1:1, about 1:1.1 to about 1 The peroxydisulfate may be provided in a molar ratio of about 1:1.2 to about 1:2, about 1:1.2 to about 1:2, about 1:1.25 to about 1:2, about 1:1.3 to about 1:2, about 1:1.4 to about 1:2, about 1:1.5 to about 1:2, about 1:1.6 to about 1:2, about 1:1.7 to about 1:2, about 1:1.75 to about 1:2, about 1:1.8 to about 1:2, or about 1:9 to about 1:2. Generally, without intending to be bound by theory, it is believed that each peroxydisulfate dianion can form two sulfate radical anions. Furthermore, without intending to be bound by theory, it is believed that each sulfate radical anion can accept one electron to form a sulfate dianion, and therefore, each mole of peroxydisulfate could theoretically oxidize two moles of alkali metal-containing layered nickel oxide. Therefore, as the amount of peroxydisulfate oxide increases relative to the amount of alkali metal-containing nickel oxide, the rate of demetallation of the alkali metal-containing nickel oxide at a given temperature may increase, but the amount of persulfate available for decomposition to sulfuric acid also increases, thereby increasing the likelihood of disproportionation of the nickel compound to soluble Ni(II). On the other hand, without intending to be bound by theory, it is believed that a small amount of excess oxidant (e.g., provided in an amount greater than a 1:1 molar ratio) may be advantageous in allowing a small amount of competing disproportionation reactions to occur to promote the conversion of Ni(III) in the alkali metal-containing nickel oxide to Ni(IV) and form alkali metal-deficient nickel oxide.Thus, in embodiments, the alkali metal-containing nickel oxide and the oxidizing agent are mixed in a ratio of about 1:0.75 to about 1:2, e.g., about 1:1.1 to about 1:2, about 1:1.2 to about 1:2, about 1:1.25 to about 1:2, about 1:1.25 to about 1:1.9, about 1:1.25 to about 1:1.8, about 1:1.25 to about 1:1.6, about 1:1.25 to about 1:1. The alkali metal-containing nickel oxide and the oxidizing agent may be provided in a molar ratio of about 1:1.5, about 1:1.3 to about 1:2, about 1:1.3 to about 1:1.9, about 1:0.75 to about 1:1.5, about 1:0.75 to about 1:1.25, about 1:0.75 to about 1:1, about 1:0.75 to about 1:1, about 1:0.8 to about 1:1.3, about 1:0.8 to about 1:1.1, or about 1:0.9 to about 1:1.1. In embodiments, the alkali metal-containing nickel oxide and the oxidizing agent may be provided in a molar ratio of about 1:1.2 to about 1:1.5. In embodiments, the alkali metal-containing nickel oxide and the oxidizing agent may be provided in a molar ratio of about 1:0.75 to about 1:1.2.
[0039] While not intending to be bound by theory, it is believed that thermal decomposition of a portion of the oxidizer to provide sulfuric acid can be advantageous in promoting the disproportionation of a small amount of nickel oxide to provide a Ni(IV) material with high discharge capacity, but the addition of such acids should be limited because the disproportionation reaction is detrimental to yield and the Ni(II) resulting from the disproportionation reaction can catalyze further decomposition of the oxidizer. Thus, in embodiments, the method does not include the addition of a solution of a mineral acid, such as sulfuric acid, to the fluid composition.
[0040] The fluid composition containing the oxidizer can be any fluid composition that allows the oxidizer to react with the alkali metal-containing nickel oxide. The fluid composition can be, for example, an aqueous solution, suspension, slurry, or other mixture of the oxidizer, water, and alkali metal-containing nickel oxide. Without intending to be bound by theory, it is believed that the solubility of the oxidizer in the fluid composition affects the rate of the oxidative demetallation reaction as well as the thermal stability of the oxidizer. In embodiments, the fluid composition includes water. In embodiments, the fluid composition includes an aqueous solution of the oxidizer. In embodiments, the fluid composition includes a suspension of the oxidizer, for example, where the oxidizer is sparingly soluble or supersaturated. In embodiments, the fluid composition includes water, and the oxidizer is soluble in water at a temperature of about 25° C. In embodiments, the fluid composition includes water, and the oxidizer is soluble in water at a temperature of about 45° C. or about 50° C. In embodiments, the fluid composition includes water, and the oxidizer is at least partially soluble in water at a temperature of about 25° C. In embodiments, the fluid composition includes water and the oxidizer is at least partially soluble in water at a temperature of about 45° C., about 50° C. In embodiments, the fluid composition includes water and the peroxydisulfate salt includes sodium peroxydisulfate. In embodiments, the fluid composition includes water and the peroxydisulfate salt includes ammonium peroxydisulfate. In embodiments, the fluid composition includes water and the peroxydisulfate salt includes potassium peroxydisulfate.
[0041] Generally, the order of operations for combining the alkali metal-containing nickel oxide and the oxidizing agent is not limiting. In an embodiment, the alkali metal-containing nickel oxide is added to a fluid composition containing the oxidizing agent. In an embodiment, the fluid composition containing the oxidizing agent is added to the alkali metal-containing nickel oxide. In an embodiment, a mixture is prepared and then heated to a temperature of 50°C or higher. In the purification of the foregoing embodiment, the mixture can be heated at a rate of about 1°C per minute. In an embodiment, the mixture can be heated to a temperature within a range of about 50°C to about 85°C, e.g., about 50°C to about 85°C, about 60°C to about 80°C, or about 60°C, about 65°C, about 70°C, about 75°C, about 80°C, or about 85°C. In an embodiment, the mixture is heated to about 55°C to about 65°C, e.g., about 60°C. In an embodiment, the mixture is heated to about 75°C to about 85°C, or about 80°C to about 85°C. In embodiments, the mixture is heated to about 55°C to about 85°C. In embodiments, the mixture is heated to about 60°C to about 80°C. In embodiments, the mixture is heated to about 65°C to about 85°C. In embodiments, the mixture is heated to about 70°C to about 80°C.
[0042] Generally, a time sufficient to form an alpha-demetalized nickel oxide electrochemically active positive electrode material is any time that allows at least about 50%, about 55%, about 60%, about 60%, about 70%, about 75%, about 80%, or about 85% of the alkali metal-containing nickel oxide to be converted to alpha-demetalized nickel oxide. In embodiments, a time sufficient to form alpha-demetalized nickel oxide may depend on the temperature of the fluid composition.
[0043] In embodiments, the alpha-demetalized nickel oxide electrochemically active positive electrode material is formed in a product yield of greater than about 50% by weight, based on the weight of the starting alkali metal-containing nickel oxide, e.g., in a range of about 50% to about 95%, about 50% to about 90%, about 50% to about 85%, about 55% to about 80%, about 60% to about 80%, about 60% to about 75%, about 65% to about 80%, about 65% to about 75%, or about 70% to about 89%. In embodiments, the alpha-demetalized nickel oxide electrochemically active positive electrode material is formed in a product yield of greater than about 55% by weight, based on the weight of the starting alkali metal-containing nickel oxide. In embodiments, the alpha-demetalized nickel oxide electrochemically active positive electrode material is formed in a product yield of greater than about 60% by weight, based on the weight of the starting alkali metal-containing nickel oxide. In embodiments, the alpha-demetalized nickel oxide electrochemically active positive electrode material is formed in a product yield of greater than about 70% by weight, based on the weight of the starting alkali metal-containing nickel oxide. In embodiments, the alpha-demetalized nickel oxide electrochemically active positive electrode material is formed in a product yield of from about 70% to greater than about 80% by weight, based on the weight of the starting alkali metal-containing nickel oxide.
[0044] Advantageously, the methods of the present disclosure provide a demetallization process having a relatively short processing time to enable the production of demetallized layered alkali nickel oxide in high yields having high discharge capacities, e.g., about 420 mAh / g or greater, when discharged at relatively low discharge rates (about C / 30 or C / 40) as a positive electrode active material in an alkali zinc electrochemical cell. In embodiments, the time sufficient to form alpha-demetallized nickel oxide may be from about 1 hour to about 24 hours. In embodiments, the time sufficient to form alpha-demetallized nickel oxide may be from about 1 hour to about 12 hours. In embodiments, the time sufficient to form alpha-demetallized nickel oxide may be from about 1 hour to about 6 hours. In embodiments, the time sufficient to form alpha-demetallized nickel oxide may be from about 4 hours to about 12 hours. In embodiments, the time sufficient to form alpha-demetallized nickel oxide may be from about 2 hours to about 6 hours. In embodiments, the time sufficient to form alpha-demetallized nickel oxide may be from about 1 hour to about 5 hours. In embodiments, the time sufficient to form an alpha-demetallated nickel oxide may be from about 2 hours to about 4 hours.
[0045] In embodiments, the mixture may be heated to a temperature of about 60°C to about 80°C for about 1 to about 24 hours. In embodiments, the mixture may be heated to a temperature of about 65°C to about 85°C for about 1 to about 12 hours. In embodiments, the mixture may be heated to a temperature of about 70°C to about 80°C for about 4 to 12 hours.
[0046] Without intending to be bound by theory, it is believed that the stability of peroxydisulfates and monopersulfates against thermal decomposition is increased when the pH of the fluid composition is basic and maintained within a range of 8 to 12. Thus, in embodiments, the fluid composition has a pH within a range of about 8 to 12, e.g., about 8 to about 11, about 8 to about 10, about 8 to about 9, about 9 to about 12, about 9 to about 11, about 9 to about 10, about 10 to about 12, about 10 to about 11, or about 11 to about 12. Without intending to be bound by theory, it is further believed that when the fluid composition has a pH within a range of about 8 to about 12, any sulfuric acid formed from the thermal decomposition of the oxidizer is neutralized before it can promote significant disproportionation of the alkali metal-containing nickel oxide and solubilization of Ni(II) ions. The pH of the fluid composition can be adjusted by including an alkali metal hydroxide or ammonium hydroxide in the composition. Thus, in some embodiments, the fluid composition further comprises an alkali metal hydroxide, ammonium hydroxide, or a combination thereof.
[0047] In embodiments, the alkali metal-containing nickel oxide, oxidizer, and hydroxide salt may be provided in a molar ratio of about 1:1.5:1 to about 1:2:6, e.g., 1:1.5:1, 1:1.5:2, 1:2:2, 1:2:3, 1:2:4, 1:2:5, or 1:2:6. In embodiments, the molar ratio of the alkali metal-containing nickel oxide, oxidizer, and hydroxide salt may be about 1:1.5:1 to about 1:2:6. In embodiments, the molar ratio of the alkali metal-containing nickel oxide, oxidizer, and hydroxide salt may be about 1:1.5:1 to about 1:1.5:2. In embodiments, the molar ratio of the alkali metal-containing nickel oxide, oxidizer, and hydroxide salt may be about 1:1.15:2 to 1:2:2. In embodiments, the molar ratio of the alkali metal-containing nickel oxide, oxidizer, and hydroxide salt may be about 1:1.5:3 to about 1:2:3. In embodiments, the molar ratio of the alkali metal-containing nickel oxide, oxidizing agent, and hydroxide salt may be from about 1:2:2 to about 1:2:3. In embodiments, the molar ratio of the alkali metal-containing nickel oxide, oxidizing agent, and hydroxide salt may be from about 1:0.75:1 to about 1:2:6. In embodiments, the molar ratio of the alkali metal-containing nickel oxide, oxidizing agent, and hydroxide salt may be from about 1:0.75:1 to about 1:0.75:2. In embodiments, the molar ratio of the alkali metal-containing nickel oxide, oxidizing agent, and hydroxide salt may be from about 1:0.75:1 to about 1:2:2. In embodiments, the molar ratio of the alkali metal-containing nickel oxide, oxidizing agent, and hydroxide salt may be from about 1:0.75:1 to about 1:0.75:3. In embodiments, the molar ratio of the alkali metal-containing nickel oxide, oxidizing agent, and hydroxide salt may be from about 1:0.75:3 to about 1:2:3. Generally, the amount of hydroxide can be increased as the amount of oxidizing agent is increased, if desired, to increase the amount of base available to neutralize any sulfuric acid formed.
[0048] Generally, the hydroxide salt can include a countercation selected from the group consisting of ammonium, sodium, potassium, lithium, and combinations thereof. In embodiments, the countercation of the oxidizer and the countercation of the hydroxide salt are the same. In embodiments, the oxidizer is peroxydisulfate, and the countercations of the peroxydisulfate and hydroxide salt are the same. In embodiments, the countercation of the oxidizer and the countercation of the hydroxide salt are not the same. Without intending to be bound by theory, it is believed that the selection of the countercation of the hydroxide salt can affect the rate and yield of conversion of the alkali metal-containing nickel oxide to alpha-demetallated nickel oxide as a result of the solubility of the hydroxide salt and / or the oxidizer in the fluid composition in the presence of the countercation of the hydroxide salt. For example, for a given countercation, the hydroxide salt may be soluble in the fluid composition, but the dissolved oxidizer may form a salt with the free countercation of the hydroxide salt, and the formed salt may have low to no solubility in the fluid composition, resulting in precipitation of the oxidizer and thereby reducing the yield of the alkali metal-containing nickel oxide. Therefore, in embodiments, the hydroxide countercation is selected so that the salt formed between the hydroxide countercation and the peroxydisulfate or monopersulfate anion is at least partially soluble in the fluid composition.
[0049] In embodiments, the countercation of the oxidizing agent and the countercation of the hydroxide are the same, and the countercation comprises ammonium. In embodiments, the countercation of the hydroxide comprises ammonium. In embodiments, the countercation of the hydroxide salt comprises sodium. In embodiments, the countercation of the hydroxide salt comprises potassium. In embodiments, the countercation of the hydroxide salt comprises sodium and potassium. In embodiments, the countercation of the hydroxide salt comprises two different countercations selected from the group consisting of ammonium, sodium, and potassium. In embodiments, one of the countercations of the oxidizing agent and the hydroxide salt comprises ammonium, and the other comprises potassium. In embodiments, the oxidizing agent comprises peroxydisulfate, and one of the countercations of the peroxydisulfate and the hydroxide salt comprises ammonium, and the other comprises potassium. In embodiments, one of the countercations of the oxidizing agent and the hydroxide salt comprises ammonium, and the other comprises sodium. In embodiments, the oxidizing agent comprises peroxydisulfate, and one of the countercations of the peroxydisulfate and the hydroxide salt comprises ammonium, and the other comprises sodium. In embodiments, the oxidizing agent comprises peroxydisulfate, and neither the countercation of the peroxydisulfate nor the countercation of the hydroxide salt comprises ammonium. That is, in embodiments, the fluid composition is substantially free of ammonium cations. As used herein, and unless otherwise specified, "substantially free of ammonium cations" means that the fluid composition comprises less than about 1 wt. %, less than about 0.05 wt. %, or less than about 0.01 wt. % ammonium cations, based on the total weight of the fluid composition.
[0050] In some embodiments, the fluid composition is substantially free of hydroxide salts. As used herein, and unless otherwise specified, "substantially free of hydroxide salts" means that the fluid composition contains less than about 5 wt. %, less than about 3 wt. %, or less than about 1 wt. % hydroxide salts, based on the total weight of the fluid composition.
[0051] In embodiments, the countercation of the peroxydisulfate salt comprises ammonium and the fluid composition is substantially free of hydroxide salts. In embodiments, the countercation of the peroxydisulfate salt comprises sodium and the fluid composition is substantially free of hydroxide salts.
[0052] In embodiments, the alpha-demetallated nickel oxide can have a purity greater than 80%, e.g., greater than about 80% and up to about 100%, greater than about 85% to about 100%, greater than about 90% to about 100%, greater than about 95% to about 100%, about 85% to about 100%, about 90% to about 100%, or within a range of about 85%, about 90%, about 95%, or greater than about 95%.
[0053] The method comprises reacting a compound of formula A x A' v Ni 1+a and n is greater than 0 and less than 2. In embodiments, the alpha-demetallized nickel oxide can be doped with a metal M, such that the resulting beta-demetallized nickel oxide has a second, different alkali metal intercalated into its layer according to the formula A x A' v Ni 1+a-z M z O2·nH2O, wherein A contains Li or Na, x is greater than 0 and less than 0.2, A' contains K, Cs, or Rb, v is greater than 0.03 and less than 0.20, M contains a transition metal or a main group metal, z is greater than 0 and less than 0.2, a is greater than 0.02 and less than 0.2, and n is greater than 0 and less than 2.
[0054] In general, A can be Li or Na. In embodiments, A includes Li. In general, A' can be K, Rb, or Cs, and A' and A are different. In embodiments, A' includes K. In embodiments, A' includes Rb or Cs, or a combination thereof. In embodiments, A includes Li and A' includes K. In embodiments, x can be in the range of 0.04 to 0.2, e.g., 0.04 to 0.18, 0.04 to 0.16, 0.04 to 0.15, 0.08 to 0.2, e.g., 0.08 to 0.18, 0.08 to 0.16, 0.08 to 0.15, 0.09 to 0.20, 0.09 to 0.19, 0.09 to 0.15, 0.09 to 0.12, 0.10 to 0.19, or 0.10 to 0.15. In an embodiment, v may be in the range of 0.03 to 0.20, for example, 0.03 to 0.17, 0.03 to 0.15, 0.03 to 0.13, 0.06 to 0.20, 0.06 to 0.17, 0.06 to 0.15, 0.06 to 0.13, 0.08 to 0.17, 0.08 to 0.15, or 0.08 to 0.13. In an embodiment, a may be in the range of 0.02 to 0.20, for example, 0.02 to 0.18, 0.02 to 0.16, 0.03 to 0.20, 0.03 to 0.17, 0.03 to 0.15, 0.04 to 0.20, 0.04 to 0.17, 0.04 to 0.15, 0.04 to 0.13, or 0.04 to 0.11. In an embodiment, n is greater than 0 and less than 2, and can be, for example, within the range of about 0.01 to about 1.9, about 0.02 to about 1.8, about 0.05 to about 1.8, about 0.05 to about 1.5, about 0.05 to about 1.25, about 0.05 to about 1.0, about 0.1 to about 1.8, about 0.1 to about 1.5, about 0.1 to about 1.25, about 0.1 to about 1.0, about 0.15 to about 1.8, about 0.15 to about 1.5, about 0.15 to about 1.25, about 0.15 to about 1, about 0.15 to about 0.8, about 0.15 to about 0.75, about 0.15 to about 0.7, or about 0.15 to about 0.6.In an embodiment, z is greater than or equal to 0 and less than or equal to 0.2, and can have a value within a range of, for example, 0 to 0.20, 0.01 to 0.20, 0.01 to 0.18, 0.01 to 0.16, 0.01 to 0.15, 0.02 to 0.20, 0.02 to 0.18, 0.02 to 0.16, 0.02 to 0.15, 0.03 to 0.20, 0.03 to 0.19, 0.03 to 0.15, 0.03 to 0.12, 0.05 to 0.19, or 0.05 to 0.15.
[0055] The aqueous alkali hydroxide solution is not particularly limited and can be selected from a potassium salt solution, a rubidium salt solution, a cesium salt solution, or any combination thereof. The concentration of the alkali metal salt in the alkali solution can be any concentration sufficient to achieve substantially complete conversion of the alpha-demetallated layered nickel oxide to beta-demetallated nickel oxide. As used herein, and unless otherwise specified, "substantially complete conversion" refers to the conversion of alpha-demetallated nickel oxide to beta-demetallated nickel oxide, with residual alpha-demetallated nickel oxide being present in an amount of 5 wt.% or less, based on the total weight of the nickel oxide material. In some embodiments, the concentration of the alkali metal hydroxide in the solution can be within a range of about 0.5 M to about 10 M, about 1 M to about 10 M, about 3 M to about 9 M, or about 5 M to about 8.75 M. In some embodiments, the alkali metal hydroxide solution comprises at least one of potassium hydroxide, cesium hydroxide, and rubidium hydroxide provided at a concentration of about 0.5 M to about 10 M. The alpha-demetallized nickel oxide powder can be provided as a free-flowing powder when combined with an alkali metal hydroxide solution. The alpha-demetallized nickel oxide powder and alkali metal hydroxide solution can be combined in a weight ratio of about 10:1 to about 1:5, about 9:1 to about 1:4, about 8:1 to about 1:3, about 7:1 to about 1:2, about 6:1 to about 1:2, about 5:1 to about 1:2, or about 4:1 to about 1:2, or about 3:1 to about 1:1, e.g., about 3:1, about 2:1, or about 1:1.
[0056] The alpha-demetallated nickel oxide can be treated with the alkali metal hydroxide solution for a period of time sufficient to ensure complete conversion of the alpha-demetallated nickel oxide to beta-demetallated nickel oxide. The alpha-demetallated nickel oxide and the alkali metal hydroxide solution can be initially stirred at ambient temperature for 5 to 15 minutes to ensure proper mixing and wetting. Following mixing of the alpha-demetallated nickel oxide and the alkali metal hydroxide solution, the mixture is held at ambient temperature for 2 to 24 hours. Optionally, the mixture can be stirred for 2 to 24 hours. After 2 to 24 hours, the resulting beta-demetallated nickel oxide can optionally be washed with water to remove any residual alkali metal hydroxide. Substantially complete conversion to beta-demetallated nickel oxide can be confirmed by analyzing the powder X-ray diffraction pattern of the resulting material. For example, for alpha-delithiated nickel oxide treated with potassium hydroxide solution, when potassium ions and water molecules from the potassium hydroxide solution are intercalated into the layers of the alpha-delithiated nickel oxide, the intensity of the diffraction peaks located between about 18° and 20° 2θ in the X-ray diffraction pattern of the alpha-delithiated nickel oxide decreases, and very broad peaks appear in the X-ray diffraction pattern of the beta-delithiated layered nickel oxide at between about 14.9° and about 16.0° 2θ, and between about 21.3° and about 22.7° 2θ. Therefore, for complete conversion to beta-delithiated nickel oxide, the powder X-ray diffraction pattern will have broad diffraction peaks at about 10.8° to about 12.0° 2θ, about 14.9° to about 16.0° 2θ, about 21.3° to about 22.7° 2θ, and about 25.3° to about 27.5° 2θ, with greater intensity than the powder X-ray diffraction pattern of the alpha-delithiated nickel oxide precursor, and no diffraction peaks with significant intensity in the range of about 18° to 20° 2θ. The resulting beta-demetallized nickel oxide can be washed repeatedly with deionized water until the pH of the filtrate from the wash is about 10. The solid powder can be collected and dried in air at about 70°C for about 12 to 20 hours.
[0057] In embodiments, treating the alpha-demetallated nickel oxide with an aqueous solution of an alkali metal hydroxide, where the alkali metal is different from that of the alpha-demetallated nickel oxide, forms about 10 wt. % or less of gamma-nickel oxyhydroxide (γ-NiOOH) as a by-product, based on the total weight of the reaction product, e.g., about 8 wt. % or less, about 6 wt. % or less, about 5 wt. % or less, about 4 wt. % or less, about 3 wt. % or less, about 2 wt. % or less, about 1 wt. % or less of gamma-nickel oxyhydroxide (γ-NiOOH), based on the total weight of the solid reaction product. In embodiments, treating the alpha-demetallated nickel oxide with an aqueous solution of an alkali metal hydroxide can form less than about 6 wt. % of gamma-nickel oxyhydroxide (γ-NiOOH) as a reaction by-product.
[0058] battery Electrochemical cells, or batteries, can be primary or secondary. Primary batteries are intended to be discharged only once, for example, until they run out of power, and then discarded. Primary batteries are described, for example, in David Linden, Handbook of Batteries (4th ed. 2011). Secondary batteries are intended to be recharged. Secondary batteries can be discharged and recharged many times, for example, more than 50 times, 100 times, or even more. Secondary batteries are described, for example, in David Linden, Handbook of Batteries (4th ed. 2011). Thus, batteries can include various electrochemical couples and electrolyte combinations. While the descriptions and examples provided herein generally focus on primary alkaline electrochemical cells or batteries, it should be understood that the present invention applies to both primary and secondary batteries having aqueous, non-aqueous, ionic liquid, and solid electrolyte systems. Therefore, primary and secondary batteries containing the above-described electrolytes are within the scope of this application, and the present invention is not limited to any particular embodiment.
[0059] Referring to FIG. 1, a primary alkaline electrochemical cell, or battery 10, is shown including a positive electrode 12, a negative electrode 14, a separator 16, and a housing 18. The battery 10 also includes a current collector 20, a seal 22, and an end cap 24. The end cap 24 serves as the negative terminal for the battery 10. A positive pip 26 is at the opposite end of the battery 10 from the end cap 24. The positive pip 26 may also serve as the positive terminal for the battery 10. An electrolyte is dispersed throughout the battery 10. The positive electrode 12, negative electrode 14, separator 16, electrolyte, current collector 20, and seal 22 are contained within the housing 18. The battery 10 may be, for example, an AA, AAA, AAAA, C, or D size alkaline battery.
[0060] The housing 18 can be any conventional type of housing commonly used in primary alkaline batteries and can be made of any suitable substrate, such as cold-rolled steel or nickel-plated cold-rolled steel. The housing 18 can have a cylindrical shape. The housing 18 can have any other suitable non-cylindrical shape. The housing 18 can have a shape including at least two parallel plates, such as a rectangular, square, or prismatic shape. The housing 18 can be deep-drawn from a sheet of substrate, such as cold-rolled steel or nickel-plated steel. The housing 18 can be drawn into a cylindrical shape, for example. The housing 18 can have at least one open end. The housing 18 can have an open end with a closed end and a sidewall therebetween. The inner surface of the sidewall of the housing 18 can be treated with a material that provides low electrical contact resistance between the inner surface of the sidewall of the housing 18 and an electrode, such as the positive electrode 12. The inner surface of the sidewall of the housing 18 may be plated, for example, with nickel, cobalt, and / or painted, for example, with a carbon-filled paint, to reduce contact resistance between the inner surface of the sidewall of the housing 18 and the positive electrode 12.
[0061] The positive electrode 12 includes at least one electrochemically active positive electrode material. The electrochemically active positive electrode material can include alpha-demetalized layered nickel oxide and / or non-stoichiometric beta-delithiated layered nickel oxide prepared according to the methods of the present disclosure. In embodiments, when non-stoichiometric beta-delithiated layered nickel oxide is provided as the electrochemically active positive electrode material, the non-stoichiometric beta-delithiated layered nickel oxide comprises less than 5 wt. %, less than 3 wt. %, less than 1 wt. %, or less than 0.5 wt. % residual non-stoichiometric alpha-delithiated layered nickel oxide, based on the total weight of the delithiated layered nickel oxide electrochemically active positive electrode material. Similarly, as described herein, a cell including non-stoichiometric beta-delithiated layered nickel oxide is initially provided with non-stoichiometric beta-delithiated layered nickel oxide.
[0062] The positive electrode 12 may also include at least one or more additional electrochemically active positive electrode materials. Additional electrochemically active positive electrode materials may include manganese oxide, manganese dioxide, electrolytic manganese dioxide (EMD), chemical manganese dioxide (CMD), high-power electrolytic manganese dioxide (HP EMD), lambda manganese dioxide, gamma manganese dioxide, and any combination thereof. Other electrochemically active positive electrode materials include, but are not limited to, silver oxide, nickel oxide, nickel oxyhydroxide, copper oxide, silver copper oxide, silver nickel oxide, bismuth oxide, oxygen, and any combination thereof. Nickel oxyhydroxide may include beta-nickel oxyhydroxide, gamma-nickel oxyhydroxide, intergrowths of beta-nickel oxyhydroxide and / or gamma-nickel oxyhydroxide, and nickel oxyhydroxide coated with cobalt oxyhydroxide. The cobalt oxyhydroxide-coated nickel oxyhydroxide may include cobalt oxyhydroxide-coated beta-nickel oxyhydroxide, cobalt oxyhydroxide-coated gamma-nickel oxyhydroxide, and / or an intergrowth of cobalt oxyhydroxide-coated beta-nickel oxyhydroxide and gamma-nickel oxyhydroxide.
[0063] In embodiments, the electrochemically active material of positive electrode 12 comprises at least 10 wt%, at least 15 wt%, at least 20 wt%, at least 25 wt%, at least 30 wt%, at least 35 wt%, at least 40 wt%, at least 45 wt%, at least 50 wt%, at least 55 wt%, at least 60 wt%, at least about 70 wt%, or at least about 75 wt% non-stoichiometric beta-delithiated layered nickel oxide based on the total weight of the electrochemically active positive electrode material, e.g., in a range from about 10 wt% to about 90 wt%, about 10 wt%, about 20 wt% to about 70 wt%, about 30 wt% to about 60 wt%, about 40 wt% to about 60 wt%, or about 50 wt% based on the total weight of the electrochemically active material. In embodiments, the electrochemically active material of positive electrode 12 comprises about 40% to about 60% by weight of non-stoichiometric beta-delithiated nickel oxide, based on the total weight of the electrochemically active positive electrode material, and about 60% to about 40% by weight of one or more of manganese oxide, manganese dioxide, electrolytic manganese dioxide (EMD), chemical manganese dioxide (CMD), high-power electrolytic manganese dioxide (HP EMD), lambda manganese dioxide, or gamma manganese dioxide, based on the total weight of the electrochemically active positive electrode material. It has been discovered that a combination of about 10% to about 60% by weight, e.g., 20% or 50% by weight, of the non-stoichiometric beta-delithiated layered nickel oxide with the remainder of the electrochemically active positive electrode material comprising electrolytic manganese dioxide (EMD) provides unexpectedly advantageous battery performance in both high and low discharge rate applications.
[0064] The positive electrode 12 may include a conductive additive such as carbon and, optionally, a binder. The positive electrode 12 may also include other additives. Carbon can increase the conductivity of the positive electrode 12 by facilitating electron transport within the solid structure of the positive electrode 12. The carbon can be graphite, such as natural graphite, synthetic graphite, oxidation-resistant graphite, graphene, single-walled carbon nanotubes, multi-walled carbon nanotubes, carbon fibers, carbon nanofibers, carbon nanoribbons, carbon nanoplates, and mixtures thereof. The amount of carbon in the positive electrode is preferably relatively low, e.g., less than about 12%, less than about 10%, less than about 9%, less than about 8%, less than about 6%, less than about 5%, less than about 3.75%, or less than about 3.5%, e.g., about 3.0% to about 5% by weight, or about 2.0% to about 3.5% by weight. Lower carbon levels can allow for the inclusion of higher loadings of electrochemically active positive electrode material within positive electrode 12 without increasing the volume of positive electrode 12 or reducing the void volume within battery 10 (which must be maintained at or above a certain level to prevent internal pressure from building up too much as gas is generated within the cell). Graphite suitable for use within the battery, e.g., within the positive electrode, can be, for example, Timrex MX-15, SFG-15, MX-25, available from Imerys Graphite and Carbon (Bodio, Switzerland). For highly reactive positive electrode active materials, such as non-stoichiometric beta-delithiated layered nickel oxide, oxidation-resistant graphites such as SFG-15, SFG-10, and SFG-6 can be used.
[0065] The positive electrode 12 may include an optional binder. As used herein, "binder" refers to a polymeric material that provides positive electrode cohesion and does not contain graphite. Examples of optional binders that may be used in the positive electrode 12 include polyethylene, polyacrylic acid, or fluorocarbon resins such as PVDF or PTFE. An optional binder for use in the positive electrode 12 may be, for example, COATHYLENE HA-1681, available from EI du Pont de Nemours and Company (Wilmington, DE, USA). Examples of other positive electrode additives are described, for example, in U.S. Patent Nos. 5,698,315, 5,919,598, 5,997,775, and 7,351,499. In some embodiments, the positive electrode 12 is substantially free of a binder. As used herein, "substantially binder-free" means that the positive electrode contains less than about 5% by weight, less than about 3% by weight, or less than about 1% by weight of binder.
[0066] The content of electrochemically active positive electrode material in the positive electrode 12 may be referred to as the positive electrode load. The load of the positive electrode 12 may vary depending on the electrochemically active positive electrode material used in the battery 10 and the size of the battery 10. For example, an AA battery having a beta-delithiated layered nickel oxide as the electrochemically active positive electrode material may have a positive electrode load of at least about 6 grams of beta-delithiated layered nickel oxide. The positive electrode load may be, for example, at least about 7 grams of non-stoichiometric beta-delithiated layered nickel oxide. The positive electrode load may be, for example, about 7.2 grams to about 11.5 grams of non-stoichiometric beta-delithiated layered nickel oxide. The positive electrode load may be, for example, about 8 grams to about 10 grams of non-stoichiometric beta-delithiated layered nickel oxide. The positive electrode load may be about 8.5 grams to about 9.5 grams of non-stoichiometric beta-delithiated layered nickel oxide. The positive electrode load can be about 9.5 grams to about 11.5 grams of non-stoichiometric beta-delithiated layered nickel oxide. The positive electrode load can be about 10.4 grams to about 11.5 grams of non-stoichiometric beta-delithiated layered nickel oxide. For AAA batteries, the positive electrode load can be at least about 3 grams of non-stoichiometric beta-delithiated layered nickel oxide electrochemically active positive electrode material. The positive electrode load can be about 3 grams to about 5 grams of non-stoichiometric beta-delithiated layered nickel oxide. The positive electrode load can be about 3.5 grams to about 4.5 grams of non-stoichiometric beta-delithiated layered nickel oxide. The positive electrode load can be about 3.9 grams to about 4.3 grams of non-stoichiometric beta-delithiated layered nickel oxide. For AAAA batteries, the positive electrode load can be about 1.5 grams to about 2.5 grams of non-stoichiometric beta-delithiated layered nickel oxide electrochemically active positive electrode material. For C batteries, the positive electrode load can be about 27.0 grams to about 40.0 grams, e.g., about 33.5 grams, of non-stoichiometric beta-delithiated layered nickel oxide electrochemically active positive electrode material. For D batteries, the positive electrode load can be about 60.0 grams to about 84.0 grams, e.g., about 72.0 grams, of non-stoichiometric beta-delithiated layered nickel oxide electrochemically active positive electrode material.
[0067] The cathode components, such as the active cathode material, carbon particles, binder, and any other additives, can be combined with a liquid, such as an aqueous potassium hydroxide electrolyte, blended, and pressed into pellets for use in battery 10 assembly. For optimal cathode pellet processing, it is generally preferred that the cathode pellets have a moisture level within a range of about 2% to about 5% by weight, or about 2.8% to about 4.6% by weight. The pellets are placed within housing 18 during battery 10 assembly and are typically re-compressed to form a uniform cathode assembly within housing 18. The cathode pellets can have a cylindrical shape with a central hole. The size of the pellets can vary depending on the size of the battery they will be used in, e.g., AA size, AAA size, AAAA size, C size, and D size. The central hole can define the inner diameter (ID) of the pellet. The inner diameter of a pellet for an AA battery can be, for example, about 9.1 mm to about 9.9 mm. The inner diameter of pellets for AA batteries may be, for example, about 9.3 mm to about 9.7 mm. The inner diameter of pellets for AAA batteries may be, for example, about 6.6 mm to about 7.2 mm. The inner diameter of pellets for AAA batteries may be, for example, about 6.7 mm to about 7.1 mm. The inner diameter of pellets for AAAA batteries may be, for example, about 5 mm to about 5.5 mm. The inner diameter of pellets for C batteries may be, for example, about 16 mm to about 19 mm. The inner diameter of pellets for D batteries may be, for example, about 21 mm to about 25 mm.
[0068] The positive electrode 12 will have a porosity that can be calculated at the time of positive electrode fabrication. The porosity of the positive electrode 12 can be about 20% to about 40%, about 22% to about 35%, and, for example, about 26%. Because the porosity of the positive electrode 12 within the battery 10 can change over time due, among other things, to electrolyte wetting of the positive electrode and positive electrode swelling associated with discharging the battery 10, the porosity of the positive electrode 12 can be calculated at the time of fabrication, for example, after positive electrode pellet processing. The porosity of the positive electrode 12 can be calculated as follows: The true density of each solid positive electrode component can be obtained from a reference book, for example, Lange's Handbook of Chemistry (16th ed. 2005). The solid weight of each positive electrode component is determined by the battery design. The solid weight of each positive electrode component can be divided by the true density of each positive electrode component to determine the positive electrode solid volume. The volume occupied by cathode 12 in battery 10 is again defined by the battery design. The volume occupied by cathode 12 may be calculated by a computer-aided design (CAD) program. Porosity may be determined by the following equation: Positive electrode porosity = [1 - (positive electrode solid volume ÷ positive electrode volume)] × 100
[0069] For example, the positive electrode 12 of an AA battery may include, as solids within the positive electrode 12, about 9.0 grams of non-stoichiometric beta-delithiated layered nickel oxide and about 0.90 grams of graphite (BNC-30). The true densities of the non-stoichiometric beta-delithiated layered nickel oxide and graphite may be about 4.9 g / cm and about 2.15 g / cm, respectively. Dividing the weight of the solids by their respective true densities yields a volume occupied by the non-stoichiometric beta-delithiated layered nickel oxide of about 1.8 cm and a volume occupied by the graphite of about 0.42 cm. The total volume of the solids is about 2.2 cm. A battery designer may select the volume occupied by the positive electrode 12 as about 3.06 cm. Calculating the cathode porosity by the above equation (1 - (2.2 cm3 ÷ 3.06 cm3) gives a cathode porosity of approximately 0.28, or 28%.
[0070] The negative electrode 14 may be formed from at least one electrochemically active negative electrode material, a gelling agent, and minor amounts of additives such as organic and / or inorganic gassing inhibitors. The electrochemically active negative electrode material may include zinc, zinc oxide, zinc hydroxide, metal hydrides such as AB5(H), AB2(H), and A2B7(H), alloys thereof, and any combination thereof.
[0071] The content of electrochemically active negative electrode material in the negative electrode 14 may be referred to as the negative electrode load. The load of the negative electrode 14 may vary depending on the electrochemically active negative electrode material used in the battery and the size of the battery. For example, an AA battery having a zinc electrochemically active negative electrode material may have a negative electrode load of at least about 3.3 grams of zinc. The negative electrode load may be, for example, at least about 3.5 grams, about 3.7 grams, about 3.9 grams, about 4.1 grams, about 4.3 grams, or about 4.5 grams of zinc. The negative electrode load may be from about 4.0 grams to about 5.5 grams of zinc. The negative electrode load may be from about 4.2 grams to about 5.3 grams of zinc. For example, an AAA battery having a zinc electrochemically active negative electrode material may have a negative electrode load of at least about 1.8 grams of zinc. For example, the negative electrode load may be from about 1.8 grams to about 2.5 grams of zinc. The negative electrode load may be, for example, from about 1.9 grams to about 2.4 grams of zinc. For example, an AAAA battery having a zinc electrochemically active negative electrode material can have a negative electrode loading of at least about 0.6 grams of zinc. For example, the negative electrode loading can be from about 0.7 grams to about 1.3 grams of zinc. For example, a C battery having a zinc electrochemically active negative electrode material can have a negative electrode loading of at least about 9.3 grams of zinc. For example, the negative electrode loading can be from about 10.0 grams to about 19.0 grams of zinc. For example, a D battery having a zinc electrochemically active negative electrode material can have a negative electrode loading of at least about 30.0 grams of zinc. For example, the negative electrode loading can be from about 30.0 grams to about 45.0 grams of zinc. The negative electrode loading can be, for example, from about 33.0 grams to about 39.5 grams of zinc.
[0072] Examples of gelling agents that can be used in the negative electrode 14 include polyacrylic acid, polyacrylic acid crosslinked with a polyalkenyl ether of divinyl glycol, grafted starch materials, salts of polyacrylic acid, carboxymethyl cellulose, salts of carboxymethyl cellulose (e.g., sodium carboxymethyl cellulose), or combinations thereof. The negative electrode 14 may include a gas inhibitor, which may include an inorganic material such as bismuth, tin, or indium. Alternatively, the gas inhibitor may include an organic compound such as a phosphate ester, an ionic surfactant, or a nonionic surfactant. An electrolyte may be dispersed throughout the positive electrode 12, the negative electrode 14, and the separator 16. The electrolyte includes an ionically conductive component in an aqueous solution. The ionically conductive component may be an alkali hydroxide. The hydroxide may be, for example, potassium hydroxide, cesium hydroxide, or any combination thereof. The concentration of the ionically conductive component may be selected depending on the battery design and desired performance. The aqueous alkaline electrolyte may include a hydroxide in an aqueous solution as the ionically conductive component. The concentration of the alkaline hydroxide in the electrolyte can be about 0.20 to about 0.40, or about 20% to about 40%, by weight of the total electrolyte in the battery 10. For example, the hydroxide concentration in the electrolyte can be about 0.25 to about 0.32, or about 25% to about 32%, by weight of the total electrolyte in the battery 10. The aqueous alkaline electrolyte can also include zinc oxide (ZnO). ZnO may function to inhibit zinc corrosion in the negative electrode. The concentration of ZnO included in the electrolyte can be less than about 5% by weight of the total electrolyte in the battery 10. The ZnO concentration can be, for example, about 1% to about 3% by weight of the total electrolyte in the battery 10.
[0073] The total weight of the aqueous alkaline electrolyte in an AA alkaline battery can be, for example, about 3.0 grams to about 4.4 grams. The total weight of the alkaline electrolyte in an AA battery can be, for example, about 3.3 grams to about 3.8 grams. The total weight of the alkaline electrolyte in an AA battery can be, for example, about 3.4 grams to about 3.65 grams. The total weight of the aqueous alkaline electrolyte in an AAA alkaline battery can be, for example, about 1.0 grams to about 2.0 grams. The total weight of the electrolyte in an AAA battery can be, for example, about 1.2 grams to about 1.8 grams. The total weight of the electrolyte in an AAA battery can be, for example, about 1.4 grams to about 1.8 grams. The total weight of the electrolyte in an AAAA battery can be, for example, about 0.68 grams to about 1 gram, for example, about 0.85 grams to about 0.95 grams. The total weight of the electrolyte in a C battery can be, for example, about 11 grams to about 14 grams, for example, about 12.6 grams to about 13.6 grams. The total weight of the electrolyte in a D battery can be from about 22 grams to about 30 grams, for example, from about 24 grams to about 29 grams.
[0074] The separator 16 comprises a material that is wettable or can be wetted by the electrolyte. A material is said to be wetted by a liquid when the contact angle between the liquid and the surface of the material is less than 90°, or when the liquid tends to spread spontaneously across the surface of the material; both conditions usually coexist. The separator 16 can include a single layer or multiple layers of woven or nonwoven paper or fabric. The separator 16 can, for example, include a layer of cellophane combined with a layer of nonwoven material. The separator 16 can also include an additional layer of nonwoven material. The separator 16 can also be formed in situ within the battery 10. U.S. Patent No. 6,514,637, for example, discloses such separator materials and potentially suitable methods therefor. The separator material can be thin. The separator 16 can have a dry material thickness of, for example, less than 250 micrometers (microns). The separator 16 can have a dry material thickness of about 50 microns to about 175 microns. The separator 16 may have a dry material thickness of about 70 microns to about 160 microns. The separator 16 may have a basis weight of about 40 g / m² or less. The separator 16 may have a basis weight of about 15 g / m² to about 40 g / m². The separator 16 may have a basis weight of about 20 g / m² to about 30 g / m². The separator 16 may have an air permeability value. The separator 16 may have an air permeability value as defined in International Organization for Standardization (ISO) standard 2965. The air permeability value of the separator 16 may be about 2000 cm³ / cm²·min at 1 kPa to about 5000 cm³ / cm²·min at 1 kPa. The air permeability value of the separator 16 may be about 3000 cm³ / cm²·min at 1 kPa to about 4000 cm³ / cm²·min at 1 kPa. The air permeability value of separator 16 can be between about 3500 cm 3 / cm 2 ·min at 1 kPa and about 3800 cm 3 / cm 2 ·min at 1 kPa.
[0075] The current collector 20 can be fabricated into any suitable shape for a particular battery design by any method known in the art. The current collector 20 can be shaped, for example, like a nail. The current collector 20 can have a cylindrical body and a head located at one end of the cylindrical body. The current collector 20 can be made of a metal, such as zinc, copper, brass, silver, or any other suitable material. The current collector 20 can optionally be plated with tin, zinc, bismuth, indium, or another suitable material that provides low electrical contact resistance between the current collector 20 and, for example, the negative electrode 14. The plating material can also exhibit the ability to inhibit gas formation when the current collector 20 is contacted by the negative electrode 14.
[0076] The seal 22 can be prepared by injection molding a polymer, polymer composite, or any combination thereof, such as polyamide, polypropylene, polyetherurethane, or the like, into a shape having predetermined dimensions. The seal 22 can be made from, for example, nylon 6,6, nylon 6,10, nylon 6,12, nylon 11, polypropylene, polyetherurethane, copolymers, composites, or any combination thereof. Exemplary injection molding methods include both cold runner and hot runner methods. The seal 22 may contain other known functional materials, such as plasticizers, nucleating agents, antioxidants, mold release agents, lubricants, and antistatic agents. The seal 22 can also be coated with a sealant. The seal 22 can be moistened before use in the battery 10. For example, the seal 22 can have a moisture content of about 1.0% to about 9.0% by weight, depending on the seal material. The current collector 20 can be inserted into and through the seal 22.
[0077] The end cap 24 may be formed in any shape sufficient to close the battery. The end cap 24 may have, for example, a cylindrical or prismatic shape. The end cap 24 may be formed by pressing a material into a desired shape with appropriate dimensions. The end cap 24 may be made of any suitable material that conducts electrons during discharge of the battery 10. The end cap 24 may be made of, for example, nickel-plated steel or tin-plated steel. The end cap 24 may be electrically connected to the current collector 20. The end cap 24 may make an electrical connection to the current collector 20, for example, by being welded to the current collector 20. The end cap 24 may also include one or more openings, such as holes, for venting any gas pressure due to electrolyte leakage or for venting the battery due to excessive internal pressure buildup. The current collector 20, the seal 22, and the end cap 24 may be collectively referred to as an end cap assembly. [Example]
[0078] Example 1. Preparation of alpha-delithiated layered nickel oxide via treatment of lithium nickel oxide with ammonium persulfate and ammonium hydroxide in a molar ratio of 1:2:3 To 0.5 L of deionized water in a 3 L jacketed glass reactor, 232 g (1.0 mol) of solid ammonium persulfate (i.e., (NH4)2S2O8) was added, forming a clear solution after approximately 3-5 minutes of stirring. To the persulfate solution, 200 ml of 50% (v / v) NH4OH solution (1.5 mol) was added. To the basic persulfate solution, 50 g (0.5 mol) of polished layered lithium nickel oxide (LiNiO2) that had been passed through a 20-mesh (US standard) sieve was added with stirring. The initial pH of the mixture was 9-12. The stirred mixture was heated at a rate of approximately 1 °C / min to 60 °C. After stirring the mixture at 60 °C for 24 hours, both heating and stirring were stopped, and the solid product was allowed to settle for at least approximately 10 minutes. The clear, blue-green supernatant solution was decanted while still warm. The pH of the supernatant solution was typically 3-4. The solid alpha-delithiated nickel oxide product was washed with deionized water. After washing, the solid product was allowed to settle and the clear supernatant was decanted. The washing process was repeated to remove soluble Ni 2+ The complex, soluble nickel and lithium sulfate, and residual sulfuric acid were removed. The solid product was collected by vacuum filtration and dried in air at 60-80°C for approximately 12 hours. The yield of the dried alpha-delithiated nickel oxide product was 70-74%. Low-rate (e.g., 10 mA / g, ~C / 40) button cell discharge capacities from 635-type alkaline button cells ranged from 400-440 mAh / g.
[0079] Thus, Example 1 demonstrates the formation of an electrochemically active positive electrode material of the disclosed alpha-demetallized nickel oxide having good discharge capacity in good yield according to the disclosed method.
[0080] Example 2. Preparation of alpha-delithiated layered nickel oxide via treatment of lithium nickel oxide with ammonium persulfate and potassium hydroxide in a molar ratio of 1:2:4 To 0.5 L of deionized water in a 3 L jacketed glass reactor, 232 g (1.0 mol) of solid ammonium persulfate (i.e., (NH4)2S2O8) was added, forming a clear solution after approximately 3-5 minutes of stirring. To the persulfate solution, 172 ml of 46% (w / w) KOH solution (2.0 mol) was added. To the basic persulfate solution, 50 g (0.5 mol) of polished layered lithium nickel oxide (LiNiO2) that had been passed through a 20-mesh (US standard) sieve was added with stirring. The initial pH of the mixture was approximately 12-14. The stirred mixture was heated at a rate of approximately 1 °C / min to 60 °C. After stirring the mixture at 60 °C for 24 hours, both heating and stirring were stopped, and the solid product was allowed to settle for at least 10 minutes. The clear, blue-green supernatant solution was decanted while still warm. The pH of the supernatant was typically 2-4. The solid product was washed with deionized water. After washing, the solid product was allowed to settle and the clear supernatant was decanted. The washing process was repeated to remove soluble Ni(II) complexes, nickel and lithium sulfate, and residual sulfuric acid. The solid product was collected by suction filtration and dried in air at 60-80°C for approximately 12 hours. The yield of the dried product was approximately 74%. The low-rate (e.g., 10 mA / g, ~C / 40) button cell discharge capacity from the 635-type alkaline button cell was approximately 430 mAh / g.
[0081] Thus, Example 2 demonstrates that the disclosed method, using increased amounts of hydroxide relative to Example 1, produces an electrochemically active positive electrode material of the disclosed alpha-demetalized nickel oxide in good yield, with good discharge capacity.
[0082] Example 3. Method for preparing α-delithiated layered nickel oxide via treatment of lithium nickel oxide with ammonium persulfate and ammonium hydroxide in a molar ratio of 1:2:3 A 3-liter jacketed glass reactor was charged with 0.5 liters of deionized water and heated to 60°C. To the hot deionized water, 200 ml of a 50% (v / v) NH4OH (1.5 mol) solution was added with stirring, followed by 232 g (1.0 mol) of solid ammonium persulfate (NH4)2SO8) to form a clear, 3 M persulfate solution with an initial pH of 10-12. To the stirred basic persulfate solution was added 50 g (0.5 mol) of layered lithium nickel oxide (LiNiO2) powder that had been polished and passed through a 20-mesh (US standard) sieve. The mixture was heated with stirring at 60°C for a total of approximately 24 hours. Both heating and stirring were stopped, and the solid product was allowed to settle for at least 10 minutes. The clear, blue-green supernatant solution was decanted while still warm. The pH of the supernatant solution was typically approximately 4. The solid product was washed by stirring with deionized water. The solid product was allowed to settle, and the clear supernatant solution was decanted. The washing process was repeated to remove soluble nickel(II) complexes, residual sulfate, and residual sulfuric acid. The solid product was collected by suction filtration and dried in air at 60-80°C for approximately 12 hours. The yield of the dried product was approximately 70%. The low-rate (e.g., 10 mA / g, ~C / 40) button cell discharge capacity from the 635-type alkaline button cell was approximately 420 mAh / g.
[0083] Thus, Example 3 demonstrates that a fluid composition heated prior to the addition of an alkali metal-containing nickel oxide, an oxidizer, and a hydroxide according to the method of the present disclosure forms an alpha-demetalized nickel oxide electrochemically active positive electrode material of the present disclosure in good yield and with good discharge capacity.
[0084] Example 4. Method for the preparation of α-delithiated layered nickel oxide via treatment with lithium nickel oxide with ammonium persulfate in a 1:2 molar ratio (no hydroxide) To 0.5 L of deionized water in a 1 L jacketed glass reactor, 232 g (1.0 mol) of ammonium persulfate (NH4)2S2O8) was added, and after stirring for approximately 3-5 minutes, a clear solution formed. 50 g (0.5 mol) of layered lithium nickel oxide (LiNiO2), polished and passed through a 20-mesh (US standard) sieve, was added to the persulfate solution with stirring. The initial pH of the mixture was 9-10. The stirred mixture was heated at a rate of approximately 1 °C / min to 60 °C. After stirring the mixture at 60 °C for 24 hours, both heating and stirring were stopped, and the solid product was allowed to settle for at least 10 minutes. The clear blue-green supernatant solution was decanted while still warm. The pH of the supernatant was typically 1-2. The solid product was washed with deionized water. After washing, the solid product was allowed to settle, and the clear supernatant was decanted. The washing process was repeated to remove soluble Ni(II) complexes, nickel and lithium sulfate, and residual sulfuric acid. The solid product was collected by suction filtration and dried in air at 60-80°C for approximately 12 hours. The yield of the dried product was 55-60%. The low-rate (e.g., 10 mA / g, ~C / 40) button cell discharge capacity from a 635-type alkaline button cell was approximately 420 mAh / g.
[0085] Thus, Example 4 demonstrates the formation of an alpha-demetallized nickel oxide electrochemically active positive electrode material of the present disclosure in good yield and with good discharge capacity according to the method of the present disclosure without the use of hydroxide.
[0086] Example 5. Method for preparing α-delithiated layered nickel oxide via treatment of lithium nickel oxide with both ammonium persulfate and ammonium hydroxide in a 1:1:1 molar ratio (no hydroxide) To 0.5 liters of deionized water in a 1-liter jacketed glass reactor, 116 g (0.5 mol) of ammonium persulfate (NH4)2SO2O8) and 121 g (0.5 mol) of sodium persulfate (Na2SO2O8) were added, and after stirring for approximately 3 to 5 minutes, a clear solution was formed. 50 g (0.5 mol) of layered lithium nickel oxide (LiNiO2), polished and passed through a 20-mesh (US standard) sieve, was added to the mixed persulfate solution with stirring. The initial pH of the mixture was approximately 9 to 10. The stirred mixture was heated at a rate of approximately 1 °C / min to 60 °C. After stirring the mixture at 60 °C for 24 hours, both heating and stirring were stopped, and the solid product was allowed to settle for at least 10 minutes. The clear, blue-green supernatant solution was decanted while still warm. The pH of the supernatant was typically approximately 4. The solid product was washed with deionized water. After washing, the solid product was allowed to settle and the clear supernatant was decanted. The washing process was repeated to remove soluble Ni(II) complexes, nickel and lithium sulfate, and residual sulfuric acid. The solid product was collected by suction filtration and dried in air at 60-80°C for approximately 12 hours. The yield of the dried product was 60-65%. Low-rate (e.g., 10 mA / g, ~C / 40) button cell discharge capacities from 635-type alkaline button cells ranged from 430-440 mAh / g.
[0087] Thus, Example 5 demonstrates that the disclosed alpha-demetalized nickel oxide electrochemically active positive electrode material having good discharge capacity is formed in good yield according to the disclosed method using a combination of oxidizing agents.
[0088] Example 6. Method for preparing α-delithiated layered nickel oxide via treatment of lithium nickel oxide with both sodium persulfate and potassium persulfate in a 1:1:1 molar ratio (no hydroxide) To a 1-liter jacketed glass reactor, 0.5 liters of deionized water, 121 g (0.5 mol) of sodium persulfate (NaSO), and 116 g (0.5 mol) of potassium persulfate (KSO) were added with stirring. After stirring for approximately 3 to 5 minutes, 50 g (0.5 mol) of layered lithium nickel oxide, polished and passed through a 20-mesh (US standard) sieve, was added to the clear, stirred solution. The initial pH of the mixture was approximately 12. The stirred mixture was heated at a rate of approximately 1°C / min to 60°C. After stirring the mixture at 60°C for 24 hours, both heating and stirring were stopped, and the solid product was allowed to settle for at least 10 minutes. The clear, blue-green supernatant liquid was decanted while still warm. The pH of the supernatant was typically approximately 4. The solid product was washed with deionized water. After washing, the solid product was allowed to settle, and the clear supernatant was decanted. The washing process was repeated several times to remove soluble Ni(II) complexes, nickel and lithium sulfate, and sulfuric acid. The solid product was collected by suction filtration and dried in air at 60-80°C for approximately 12 hours. The yield of the dried product was approximately 70-75%. The low-rate (e.g., 10 mA / g, ~C / 40) button cell discharge capacity from the 635-type alkaline button cell was approximately 430-435 mAh / g.
[0089] Thus, Example 6 demonstrates that the disclosed alpha-demetalized nickel oxide electrochemically active positive electrode material having good discharge capacity is formed in good yield according to the disclosed method using a combination of oxidizing agents.
[0090] Example 7. Method for the preparation of α-delithiated layered nickel oxide via treatment of layered lithium nickel oxide with sodium persulfate in a molar ratio of 1:1.9 (no hydroxide) A 1-liter jacketed glass reactor was charged with 0.5 liters of deionized water and heated to 80°C. 230 g (0.95 mol) of dry sodium persulfate (NaSO) was added to the preheated water with stirring, forming a clear solution after approximately 5 minutes. A 50 g (0.5 mol) portion of layered lithium nickel oxide (LiNiO) was added to the hot, stirred persulfate solution. The mixture was stirred at 80°C for 2 hours, then both heating and stirring were discontinued and the solid product was allowed to settle. The clear supernatant solution was decanted while still hot. The solid product was washed with deionized water with stirring. After washing, the solid product was allowed to settle and the supernatant was decanted. This washing process was repeated twice. The solid product was collected by vacuum filtration and dried in air at 60-70°C for approximately 12 hours. The yield of the dried product was approximately 72%. The low-rate (eg, 10 mA / g positive electrode activity, ∼C / 40) button cell discharge capacity from a 635-type alkaline button cell was approximately 430 mAh / g.
[0091] Thus, Example 7 demonstrates the formation of an alpha-demetalized nickel oxide electrochemically active positive electrode material of the present disclosure in good yield and with good discharge capacity according to the method of the present disclosure, using less oxidant than the previous examples.
[0092] Example 8. Method for the preparation of α-delithiated layered nickel oxide via treatment of lithium nickel oxide with sodium persulfate in a 1:1.5 molar ratio (no hydroxide) for 1 hour at 85° C. alone. A 1-liter jacketed glass reactor was charged with 0.5 liters of deionized water and heated to 85°C. 182 g (0.75 mol) of dry sodium persulfate (NaSO) was added to the preheated water with stirring, forming a clear solution after approximately 5 minutes. A 50 g (0.5 mol) portion of layered lithium nickel oxide was added to the hot, stirred persulfate solution. The mixture was stirred at 85°C for 1 hour, then both heating and stirring were stopped and the solid product was allowed to settle. The clear supernatant solution was decanted while still hot. The solid product was washed with deionized water with stirring. After washing, the solid product was allowed to settle and the supernatant was decanted. The washing process was repeated twice. The solid product was collected by vacuum filtration and dried in air at 60-70°C for approximately 12 hours. The yield of the dried product was approximately 71%. The low-rate (eg, 10 mA / g positive electrode activity, ∼C / 40) button cell discharge capacity from a 635-type alkaline button cell was approximately 430 mAh / g.
[0093] Thus, Example 8 demonstrates that an alpha-demetalized nickel oxide electrochemically active positive electrode material of the present disclosure having good discharge capacity is formed in good yield according to the method of the present disclosure, using reduced amounts of oxidant and increased temperatures relative to the method of the previous examples.
[0094] Example 9: Effect of counter cation The impact of the choice of oxidant and hydroxide countercation on capacity and yield is shown in Table 1 below for the listed ratios of reactants for a system in which the alkali metal-containing nickel oxide is lithium nickel oxide (LNO), the oxidant is an identified peroxydisulfate salt (PS), the hydroxide is an identified hydroxide salt (OH), and the phases present in the product, including the desired product alpha-delithiated nickel oxide (α-DLNO), the starting material (LNO), and by-products such as gamma-nickel oxyhydroxide (γ-NiOOH). [Table 1]
[0095] As shown in Table 1, when ammonium persulfate was used in combination with various alkali metal hydroxides, the observed product yields were approximately 4-5% greater when the hydroxide cation was sodium and approximately 4-5% less when the hydroxide cation was potassium compared to when the hydroxide cation was ammonium. Product yields ranged from about 65% to about 80% by weight, depending on the specific combination of cations. For example, when the persulfate cation was ammonium and the hydroxide cation was an alkali metal ion, the yield of delithiated product generally increased in the following order: K + <NH4 + <Na + ( <Li +). When the hydroxide cation was lithium, the X-ray powder diffraction patterns of the delithiated products revealed the presence of unconverted lithium nickel oxide in addition to α-delithiated layered nickel oxide. When both cations were sodium or potassium, product yields as high as approximately 90 wt% were obtained. However, the X-ray powder diffraction patterns of these products revealed the presence of unreacted layered lithium nickel oxide as well as significant amounts of γ-NiOOH-related phases mixed with the desired α-delithiated layered nickel oxide product. While not intending to be bound by theory, it is believed that the γ-NiOOH-related phases form from the intercalation of sodium or potassium ions, accompanied by the solvation of water molecules into the nickel oxide layers, inducing a change in the stacking arrangement of the nickel oxide layers. Furthermore, when mixed cations were used, the selection of ammonium persulfate in combination with either sodium hydroxide or potassium hydroxide resulted in higher discharge capacities than when either sodium persulfate or potassium persulfate was used in combination with ammonium hydroxide. Substitution of either sodium persulfate or potassium persulfate in combination with ammonium hydroxide for ammonium persulfate provided higher product yields of alpha-delithiated layered nickel oxide. However, the use of ammonium persulfate is desirable due to its higher solubility in water compared to alkali metal persulfates (Na and K, respectively). + and K. + For salt, 85g / 100cm at 25℃ 3 , vs. 73 and 6 g / 100 cm 3 ), in combination with ammonium hydroxide may not be suitable for commercial processes due to the release of ammonia gas.
[0096] The data in Table 1 further demonstrate that at least partial oxidation of the starting lithium nickel oxide (LNO) occurs under all conditions. The starting crystalline layered lithium nickel oxide demonstrated a discharge capacity of less than 10 mAh / g when tested in an alkaline cell under the same conditions as the α-demetallized nickel oxide electrochemically active cathode material.
[0097] Example 10: Effect of reaction time and temperature The effect of reaction time and temperature on the resulting discharge capacity and yield for a fluid composition containing a 1:2:2 molar ratio of alkali metal-containing nickel oxide, oxidizer, and hydroxide salt is shown in Table 2 below. [Table 2]
[0098] Without intending to be bound by theory, it is believed that the discharge capacity of the formed α-demetallized nickel oxide electrochemically active positive electrode material typically increases with increasing reaction time at a constant temperature up to about 80°C due to the increasing conversion of the alkali metal-containing nickel oxide starting material to the α-demetallized nickel oxide product over time, while the product yield also decreases with increasing reaction time due to a competing acid-promoted disproportionation reaction that converts the starting material to soluble Ni(II) species. At temperatures above about 80°C, both the discharge capacity and product yield typically decreased with increasing treatment time. Without intending to be bound by theory, it is believed that as the temperature increases above about 80°C, after about 6 hours there is significant decomposition of the oxidant, resulting in a low yield (e.g., less than 40%) of electrochemically active material, and in some cases (e.g., after about 12 hours or more), may result in complete decomposition of the nickel material and no yield of electrochemically active positive electrode material. Furthermore, it was shown that for a given treatment time, e.g., 24 hours, as the temperature of the reaction increased, the product yield generally decreased, but the corresponding discharge capacity (low rate) generally increased. While not intending to be bound by theory, it is believed that at low temperatures (e.g., below about 50°C), the solubility of the oxidant is low, resulting in a slow conversion of the alkali metal-containing nickel oxide to a higher-capacity alpha-demetallated nickel oxide, but with little disproportionation reaction occurring, resulting in a high yield. Furthermore, while not intending to be bound by theory, it is believed that at temperatures above about 50°C, the solubility of the oxidant increases with increasing temperature, thereby increasing the conversion rate of the alkali metal-containing nickel oxide to alpha-demetallated nickel oxide and increasing the capacity of the resulting electrochemically active positive electrode material; however, the conversion to alpha-demetallated nickel oxide may compete with the acid-promoted disproportionation reaction, which may result in dissolved Ni(II) material and reduce yield.
[0099] Example 11: Effect of reactant ratio Changes in the molar ratio of reactants tended to affect discharge capacity more than product yield when the cation was the same for both the persulfate and hydroxide salts shown in Table 3. [Table 3]
[0100] For example, at a constant reaction temperature of 60°C and a total reaction time of 24 hours, when the cations are ammonium ions in both the persulfate and hydroxide salts, doubling the amount of hydroxide at a fixed molar ratio of lithium nickel oxide to persulfate of either 1:1 or 1:1.5 has little effect on either the discharge capacity or the product yield. However, increasing the amount of persulfate by 50% at a fixed molar ratio of lithium nickel oxide to hydroxide of 1:2 results in an approximately 15% increase in capacity. Furthermore, doubling the amount of persulfate at a fixed molar ratio of oxide to hydroxide of 1:2 produces an approximately 20% increase in capacity. At a fixed molar ratio of oxide to persulfate of 1:2, increasing the molar ratio of hydroxide to persulfate from 1:1 to 1:2 produces a slight decrease (e.g., -10%) in the low-rate discharge capacity but a slight increase (e.g., +13%) in the yield of delithiated products. Increasing the hydroxide to persulfate ratio also resulted in a higher pH of the supernatant at the end of the run. The appearance of a higher final pH coincides with a higher product yield. Maintaining a 1:2 ratio of hydroxide to persulfate while decreasing the hydroxide to persulfate ratio from 2:2 to 1:2 increased the capacity to 430 mAh / g, but the yield decreased to 52% when the supernatant pH was 4. In other cases where the final pH of the reaction solution was in the range of 6–7, the corresponding product yields were 79–82 wt%. However, the corresponding capacities of the delithiated product were typically less than about 400 mAh / g. At relatively low pH (e.g., <3), delithiation of lithium nickel oxide can occur via acid-promoted disproportionation as well as oxidative delithiation. However, because the yield of delithiated product via disproportionation is less than about 50%, the yield of delithiated product isolated from solutions with low pH is typically less than that from higher pH solutions. In addition, the blue solution is also dark green, indicating that the dissolved Ni 2+ However, product yields are greater for shorter total reaction times, e.g., 12 hours versus 24 hours.
[0101] By selecting a preferred combination of hydroxide salt cation, molar ratio of lithium nickel oxide to ammonium persulfate to hydroxide, treatment temperature, and treatment time, discharge capacities up to 462 mAh / g (e.g., NH4 + , 70°C for 24 hours), product yields up to 79 wt% (e.g., Na + (in the case of ). X-ray powder diffraction analysis was used to confirm that the product was a single-phase α-delithiated layered nickel oxide with little or no unreacted precursor or other impurity phases present. As shown in Table 4 below, delithiated products can be obtained with discharge capacities from 635-type alkaline button cells in excess of about 400 mAh / g at temperatures ranging from 60 to 80°C; as the reaction temperature increases, shorter reaction times and larger excess sodium hydroxide are required to maintain acceptable yields of delithiated product. [Table 4]
[0102] As shown in Table 5, product yields of ≥80 wt% and discharge capacities of ≥400 mAh / g can be obtained using a 1:2:6 molar ratio of lithium nickel oxide to ammonium persulfate to potassium hydroxide, a 70°C treatment temperature, and a 14-hour reaction time. Furthermore, a discharge capacity of 460 mAh / g and a product yield of approximately 65 wt% were obtained using a 1:2:2 molar ratio of oxide to persulfate to hydroxide, a 60°C treatment temperature, and a 24-hour reaction time. Because minimizing production costs is highly desirable, it is necessary to develop a robust manufacturing process for preparing delithiated products with acceptable high discharge capacities in the shortest possible time and with the highest possible yield. From Tables 3, 4, and 5, delithiated products with capacities of ≥400 mAh / g were obtained in yields of ≥70 wt% using excess persulfate in combination with excess ammonium, sodium, or potassium hydroxide. Furthermore, higher reaction temperatures required shorter reaction times. [Table 5]
[0103] In embodiments where a mixture of oxidizing agents with different cations is used, e.g., ammonium persulfate in combination with either sodium persulfate and / or potassium persulfate, or a combination of sodium persulfate and potassium persulfate, demetallization can be performed without hydroxide. As shown in Table 6, a two-phase mixture of persulfates can provide a delithiated product with a discharge capacity equivalent to or greater than that obtained using a single persulfate in combination with a hydroxide. For example, Table 6 shows that a 1:1 molar ratio (no added hydroxide) of sodium persulfate and potassium persulfate combined with lithium nickel oxide in a 1:1:1 molar ratio produced a delithiated product with a capacity of 434 mAh / g in 76% yield. For comparison, Table 1 shows that a combination of potassium persulfate and ammonium hydroxide produced a delithiated product with a capacity of 420 mAh / g in 75% yield. Also, Table 1 shows that a combination of sodium persulfate and ammonium hydroxide produced a product with a capacity of 402 mAh / g in 75% yield. [Table 6]
[0104] Furthermore, as shown in Table 6, acceptable discharge capacities and yields can be achieved when persulfate, without hydroxide, is used in a 2:1 molar ratio with lithium nickel oxide to provide the delithiated product.
[0105] The effect of increasing the reaction temperature while keeping the total reaction time and layered lithium nickel oxide to oxidant ratio constant is demonstrated in Table 7 below. [Table 7]
[0106] As shown in Table 7, both acceptable capacities and yields can be obtained at short total reaction times, e.g., 1 to 5 hours, and reaction temperatures between 75 and 85°C. At higher temperatures (e.g., 80°C) and very short reaction times (e.g., 2 hours), both high capacities (greater than about 420 mAh / g) and relatively high yields (greater than about 70%) were obtained. Additionally, the treatment time could be reduced to 1 hour, and yields of greater than 70% could be achieved when the temperature was increased to 85°C and the oxidant to lithium nickel oxide ratio was adjusted to 1.5:1. Surprisingly, the oxidant to lithium nickel oxide ratio could be reduced to 0.75:1 when the treatment time at 85°C was increased to 5 hours. These results were unexpected given the expectations in the art that long reaction times (24 hours or more) are typically required to substantially oxidize alkali metal-containing metal oxides to alpha-demetallated nickel oxides by oxidative demetallation, and the expectation that peroxydisulfate or monopersulfate salts would thermally decompose at high temperatures. This result was even more unexpected in the case of alkali-metal-containing nickel oxides, given the expectation in the art that thermal decomposition of the oxidant catalyzes a disproportionation reaction to form soluble Ni(II), which is known to catalyze the thermal decomposition of peroxydisulfate and monopersulfate salts. Increasing the reaction time at higher temperatures resulted in a slight increase in capacity but a decrease in product yield. Without intending to be bound by theory, it is believed that at relatively high temperatures (above about 80°C), the rate of persulfate ion self-decomposition increases, and as a result, the sulfuric acid produced by this decomposition promotes the disproportionation of any remaining Ni(III) in the nearly completely delithiated layered nickel oxide. The Ni(II) formed as a result of this disproportionation reaction dissolves in acidic solution, while the insoluble Ni(IV) formed increases the capacity of the remaining delithiated product. Comparing the last two entries in Table 7, it can be seen that by decreasing the amount of persulfate, delithiated lithium nickel oxide has nominally the same discharge capacity and the same reaction yield can be prepared by increasing the reaction time at 85°C, which may result in a significant reduction in manufacturing costs.
[0107] A comparison of the low-rate discharge performance of button cells containing delithiated layered nickel oxide prepared by the method of the present disclosure at 80°C for 2-2.5 hours with delithiated layered nickel oxide prepared by the known method of treating the layered lithium nickel oxide with 6M sulfuric acid at 2°C for 48 hours revealed that the discharge capacities to a 0.8 V cutoff voltage were nearly identical and could be greater than the discharge capacity of the delithiated nickel oxide prepared by the conventional method (about 430 mAh / g for the delithiated nickel oxide of the present disclosure compared to 420 mAh / g for the material prepared by sulfuric acid treatment). Thus, the method of the present disclosure can advantageously provide electrochemically active positive electrode materials that perform as well as or better than conventionally prepared materials in a substantially shorter time.
[0108] Example 12. Alkali metal intercalation into α-delithiated layered nickel oxide A 500 g portion of the α-delithiated nickel oxide prepared by the method of Example 8 was thoroughly mixed with 167 g of 8.7 N KOH solution in a sealed polyethylene bottle at room temperature for 24 hours to form beta-delithiated layered nickel. The resulting semi-solid mixture was washed three times with aliquots of deionized water and dried at 70°C in air for approximately 12 hours. The low-rate discharge capacity of button cells containing beta-delithiated layered nickel oxide was typically in the range of 340-360 mAh / g.
[0109] Thus, Example 12 demonstrates that the method of the present disclosure can be used to form a beta-delithiated nickel oxide electrochemically active positive electrode material in good yield and with good discharge capacity of the beta-delithiated nickel oxide material.
[0110] Example 13. Preparation of a prototype AA cell containing the potassium-containing beta-delithiated layered nickel oxide of Example 9. Prototype AA cells were fabricated using a positive electrode mix containing the material of Example 12, a conductive carbon additive (e.g., Timrex MX15, Imerys Graphite & Carbon), and a 12N KOH solution in a weight ratio of 91.3:6.3:2.4. The positive electrode mix was granulated and then pressed into circular rings with a nominal ID of 9.8 mm and each weighing approximately 2.25 g. The negative electrode mix, containing centrifugally spun zinc particles and zinc fines in a weight ratio of 71:25, was combined with a conventional gelling agent, such as sodium carboxymethylcellulose or the sodium salt of an acrylic acid copolymer, and an 8.7N KOH electrolyte solution to form a dispensable slurry. The cell's coulomb balance was intentionally designed to be positively limited (i.e., excessively negative). Thus, each prototype cell contained approximately 9 g of positive electrode mix and approximately 8 g of negative electrode mix (i.e., slurry). The prototype AA cell contained a standard laminated manufacturing separator paper positioned between the negative and positive electrodes. A standard negative electrode current collector was inserted into the negative electrode slurry. The prototype AA cell also contained a standard manufacturing seal assembly and was mechanically crimped.
[0111] Completed prototype AA cells were tested fresh (i.e., within 24 hours of fabrication). The cells were continuously discharged at a low drain rate of 30 mA (i.e., constant current), corresponding to a nominal C / 40 discharge rate. The cells were discharged until a 0.8 V cutoff voltage was reached. The cells were also intermittently discharged at an intermediate drain rate of 250 mW. The intermittent test consisted of discharging the cells at 250 mW for 1 hour, followed by a 7-hour rest. This duty cycle was repeated until a 0.8 V cutoff voltage was reached under load. In some cases, the cells were stored at 40°C for 2 weeks to evaluate capacity retention. The results of the discharge tests on prototype AA cells containing beta-delithiated layered nickel oxide prepared from alpha-delithiated layered nickel oxide delithiated with either a combination of ammonium persulfate and ammonium hydroxide, or sodium persulfate without hydroxide as described in Example 3, are summarized in Table 8 below.
[0112] For comparison, prototype AA cells of similar design containing beta-delithiated layered nickel oxide prepared from alpha-delithiated layered nickel oxide delithiated by treating the layered lithium nickel oxide with 6N sulfuric acid at 2°C for 48 hours were constructed and tested in a similar manner. After two weeks of storage at 40°C, the cells containing beta-delithiated layered nickel oxide prepared from alpha-delithiated layered nickel oxide delithiated using ammonium persulfate and ammonium hydroxide retained 92% of their fresh capacity, whereas the cells containing beta-delithiated layered nickel oxide prepared from alpha-delithiated layered nickel oxide delithiated using 6M sulfuric acid retained 95% of their fresh capacity. However, the cells containing beta-delithiated layered nickel oxide prepared from alpha-delithiated nickel oxide delithiated with sodium persulfate without hydroxide retained only 85% of their fresh capacity. For intermittent 250 mW discharge tests, the fresh capacity of cells containing beta-delithiated layered nickel oxide prepared from alpha-delithiated nickel oxide delithiated using sodium persulfate without hydroxide was slightly greater than the fresh capacity of cells containing beta-delithiated layered nickel oxide prepared from alpha-delithiated nickel oxide delithiated using either 6 M sulfuric acid or ammonium persulfate plus ammonium hydroxide. However, cells containing beta-delithiated layered nickel oxide prepared from alpha-delithiated layered nickel oxide delithiated using ammonium persulfate plus ammonium hydroxide retained 98% of their fresh capacity after two weeks of storage at 40°C. [Table 8]
[0113] Thus, Example 13 demonstrated that it is possible to achieve comparable discharge capacities for alkaline button test cells and prototype AA alkaline cells with beta-delithiated layered nickel oxide prepared from alpha-delithiated layered nickel oxide delithiated using either sulfuric acid or persulfate. However, the yield of alpha-delithiated layered nickel oxide prepared using persulfate as the chemical oxidant can be substantially greater than that typically observed with the acid-promoted disproportionation process. In fact, the improvement in yield can be as much as 70%. Furthermore, when treated with hydroxide-free sodium persulfate, the total reaction time can be significantly reduced from 48 hours for 6 M sulfuric acid at 2°C or 24 hours for ammonium persulfate solution with ammonium hydroxide at 60°C to less than 2 hours for treatment with hydroxide-free sodium persulfate solution at 80-85°C. Additionally, it is possible to achieve yields of alpha-delithiated product as high as 80% using persulfate. Therefore, both higher product yields and higher manufacturing throughput can be achieved using persulfate as a chemical oxidant for delithiating layered lithium nickel oxide, which may enable a significant reduction in the manufacturing cost of cathode active materials in alkaline batteries.
[0114] The foregoing description is given for clarity of understanding only, and no unnecessary limitations should be understood therefrom, since modifications within the scope of the present disclosure may be apparent to those skilled in the art.
[0115] All patents, publications, and references cited herein are hereby incorporated by reference in their entirety. In the event of a conflict between the present disclosure and the incorporated patents, publications, and references, the present disclosure shall control.
Claims
1. 1. A method for preparing an electrochemically active positive electrode material, comprising: Formula A 1-a Ni 1+a-z M z O 2 wherein A comprises an alkali metal selected from lithium, sodium, potassium, or a combination of lithium, sodium, and / or potassium, a is 0 to 0.2, M comprises a transition metal or a main group metal, and z is 0 to 0.2, is treated with a chemical oxidizer comprising a peroxydisulfate, a monopersulfate, or both at a temperature of 55° C. to 85° C. to form an alkali metal-containing nickel oxide having at least one of the general formula A x H y Ni 1+a O 2 ・nH 2 reacting in the fluid composition for a sufficient time to form an alkali metal-deficient nickel oxide electrochemically active positive electrode material having the formula: A comprises an alkali metal; x is equal to or greater than 0.08 and less than 0.2; y is equal to or greater than 0 and less than 0.3; a is more than 0.02 and 0.2 or less, z is 0 or more and 0.2 or less, The method wherein n is greater than 0 and less than 2.
2. The method of claim 1 , wherein the oxidizing agent comprises peroxydisulfate.
3. The method of any one of claims 1 to 2, wherein A comprises Li, Na, or a combination thereof.
4. The method of any one of claims 1 to 3, wherein A comprises Li.
5. 5. The method of any one of claims 1 to 4, wherein the time sufficient to form the alkali metal-deficient nickel oxide electrochemically active positive electrode material is from about 1 hour to about 24 hours.
6. 6. The method of any one of claims 1 to 5, wherein the time sufficient to form the alkali metal-deficient nickel oxide electrochemically active positive electrode material is from about 1 hour to about 6 hours.
7. The method of any one of claims 1 to 6, wherein the method does not include the addition of a mineral acid to the mixture.
8. The method of any one of claims 1 to 7, wherein the fluid composition further comprises an alkali metal hydroxide, ammonium hydroxide, or both an alkali metal hydroxide and ammonium hydroxide.
9. The method of any one of claims 1 to 8, wherein the fluid composition has a pH in the range of about 8 to about 12.
10. The method of any one of claims 1 to 7, wherein the fluid composition is substantially free of hydroxide salts.
11. 11. The method of any one of claims 1 to 10, wherein the alkali metal-containing nickel oxide and chemical oxidant are provided in a molar ratio of about 1:0.75 to about 1:
2.
12. 10. The method of claim 8 or 9, wherein the alkali metal-containing nickel oxide, the oxidizing agent, and the hydroxide salt are provided in a molar ratio of about 1:0.75:1 to about 1:2:
6.
13. 13. The method of any one of claims 1 to 12, wherein the oxidizing agent comprises a countercation selected from the group consisting of ammonium, sodium, potassium, lithium, and combinations of ammonium, sodium, potassium, and / or lithium.
14. 13. The method of any one of claims 8, 9, and 12, wherein the oxidizing agent comprises a countercation and the hydroxide salt comprises a countercation, and the countercation of the oxidizing agent and the countercation of the hydroxide salt are each ammonium.
15. 13. The method of any one of claims 8, 9, and 12, wherein the oxidizing agent comprises a countercation, the hydroxide salt comprises a countercation, and one of the oxidizing agent countercation or hydroxide countercation comprises ammonium and the other comprises potassium.
16. 13. The method of any one of claims 8, 9, or 12, wherein the oxidizing agent comprises the countercation comprising ammonium and the hydroxide salt comprises the countercation comprising sodium.
17. 12. The method of any one of claims 1 to 7, 10, and 11, wherein the oxidizer comprises a countercation comprising ammonium or sodium, and the fluid composition is substantially free of hydroxides.
18. 18. The method of any one of claims 1 to 17, wherein the oxidizing agent comprises two different countercations selected from the group consisting of ammonium, sodium, and potassium.
19. 13. The method of any one of claims 1 to 12, wherein the oxidizing agent is a combination of sodium peroxydisulfate and potassium peroxydisulfate.
20. 20. The method of any one of claims 1 to 19, wherein y has a value of from 0 to 0.
29.
21. The alkali metal-deficient nickel oxide is treated with an aqueous solution of alkali hydroxide to form a nickel oxide of formula: x A' w H y Ni 1+a-z M z O 2 ・nH 2 Compounds according to O, wherein A contains Li or Na; A' comprises K, Cs, or Rb; x is equal to or greater than 0.08 and less than 0.2; w is greater than 0.03 and less than 0.20; y is equal to or greater than 0 and less than 0.3; a is 0.02 or more and 0.2 or less, z is 0 or more and 0.2 or less, 21. The method of any one of claims 1 to 20, further comprising forming a compound wherein n is greater than 0 and less than 2.
22. 22. The method of claim 21, wherein A comprises Li and A' comprises K.
Citation Information
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