Manganese iron ammonium phosphate precursor, manganese iron lithium phosphate positive electrode active material, method for producing same, and secondary battery
A low-temperature solid-state reaction method for producing manganese iron ammonium phosphate precursors, followed by solid-state sintering, addresses irregularities in current precursors, resulting in improved electrochemical performance and reduced environmental impact.
Patent Information
- Application Number
- JP2024550639
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-09-02
- Publication Date
- 2025-12-02
- Estimated Expiration
- 2042-09-02
AI Technical Summary
Current cathode active material precursors for lithium manganese iron phosphate batteries suffer from irregular topography, large particle size, wide particle size distribution, non-uniform element distribution, and poor batch stability, affecting electrochemical performance.
A low-temperature solid-state reaction method is used to produce a manganese iron ammonium phosphate precursor, followed by a solid-state sintering process to create a lithium manganese iron phosphate cathode active material, ensuring regular topography, small particle size, narrow distribution, uniform element distribution, and high purity.
The method simplifies manufacturing, reduces costs, improves yield, minimizes environmental impact, and enhances electrochemical performance of the cathode active material and secondary batteries.
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Abstract
Description
[Technical Field]
[0001] The present application belongs to the technical field of batteries, and specifically relates to a manganese iron ammonium phosphate precursor, a manganese iron lithium phosphate positive electrode active material, a method for producing the same, and a secondary battery. [Background technology]
[0002] In recent years, secondary batteries have been widely used in energy storage power systems such as hydroelectric, thermal, wind, and solar power plants, as well as in power tools, electric bicycles, electric motorcycles, electric vehicles, military equipment, aerospace, and many other fields. Lithium manganese iron phosphate cathode active materials have become one of the most sought-after cathode active materials due to their advantages, including high capacity, excellent safety performance, and abundant raw material supply. The cathode active material precursor is one of the key factors affecting the performance of the cathode active material. However, current cathode active material precursors are often prepared by liquid-phase coprecipitation, which often results in irregular topography, large particle size, wide particle size distribution, non-uniform element distribution, and poor batch stability and consistency. These defects affect the electrochemical performance of lithium manganese iron phosphate cathode active materials and secondary batteries. Summary of the Invention
[0003] The present application aims to provide a manganese iron ammonium phosphate precursor, a manganese iron lithium phosphate cathode active material, a method for preparing the same, and a secondary battery. The method for preparing the manganese iron ammonium phosphate precursor according to the present application is simple, low-cost, high-yield, requires little post-treatment, is environmentally friendly, energy-saving, and easy to scale up production. It also provides a manganese iron ammonium phosphate precursor with a regular topography, small particle size, narrow particle size distribution, uniform element distribution, high purity, easy and precise composition control, and high batch stability and consistency. Furthermore, the manganese iron lithium phosphate cathode active material and secondary battery produced therefrom have good electrochemical performance.
[0004] A first aspect of the present application provides a method for producing an ammonium iron manganese phosphate precursor, the method comprising the steps of mixing and grinding a metal source powder and a phosphorus source powder to cause a low-temperature solid-state reaction between the components, and, after grinding, washing and drying the resulting product to obtain an ammonium iron manganese phosphate precursor, wherein the metal source comprises an iron source, a manganese source, and a source of a selectable doping element M, where M represents a doping element for the manganese site and the iron site and optionally includes one or more of Ni, Co, Mg, Zn, Ca, Ti, V, and Cr, and the phosphorus source comprises triammonium phosphate.
[0005] The method for preparing the manganese ammonium iron phosphate precursor according to the present application is simple, low cost, high yield, requires little post-treatment process complexity, is environmentally friendly, energy-saving, and easy to scale up productivity. The manganese ammonium iron phosphate precursor obtained by the method according to the present application has the characteristics of regular topography, small particle size, narrow particle size distribution, uniform element distribution, high purity, easy and accurate composition control, and high batch stability and consistency.
[0006] In any embodiment of the present application, the time for the mixed polishing is 0.25 to 6 hours, optionally 0.5 to 6 hours, which contributes to promoting a complete low-temperature solid-state reaction and allows the particle size of the obtained manganese ammonium iron phosphate precursor to be adjusted, thereby contributing to obtaining a manganese ammonium iron phosphate precursor having a nanometer-scale size.
[0007] In any embodiment of the present application, the temperature of the low-temperature solid-state reaction is 20° C. to 100° C., and optionally 20° C. to 30° C. This can facilitate increasing productivity while reducing energy consumption.
[0008] In some embodiments of the present application, the method further includes a step of leaving the mixture after the completion of the mixing and polishing. The leaving time is 0.5 to 12 hours, optionally 2 to 5 hours, and / or the sum of the mixing and polishing time and the leaving time is 1.5 hours or more, optionally 2.5 hours or more. The leaving time contributes to promoting a complete low-temperature solid-state reaction and sufficient crystallization of the produced manganese iron ammonium phosphate precursor.
[0009] In any embodiment of the present application, a surfactant may be further added and mixed and ground together with the metal source powder and the phosphorus source powder, thereby adjusting the topography and particle size of the obtained ammonium iron manganese phosphate precursor.
[0010] In any embodiment of the present application, the surfactant comprises polyethylene glycol.
[0011] In any embodiment of the present application, the amount of the surfactant added is 15 wt % or less, calculated based on the total weight of the metal source powder and the phosphorus source powder, which contributes to adjusting the topography and particle size of the obtained ammonium iron manganese phosphate precursor.
[0012] In any embodiment of the present application, the method further includes a step of grinding the metal source powder and the phosphorus source powder together to finely grind the metal source powder and / or the phosphorus source powder before the components undergo a low-temperature solid-state reaction, thereby contributing to promoting a complete low-temperature solid-state reaction and advantageously obtaining a manganese ferric ammonium phosphate precursor with controllable particle size. Optionally, the grinding time for the metal source powder is 0.25 to 1.5 hours. Optionally, the grinding time for the phosphorus source powder is 0.25 to 1.5 hours.
[0013] In any embodiment of the present application, the molar ratio of the metal source powder to the phosphorus source powder is 1:(1 to 3). Adjusting the molar ratio of the metal source powder to the phosphorus source powder contributes to improving the conversion efficiency of metal ions, thereby reducing the difficulty of treating waste liquid in the post-treatment process and reducing environmental pollution, and also contributes to improving the purity of the obtained ammonium iron manganese phosphate precursor and reducing the content of impurity phases.
[0014] In any embodiment of the present application, the cleaning comprises a water cleaning and / or an alcohol cleaning.
[0015] In any embodiment of the present application, the drying is vacuum drying.
[0016] In any embodiment of the present application, the drying temperature is 60°C to 100°C, and / or the drying time is 8 hours to 20 hours.
[0017] In any embodiment of the present application, the iron source is a divalent iron salt, optionally including one or more of ferrous chloride, ferrous nitrate, ferrous sulfate, and ferrous acetate.
[0018] In any embodiment of the present application, the manganese source is a divalent manganese salt, optionally including one or more of manganous chloride, manganous nitrate, manganous sulfate, and manganous acetate.
[0019] In any embodiment of the present application, the source of the doping element M is a divalent salt of the doping element M, optionally including one or more of the hydrochloride, nitrate, sulfate and acetate salts of the doping element M.
[0020] A second aspect of the present application provides an ammonium iron manganese phosphate precursor produced by the production method of the first aspect of the present application, the ammonium iron manganese phosphate precursor having the chemical formula NH4Fe x Mn y M 1-x-yIt has PO4, where 0 < x < 1, 0 < y < 1, 0 ≤ 1 - x - y < 1, M represents the doping elements of manganese sites and iron sites, and optionally includes one or more of Ni, Co, Mg, Zn, Ca, Ti, V, and Cr, and the ammonium manganese iron phosphate precursor is electrically neutral.
[0021] In any embodiment of the present application, the topography of the ammonium manganese iron phosphate precursor is in the form of nanosheets, with an average length of 50 nm to 800 nm and an average thickness of ≤ 100 nm.
[0022] The ammonium manganese iron phosphate precursor according to the present application has the characteristics of regular topography, small particle size, narrow particle size distribution, uniform element distribution, high purity, easy and accurate control of composition, and high batch stability and uniformity.
[0023] The third aspect of the present application is a method for manufacturing a lithium manganese iron phosphate cathode active material, which includes mixing the ammonium manganese iron phosphate precursor manufactured by the manufacturing method of the first aspect of the present application or the ammonium manganese iron phosphate precursor of the second aspect of the present application with a lithium source, an optional source of doping element N, an optional source of doping element Q, and an optional source of doping element R in a predetermined ratio, followed by grinding, and after the grinding is completed, spray drying and granulation to obtain a powder in step S1, and sintering the powder obtained in S1 to obtain a lithium manganese iron phosphate cathode active material in step S2. Here, in step S1, N represents the doping element of lithium sites and optionally includes one or more of Zn, Al, Na, K, Mg, Nb, Mo, and W, Q represents the doping element of phosphorus sites and optionally includes one or more of B, S, Si, and N, and R represents the doping element of oxygen sites and optionally includes one or more of S, F, Cl, and Br, and a method for manufacturing a lithium manganese iron phosphate cathode active material is provided.
[0024] The method for producing a lithium manganese iron phosphate positive electrode active material according to the present application can provide a lithium manganese iron phosphate positive electrode active material with a regular topography, small particle size, narrow particle size distribution, uniform element distribution, high purity, easy and accurate composition control, and high batch stability and uniformity. The resulting lithium manganese iron phosphate positive electrode active material can also have excellent electrochemical performance.
[0025] In any embodiment of the present application, in S1, a carbon source is added to simultaneously carry out mixed grinding, and the carbon source includes one or more of an organic carbon source and an inorganic carbon source.
[0026] In any embodiment of the present application, in S1, the polishing time is 1 hour to 6 hours.
[0027] In any embodiment of the present application, in S1, the temperature of the spray drying is 200°C to 250°C.
[0028] In any embodiment of the present application, in S2, the sintering process includes a step of calcining the powder obtained in S1 at a low temperature of 350°C to 500°C in an air atmosphere or a protective gas atmosphere, and then sintering the powder at a high temperature of 650°C to 750°C in a protective gas atmosphere to obtain a positive electrode active material of lithium manganese iron phosphate.
[0029] In any embodiment of the present application, optionally, the time for the low-temperature calcination is 1 hour to 6 hours.
[0030] In any embodiment of the present application, optionally, the time of the high-temperature sintering is 3 hours to 24 hours.
[0031] In any embodiment of the present application, after the low-temperature calcination process and before the high-temperature sintering process, a grinding and spray-drying granulation process may be further included.
[0032] The fourth aspect of the present application provides a lithium iron manganese phosphate cathode active material produced by the method for producing a lithium iron manganese phosphate cathode active material according to the third aspect of the present application. The lithium iron manganese phosphate cathode active material has the chemical formula Li a N b Fe x Mn y M 1-x-y P 1-m Q m O 4-n R n where M represents a doping element for the manganese site and the iron site, and optionally includes one or more of Ni, Co, Mg, Zn, Ca, Ti, V, and Cr; N represents a doping element for the lithium site, and optionally includes one or more of Zn, Al, Na, K, Mg, Nb, Mo, and W; Q represents a doping element for the phosphorus site, and optionally includes one or more of B, S, Si, and N; R represents a doping element for the oxygen site, and optionally includes one or more of S, F, Cl, and Br; 0.9 ≦ a ≦ 1.1, 0 ≦ b ≦ 0.1, optionally 0.001 ≦ b ≦ 0.1, 0 < x < 1, optionally 0.20 ≦ x ≦ 0.50, 0 < y < 1, optionally 0.50 ≦ y ≦ 0.80, 0 ≦ 1 - x - y < 1, optionally 0.001 ≦ 1 - x - y ≦ 0.1, 0 ≦ m < 1, optionally 0.001 ≦ m ≦ 0.1, 0 ≦ n < 4, optionally 0.001 ≦ n ≦ 0.1, and the lithium iron manganese phosphate cathode active material is electrically neutral.
[0033] The lithium iron manganese phosphate cathode active material according to the present application has the characteristics that the topography is regular, the particle size is small, the particle size distribution is narrow, the element distribution is uniform, the purity is high, the composition can be easily and accurately controlled, and the batch stability and uniformity are high.
[0034] The fifth aspect of the present application provides a secondary battery including the lithium iron manganese phosphate cathode active material produced by the production method according to the third aspect of the present application or the lithium iron manganese phosphate cathode active material according to the fourth aspect of the present application.
[0035] Beneficial effects During the course of research, the inventors of the present application surprisingly discovered that by first preparing an ammonium manganese iron phosphate precursor by a low-temperature solid-state reaction method and then preparing a lithium manganese iron phosphate cathode active material by a solid-state sintering process, the manufacturing process can be simplified, costs can be reduced, yields can be improved, post-treatment processes can be made less difficult, environmental pressures can be reduced, and productivity can be reduced. The resulting ammonium manganese iron phosphate precursor and lithium manganese iron phosphate cathode active material are characterized by regular topography, small particle size, narrow particle size distribution, uniform element distribution, high purity, easy and precise composition control, and high batch stability and uniformity. As a result, the manufactured lithium manganese iron phosphate cathode active material and secondary batteries can have good electrochemical performance. [Brief explanation of the drawings]
[0036] In order to more clearly explain the technical solutions of the embodiments of the present application, the drawings necessary for the embodiments of the present application will be briefly described below. It is clear that the drawings described below are only some embodiments of the present application. Those skilled in the art can further obtain other drawings based on the drawings without any creative work. [Figure 1] 1 is a schematic diagram of an embodiment of a secondary battery of the present application. [Figure 2] FIG. 2 is an exploded schematic view of the embodiment of the secondary battery of FIG. [Figure 3] 1 is a schematic diagram of one embodiment of a battery module of the present application. [Figure 4] 1 is a schematic diagram of one embodiment of a battery pack of the present application. [Figure 5] 5 is an exploded schematic view of the embodiment of the battery pack shown in FIG. 4. [Figure 6] 1 is a schematic diagram of an embodiment of a power consumption device powered by a secondary battery according to the present application; [Figure 7] FIG. 2 is a scanning electron microscope (SEM) image of the manganese ferric ammonium phosphate precursor produced in Example 1. [Figure 8] 1 is a scanning electron microscope (SEM) image at 10,000 times magnification of the nanoscale lithium iron manganese phosphate positive electrode active material produced in Example 1. FIG. [Figure 9] 1 is a scanning electron microscope (SEM) image at 100,000 times magnification of the nanoscale lithium iron manganese phosphate positive electrode active material prepared in Example 1. FIG. [Figure 10] FIG. 1 is a diagram showing the initial charge-discharge curve of the coin cell manufactured in Example 1. [Figure 11] FIG. 2 is a scanning electron microscope (SEM) image of the ammonium iron manganese phosphate precursor produced in Example 2. [Figure 12] FIG. 2 is a scanning electron microscope (SEM) image of the manganese iron ammonium phosphate precursor produced in Comparative Example 1. [Figure 13] FIG. 1 is a diagram showing the initial charge-discharge curve of the coin cell manufactured in Comparative Example 1. [Figure 14] FIG. 2 is a scanning electron microscope (SEM) image of the iron manganese phosphate precursor produced in Comparative Example 2. [Figure 15] 1 is a graph showing the initial charge-discharge curve of the coin cell manufactured in Comparative Example 2. In the drawings, the drawings are not necessarily drawn to scale. Reference numerals: 1 battery pack, 2 upper case, 3 lower case, 4 battery module, 5 secondary battery, 51 housing, 52 electrode assembly, 53 cover plate. DETAILED DESCRIPTION OF THE INVENTION
[0037] Hereinafter, embodiments specifically disclosing the manganese iron ammonium phosphate precursor, manganese iron lithium phosphate cathode active material, manufacturing method thereof, and secondary battery of the present application will be described in detail with appropriate reference to the drawings. However, unnecessary detailed description may be omitted. For example, detailed description of well-known matters or redundant description of substantially identical configurations may be omitted. This is to avoid unnecessary redundancy in the following description and to facilitate understanding by those skilled in the art. Note that the accompanying drawings and the following description are provided to enable those skilled in the art to fully understand the present application and are not intended to limit the subject matter described in the claims.
[0038] "Ranges" disclosed in this application are defined in the form of lower and upper limits. A given range is defined by selecting one lower limit and one upper limit, and the selected lower and upper limits define the boundaries of that particular range. Such defined ranges may be inclusive or exclusive of the end values, and may be arbitrarily combined, i.e., any lower limit may be combined with any upper limit to form a range. For example, if ranges of 60 to 120 and 80 to 110 are recited for a particular parameter, it is understood that ranges of 60 to 110 and 80 to 120 are also contemplated. Furthermore, if minimum range values of 1 and 2 and maximum range values of 3, 4, and 5 are recited, then ranges of 1 to 3, 1 to 4, 1 to 5, 2 to 3, 2 to 4, and 2 to 5 are all contemplated. In this application, unless otherwise specified, a numerical range "a to b" is represented by the abbreviation for any combination of real numbers between a and b, where a and b are both real numbers. For example, the numerical range "0 to 5" indicates that all real numbers between "0 and 5" are included herein, and "0 to 5" is an abbreviation for combinations of these numerical values. Furthermore, expressing a parameter as an integer greater than or equal to 2 (≧2) is equivalent to disclosing that the parameter is, for example, the integers 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, etc.
[0039] Unless otherwise specified, all embodiments and optional embodiments of the present application may be combined with each other to form new technical solutions, and such technical solutions are considered to be included in the disclosure content of the present application.
[0040] Unless otherwise specified, all technical features and optional technical features of the present application may be combined with each other to form new technical solutions, and such technical solutions are considered to be included in the disclosure content of the present application.
[0041] Unless otherwise specified, all steps in the present application may be performed in order or randomly, but are preferably performed in order. For example, when the method includes steps S1 and S2, it means that the method may include steps S1 and S2 performed in order, or may include steps S1 and S2 performed in order. For example, when it is stated that the method may further include step S3, it means that step S3 may be added to the method in any order. For example, the method may include steps S1, S2, and S3, or may include steps S1, S3, and S2, or may include steps S3, S1, and S2, etc.
[0042] Unless otherwise specified, the terms "comprise" and "include" used in this application mean open-ended and may also be closed-ended. For example, the terms "comprise" and "include" can mean "comprise" or "include" other components not listed, or "comprise" or "include" only the listed components.
[0043] Unless otherwise stated, in this application, the term "or" is inclusive. For example, the phrase "A or B" means "A, B, or both A and B." More specifically, any of the following satisfies the condition "A or B": A is true (or exists) and B is false (or does not exist), A is false (or does not exist) and B is true (or exists), or both A and B are true (or exist).
[0044] In this application, the terms "plurality" and "plurality" mean two or more or more kinds.
[0045] In this application, the volume particle size Dv50 refers to the particle size corresponding to the cumulative volume distribution of the material reaching 50%. The test basis can refer to GB / T 19077-2016. The test equipment can be a Malvern Master Size 3000 type laser particle size analyzer.
[0046] In this application, "low-temperature solid-state reaction" refers to a chemical reaction that takes place between solid-state compounds at room temperature or temperatures approaching room temperature (≦100° C.).
[0047] Lithium manganese iron phosphate cathode active material has advantages such as high capacity, excellent safety performance, abundant raw material supply source, etc., and is therefore one of the most popular cathode active materials at present. Currently, precursors for lithium manganese iron phosphate cathode active material mainly include oxalate precursors and phosphate precursors.
[0048] The process for producing lithium manganese iron phosphate positive electrode active material using an oxalate precursor is a typical solid-state sintering process, and the decomposition of oxalate ions during the sintering process releases large amounts of exhaust gas and toxic gases, creating enormous pressure to protect the environment. Furthermore, the surface energy of the lithium manganese iron phosphate positive electrode active material produced by the decomposition of oxalate ions during the sintering process is high, which in turn increases the difficulty of the positive electrode sheet processing process and reduces the yield rate.
[0049] Liquid-phase co-precipitation is another common process for producing cathode active material precursors. However, due to differences in the solubility product constants of different metal ions, the precipitation rates of different metal ions differ. Furthermore, uniform co-precipitation of metal ions cannot be achieved, and the precursor composition cannot be accurately controlled according to the metal ion addition ratio. Furthermore, the co-precipitation process typically requires the addition of various additives, such as pH adjusters, complexing agents, and precipitants, to facilitate the co-precipitation process. This generates large amounts of exhaust gas and waste liquid, further increasing environmental pressure. Furthermore, the reaction conditions for the co-precipitation process are relatively complex, and specific equipment must always be combined with the process design. Therefore, the co-precipitation process cannot achieve the desired scale-up effect and further productivity expansion, preventing the desired targets from being reached in pilot tests.
[0050] During the course of research, the inventors of the present application surprisingly found that by first preparing an ammonium iron manganese phosphate precursor by a low-temperature solid-state reaction method and then preparing a lithium iron manganese phosphate cathode active material by a solid-state sintering process, the manufacturing process can be simplified, costs can be reduced, the yield can be improved, the difficulty of post-treatment processes can be reduced, pressure on environmental protection can be reduced, and the difficulty of expanding productivity can be reduced. The obtained ammonium iron manganese phosphate precursor and lithium iron manganese phosphate cathode active material are characterized by regular topography, small particle size, narrow particle size distribution, uniform element distribution, high purity, easy and accurate composition control, and high batch stability and uniformity. Method for producing manganese iron ammonium phosphate precursor
[0051] Specifically, a first aspect of an embodiment of the present application provides a method for producing an ammonium iron manganese phosphate precursor, the method comprising the steps of mixing and grinding a metal source powder and a phosphorus source powder to cause a low-temperature solid-state reaction between the components, and, after grinding, washing and drying the resulting product to obtain an ammonium iron manganese phosphate precursor, wherein the metal sources include an iron source, a manganese source, and a source of an optional doping element M, where M represents a doping element for the manganese site and the iron site, and the phosphorus source includes triammonium phosphate.
[0052] The manufacturing process of the manganese ammonium iron phosphate precursor according to the present application is simple: simply mix and grind a metal source powder and a phosphorus source powder at room temperature or a temperature close to room temperature (≦100°C), and the solid-phase raw material components are sufficiently chemically reacted in a relatively short time to synthesize the manganese ammonium iron phosphate precursor in a one-step process. During the mix and grinding process of the metal source powder and the phosphorus source powder, the reaction system first transitions from a solid powder state to a slurry state (i.e., from a dry state to a wet state), and then transitions from the slurry state to a solid powder state, resulting in no graininess during grinding, and the resulting manganese ammonium iron phosphate precursor particles are fine, at the nanometer level.
[0053] The method for producing ammonium iron manganese phosphate precursor according to the present application meets the needs of industrial-scale production and is easy to scale up productivity, thereby effectively avoiding the problems of scalability and difficulty in mass production during liquid-phase co-precipitation reaction.
[0054] Compared with the liquid-phase co-precipitation method, the method for producing the manganese ammonium iron phosphate precursor according to the present application allows for a more complete reaction, a higher yield, and no side reactions or residual solvents during the reaction process, resulting in a higher purity of the resulting manganese ammonium iron phosphate precursor. At the same time, the present application does not require the addition of various additives (such as pH adjusters, complexing agents, and precipitants) during the reaction process, thereby avoiding the generation of large amounts of exhaust gas and waste liquid during the liquid-phase co-precipitation reaction process and making the post-treatment process simpler, which is clean, eco-friendly, and energy-saving.
[0055] Therefore, the method for preparing the manganese iron ammonium phosphate precursor according to the present application is simple, low cost, high yield, requires low post-treatment process difficulty, is environmentally friendly, energy-saving, and easy to expand productivity.
[0056] Unlike the liquid-phase co-precipitation method, this application uses a low-temperature solid-state reaction method to prepare the manganese ammonium iron phosphate precursor, which allows 100% (or nearly 100%) of the manganese ions and iron ions to participate in the reaction without the addition of various additives (e.g., pH adjusters, complexing agents, precipitants, etc.). This allows for precise control of the composition of the resulting manganese ammonium iron phosphate precursor, resulting in higher batch stability and consistency, and avoids the problem of large amounts of impurity phases in the precursor due to some manganese ions and iron ions remaining in solution during the liquid-phase co-precipitation reaction.
[0057] The manganese ammonium iron phosphate precursor obtained by the low-temperature solid-state reaction method provided by the present application has a regular topography, a small particle size, a narrow particle size distribution, and an adjustable particle size. For example, the particle size is at the nano level and can be adjusted within the nano level range. Furthermore, the obtained manganese ammonium iron phosphate precursor has a uniform element distribution, high purity, and few impurity phases.
[0058] Therefore, the manganese iron ammonium phosphate precursor obtained by the preparation method of the present application has the characteristics of regular topography, small particle size, narrow particle size distribution, uniform element distribution, high purity, easy and accurate composition control, and high batch stability and uniformity.
[0059] In some embodiments, the mixed-polishing time may be 0.25 to 6 hours, such as 0.5, 1, 2, 3, 4, 5, or 6 hours, or any range of the above values. This contributes to promoting a complete low-temperature solid-state reaction and also allows for the adjustment of the particle size of the resulting manganese ammonium iron phosphate precursor, thereby contributing to obtaining a manganese ammonium iron phosphate precursor having a nanometer-scale size. Optionally, the mixed-polishing time may be 0.5 to 6 hours.
[0060] In some embodiments, the mixed polishing (i.e., low-temperature solid-state reaction) may be carried out at 20°C to 100°C, and optionally at room temperature of 20°C to 30°C, which can reduce energy consumption and easily increase productivity.
[0061] In some embodiments, the mixed polishing can be performed by a suitable polishing method known in the art. For example, the mixed polishing can be performed in a mortar, a ball mill pot, or a ball mill. Optionally, the polishing speed in the mortar is 100 r / min. Optionally, the rotation speed of the ball mill is 300 r / min to 800 r / min.
[0062] In some embodiments, the molar ratio of the metal source powder to the phosphorus source powder may be 1:(1 to 3). Adjusting the molar ratio of the metal source powder to the phosphorus powder improves the conversion efficiency of metal ions, thereby reducing the difficulty of treating wastewater in the post-treatment process and reducing environmental pollution, and also contributes to improving the purity of the obtained ammonium iron manganese phosphate precursor and reducing the content of impurity phases.
[0063] In some embodiments, a standing step can be further included after the completion of mixed polishing. Standing contributes to promoting complete low-temperature solid-state reaction and sufficient crystallization of the produced manganese iron ammonium phosphate precursor. Optionally, the standing time is 0.5 hours to 12 hours, such as 1 hour, 2 hours, 3 hours, 4 hours, 5 hours, 6 hours, 7 hours, 8 hours, 9 hours, 10 hours, 11 hours, 12 hours, or any range of the above values. Optionally, the standing time is 2 hours to 5 hours.
[0064] In some embodiments, the sum of the mixing and grinding time and the standing time is 1.5 hours or more, and optionally 2.5 hours or more, which contributes to promoting a complete low-temperature solid-state reaction, and can increase the crystallinity and purity of the resulting manganese iron ammonium phosphate precursor, which is further advantageous for improving the electrochemical performance of the subsequently prepared manganese iron lithium phosphate positive electrode active material.
[0065] In some embodiments, a surfactant may be further added and mixed and ground with the metal source powder and the phosphorus source powder, thereby adjusting the topography and particle size of the resulting ammonium iron manganese phosphate precursor. Optionally, the surfactant includes polyethylene glycol. Optionally, the molecular weight of the polyethylene glycol is 1000 or less (≦1000), and may include, for example, one or more of polyethylene glycol 200, polyethylene glycol 300, polyethylene glycol 400, polyethylene glycol 600, polyethylene glycol 800, and polyethylene glycol 1000.
[0066] In some embodiments, the amount of the surfactant added may be 15 wt % or less, optionally 10 wt % or less, and more preferably 5 wt % or less, based on the total weight of the metal source powder and the phosphorus source powder. When the amount of surfactant added is within an appropriate range, it contributes to adjusting the topography and particle size of the resulting manganese iron ammonium phosphate precursor. If the amount of surfactant added is too high, the reaction system will be in a liquid phase rather than a solid phase reaction state, resulting in severe aggregation of the resulting manganese iron ammonium phosphate precursor particles and no specific topography, which will further affect the electrochemical performance of the subsequently produced manganese iron lithium phosphate cathode active material and secondary battery.
[0067] In some embodiments, the method further includes a step of grinding the metal source powder and the phosphorus source powder together to finely divide the reactant materials before the respective components undergo a low-temperature solid-state reaction, which contributes to promoting a complete low-temperature solid-state reaction and is advantageous for obtaining a manganese ferric ammonium phosphate precursor with controllable particle size. Optionally, the grinding time for the metal source powder is 0.25 to 1.5 hours. Optionally, the grinding time for the phosphorus source powder is 0.25 to 1.5 hours.
[0068] In some embodiments, the washing may include a water wash and / or an alcohol wash, and optionally, the washing may include a water wash and an alcohol wash simultaneously, which can remove impurity phase products and excess triammonium phosphate in the produced ammonium iron manganese phosphate precursor.
[0069] In some embodiments, optionally, the alcohol wash employs ethanol as a solvent.
[0070] In some embodiments, optionally, the number of water washes is 2 to 4. In some embodiments, optionally, the number of alcohol washes is 2 to 4.
[0071] In some embodiments, the drying may be vacuum drying.
[0072] In some embodiments, the drying temperature may be below 100°C, and optionally may be between 60°C and 100°C.
[0073] In some embodiments, the drying time may be 8 hours to 20 hours, which allows an anhydrous ammonium manganese iron phosphate precursor to be obtained, thereby contributing to accurately adjusting the ratio of each element in the subsequently prepared lithium manganese iron phosphate positive electrode active material.
[0074] In the production method according to the present application, the amounts of the iron source and manganese source added correspond to the stoichiometric ratio of the ammonium iron manganese phosphate precursor, and the amount of the source of the doping element M added depends on the target doping amount.
[0075] In some embodiments, the iron source may be a divalent iron salt, optionally including one or more of ferrous chloride, ferrous nitrate, ferrous sulfate, and ferrous acetate.
[0076] In some embodiments, the manganese source may be a divalent manganese salt, optionally including one or more of manganous chloride, manganous nitrate, manganous sulfate, and manganous acetate.
[0077] In some embodiments, the source of doping element M is a divalent salt of doping element M, optionally including one or more of hydrochloride, nitrate, sulfate, and acetate salts of doping element M.
[0078] M represents doping elements for the manganese and iron sites, and in some embodiments, optionally, M includes one or more of Ni, Co, Mg, Zn, Ca, Ti, V, and Cr.
[0079] In the manufacturing method of the present application, unless otherwise specified, all raw materials can be directly purchased. Each raw material may or may not have crystal water. Manganese Ferric Ammonium Phosphate Precursor
[0080] The second aspect of the embodiment of the present application provides an ammonium iron manganese phosphate precursor manufactured by the manufacturing method of the first aspect of the embodiment of the present application.
[0081] The above ammonium iron manganese phosphate precursor has the chemical formula NH4Fe x Mn y M 1-x-y PO4, where 0 < x < 1, 0 < y < 1, 0 ≤ 1 - x - y < 1, M represents a doping element for the manganese site and the iron site, and optionally includes one or more of Ni, Co, Mg, Zn, Ca, Ti, V, and Cr. The above ammonium iron manganese phosphate precursor is electrically neutral.
[0082] The ammonium iron manganese phosphate precursor provided in the present application has the characteristics of regular topography, small particle size, narrow particle size distribution, uniform element distribution, high purity, easy and accurate control of composition, and high batch stability and uniformity.
[0083] In some embodiments, the topography of the above ammonium iron manganese phosphate precursor is in the form of nanosheets. Optionally, the average length of the above ammonium iron manganese phosphate precursor is 50 nm to 800 nm. Optionally, the average thickness of the above ammonium iron manganese phosphate precursor is 100 nm or less (≤ 100 nm).
[0084] In some embodiments, the above ammonium iron manganese phosphate precursor particles are in a single crystal form. Method for producing lithium manganese iron phosphate cathode active material
[0085] A third aspect of the present application provides a method for producing a lithium manganese iron phosphate positive electrode active material, the method comprising: step S1 of mixing the ammonium manganese iron phosphate precursor produced by the production method of the first aspect of the present application or the ammonium manganese iron phosphate precursor of the second aspect of the present application with a lithium source, a source of optional doping element N, a source of optional doping element Q, and a source of optional doping element R in a predetermined ratio, followed by grinding, and after grinding, spray-drying and granulating to obtain a powder; and step S2 of sintering the powder obtained in S1 to obtain a lithium manganese iron phosphate positive electrode active material, where in step S1, N represents a doping element at the lithium site, Q represents a doping element at the phosphorus site, and R represents a doping element at the oxygen site.
[0086] Compared with oxalate precursors, the present application uses nanoscale manganese iron ammonium phosphate as a precursor when producing a lithium manganese iron phosphate positive electrode active material, which can avoid the aggregation of precursor particles that affects electrochemical performance, avoid the generation of large amounts of exhaust gas and toxic gases caused by the decomposition of oxalate ions, and further avoid the impact of the decomposition of oxalate ions on the surface energy of the lithium manganese iron phosphate positive electrode active material, thereby reducing the difficulty of the processing of the positive electrode sheet and increasing the yield rate of the positive electrode sheet.
[0087] In the present application, when manufacturing a lithium manganese iron phosphate cathode active material, by using nanoscale manganese iron ammonium phosphate as a precursor, a lithium manganese iron phosphate cathode active material can be obtained in which lithium, manganese, iron, and each doping element are uniformly mixed at the molecular level, thereby avoiding problems such as large raw material particles, non-uniform element distribution, and high energy consumption in ball milling that occur when manufacturing using the conventional high-temperature solid-phase sintering method.
[0088] The method for producing a lithium manganese iron phosphate positive electrode active material according to the present application can provide a lithium manganese iron phosphate positive electrode active material with a regular topography, small particle size, narrow particle size distribution, uniform element distribution, high purity, easy and accurate composition control, and high batch stability and uniformity. The resulting lithium manganese iron phosphate positive electrode active material also has excellent electrochemical performance, such as a high gram capacity (capacity per gram) and a high initial coulombic efficiency.
[0089] In some embodiments, the lithium source can be any lithium-containing compound known in the art that can be used to prepare a lithium iron manganese phosphate active cathode material, such as LiCO, LiOH, or a combination thereof.
[0090] N represents a doping element at the lithium site. In some embodiments, N includes one or more selected from Zn, Al, Na, K, Mg, Nb, Mo, and W. In some embodiments, the source of the doping element N includes one or more selected from hydrochlorides, nitrates, sulfates, and acetates of the doping element N.
[0091] Q represents a doping element of phosphorussite. In some embodiments, Q comprises one or more selected from B, S, Si, and N. In some embodiments, the source of the doping element Q comprises one or more selected from sulfates, borates, nitrates, and silicates of the doping element Q.
[0092] R represents a doping element for the oxygen site. In some embodiments, R includes one or more elements selected from S, F, Cl, and Br. In some embodiments, the source of the doping element R includes one or more elements selected from the simple substance and ammonium salt of the doping element R.
[0093] By selecting the source of each doping element, the uniformity of the distribution of the doping elements can be improved, and the electrochemical performance of the lithium manganese iron phosphate positive electrode active material can be improved.
[0094] In some embodiments, in step S1, a carbon source is further added and mixed and ground to obtain a carbon-coated lithium manganese iron phosphate active cathode material, wherein the carbon source includes one or more of an organic carbon source and an inorganic carbon source, and optionally includes one or more of glucose, sucrose, starch, fructose, polyvinyl alcohol, polyethylene glycol, and citric acid.
[0095] In some embodiments, in step S1, the polishing can be performed by a suitable polishing method known in the art. For example, the polishing can be performed in a ball mill pot or a ball mill. Optionally, the rotation speed of the ball mill is 300 r / min to 800 r / min. Optionally, the polishing time is 1 hour to 6 hours.
[0096] In some embodiments, in S1, a small amount of solvent, such as a small amount of ethanol and / or water, may be added to the polishing process.
[0097] In some embodiments, the spray drying temperature in S1 may be a temperature commonly used in the art for spray drying. Optionally, the spray drying temperature is 200°C to 250°C.
[0098] In some embodiments, in S2, the sintering process can be carried out in a muffle furnace.
[0099] In some embodiments, in S2, the sintering process may be a multi-stage sintering process, which optionally includes a step of calcining the powder obtained in S1 at a low temperature of 350°C to 500°C in an air atmosphere or a protective gas atmosphere, followed by a step of sintering at a high temperature of 650°C to 750°C in a protective gas atmosphere to obtain a lithium manganese iron phosphate positive electrode active material.
[0100] In some embodiments, the low-temperature calcination may be performed for 1 hour to 6 hours.
[0101] In some embodiments, the high-temperature sintering time may be 3 hours to 24 hours.
[0102] In some embodiments, the protective gas may be nitrogen gas, an inert gas, or a combination thereof.
[0103] In some embodiments, the method may further include a grinding and spray-drying granulation process after the low-temperature calcination process and before the high-temperature sintering process. The grinding can be performed by a suitable grinding method known in the art. For example, the grinding can be performed in a ball mill pot or a ball mill. Optionally, the ball milling rotation speed is 300 r / min to 800 r / min. Optionally, the grinding time is 1 hour to 6 hours. A small amount of solvent, for example, a small amount of ethanol and / or water, may be added during the grinding process. The spray-drying temperature may be a temperature commonly used in spray drying in the art. Optionally, the spray-drying temperature is 200°C to 250°C.
[0104] In some embodiments, the method for producing the lithium manganese iron phosphate active cathode material may further include crushing the resulting lithium manganese iron phosphate active cathode material to a desired particle size. Optionally, the crushing is air crushing.
[0105] In some embodiments, the method for producing the lithium manganese iron phosphate positive electrode active material includes: a step of mixing and grinding a metal source powder and a phosphorus source powder to cause a low-temperature solid-state reaction of each component, and after the grinding is completed, washing and drying the resulting product to obtain an ammonium iron manganese phosphate precursor, wherein the metal source comprises an iron source, a manganese source, and a source of a selectable doping element M, where M represents a doping element for the manganese site and the iron site and optionally comprises one or more of Ni, Co, Mg, Zn, Ca, Ti, V, and Cr, and the phosphorus source comprises triammonium phosphate; a step of mixing the obtained manganese iron ammonium phosphate precursor with a lithium source, a source of a selectable doping element N, a source of a selectable doping element Q, and a source of a selectable doping element R in a predetermined ratio, followed by grinding, and after grinding, spray-drying and granulating to obtain a powder, wherein N represents a doping element for the lithium site and optionally includes one or more of Zn, Al, Na, K, Mg, Nb, Mo, and W; Q represents a doping element for the phosphorus site and optionally includes one or more of B, S, Si, and N; and R represents a doping element for the oxygen site and optionally includes one or more of S, F, Cl, and Br; The resulting powder is calcined at a low temperature of 350°C to 500°C in an air atmosphere or a protective gas atmosphere, then ground and spray-dried to granulate, and then sintered at a high temperature of 650°C to 750°C in a protective gas atmosphere to obtain a manganese iron lithium phosphate positive electrode active material.
[0106] In the manufacturing method of the present application, the amount of each of the doping elements M, N, Q, and R added depends on the target doping amount, and the amount of the lithium source added conforms to the stoichiometric ratio of the lithium manganese iron phosphate positive electrode active material. In some embodiments, the amount of the lithium source added may be slightly excess, for example, 100% to 110% of the theoretical mass of the lithium source. The theoretical mass of the lithium source is the mass of the lithium source calculated from the stoichiometric ratio of the lithium manganese iron phosphate positive electrode active material.
[0107] In the manufacturing method of the present application, unless otherwise specified, each raw material can be directly purchased. Lithium iron manganese phosphate cathode active material
[0108] A fourth aspect of the embodiment of the present application provides a lithium iron manganese phosphate cathode active material manufactured by the manufacturing method of the third aspect of the embodiment of the present application. The lithium iron manganese phosphate cathode active material has the chemical formula Li a N b Fe x Mn y M 1-x-y P 1-m Q m O 4-n R n where M represents a doping element for the manganese site and the iron site, N represents a doping element for the lithium site, Q represents a doping element for the phosphorus site, R represents a doping element for the oxygen site, 0.9 ≦ a ≦ 1.1, 0 ≦ b ≦ 0.1, 0 < x < 1, 0 < y < 1, 0 ≦ 1 - x - y < 1, 0 ≦ m < 1, 0 ≦ n < 4, and the lithium iron manganese phosphate cathode active material is electrically neutral.
[0109] [[ID=2
[0113] M represents a dopant for the manganese site and the iron site, and in some embodiments, M optionally includes one or more of Ni, Co, Mg, Zn, Ca, Ti, V, and Cr. N represents a dopant for the lithium site, and in some embodiments, N optionally includes one or more of Zn, Al, Na, K, Mg, Nb, Mo, and W. Q represents a dopant for the phosphorus site, and in some embodiments, Q optionally includes one or more of B, S, Si, and N. R represents a dopant for the oxygen site, and in some embodiments, R optionally includes one or more of S, F, Cl, and Br.
[0114] In some embodiments, optionally, 0.001≦b≦0.1. In some embodiments, optionally, 0.20≦x≦0.50. In some embodiments, optionally, 0.50≦y≦0.80. In some embodiments, optionally, 0.001≦1−xy≦0.1. In some embodiments, optionally, 0.001≦m≦0.1. In some embodiments, optionally, 0.001≦n≦0.1.
[0115] Selecting the doping element within the doping range makes the lithium manganese iron phosphate positive electrode active material have higher structural stability, thereby contributing to its better electrochemical performance. secondary battery
[0116] A fifth aspect of the present application provides a secondary battery. A secondary battery, also known as a rechargeable battery or storage battery, is a battery that can be used continuously after discharge by recharging to activate the active material. Typically, a secondary battery includes an electrode assembly and an electrolyte, and the electrode assembly includes a positive electrode sheet, a negative electrode sheet, and a separator. The separator is disposed between the positive electrode sheet and the negative electrode sheet and primarily serves to prevent short-circuiting between the positive and negative electrodes while allowing active ions to pass through. The electrolyte serves to conduct active ions between the positive electrode sheet and the negative electrode sheet. [Positive electrode sheet]
[0117] The positive electrode sheet of the present application includes a positive electrode current collector and a positive electrode film layer provided on at least one surface of the positive electrode current collector. The positive electrode film layer includes a lithium manganese iron phosphate positive electrode active material obtained by the manufacturing method of the third aspect of the present application or the lithium manganese iron phosphate positive electrode active material of the fourth aspect of the present application. The positive electrode current collector has two surfaces facing each other in its thickness direction, and the positive electrode film layer is provided on one or both of the two facing surfaces of the positive electrode current collector.
[0118] In some embodiments, the content of the lithium manganese iron phosphate positive electrode active material in the positive electrode film layer is 50 wt % or more, preferably 85 wt % to 99 wt %, more preferably 90 wt % to 99 wt %, based on the total weight of the positive electrode film layer.
[0119] The positive electrode film layer does not exclude components other than the lithium manganese iron phosphate positive electrode active material. For example, the positive electrode film layer may further include other positive electrode active materials, and optionally, the other positive electrode active materials may include one or more of lithium transition metal oxides and their modified compounds. For example, the other positive electrode active materials may include one or more of lithium cobalt oxide, lithium nickel oxide, lithium manganese oxide, lithium nickel cobalt oxide, lithium manganese cobalt oxide, lithium nickel manganese oxide, lithium nickel cobalt manganese oxide, lithium nickel cobalt aluminum oxide, and their modified compounds.
[0120] In some embodiments, the positive electrode film layer may optionally include a positive electrode conductive agent. The present application is not particularly limited by the type of the positive electrode conductive agent. For example, the positive electrode conductive agent may include one or more of superconducting carbon, conductive graphite, acetylene black, carbon black, ketjen black, carbon dots, carbon nanotubes, graphene, and carbon nanofibers.
[0121] In some embodiments, the positive electrode film layer may optionally include a positive electrode adhesive. The present application is not particularly limited by the type of the positive electrode adhesive. For example, the positive electrode adhesive may include one or more of polyvinylidene fluoride (PVDF), polytetrafluoroethylene (PTFE), a vinylidene fluoride-tetrafluoroethylene-propylene terpolymer, a vinylidene fluoride-hexafluoropropylene-tetrafluoroethylene terpolymer, a tetrafluoroethylene-hexafluoropropylene copolymer, and a fluorine-containing acrylate resin.
[0122] In some embodiments, the positive electrode current collector may be a metal foil piece or a composite current collector. An example of a metal foil is aluminum foil. The composite current collector may include a polymeric material base layer and a metal material layer formed on at least one surface of the polymeric material base layer. For example, the metal material may include one or more of aluminum, aluminum alloy, nickel, nickel alloy, titanium, titanium alloy, silver, and silver alloy. For example, the polymeric material base layer may include one or more of polypropylene (PP), polyethylene terephthalate (PET), polybutylene terephthalate (PBT), polystyrene (PS), and polyethylene (PE).
[0123] The positive electrode film layer is typically formed by applying a positive electrode slurry to a positive electrode current collector, drying, and cold pressing. The positive electrode slurry is typically formed by dispersing a positive electrode active material, an optional conductive agent, an optional adhesive, and optional other components in a solvent and stirring the mixture uniformly. The solvent may be, but is not limited to, N-methylpyrrolidone (NMP). [Negative electrode sheet]
[0124] In some embodiments, the negative electrode sheet includes a negative electrode current collector and a negative electrode film layer including a negative electrode active material and disposed on at least one surface of the negative electrode current collector. For example, the negative electrode current collector has two surfaces facing each other in the thickness direction, and the negative electrode film layer is disposed on either one or both of the two facing surfaces of the negative electrode current collector.
[0125] The negative electrode active material may be any negative electrode active material for secondary batteries known in the art. Examples of the negative electrode active material include, but are not limited to, one or more of natural graphite, artificial graphite, soft carbon, hard carbon, silicon-based materials, tin-based materials, and lithium titanate. The silicon-based material may include one or more of elemental silicon, silicon oxide, silicon-carbon composite, silicon-nitrogen composite, and silicon alloy material. The tin-based material may include one or more of elemental tin, tin oxide, and tin alloy material. The present application is not limited to these materials, and other conventionally known materials used as negative electrode active materials for secondary batteries may also be used. These negative electrode active materials may be used alone or in combination.
[0126] In some embodiments, the negative electrode film layer may optionally further include a negative electrode conductive agent. In the present application, the type of the negative electrode conductive agent is not particularly limited. For example, the negative electrode conductive agent may include one or more of superconducting carbon, conductive graphite, acetylene black, carbon black, ketjen black, carbon dots, carbon nanotubes, graphene, and carbon nanofibers.
[0127] In some embodiments, the negative electrode film layer may optionally further include a negative electrode adhesive. In the present application, the type of the negative electrode adhesive is not particularly limited. For example, the negative electrode adhesive may include one or more of styrene butadiene rubber (SBR), water-soluble unsaturated resin SR-1B, water-based acrylic resin (e.g., polyacrylic acid (PAA), polymethacrylic acid (PMAA), sodium polyacrylate (PAAS)), polyacrylamide (PAM), polyvinyl alcohol (PVA), sodium alginate (SA), and carboxymethyl chitosan (CMCS).
[0128] In some embodiments, the negative electrode film layer may optionally further include other additives, such as thickeners such as sodium carboxymethyl cellulose (CMC) and PTC thermistor materials.
[0129] In some embodiments, the negative electrode current collector may be a metal foil or a composite current collector. An example of a metal foil is copper foil. The composite current collector may include a polymeric material base layer and a metal material layer formed on at least one surface of the polymeric material base layer. For example, the metal material may include one or more of copper, copper alloy, nickel, nickel alloy, titanium, titanium alloy, silver, and silver alloy. For example, the polymeric material base layer may include one or more of polypropylene (PP), polyethylene terephthalate (PET), polybutylene terephthalate (PBT), polystyrene (PS), and polyethylene (PE).
[0130] The negative electrode film layer is typically formed by applying a negative electrode slurry to a negative electrode current collector, drying, and cold pressing. The negative electrode slurry is typically formed by dispersing a negative electrode active material, an optional conductive agent, an optional adhesive, and other optional additives in a solvent and stirring the mixture uniformly. The solvent may be, but is not limited to, N-methylpyrrolidone (NMP) or deionized water.
[0131] The negative electrode sheet does not exclude additional functional layers other than the negative electrode film layer. For example, in some embodiments, the negative electrode sheet according to the present application further includes a conductive primer layer (e.g., composed of a conductive agent and an adhesive) sandwiched between the negative electrode current collector and the negative electrode film layer and provided on the surface of the negative electrode current collector. In some other embodiments, the negative electrode sheet described herein further includes a protective layer covering the surface of the negative electrode film layer. [Electrolyte]
[0132] In the present application, the type of the electrolyte is not particularly limited and can be selected according to actual requirements. For example, the electrolyte may be one or more types selected from solid electrolytes and liquid electrolytes (electrolytic solutions).
[0133] In some embodiments, the electrolyte employs an electrolytic solution, which includes an electrolyte salt and a solvent.
[0134] The type of the electrolyte salt is not particularly limited and can be selected according to actual requirements. In some embodiments, for example, the electrolyte salt may include one or more of lithium hexafluorophosphate (LiPF), lithium tetrafluoroborate (LiBF), lithium perchlorate (LiClO), lithium hexafluoroarsenate (LiAsF), lithium bisfluorosulfonylimide (LiFSI), lithium bistrifluoromethanesulfonylimide (LiTFSI), lithium trifluoromethanesulfonate (LiTFS), lithium difluorooxalate borate (LiDFOB), lithium disoxalate borate (LiBOB), lithium difluorophosphate (LiPOF), lithium difluorodisoxalate phosphate (LiDFOP), and lithium tetrafluorooxalate phosphate (LiTFOP).
[0135] The type of the solvent is not particularly limited and can be selected according to actual requirements. In some embodiments, by way of example, the solvent may include one or more of ethylene carbonate (EC), propylene carbonate (PC), methyl ethyl carbonate (EMC), diethyl carbonate (DEC), dimethyl carbonate (DMC), dipropyl carbonate (DPC), methyl propyl carbonate (MPC), ethyl propyl carbonate (EPC), butylene carbonate (BC), fluoroethylene carbonate (FEC), methyl formate (MF), methyl acetate (MA), ethyl acetate (EA), propyl acetate (PA), methyl propionate (MP), ethyl propionate (EP), propyl propionate (PP), methyl butyrate (MB), ethyl butyrate (EB), 1,4-butyrolactone (GBL), sulfolane (SF), dimethyl sulfone (MSM), methyl ethyl sulfone (EMS), and diethyl sulfone (ESE).
[0136] In some embodiments, the electrolyte solution may optionally further include additives, such as an additive for improving the overcharge performance of the battery, an additive for improving the high-temperature performance of the battery, or an additive for improving the low-temperature power performance of the battery, for example, an additive for improving the negative electrode film-forming additive, an additive for improving the positive electrode film-forming additive, or an additive for improving the overcharge performance of the battery, for example, an additive for improving the high-temperature performance of the battery, or an additive for improving the low-temperature power performance of the battery. [Separator]
[0137] A separator is also included in secondary batteries using an electrolyte solution or a secondary battery using a solid electrolyte. The separator is disposed between the positive electrode sheet and the negative electrode sheet and serves mainly to prevent short-circuiting between the positive and negative electrodes while allowing active ions to pass through. In the present application, the type of separator is not particularly limited, and any well-known porous separator having good chemical and mechanical stability can be selected.
[0138] In some embodiments, the separator may be made of one or more of glass fiber, nonwoven fabric, polyethylene, polypropylene, and polyvinylidene fluoride. The separator may be a single-layer film or a multi-layer composite film. When the separator is a multi-layer composite film, the materials of each layer may be the same or different.
[0139] In some embodiments, the positive electrode sheet, the separator, and the negative electrode sheet can be wound or stacked to form an electrode assembly.
[0140] In some embodiments, the secondary battery may include an outer casing, which is used to seal the electrode assembly and electrolyte.
[0141] In some embodiments, the exterior of the secondary battery may be a hard case, such as a hard plastic case, an aluminum case, or a steel case. The exterior of the secondary battery may be a soft package, such as a bag soft package. The material of the soft bag case may be plastic, such as one or more of polypropylene (PP), polybutylene terephthalate (PBT), polybutylene succinate (PBS), etc.
[0142] In the present application, the shape of the secondary battery is not particularly limited, and may be cylindrical, rectangular, or any other shape. Figure 1 shows a secondary battery 5 having a rectangular structure as an example.
[0143] In some embodiments, as shown in FIG. 2 , the exterior may include a housing 51 and a cover plate 53. The housing 51 includes a bottom plate and a side plate connected to the bottom plate, and the bottom plate and the side plate are enclosed to form a storage chamber. The housing 51 has an opening communicating with the storage chamber, and the cover plate 53 covers the opening to seal the storage chamber. The positive electrode sheet, the negative electrode sheet, and the separator may be formed into an electrode assembly 52 by a winding process and / or a stacking process. The electrode assembly 52 is packaged in the storage chamber. The electrode assembly 52 is impregnated with an electrolyte. The number of electrode assemblies 52 included in the secondary battery 5 may be one or more and may be adjusted according to actual requirements.
[0144] Methods for manufacturing the secondary battery of the present application are well known. In some embodiments, a secondary battery can be formed by assembling a positive electrode sheet, a separator, a negative electrode sheet, and an electrolyte. For example, the positive electrode sheet, the separator, and the negative electrode sheet can be wound or stacked to form an electrode assembly, which can then be placed in a housing and dried. The electrode assembly can then be infused with an electrolyte, and the secondary battery can be obtained through processes such as vacuum sealing, standing, chemical formation, and shaping.
[0145] In some embodiments of the present application, the secondary battery of the present application may be assembled into a battery module, and the number of secondary batteries included in the battery module may be multiple, and the specific number may be adjusted according to the application and capacity of the battery module.
[0146] Fig. 3 is a schematic diagram of an example battery module 4. As shown in Fig. 3, in the battery module 4, the plurality of secondary batteries 5 may be arranged in order along the longitudinal direction of the battery module 4. Of course, they may be arranged in any other manner. Furthermore, the plurality of secondary batteries 5 may be fixed by fasteners.
[0147] Optionally, the battery module 4 further includes a housing having an accommodating space, and the plurality of secondary batteries 5 are accommodated in the accommodating space.
[0148] In some embodiments, the battery modules may be assembled into a battery pack, and the number of battery modules included in the battery pack may be adjusted according to the application and capacity of the battery pack.
[0149] 4 and 5 are schematic diagrams of an example battery pack 1. As shown in FIGS. 4 and 5, the battery pack 1 may include a battery case and a plurality of battery modules 4 provided in the battery case. The battery case includes an upper case 2 and a lower case 3, and the upper case 2 covers the lower case 3 to form an enclosed space for accommodating the battery modules 4. The plurality of battery modules 4 may be arranged in the battery case in any manner.
[0150]
[0006] An embodiment of the present application provides a power consuming device including one or more of the secondary batteries, battery modules, or battery packs of the present application. The secondary batteries, battery modules, or battery packs may be used as a power source for the power consuming device or as an energy storage means for the power consuming device. The power consuming device may be, but is not limited to, a mobile device (e.g., a mobile phone, a laptop, etc.), an electric vehicle (e.g., a pure electric vehicle, a hybrid electric vehicle, a plug-in hybrid electric vehicle, an electric bicycle, an electric scooter, an electric golf cart, an electric truck, etc.), a train, a ship, a satellite, an energy storage system, etc.
[0151] The power consumption device can select a secondary battery, a battery module, or a battery pack according to the needs.
[0152] 6 is a schematic diagram of an example power consuming device, such as a pure electric vehicle, a hybrid electric vehicle, a plug-in hybrid electric vehicle, etc. To meet the high power and high energy density requirements of the power consuming device, a battery pack or battery module may be employed.
[0153] Another example of a power consuming device may be a mobile phone, a tablet computer, a laptop computer, etc. These power consuming devices are typically required to be thin and may employ a secondary battery as a power source. Example
[0154] The following examples will more specifically describe the contents of the present application, but these examples are merely illustrative, and it will be apparent to those skilled in the art that various modifications and variations can be made within the scope of the disclosure of the present application. All parts, percentages, and ratios described in the following examples are based on weight unless otherwise specified. All reagents used in the examples are commercially available or may be synthesized according to conventional methods and can be used as is without further treatment. All devices used in the examples are commercially available.
[0155] Example 1 (1) Preparation of manganese ferric ammonium phosphate precursor
[0156] At room temperature, FeSO4·7H2O (19.8 mmol), MnSO4·H2O (29.7 mmol), and MgSO4·7H2O (0.5 mmol) were mixed in a mortar and ground for 0.5 hours to refine the particles. Then, (NH4)3PO4 (60 mmol) and polyethylene glycol 600 (2 ml) were mixed in the mortar and ground for 0.5 hours. The mixture was then left to stand for 2 hours to ensure complete reaction. The resulting powder was washed with water and ethanol three times, and then dried in a vacuum oven at 80°C for 12 hours to obtain the pre-doped manganese ferric ammonium phosphate (NH4Mn). 0.594 Fe 0.396 Mg 0.01 PO4 was obtained with a yield of 99.1%. (2) Manufacturing of lithium manganese iron phosphate cathode active material
[0157] Pre-doped ammonium iron manganese phosphate NH4Mn 0.594 Fe 0.396 Mg 0.01PO4 (50 mmol), Li2CO3 (25.3 mmol), and sucrose (7 mmol) were placed in a ball mill pot, and a small amount of ethanol and water were added as solvents. The mixture was ball milled at 400 r / min for 2 hours to obtain a slurry. The resulting slurry was then transferred to a spray-drying facility and spray-dried and granulated to obtain a powder. The drying temperature was set to 210°C, and the resulting powder was placed in a muffle furnace and sintered at 400°C for 5 hours in a nitrogen gas atmosphere. Water was then added as a solvent to the resulting powder, which was then placed in a ball mill pot and ball-milled at 600 r / min for 2 hours to obtain a slurry. The resulting slurry was then transferred to a spray-drying facility and spray-dried and granulated to obtain a powder. The resulting powder was then placed in a muffle furnace and sintered at 700°C for 10 hours in a nitrogen gas atmosphere. After sintering, the powder was allowed to cool to room temperature and then air-flow pulverized to obtain the final product, the lithium manganese iron phosphate cathode active material LiMn 0.594 Fe 0.396 Mg 0.01 Obtained PO4. Example 2 (1) Preparation of manganese ferric ammonium phosphate precursor
[0158] At room temperature, FeSO4·7H2O (19.8 mmol), MnSO4·H2O (29.7 mmol), and MgSO4·7H2O (0.5 mmol) were mixed in a mortar and ground for 0.5 hours to refine the particles. Then, (NH4)3PO4 (60 mmol) and polyethylene glycol 600 (5 ml) were mixed in the mortar and ground for 0.5 hours. The mixture was then left to stand for 2 hours to ensure complete reaction. The resulting powder was washed with water and ethanol three times, and then dried in a vacuum oven at 80°C for 12 hours to obtain the pre-doped manganese ferric ammonium phosphate (NH4Mn). 0.594 Fe 0.396 Mg 0.01 PO4 was obtained with a yield of 98.6%. (2) Manufacturing of lithium manganese iron phosphate cathode active material
[0159] Pre-doped ammonium iron manganese phosphate NH4Mn 0.594 Fe 0.396 Mg 0.01PO4 (50 mmol), Li2CO3 (25.3 mmol), and sucrose (7 mmol) were placed in a ball mill pot, and a small amount of ethanol and water were added as solvents. The mixture was ball milled at 400 r / min for 2 hours to obtain a slurry. The resulting slurry was then transferred to a spray-drying facility and spray-dried and granulated to obtain a powder. The drying temperature was set to 210°C, and the resulting powder was placed in a muffle furnace and sintered at 400°C for 5 hours in a nitrogen gas atmosphere. Water was then added as a solvent to the resulting powder, which was then placed in a ball mill pot and ball-milled at 600 r / min for 2 hours to obtain a slurry. The resulting slurry was then transferred to a spray-drying facility and spray-dried and granulated to obtain a powder. The resulting powder was then placed in a muffle furnace and sintered at 700°C for 10 hours in a nitrogen gas atmosphere. After sintering, the powder was allowed to cool to room temperature and then air-flow pulverized to obtain the final product, the lithium manganese iron phosphate cathode active material LiMn 0.594 Fe 0.396 Mg 0.01 Obtained PO4. Example 3 (1) Preparation of manganese ferric ammonium phosphate precursor
[0160] At room temperature, FeSO4·7H2O (9.9 mmol), MnSO4·H2O (39.6 mmol), and MgSO4·7H2O (0.5 mmol) were mixed in a mortar and ground for 0.5 hours to refine the particles. Then, (NH4)3PO4 (60 mmol) and polyethylene glycol 600 (2 ml) were mixed in the mortar and ground for 0.5 hours. The mixture was then left to stand for 2 hours to ensure complete reaction. The resulting powder was washed with water and ethanol three times, and then dried in a vacuum oven at 80°C for 12 hours to obtain the pre-doped manganese ferric ammonium phosphate (NH4Mn). 0.792 Fe 0.198 Mg 0.01 PO4 was obtained with a yield of 99.2%. (2) Manufacturing of lithium manganese iron phosphate cathode active material
[0161] Pre-doped ammonium iron manganese phosphate NH4Mn 0.792 Fe 0.198 Mg 0.01PO4 (50 mmol), Li2CO3 (25.3 mmol), and sucrose (7 mmol) were placed in a ball mill pot, and a small amount of ethanol and water were added as solvents. The mixture was ball milled at 400 r / min for 2 hours to obtain a slurry. The resulting slurry was then transferred to a spray-drying facility and spray-dried and granulated to obtain a powder. The drying temperature was set to 210°C, and the resulting powder was placed in a muffle furnace and sintered at 400°C for 5 hours in a nitrogen gas atmosphere. Water was then added as a solvent to the resulting powder, which was then placed in a ball mill pot and ball-milled at 600 r / min for 2 hours to obtain a slurry. The resulting slurry was then transferred to a spray-drying facility and spray-dried and granulated to obtain a powder. The resulting powder was then placed in a muffle furnace and sintered at 700°C for 10 hours in a nitrogen gas atmosphere. After sintering, the powder was allowed to cool to room temperature and then air-flow pulverized to obtain the final product, the lithium manganese iron phosphate cathode active material LiMn 0.792 Fe 0.198 Mg 0.01 Obtained PO4. Example 4 (1) Preparation of manganese ferric ammonium phosphate precursor
[0162] At room temperature, FeSO4·7H2O (14.85 mmol), MnSO4·H2O (34.65 mmol), and MgSO4·7H2O (0.5 mmol) were mixed in a mortar and ground for 0.5 hours to refine the particles. Then, (NH4)3PO4 (60 mmol) and polyethylene glycol 600 (2 ml) were mixed in the mortar and ground for 0.5 hours. The mixture was then left to stand for 2 hours to ensure complete reaction. The resulting powder was washed with water and ethanol three times, and then dried in a vacuum oven at 80°C for 12 hours to obtain the pre-doped manganese ferric ammonium phosphate (NH4Mn). 0.693 Fe 0.297 Mg 0.01 PO4 was obtained with a yield of 99.5%. (2) Manufacturing of lithium manganese iron phosphate cathode active material
[0163] Pre-doped ammonium iron manganese phosphate NH4Mn 0.693 Fe 0.297 Mg 0.01PO4 (50 mmol), Li2CO3 (25.3 mmol), and sucrose (7 mmol) were placed in a ball mill pot, and a small amount of ethanol and water were added as solvents. The mixture was ball milled at 400 r / min for 2 hours to obtain a slurry. The resulting slurry was then transferred to a spray-drying facility and spray-dried and granulated to obtain a powder. The drying temperature was set to 210°C, and the resulting powder was placed in a muffle furnace and sintered at 400°C for 5 hours in a nitrogen gas atmosphere. Water was then added as a solvent to the resulting powder, which was then placed in a ball mill pot and ball-milled at 600 r / min for 2 hours to obtain a slurry. The resulting slurry was then transferred to a spray-drying facility and spray-dried and granulated to obtain a powder. The resulting powder was then placed in a muffle furnace and sintered at 700°C for 10 hours in a nitrogen gas atmosphere. After sintering, the powder was allowed to cool to room temperature and then air-flow pulverized to obtain the final product, the lithium manganese iron phosphate cathode active material LiMn 0.693 Fe 0.297 Mg 0.01 Obtained PO4. Example 5 (1) Preparation of manganese ferric ammonium phosphate precursor
[0164] At room temperature, FeSO4·7H2O (24.75 mmol), MnSO4·H2O (24.75 mmol), and MgSO4·7H2O (0.5 mmol) were placed in a mortar and ground for 0.5 hours to refine the particles. Then, (NH4)3PO4 (60 mmol) and polyethylene glycol 600 (2 ml) were placed in the mortar and ground for 0.5 hours. The mixture was then left to stand for 2 hours to ensure complete reaction. The resulting powder was washed with water and ethanol three times each, and then dried in a vacuum oven at 80°C for 12 hours to obtain the pre-doped manganese ferric ammonium phosphate NH4Fe 0.495 Mn 0.495 Mg 0.01 PO4 was obtained with a yield of 99.6%. (2) Manufacturing of lithium manganese iron phosphate cathode active material
[0165] Pre-doped manganese iron ammonium phosphate NH4Fe 0.495 Mn 0.495 Mg 0.01PO4 (50 mmol), Li2CO3 (25.3 mmol), and sucrose (7 mmol) were placed in a ball mill pot, and a small amount of ethanol and water were added as solvents. The mixture was ball milled at 400 r / min for 2 hours to obtain a slurry. The resulting slurry was then transferred to a spray-drying facility and spray-dried and granulated to obtain a powder. The drying temperature was set to 210°C, and the resulting powder was placed in a muffle furnace and sintered at 400°C for 5 hours in a nitrogen gas atmosphere. Water was then added as a solvent to the resulting powder, which was then placed in a ball mill pot and ball-milled at 600 r / min for 2 hours to obtain a slurry. The resulting slurry was then transferred to a spray-drying facility and spray-dried and granulated to obtain a powder. The resulting powder was then placed in a muffle furnace and sintered at 700°C for 10 hours in a nitrogen gas atmosphere. After sintering, the powder was naturally cooled to room temperature and air-flow pulverized to obtain the final product, lithium manganese iron phosphate cathode active material LiFe. 0.495 Mn 0.495 Mg 0.01 Obtained PO4. Example 6 (1) Preparation of manganese ferric ammonium phosphate precursor
[0166] At room temperature, FeSO4·7H2O (14.85 mmol), MnSO4·H2O (34.65 mmol), and MgSO4·7H2O (0.5 mmol) were mixed in a mortar and ground for 0.5 hours to refine the particles. Then, (NH4)3PO4 (100 mmol) and polyethylene glycol 600 (1 ml) were mixed in the mortar and ground for 0.5 hours. The mixture was then left to stand for 2 hours to ensure complete reaction. The resulting powder was washed with water and ethanol three times, and then dried in a vacuum oven at 80°C for 12 hours to obtain the pre-doped manganese ferric ammonium phosphate (NH4Mn). 0.693 Fe 0.297 Mg 0.01 PO4 was obtained with a yield of 99.4%. (2) Manufacturing of lithium manganese iron phosphate cathode active material
[0167] Pre-doped ammonium iron manganese phosphate NH4Mn 0.693 Fe 0.297 Mg 0.01PO4 (50 mmol), Li2CO3 (25.3 mmol), and sucrose (7 mmol) were placed in a ball mill pot, and a small amount of ethanol and water were added as solvents. The mixture was ball milled at 400 r / min for 2 hours to obtain a slurry. The resulting slurry was then transferred to a spray-drying facility and spray-dried and granulated to obtain a powder. The drying temperature was set to 210°C, and the resulting powder was placed in a muffle furnace and sintered at 400°C for 5 hours in a nitrogen gas atmosphere. Water was then added as a solvent to the resulting powder, which was then placed in a ball mill pot and ball-milled at 600 r / min for 2 hours to obtain a slurry. The resulting slurry was then transferred to a spray-drying facility and spray-dried and granulated to obtain a powder. The resulting powder was then placed in a muffle furnace and sintered at 700°C for 10 hours in a nitrogen gas atmosphere. After sintering, the powder was allowed to cool to room temperature and then air-flow pulverized to obtain the final product, the lithium manganese iron phosphate cathode active material LiMn 0.693 Fe 0.297 Mg 0.01 Obtained PO4. Comparative Example 1 (1) Preparation of manganese ferric ammonium phosphate precursor
[0168] MnSO4·H2O, FeSO4·7H2O, and MgSO4·7H2O were dissolved in pure water in a molar ratio of 69.3:29.7:1 for Mn:Fe:Mg to produce a 2L first mixture with a concentration of 2 mol / L. Phosphoric acid and aqueous ammonia were mixed in a molar ratio of 1:3, and then pure water was added to produce a 4L second mixture with a 1 mol / L phosphate ion concentration. Polyvinylidene fluoride (as a carbon source) and triammonium citrate (as a complexing agent) were added to 1L of pure water to produce a 0.05 mol / L third mixture.
[0169] The third mixed liquid was added to the reactor as the reaction liquid, and the temperature was controlled at 60°C. The stirring speed was 800 r / min. The first mixed liquid and the second mixed liquid were combined and added dropwise to the reactor. The addition rate of the second mixed liquid was adjusted to control the pH of the reaction system to 6.0±0.5. After the addition was completed, the mixture was stirred for 1 hour to obtain a first slurry.
[0170] The first slurry was filtered by suction and washed with pure water until the electrical conductivity of the filtrate was ≦200 μs / cm. 0.693 Fe 0.297 Mg 0.01 PO4·H2O / C was obtained with a yield of only 83%. (2) Manufacturing of lithium manganese iron phosphate cathode active material
[0171] Pre-doped ammonium iron manganese phosphate NH4Mn 0.693 Fe 0.297 Mg 0.01 PO4·H2O / C (50 mmol), Li2CO3 (25.3 mmol), and sucrose (7 mmol) were placed in a ball mill pot, and a small amount of ethanol and water were added as solvents. The mixture was ball milled at 400 r / min for 2 h to obtain a slurry. The resulting slurry was then transferred to a spray-drying facility and spray-dried to obtain a powder. The drying temperature was set to 210 °C, and the resulting powder was placed in a muffle furnace and sintered at 400 °C for 5 h in a nitrogen gas atmosphere. Water was then added as a solvent to the resulting powder, and the mixture was placed in a ball mill pot and ball milled at 600 r / min for 2 h to obtain a slurry. The resulting slurry was then transferred to a spray-drying facility and spray-dried to obtain a powder. The resulting powder was then placed in a muffle furnace and sintered at 700 °C for 10 h in a nitrogen gas atmosphere. After sintering, the powder was allowed to cool to room temperature and then air-flow crushed to obtain the final product, the lithium manganese iron phosphate cathode active material LiMn. 0.693 Fe 0.297 Mg 0.01 Obtained PO4. Comparative Example 2 (1) Preparation of manganese iron phosphate precursor
[0172] In a reaction vessel, FeSO4·7H2O, MnSO4·H2O, cetyltrimethylammonium bromide (surfactant), and a carbon nanotube slurry with a tube diameter of 7nm to 11nm were mixed to prepare a first slurry, where the concentration of FeSO4·7H2O was 0.025mol / L, the concentration of MnSO4·H2O was 0.1mol / L, the cetyltrimethylammonium bromide accounted for 0.2% of the total weight of the first slurry, and the carbon nanotube slurry accounted for 0.2% of the total weight of the first slurry.
[0173] A second solution was obtained by mixing hydrogen peroxide (oxidizing agent) and 0.13 mol / L ammonium dihydrogen phosphate, which was then placed in a reaction vessel. The temperature was then raised to 85°C, ultrasonic vibration was applied, and the mixture was reacted for 2 hours to obtain seed crystals.
[0174] A third solution was prepared by mixing FeSO4·7H2O and MnSO4·H2O, with a concentration of 0.2 mol / L for FeSO4·7H2O and 0.8 mol / L for MnSO4·H2O.
[0175] A fourth solution was obtained by mixing hydrogen peroxide (oxidizing agent) with 1.0 mol / L ammonium dihydrogen phosphate.
[0176] The seed crystals and the third solution were uniformly stirred in a reactor, and then the fourth solution was added. The temperature was raised to 85°C and ultrasonic vibration was applied, and the reaction was carried out for 2 hours. After that, 50% mass concentration of phosphoric acid was added and the crystallization was carried out for 2 hours. After that, the manganese iron phosphate precursor was obtained after filtering, washing, drying and pulverization, with a yield of only 86%. (2) Manufacturing of lithium manganese iron phosphate cathode active material
[0177] The manganese iron phosphate precursor (50 mmol), Li2CO3 (25.3 mmol), and sucrose (7 mmol) were placed in a ball mill pot, and a small amount of ethanol and water were added as solvents. The mixture was ball milled at 400 r / min for 2 hours to obtain a slurry. The resulting slurry was then transferred to a spray-drying facility and spray-dried and granulated to obtain a powder. The drying temperature was set to 210°C, and the resulting powder was placed in a muffle furnace and sintered at 400°C for 5 hours in a nitrogen gas atmosphere. Water was then added as a solvent to the resulting powder, and the mixture was placed in a ball mill pot and ball milled at 600 r / min for 2 hours to obtain a slurry. The resulting slurry was then transferred to a spray-drying facility and spray-dried and granulated to obtain a powder. The resulting powder was then placed in a muffle furnace and sintered at 700°C for 10 hours in a nitrogen gas atmosphere. After sintering, the powder was allowed to cool to room temperature and then air-flow pulverized to obtain the final product, the lithium manganese iron phosphate cathode active material LiFe. 0.2 Mn 0.8 Obtained PO4. Testing section (1) Metal element content test
[0178] The content of each metal element in the prepared ammonium manganese iron phosphate or manganese iron phosphate precursor was measured using an inductively coupled plasma optical emission spectrometer (ICP-OES) and the molar ratio was calculated. The test results are shown in Table 1. (2) Testing the first cycle performance of coin cells
[0179] The lithium manganese iron phosphate cathode active material, polyvinylidene fluoride (PVDF) adhesive, and acetylene black conductive agent were added to N-methylpyrrolidone (NMP) in a weight ratio of 90:5:5 and stirred in a drying chamber to form a slurry. The slurry was applied to aluminum foil, dried, and cold-pressed to form a cathode sheet.
[0180] A lithium sheet was used as the negative electrode, and a 1 mol / L LiPF solution in a 1:1:1 volume ratio of ethylene carbonate (EC), diethyl carbonate (DEC), and dimethyl carbonate (DMC) was used as the electrolyte. Together with the positive electrode sheet prepared above, a coin cell was assembled in a coin cell box.
[0181] In a constant temperature environment of 25°C, the coin cell was charged to 4.3 V at a constant current of 0.1 C, then charged at a constant voltage of 4.3 V until the current dropped to 0.05 mA or less. The charge capacity at this point was taken as the initial charge capacity, C0. The coin cell was then allowed to stand for 2 minutes, and then discharged to 2.0 V at a constant current of 0.1 C. The discharge capacity was taken as the initial discharge capacity, D0. The initial coulombic efficiency of the coin cell (%) = (D0 / C0) × 100%. The initial gram capacity of the coin cell (mAh / g) = D0 / m, where m represents the mass of the lithium manganese iron phosphate positive electrode active material. The test results are shown in Table 2.
[0182] [Table 1]
[0183] [Table 2]
[0184] As can be seen from the test results in Table 1, the manufacturing method according to the present application provides higher yields and allows for precise control of the composition of the resulting manganese iron ammonium phosphate precursor. Furthermore, the composition is easier to adjust, the composition element distribution is more uniform, and batch stability and uniformity are higher. The precursors manufactured in Comparative Examples 1 and 2 have lower yields due to the large deviation in the actual manganese iron molar ratio from the designed value compared to Examples 1 to 6. A possible reason for this is that manganese ions and iron ions cannot be uniformly precipitated during the liquid-phase coprecipitation process, resulting in large amounts of manganese ions and iron ions remaining in the reaction system in solution. Further analysis by X-ray diffraction revealed a large number of impurity peaks in the resulting precursor, indicating the formation of a large amount of impurity phase in the precursor.
[0185] Figure 7 is a scanning electron microscope (SEM) image of the manganese iron ammonium phosphate precursor prepared in Example 1. As can be seen from Figure 7, the manganese iron ammonium phosphate precursor particles are nanosheets with a thickness of approximately 50 nm and a maximum length of approximately 1 μm to 2 μm. Figures 8 and 9 are scanning electron microscope (SEM) images of the manganese iron lithium phosphate positive electrode active material prepared in Example 1, magnified 10,000 times and 100,000 times, respectively. As can be seen from Figures 8 and 9, the manganese iron lithium phosphate positive electrode active material particles have a secondary spherical structure with a volume particle size Dv50 of 6 μm, and the volume particle size Dv50 of the primary particles constituting the structure is approximately 100 nm to 200 nm. Therefore, the manufacturing method according to the present application can produce a manganese iron ammonium phosphate precursor and a manganese iron lithium phosphate positive electrode active material with a regular topography, small particle size, and narrow particle size distribution.
[0186] FIG. 10 is a diagram showing the initial charge-discharge curves of the coin cell prepared in Example 1. As can be seen from FIG. 10, the lithium manganese iron phosphate positive electrode active material prepared by the preparation method of the present application can have a high gram capacity and a high initial coulombic efficiency.
[0187] Figure 11 shows a scanning electron microscope (SEM) image of the manganese ammonium iron phosphate precursor prepared in Example 2. As can be seen from Figure 11, when the amount of polyethylene glycol 600 used is large, exceeding 15 wt%, the prepared manganese ammonium iron phosphate precursor particles undergo severe aggregation and lack a specific topography. This also affects the electrochemical performance of the prepared lithium manganese ammonium iron phosphate cathode active material, reducing the gram capacity and initial coulombic efficiency. A possible reason for this is that the reaction system in this case is in a liquid phase rather than a solid phase.
[0188] FIG. 12 is a scanning electron microscope (SEM) image of the manganese iron ammonium phosphate precursor prepared in Comparative Example 1, and FIG. 13 is an initial charge-discharge curve of the coin cell prepared in Comparative Example 1. As can be seen from FIG. 12, the manganese iron ammonium phosphate precursor particles are irregular particles with a volume particle size Dv50 of approximately 50 μm. Because the particle size is too large, it is difficult to uniformly mix them with the lithium source. Furthermore, during the preparation of the manganese iron lithium phosphate cathode active material, crystal defects such as metal segregation and uneven element distribution are likely to occur, which affects the electrochemical performance of the manganese iron lithium phosphate cathode active material. As can be seen from FIG. 13, the initial gram capacity of the coin cell is only 99 mAh / g.
[0189] Figure 14 is a scanning electron microscope (SEM) image of the manganese iron phosphate precursor prepared in Comparative Example 2, and Figure 15 is an initial charge-discharge curve of the coin cell prepared in Comparative Example 2. As can be seen from Figure 12, the manganese iron ammonium phosphate precursor particles are irregular particles with particle sizes of approximately 5 μm to 25 μm and a wide particle size distribution, which affects the electrochemical performance of the subsequently prepared lithium manganese iron phosphate positive electrode active material. As can be seen from Figure 15, the initial gram capacity of the coin cell is only 110.6 mAh / g.
[0190] The present application is not limited to the above-described embodiments. The above-described embodiments are merely examples, and any configuration that is substantially identical to the technical idea and that provides similar effects within the technical scope of the present application is included within the technical scope of the present application. Furthermore, various modifications to the embodiments that can be conceived by a person skilled in the art, and other forms constructed by combining some of the components of the embodiments, are also included within the scope of the present application, as long as they do not deviate from the spirit of the present application.
Claims
1. A method for producing a lithium iron manganese phosphate positive electrode active material, comprising: a step S1 of mixing and grinding a metal source powder and a phosphorus source powder to cause a solid-state reaction of each component at 20°C to 100°C, and after completion of the grinding, washing and drying the resulting product to obtain an ammonium iron manganese phosphate precursor, wherein the metal source comprises an iron source, a manganese source, and a source of a doping element M, where M represents a doping element for the manganese site and the iron site, and the phosphorus source comprises triammonium phosphate; the resulting ammonium iron manganese phosphate precursor is mixed with a lithium source in a predetermined ratio, followed by grinding, and after completion of the grinding, spray-drying and granulating to obtain a powder; and step S2 of sintering the powder obtained in step S1 to obtain a lithium manganese iron phosphate positive electrode active material. A method for producing a lithium iron manganese phosphate cathode active material.
2. The mixed polishing time is 0.25 h to 6 h, and / or The temperature of the solid-state reaction is 20°C to 30°C. The method of claim 1.
3. The mixed polishing time is 0.5 h to 6 h. The method of claim 2.
4. After the mixed polishing is completed, a step of leaving the mixture to stand is further included. The standing time is 0.5 h to 12 h, and / or The total time of the mixed polishing and the standing time is 1.5 hours or more. The method according to claim 1 or 2.
5. The standing time is 2 hours to 5 hours, and / or The total time of the mixed polishing and the standing time is 2.5 hours or more. The method of claim 4.
6. a surfactant is further added, and the mixture is mixed and polished together with the metal source powder and the phosphorus source powder; The method according to claim 1 or 2.
7. the surfactant comprises polyethylene glycol; and / or the amount of the surfactant added is 15% by weight or less based on the total weight of the metal source powder and the phosphorus source powder; The method of claim 6.
8. further comprising a step of polishing the metal source powder and / or the phosphorus source powder separately before the metal source powder and the phosphorus source powder are mixed and polished to cause a solid-phase reaction between the components, The method according to claim 1 or 2.
9. The polishing time of the metal source powder is 0.25 h to 1.5 h, The polishing time of the phosphorus source powder is 0.25 h to 1.5 h; The method of claim 8.
10. the molar ratio of the metal source powder to the phosphorus source powder is 1:(1 to 3); The method according to claim 1 or 2.
11. The cleaning comprises a water clean and / or an alcohol clean, and / or the drying is vacuum drying, and / or The drying temperature is between 60°C and 100°C, and / or The drying time is 8 hours to 20 hours. The method according to claim 1 or 2.
12. the iron source is a divalent iron salt, such as one or more of ferrous chloride, ferrous nitrate, ferrous sulfate, and ferrous acetate; and / or the manganese source is a divalent manganese salt, such as one or more of manganous chloride, manganous nitrate, manganous sulfate, and manganous acetate; and / or the source of the doping element M is a divalent salt of the doping element M, including one or more of the hydrochloride, nitrate, sulfate, and acetate salts of the doping element M; The method according to claim 1 or 2.
13. The manganese iron ammonium phosphate precursor, a lithium source, and one or more sources of doping elements N, Q, and R are mixed in a predetermined ratio, followed by grinding, and after grinding is completed, the mixture is spray-dried and granulated to obtain a powder, wherein N represents a doping element at the lithium site, and includes one or more of Zn, Al, Na, K, Mg, Nb, Mo, and W; Q represents a doping element at the phosphorus site, and includes one or more of B, S, Si, and N; and R represents a doping element at the oxygen site, and includes one or more of S, F, Cl, and Br. The method of claim 1.
14. In S1, a carbon source is further added to simultaneously perform mixed polishing, and the carbon source includes one or more of an organic carbon source and an inorganic carbon source; The method of claim 1.
15. In S1, the polishing time is 1 hour to 6 hours, and / or In S1, the spray drying temperature is 200 ° C to 250 ° C. The method of claim 1.
16. In S2, the sintering step includes a step of calcining the powder obtained in S1 at a low temperature of 350°C to 500°C in an air atmosphere or a protective gas atmosphere, and then sintering the powder at a high temperature of 650°C to 750°C in a protective gas atmosphere to obtain a manganese iron lithium phosphate positive electrode active material. The method of claim 1.
17. The time for the low-temperature calcination is 1 hour to 6 hours, The high-temperature sintering time is 3 hours to 24 hours; The method of claim 16.
18. After the low-temperature calcination process and before the high-temperature sintering process, further comprising a grinding and spray-drying granulation process; The method of claim 16.
Citation Information
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