Method for preparing manganese iron oxalate precursors for in situ metal doping.

The method addresses non-uniform mixing and low conductivity issues in lithium-ion batteries by preparing an iron manganese oxalate precursor through in-situ metal doping, improving electrochemical properties and enabling mass production of high-quality cathode materials.

JP7843320B2Active Publication Date: 2026-04-09HUNAN HUAXING LITHIUM ELECTRIC NEW ENERGY CO LTD +1
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2024-08-19
Publication Date
2026-04-09

AI Technical Summary

Technical Problem

Conventional lithium-ion batteries face issues with non-uniform mixing of iron and manganese sources, leading to low electronic conductivity and poor electrochemical properties in synthesized materials.

Method used

A method for preparing an iron manganese oxalate precursor with in-situ metal doping using a coprecipitation process, involving the steps of dissolving metal salts, adding a precipitant and complexing agent, and reacting under inert gas protection to form a manganese iron oxalate suspension, followed by filtration and drying.

Benefits of technology

The method produces a manganese iron oxalate precursor that enhances electronic conductivity and electrochemical properties, ensuring uniform particle size distribution and stable thermodynamic properties, suitable for mass production and use in lithium manganese iron phosphate cathode materials.

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Abstract

To provide a method for preparing an in situ metal doped manganese iron oxalate precursor.SOLUTION: Iron source, manganese source, doped metal elements (Mg, Zn, etc.) are weighed according to a stoichiometric ratio, and deionized water is added to the weighed metal to ultrasonically dissolve the weighed metal to obtain a mixed metal solution. The mixed metal solution is added to a prepared oxalic acid solution and subsequently a certain concentration of complexing agent is added to the solution to perform co-precipitation reaction under the protection of inert gas. A resultant suspension of metal doped manganese iron oxalate is recovered and then filtered, washed and dried to obtain a powder of manganese iron oxalate precursor.EFFECT: By using the manganese iron oxalate precursor as the iron and manganese sources, this can effectively avoid the problem of uneven mixing due to the iron and manganese sources. Moreover, lithium manganese iron phosphate synthesized from the manganese iron oxalate precursor after metal doping can significantly improve the electronic conductivity, thereby enhancing the electrochemical properties of lithium manganese iron phosphate.SELECTED DRAWING: Figure 1
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Description

Technical Field

[0001] The present invention relates to the technical field of inorganic fine chemicals, and particularly to a method for preparing an iron manganese oxalate precursor with in-situ metal doping.

Background Art

[0002] Lithium-ion batteries have unique advantages such as high operating voltage, no memory effect, high discharge specific capacity, high safety factor, and features such as good cycle stability, light weight, and small size. Therefore, in aspects such as portable electronic devices, industrial production, and the electric vehicle market, they show extensive application value and potential economic benefits. Thus, as an environmentally friendly and pollution-free new energy source, lithium-ion batteries have been attracting increasing attention in recent years.

[0003] Many of the iron sources and manganese sources used in conventional lithium-ion batteries are prone to non-uniform mixing, and the synthesized materials have low electronic conductivity and poor electrochemical properties, so they cannot meet the usage needs of lithium-ion batteries. In contrast, the present invention proposes a method for preparing an iron manganese oxalate precursor with in-situ metal doping.

Summary of the Invention

Problems to be Solved by the Invention

[0004] The object of the present invention is to solve the problem that many of the iron sources and manganese sources used in conventional lithium-ion batteries are prone to non-uniform mixing, and the synthesized materials have low electronic conductivity and poor electrochemical properties, so they cannot meet the usage needs of lithium-ion batteries, by providing a method for preparing an iron manganese oxalate precursor with in-situ metal doping.

Means for Solving the Problems

[0005] To achieve the above object, the present invention provides the following technical means.

[0006] A first aspect of the present invention provides a method for preparing an in situ metal-doped manganese iron oxalate precursor, comprising the following steps: Step S1 involves weighing out a fixed amount of iron salt, manganese salt solid, and other doped metal salts according to stoichiometric ratios, adding an appropriate amount of deionized water, and dissolving them using ultrasound to obtain a metal mixed solution with a concentration of 0.3 to 3.0 mol / L. In step S2, a fixed mass of precipitant and complexing agent is weighed out according to a molar ratio of 1:1 to 1.5 between the metal mixed solution and the precipitant, deionized water is added and dissolved by ultrasound to obtain a mixed solution, the concentration of the precipitant solution being 0.3 to 3.0 mol / L and the concentration of the complexing agent solution being 0.1 to 1.0 mol / L. Step S3 involves adding the prepared precipitate and complexing agent solutions to the reaction vessel, sealing it, removing oxygen by bubbling, and then starting the heating and stirring process. Step S4: After the temperature rises and stabilizes, the prepared metal mixture solution is added dropwise to the mixed solution of the precipitant and complexing agent at a constant flow rate. Step S5 involves reacting the mixture at a constant temperature for 0.5 to 48 hours under the protection of an inert gas to obtain a suspension of iron manganese oxalate, and After the reaction is complete, the manganese iron oxalate suspension is recovered from the reaction vessel and subjected to filtration, washing, and drying in sequence to obtain manganese iron oxalate precursor powder (S6).

[0007] Preferably, the iron salt of S1 includes one or more of ferrous nitrate, ferrous sulfate, ferrous acetate, and ferrous chloride, but is not limited to these. The ferrous sulfate may be amorphous aqueous ferrous sulfate or crystalline aqueous ferrous sulfate.

[0008] Preferably, the manganese salt of S1 includes one or more of manganese nitrate, manganese sulfate, manganese acetate, and manganese chloride, but is not limited to these. The manganese sulfate may be amorphous aqueous manganese sulfate or crystalline aqueous manganese sulfate.

[0009] Preferably, the other doped metal ions in S1 include, but are not limited to, Mg and Zn, and may include one or more of Co, Ni, Al, Cu, Zr, Cr, and V, and the doped metal salt may be an amorphous metal salt or a crystalline metal salt.

[0010] Preferably, the molar ratio of the iron salt to the manganese salt in S1 is 1:1 to 5, the concentration of the mixed metal solution is 0.3 to 3.0 mol / L, the molar ratio of the other doped metal element to the manganese element in S1 is 1:6 to 120, and the molar ratio with the iron element is 1:4 to 80.

[0011] Preferably, the precipitating agent of S2 is an oxalate, and examples of the oxalate include, but are not limited to, one or more of oxalic acid, potassium oxalate, and sodium oxalate.

[0012] Preferably, the molar ratio of the metal mixed solution in S2 to the precipitant is 1:1 to 1.5, the concentration of the precipitant solution is 0.3 to 3.0 mol / L, and the bubbling gas used in S3 is one of argon, nitrogen, or helium.

[0013] Preferably, the temperature range of S4 is 20 to 100°C, and the dropping rate of the precipitating agent is 0.01 to 1.0 L / min.

[0014] Preferably, the inert gas S5 is one of argon, nitrogen, or helium, the reaction temperature is 20 to 100°C, and the reaction time is 0.5 to 48 hours.

[0015] A second aspect of the present invention provides an in situ metal-doped manganese iron oxalate precursor prepared by the method described in the first aspect of the present invention. [Effects of the Invention]

[0016] The present invention has at least the following advantageous effects: (1) In the method for preparing an in situ metal-doped manganese iron oxalate precursor provided in the present invention, a manganese iron oxalate precursor that can be mixed with a lithium source is prepared using a coprecipitation method, and a lithium manganese iron phosphate cathode material is synthesized by a solid-phase method. Compared with other iron and manganese sources, using a manganese iron oxalate precursor as the iron and manganese source effectively avoids the problem of heterogeneity in the mixing of the iron and manganese sources, and the lithium manganese iron phosphate synthesized from the metal-doped manganese iron oxalate precursor has significantly improved electronic conductivity, thereby improving the electrochemical properties of lithium manganese iron phosphate. (2) In the method for preparing an in situ metal-doped manganese iron oxalate precursor provided in the present invention, the oxalate is not easily introduced into the cathode material synthesis process, has high crystallinity and strong bonding force, helps to stabilize the skeletal structure of the synthesized product, decomposes during the reaction process to release gas, and can suppress particle aggregation and crystal grain growth. (3) The method for preparing an in situ metal-doped manganese iron oxalate precursor provided in the present invention not only yields a product with high purity, a uniform particle size distribution, and stable thermodynamic properties, but also has a simple and rational manufacturing process, can be easily mass-produced industrially, offers good economic benefits, and is the best choice of raw material for preparing cathode materials for drive batteries. [Brief explanation of the drawing]

[0017] [Figure 1] This is the X-ray diffraction (XRD) pattern of Mn0.6Fe0.38Mg0.02C2O4·2H2O obtained in Example 1. [Figure 2] This is a scanning electron microscope (SEM) image of Mn0.6Fe0.38Mg0.02C2O4·2H2O obtained in Example 1. [Modes for carrying out the invention]

[0018] The technical means in the embodiments of the present invention will be described in detail below. It should be noted that the described embodiments are only some of the embodiments of the present invention, and it is needless to say that they are not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative activities belong to the protection scope of the present invention.

[0019] As the technical means of the present invention, a method for preparing a manganese iron oxalate precursor by in-situ metal doping, comprising the following steps.

[0020] A method for preparing a manganese iron oxalate precursor by in-situ metal doping, comprising the following steps is provided. S1: According to the stoichiometric ratio, weigh a certain amount of iron salt, manganese salt solid and other doped metal salts (Mg, Zn, etc.), add an appropriate amount of deionized water and dissolve it by ultrasonic wave to obtain a metal mixed solution with a concentration of 0.3 - 3.0 mol / L.

[0021] S2: According to the molar ratio of 1:1 - 1.5 between the metal mixed solution and the precipitant, weigh a certain mass of precipitant and complexing agent, add deionized water and dissolve it by ultrasonic wave to obtain a mixed solution. The concentration of the precipitant solution is 0.3 - 3.0 mol / L, and the concentration of the complexing agent solution is 0.1 - 1.0 mol / L.

[0022] S3: Add the prepared precipitant and complexing agent solutions to the reaction kettle, seal it, then carry out oxygen removal by bubbling, and start heating and stirring.

[0023] S4: After the temperature rises and stabilizes, drop the prepared metal mixed solution into the mixed solution of the precipitant and the complexing agent at a certain flow rate.

[0024] S5: React at a certain temperature for 0.5 - 48 hours under the protection of an inert gas to obtain a suspension of manganese iron oxalate.

[0025] S6: After the reaction is completed, recover the suspension of manganese iron oxalate from the reaction kettle, and sequentially carry out filtration, washing and drying to obtain manganese iron oxalate precursor powder.

[0026] The iron salt of S1 includes, but is not limited to, one or more of ferrous nitrate, ferrous sulfate, ferrous acetate, and ferrous chloride. The ferrous sulfate may be amorphous aqueous ferrous sulfate or crystalline aqueous ferrous sulfate, and specifically, one or more of anhydrous ferrous sulfate, ferrous sulfate monohydrate, and ferrous sulfate heptahydrate.

[0027] The manganese salt of S1 includes, but is not limited to, one or more of manganese nitrate, manganese sulfate, manganese acetate, and manganese chloride. The manganese sulfate may be amorphous aqueous manganese sulfate or crystalline aqueous manganese sulfate, and specifically one or more of anhydrous manganese sulfate, manganese sulfate monohydrate, and manganese sulfate tetrahydrate.

[0028] Other doped metal ions in S1 include, but are not limited to, Mg and Zn, and may include one or more of Co, Ni, Al, Cu, Zr, Cr, and V. The doped metal salt may be amorphous or crystalline. The magnesium salt may specifically be one or more of anhydrous magnesium sulfate, magnesium acetate, or magnesium sulfate heptahydrate, and the Zn salt may specifically be one or more of anhydrous zinc sulfate, zinc acetate, or zinc sulfate heptahydrate.

[0029] The molar ratio of iron salt to manganese salt in S1 is 1:1 to 5, and the concentration of the mixed metal solution is 0.3 to 3.0 mol / L.

[0030] The molar ratio of manganese to other doped metallic elements in S1 is 1:6 to 120, and the molar ratio with iron is 1:4 to 80.

[0031] The precipitating agent for S2 is an oxalate, and examples of oxalates include, but are not limited to, one or more of oxalic acid, potassium oxalate, and sodium oxalate.

[0032] The precipitating agent for S2 is one or more of the following: ammonium oxalate, ammonium sulfate, and ammonium chloride.

[0033] Preferably, the molar ratio of the S2 metal mixture solution to the precipitant is 1:1 to 1.5, and the concentration of the precipitant solution is 0.3 to 3.0 mol / L.

[0034] The bubbling gas used in S3 is one of the following: argon, nitrogen, or helium.

[0035] The temperature range for S4 is 20 to 100°C, and the dropping rate of the precipitating agent is 0.01 to 1.0 L / min.

[0036] The inert gas for S5 is one of argon, nitrogen, or helium, the reaction temperature is 20-100°C, and the reaction time is 0.5-48 hours.

[0037] This invention involves preparing a metal mixture solution, an oxalic acid solution, and a complexing agent solution, inducing a coprecipitation reaction under the protection of an inert gas, and then preparing an in situ metal-doped manganese iron oxalate precursor powder with stable thermodynamic properties by methods such as filtration, washing, and drying. The manganese iron oxalate precursor is in situ doped with other metal ions (Mg, Zn, etc.) and used in the synthesis of lithium manganese iron phosphate cathode materials. This overcomes problems such as the poor inherent electronic conductivity of lithium manganese iron phosphate and the non-uniformity of the metal element mixture, thereby improving its electrochemical properties.

[0038] Based on the above method, the present invention provides the following partial embodiments: Unless otherwise specified, the raw materials, reagents, or apparatus used in the following examples are all commercially available or can be obtained by conventionally known methods. [Examples]

[0039] (Example 1) A method for preparing a manganese iron oxalate precursor by in situ metal doping, wherein the molecular formula is Mn 0.6 Fe 0.38 Mg 0.02 The process involves C2O4·2H2O and includes the following steps.

[0040] Step 1: Following a molar ratio of 4:6, weigh 422.58 g of ferrous sulfate heptahydrate, 405.65 g of manganese sulfate monohydrate, and 19.18 g of magnesium sulfate heptahydrate into a beaker. Add 4 L of deionized water and stir ultrasonically until the metal salts are completely dissolved to obtain a 1.0 mol / L mixed metal solution, which is set aside for later use.

[0041] Step 2: Weigh 544.62 g of oxalic acid dihydrate and 56.84 g of the complexing agent ammonium oxalate into a beaker, add 4 L of deionized water, and stir ultrasonically until the oxalic acid dihydrate and ammonium oxalate are completely dissolved to obtain a 1.08 mol / L oxalic acid solution and a 0.1 mol / L complexing agent solution, which are set aside for later use.

[0042] Step 3: Pour the dissolved oxalic acid solution and complexing agent solution into the reaction vessel, start stirring at 400 r / min, continue oxygen removal by bubbling under nitrogen gas protection for 10 minutes, and set the reaction temperature to 40°C.

[0043] Step 4: When the temperature stabilizes at 40°C, the mixed metal solution is slowly added dropwise at a rate of 0.08 L / min to the reaction vessel containing the oxalic acid solution and complexing agent, and a yellow precipitate of iron manganese oxalate is immediately formed in the reaction vessel.

[0044] Step 5: After adding all of the metal mixture solution dropwise to the reaction vessel containing the oxalic acid solution and complexing agent, the reaction is continued at 40°C for 8 hours under nitrogen gas protection to obtain a manganese iron oxalate suspension.

[0045] Step 6: After the reaction is complete, the mixed solution of iron manganese oxalate is collected from the reaction vessel and filtered under reduced pressure. The filtrate is repeatedly washed with deionized water until clear. The filtered cake is removed and vacuum-dried at 80°C for 12 hours to obtain iron manganese oxalate precursor powder.

[0046] (Example 2) A method for preparing a manganese iron oxalate precursor by in situ metal doping, wherein the molecular formula is Mn0.6 Fe 0.38 Zn 0.02 The process involves C2O4·2H2O and includes the following steps.

[0047] Step 1: Following a molar ratio of 4:6, weigh 422.58 g of ferrous sulfate heptahydrate, 405.65 g of manganese sulfate monohydrate, and 23 g of zinc sulfate heptahydrate into a beaker. Add 4 L of deionized water and stir ultrasonically until the metal salts are completely dissolved to obtain a 1.0 mol / L mixed metal solution, which is set aside for later use.

[0048] Step 2: Weigh 544.62 g of oxalic acid dihydrate and 56.84 g of the complexing agent ammonium oxalate into a beaker, add 4 L of deionized water, and stir ultrasonically until the oxalic acid dihydrate and ammonium oxalate are completely dissolved to obtain a 1.08 mol / L oxalic acid solution and a 0.1 mol / L complexing agent solution, which are set aside for later use.

[0049] Step 3: Pour the dissolved oxalic acid solution and complexing agent solution into the reaction vessel, start stirring at 400 r / min, continue oxygen removal by bubbling under nitrogen gas protection for 10 minutes, and set the reaction temperature to 40°C.

[0050] Step 4: When the temperature stabilizes at 40°C, the mixed metal solution is slowly added dropwise at a rate of 0.08 L / min to the reaction vessel containing the oxalic acid solution and complexing agent, and a yellow precipitate of iron manganese oxalate is immediately formed in the reaction vessel.

[0051] Step 5: After adding all of the metal mixture solution dropwise to the reaction vessel containing the oxalic acid solution and complexing agent, the reaction is continued at 40°C for 8 hours under nitrogen gas protection to obtain a manganese iron oxalate suspension.

[0052] Step 6: After the reaction is complete, the mixed solution of iron manganese oxalate is collected from the reaction vessel and filtered under reduced pressure. The filtrate is repeatedly washed with deionized water until clear. The filtered cake is removed and vacuum-dried at 80°C for 12 hours to obtain iron manganese oxalate precursor powder.

[0053] The product obtained in Example 1 was measured using XRD and SEM, and the results are shown in Figure 1-2.

[0054] The present invention synthesizes lithium manganese iron phosphate using manganese iron oxalate precursor as a raw material and has the following advantages: Firstly, oxalates do not easily introduce impurity phases during the synthesis process of the cathode material; secondly, the lithium manganese iron phosphate cathode material synthesized from manganese iron oxalate precursor has high crystallinity and strong bonding force, which helps to stabilize the skeletal structure of the synthesized product; and thirdly, the manganese iron oxalate precursor decomposes during the reaction process, releasing gas and suppressing particle aggregation and crystal grain growth.

[0055] While the basic principles, main features, and advantages of the present invention have been shown and described above, it will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the present invention can be carried out in other specific forms without departing from the spirit or basic features of the invention. Therefore, the examples should be considered illustrative and non-limiting in any respect, and since the scope of the present invention is limited by the claims rather than the above description, it is intended that all variations within the meaning and scope of the equivalents requirement within the claims are included in the present invention.

[0056] While embodiments of the present invention have been illustrated and described, it will be apparent to those skilled in the art that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is limited by the appended claims and equivalents.

Claims

1. A method for preparing an in situ metal-doped manganese iron oxalate precursor comprising iron, manganese, magnesium or zinc, oxalic acid, and water, Step S1 involves weighing out a fixed amount of iron salt, manganese salt solid, and Mg or Zn salt according to stoichiometric ratios, adding an appropriate amount of deionized water, and dissolving them using ultrasound to obtain a metal mixed solution with a concentration of 0.3 to 3.0 mol / L. Step S2 involves weighing out a certain mass of the precipitant and complexing agent according to a molar ratio of 1:1 to 1.5 between the metal mixed solution and the precipitant, adding deionized water and dissolving them with ultrasound to obtain a mixed solution, with the concentration of the precipitant solution being 0.3 to 3.0 mol / L and the concentration of the complexing agent solution being 0.1 to 1.0 mol / L. Step S3 involves adding the prepared solutions of the precipitating agent and the complexing agent to the reaction vessel, sealing it, removing oxygen by bubbling, and then starting the heating and stirring process. Step S4 involves adding the prepared metal mixture solution to the mixed solution of the precipitant and the complexing agent at a constant flow rate after the temperature has risen and stabilized. Step S5 involves reacting the mixture at a constant temperature for 0.5 to 48 hours under the protection of an inert gas to obtain a suspension of iron manganese oxalate. After the reaction is complete, the manganese iron oxalate suspension is recovered from the reaction vessel, and filtered, washed, and dried sequentially to obtain manganese iron oxalate precursor powder (step S6). Includes, A method for preparing an in situ metal-doped manganese iron oxalate precursor, characterized in that the precipitating agent is oxalic acid dihydrate and the complexing agent is ammonium oxalate.

2. The method for preparing an in situ metal-doped manganese iron oxalate precursor according to claim 1, characterized in that the iron salt of S1 contains one or more of ferrous nitrate, ferrous sulfate, ferrous acetate, and ferrous chloride, and the ferrous sulfate is amorphous aqueous ferrous sulfate or crystalline aqueous ferrous sulfate.

3. The method for preparing an in situ metal-doped manganese iron oxalate precursor according to claim 1, characterized in that the manganese salt of S1 contains one or more of manganese nitrate, manganese sulfate, manganese acetate, and manganese chloride, and the manganese sulfate is amorphous aqueous manganese sulfate or crystalline aqueous manganese sulfate.

4. A method for preparing an in situ metal-doped manganese iron oxalate precursor according to claim 1, characterized in that the molar ratio of the iron salt to the manganese salt in S1 is 1:1 to 5, the concentration of the two-metal mixed solution is 0.3 to 3.0 mol / L, the molar ratio of the other doped metal element to the manganese element in S1 is 1:6 to 120, and the molar ratio with the iron element is 1:4 to 80.

5. The method for preparing an in situ metal-doped manganese iron oxalate precursor according to claim 1, characterized in that the molar ratio of the metal mixed solution and the precipitant in S2 is 1:1 to 1.5, the concentration of the precipitant solution is 0.3 to 3.0 mol / L, and the bubbling gas used in S3 is one of argon, nitrogen, and helium.

6. The method for preparing an in situ metal-doped manganese iron oxalate precursor according to claim 1, characterized in that the temperature range of S4 is 20 to 100°C and the dropping rate of the precipitant is 0.01 to 1.0 L / min.

7. The method for preparing an in situ metal-doped manganese iron oxalate precursor according to claim 1, characterized in that the inert gas in S5 is one of argon, nitrogen, and helium, the reaction temperature is 20 to 100°C, and the reaction time is 0.5 to 48 hours.

Citation Information

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