Method for producing iron phosphate using iron phosphate slag, iron phosphate and its applications

A method for purifying iron phosphate slag by alkaline treatment, acid-based processes, and oxidation effectively removes impurities, producing high-quality iron phosphate for lithium ion batteries, addressing resource waste and improving battery performance.

JP7801454B2Active Publication Date: 2026-01-16HUBEI HONGRUN HIGH-TECH NEW MATERIALS CO LTD
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Patent Information

Application Number
JP2024537008
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-06-27
Filing Date
2022-12-09
Publication Date
2026-01-16
Estimated Expiration
2042-12-09

AI Technical Summary

Technical Problem

Conventional methods struggle to effectively remove aluminum, titanium, and copper impurities from iron phosphate slag, leading to high impurity content in recovered iron phosphate, which limits its utilization and results in resource waste.

Method used

A method involving alkaline treatment, acid-based dealumination, decarbonization, detitanization, and decopperization processes to purify iron phosphate slag, followed by oxidation and sintering to produce high-purity iron phosphate.

Benefits of technology

The method achieves low-cost, efficient removal of impurities, producing high-quality iron phosphate suitable for lithium ion batteries, reducing resource waste and enhancing electrochemical performance.

✦ Generated by Eureka AI based on patent content.

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Abstract

The method for producing iron phosphate using iron phosphorus slag includes the steps of adding iron phosphorus slag to an alkaline solution, reacting the slag, and then performing solid-liquid separation to obtain a filter cake and a first filtrate containing metaaluminate ions and phosphate ions; adding an acid solution to the first filtrate to perform a dealumination reaction, and then performing solid-liquid separation to obtain a second filtrate containing phosphate ions; mixing the filter cake and the acid solution to perform a decarbonization reaction, and then performing solid-liquid separation to obtain a third filtrate containing iron ions, titanium ions and copper ions; adding metallic iron to the third filtrate to perform a detitanization and decopperization reaction, and then performing solid-liquid separation to obtain a fourth filtrate containing ferrous ions; and mixing an oxidizing agent, the second filtrate, and the fourth filtrate to react with each other, and then performing solid-liquid separation and sintering in this order to obtain iron phosphate.
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Description

[Technical Field]

[0001] This application claims priority from a Chinese patent application filed on June 27, 2022, bearing application number 202210735393.5 and entitled "Method for producing iron phosphate using phosphorus iron slag, iron phosphate and its application," the disclosure of which is incorporated herein by reference.

[0002] The present invention relates to the technical field of lithium ion batteries, and more particularly to a method for producing iron phosphate using iron phosphorus slag, iron phosphate, and its applications. [Background technology]

[0003] In recent years, with the development of new energy vehicles in China, sales of power batteries, a core component of new energy vehicles, have increased year by year, resulting in the generation of a large amount of discarded batteries. Conventional physical methods have difficulty restoring the performance of lithium iron phosphate waste. The recovery of lithium iron phosphate batteries typically prioritizes the extraction of high-value-added lithium. The large amount of iron phosphate slag generated after lithium extraction is generally disposed of as low-value industrial waste or as filler for cement plants. The ineffective recovery and utilization of the large amounts of iron and phosphorus contained in the iron phosphate slag results in a huge waste of resources. Therefore, developing a simple, easily controlled, and environmentally friendly method for recovering and producing iron phosphate is particularly important for building a green industrial chain.

[0004] The high content of metal impurities is currently the main problem in the recovery and utilization of iron phosphorus slag. Conventional recovery methods mainly focus on removing aluminum impurities, and little on removing other impurity elements, such as titanium and copper.

[0005] For example, Patent Document CN113753873A discloses a method for producing petal-shaped iron phosphate with low aluminum impurities using waste iron phosphate slag, selectively removing aluminum based on the difference in solubility between aluminum impurities in iron phosphate slag and iron phosphate, but the method is an acidic system that only removes aluminum impurities and cannot remove titanium and copper impurities in iron phosphate slag, and the produced iron phosphate product contains large amounts of titanium and copper impurities, which has certain limitations.

[0006] Therefore, how to remove impurity metal elements from iron phosphate slag to a high degree at low cost to produce iron phosphate with low impurity content is of great significance.

[0007] In view of this, the present invention is proposed. Summary of the Invention [Problem to be solved by the invention]

[0008] A first object of the present invention is to provide a method for producing iron phosphate using iron phosphorus slag, which can effectively remove aluminum impurities, carbon impurities, titanium impurities, and copper impurities from iron phosphorus slag, and the impurity content of the produced iron phosphate is low. Furthermore, the method has the advantages of being simple, easy to control, and low cost.

[0009] A second object of the present invention is to provide high-quality iron phosphate with a low content of impurities.

[0010] A third object of the present invention is to provide a positive electrode material for a lithium ion battery. [Means for solving the problem]

[0011] In order to achieve the above object of the present invention, the following technical means are used.

[0012] The present invention provides a method for producing (anhydrous) iron phosphate using iron phosphorus slag, comprising the following steps (a) to (d):

[0013] In step (a), the ferrophosphorus slag is added to an alkaline solution (an aqueous solution containing an alkali), and aluminum hydroxide and metallic aluminum (elemental aluminum) in the ferrophosphorus slag are dissolved by the alkaline solution, and iron in the ferrophosphorus slag reacts with hydroxide ions in the alkaline solution to form an iron hydroxide precipitate. After the reaction is completed, solid-liquid separation is performed to obtain a filter cake and a first filtrate containing metaaluminate ions and phosphate ions (as used in this specification, "contain" refers to "including," and may contain other ions or components).

[0014] Here, the iron phosphorus slag includes waste obtained after extracting lithium (extracting lithium element) from discarded lithium iron phosphate batteries, and the iron phosphorus slag includes iron phosphate, aluminum hydroxide, metallic aluminum, carbon, metallic copper, copper oxide, and titanium oxide.

[0015] Here, the main components of the filter cake include iron hydroxide, carbon (element), metallic copper (element copper), copper oxide, and titanium oxide.

[0016] The anions in the first filtrate include metaaluminate, phosphate, and hydroxide.

[0017] The reaction principle in step (a) is as follows. FePO4+3OH - →Fe(OH)3+PO4 3- ; Al(OH)3+OH - →AlO2 - +2H2O; 2Al+2H2O+2OH - →2AlO2 - +3H2↑.

[0018] This step can separate the phosphorus and aluminum elements from the iron, titanium, copper and carbon elements in the iron phosphate slag, facilitating the subsequent removal of impurities and the synthesis reaction of iron phosphate.

[0019] Then, an acid solution (an aqueous solution containing an acid) is added to the first filtrate containing metaaluminate ions and phosphate ions to carry out a dealumination reaction, in which the metaaluminate ions in the first filtrate react with the hydrogen ions in the acid solution to produce an aluminum hydroxide precipitate. After the dealumination reaction is completed, solid-liquid separation is carried out to obtain a second filtrate containing phosphate ions, which is then prepared for use.

[0020] In this step, the second filtrate containing phosphate ions is obtained, and aluminum hydroxide filter cake is also obtained. In this step, aluminum impurities are precipitated as aluminum hydroxide precipitates, and the purpose of dealumination is achieved after solid-liquid separation.

[0021] The reaction principle in this step is H2O + AlO2 - +H + Contains →Al(OH)3↓.

[0022] The anions in the second filtrate are primarily phosphate ions.

[0023] In step (b), the filter cake obtained in step (a) is mixed with an acid solution to carry out a decarbonization reaction, and then solid-liquid separation is performed to obtain a carbon cake (main components of which are elemental carbon and elemental copper) and a third filtrate containing iron ions, titanium ions, and copper ions.

[0024] The iron hydroxide precipitate and copper oxide in the filter cake react with the acid to dissolve, generating iron ions and copper ions. At the same time, part of the titanium oxide in the filter cake dissolves in the acid solution, while the other part (undissolved titanium oxide) precipitates together with elemental carbon and elemental copper, allowing separation of carbon, iron, and titanium after solid-liquid separation.

[0025] In step (c), metallic iron (elemental iron, for example, iron powder or iron shell) is added to the third filtrate containing iron ions, titanium ions, and copper ions obtained in step (b) to carry out a detitanization and decopperization reaction, followed by solid-liquid separation to obtain a fourth filtrate containing ferrous ions.

[0026] Here, the fourth filtrate containing ferrous ions is obtained, and a mixed filter cake whose main components are metallic copper (elemental copper) and metatitanic acid (TiO(OH)2, also known as hydrated titanium dioxide) is also obtained.

[0027] The reaction principle in step (c) includes the following: Fe+Cu 2+ →Cu+Fe 2+ ; Fe+2H + →Fe 2+ +H2↑; Ti 4+ +3H2O → TiO(OH)2 + 4H + .

[0028] In step (c), metallic iron is added to neutralize the residual acid in the third filtrate, thereby increasing the pH value of the third filtrate and increasing the ferrous ion content in the third filtrate. Furthermore, titanium impurities are hydrolyzed to form metatitanic acid precipitates, thereby achieving the goal of removing titanium, and copper impurities are subjected to a substitution reaction to achieve the goal of removing copper. Therefore, the solid-liquid separation in step (c) can separate the copper and titanium impurities from the iron.

[0029] In some specific embodiments of the present invention, in step (c), excess metallic iron may be added to ensure complete reaction, and the mixed cake further contains a small amount of metallic iron.

[0030] In step (d), an oxidizing agent is mixed with the second filtrate containing phosphate ions obtained in step (a) and the fourth filtrate containing ferrous ions obtained in step (c) to cause a reaction. After the reaction is completed, solid-liquid separation and sintering are carried out in this order to obtain iron phosphate.

[0031] Here, the iron phosphate is anhydrous iron phosphate.

[0032] The reaction principle in step (d) includes the following: When ferrous ions react with an oxidizing agent to produce ferric ions, and the oxidizing agent is hydrogen peroxide, the reaction is: 2Fe 2+ +H2O2+2H + →2Fe 3+ +2H2O; Fe 3+ +PO4 3- +2H2O → FePO4·2H2O; FePO4·2H2O → FePO4 + 2H2O.

[0033] The present invention uses waste iron phosphorus slag as raw material, which has the advantages of low cost, avoiding resource waste, and being environmentally friendly.

[0034] In addition, this method can effectively remove aluminum impurities, carbon impurities, titanium impurities and copper impurities from the iron phosphorus slag. After dealumination, decarbonization, detitanium decontamination and copper decontamination, the iron phosphate produced has low impurity content, high quality and high added value, and can be used as a precursor for lithium iron phosphate for power generation.

[0035] Preferably, in step (a), the mass ratio of the ferrophosphorus slag to the alkaline solution is 1:3-10, including, but not limited to, any one of the following values ​​or ranges between any two of 1:3, 1:4, 1:5, 1:6, 1:7, 1:8, 1:9, and 1:10, and more preferably 1:4-6.

[0036] Preferably, in step (a), the mass fraction of the alkaline solution (the mass fraction of the alkali in the alkali-containing aqueous solution) is 8% to 20%, including, but not limited to, any one of the following values ​​or any two range values: 9%, 10%, 11%, 12%, 13%, 14%, 15%, 16%, 17%, 18%, and 19%.

[0037] Preferably, in step (a), the alkaline solution comprises sodium hydroxide solution and / or potassium hydroxide solution.

[0038] Preferably, in step (a), during the reaction of the iron phosphorus slag with the alkaline solution, the temperature of the mixture is 30 to 80°C, including, but not limited to, any one of 35°C, 40°C, 45°C, 50°C, 55°C, 60°C, 65°C, 70°C, 75°C, and 78°C, or a range between any two of these; and the reaction time is 1 to 3 hours, including, but not limited to, any one of 1.5 hours, 2 hours, and 2.5 hours, or a range between any two of these.

[0039] Use of the above parameters is advantageous in promoting the dissolution of aluminum hydroxide and metallic aluminum, and is advantageous in improving the dealumination efficiency.

[0040] Preferably, in step (a), the acid used in the acid solution comprises at least one of sulfuric acid, hydrochloric acid, phosphoric acid and nitric acid, more preferably phosphoric acid.

[0041] Here, the phosphate ions in the phosphoric acid can be used as a raw material for the subsequent synthesis reaction of iron phosphate.

[0042] Preferably, in step (a), the mass fraction of the acid solution (mass fraction of the acid in the aqueous solution containing the acid) is 30% to 85%, including, but not limited to, any one of the following values ​​or range values ​​between any two of 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, and 80%.

[0043] Preferably, in step (a), the acid solution is added until the pH of the mixture is 5.0 to 7.5, including but not limited to any one of the following spot values ​​or range values ​​between any two of 5.2, 5.5, 5.8, 6.0, 6.3, 6.5, 6.8, 7.0, 7.2, more preferably 6.8 to 7.1.

[0044] In some specific embodiments of the present invention, in step (a), the temperature of the mixture during the dealumination reaction is 15 to 80°C, including, but not limited to, any one of the following points or any two of 20°C, 25°C, 30°C, 35°C, 40°C, 45°C, 50°C, 55°C, 60°C, 65°C, 70°C, and 75°C.

[0045] The use of the above parameters is advantageous in promoting the precipitation of aluminum hydroxide and improving the dealumination effect.

[0046] Preferably, in step (b), the molar ratio of iron element in the filter cake to hydrogen ion in the acid solution is 1:3.1-4, including, but not limited to, any one of the following values ​​or range values ​​between any two of 1:3.2, 1:3.3, 1:3.4, 1:3.5, 1:3.6, 1:3.7, 1:3.8, 1:3.9.

[0047] Preferably, in step (b), the acid comprises at least one of sulfuric acid, hydrochloric acid, nitric acid and phosphoric acid, more preferably at least one of sulfuric acid, hydrochloric acid and nitric acid, which three acids have lower cost.

[0048] Preferably, in step (b), the molality of the acid solution (the molality of the acid in the aqueous solution containing the acid) is 1 to 3 mol / kg, including, but not limited to, any one of the following point values ​​or range values ​​between any two of 1.3 mol / kg, 1.5 mol / kg, 1.8 mol / kg, 2.0 mol / kg, 2.3 mol / kg, 2.5 mol / kg, 2.8 mol / kg, and 3 mol / kg.

[0049] Preferably, in step (b), the temperature of the mixture during the decarbonization reaction is 60 to 80°C, including, but not limited to, any one of 63°C, 65°C, 68°C, 70°C, 73°C, 75°C, and 78°C, or a range between any two of these.

[0050] Preferably, in step (b), the decarbonization reaction time is 1 to 3 hours, including, but not limited to, any one of 1.5 hours, 2 hours, 2.5 hours, and 3 hours, or a range value between any two of these, and more preferably 1 to 1.5 hours.

[0051] The use of the above parameters is advantageous for separating carbon from iron, titanium, and copper.

[0052] Preferably, in step (c), the temperature of the mixture during the detitanization and decopperization reaction is 75 to 85°C, including, but not limited to, any one of 76°C, 77°C, 78°C, 79°C, 80°C, 82°C, 83°C, and 84°C, or a range between any two of these.

[0053] Preferably, in step (c), the solid-liquid separation is carried out when the pH of the mixture during the detitanization and decopperization reaction reaches 2 to 4.2, which may be any one of, but is not limited to, 2.3, 2.5, 2.8, 3.0, 3.2, 3.5, 3.7, and 3.9, or a range between any two of these.

[0054] The use of the above parameters is advantageous in achieving separation of copper and titanium impurities from iron.

[0055] Preferably, in step (d), the oxidizing agent comprises at least one of hydrogen peroxide, sodium peroxide, potassium peroxide, sodium persulfate, ammonium persulfate, and potassium persulfate, and more preferably hydrogen peroxide.

[0056] Preferably, in step (d), the molar ratio of ferrous ions in the fourth filtrate to hydrogen peroxide in the hydrogen peroxide solution is 1:0.55-0.75, including, but not limited to, any one of 1:0.58, 1:0.6, 1:0.62, 1:0.65, 1:0.68, 1:0.7, and 1:0.73, or a range between any two of these. Using this molar ratio allows for complete oxidation of ferrous ions while saving costs.

[0057] Preferably, in step (d), the molar ratio of phosphate ions in the second filtrate to ferrous ions in the fourth filtrate is 1.05 to 1.5:1, including, but not limited to, any one of the following values ​​or ranges between any two of 1.1:1, 1.15:1, 1.2:1, 1.25:1, 1.3:1, 1.35:1, 1.4:1, and 1.45:1.

[0058] Preferably, in step (d), the temperature of the mixture during the reaction is 80 to 95°C, including, but not limited to, any one of 83°C, 85°C, 88°C, 90°C, and 93°C, or a range between any two of these.

[0059] The use of the above molar ratio and reaction temperature is advantageous in obtaining iron phosphate of higher quality.

[0060] Preferably, in step (d), the reaction time is 2 to 6 hours, including, but not limited to, any one of 2 hours, 3 hours, 4 hours, 5 hours, and 6 hours, or a range between any two of these.

[0061] Preferably, in step (d), the sintering temperature is 550 to 700°C, including, but not limited to, any one of 570°C, 590°C, 600°C, 620°C, 650°C, 680°C, and 700°C, or a range between any two of these.

[0062] The purpose of sintering is to remove the water of crystallization from the iron phosphate. Before sintering, the resulting product is iron phosphate dihydrate, which is dehydrated at high temperature by sintering to obtain anhydrous iron phosphate.

[0063] In some specific embodiments of the present invention, after the solid-liquid separation and before the sintering, the method further comprises washing and drying the solid material after the solid-liquid separation.

[0064] The present invention further provides iron phosphate produced by the method for producing iron phosphate using the above-mentioned iron phosphorus slag.

[0065] The iron phosphate has a low content of impurities, high quality and low cost.

[0066] Preferably, the iron / phosphorus ratio of the iron phosphate is 0.96 to 0.98, including, but not limited to, any one of the following point values ​​or range values ​​between any two of 0.963, 0.964, 0.965, 0.968, 0.97, 0.972, 0.974, 0.975, and 0.978.

[0067] The present invention further provides a positive electrode material for a lithium ion battery containing the above iron phosphate.

[0068] By using the above iron phosphate, costs can be controlled to be low, and iron phosphate with a low impurity content is advantageous for improving the electrochemical performance of lithium ion batteries. [Effects of the Invention]

[0069] Compared with the prior art, the advantages of the present invention are as follows: (1) The method for producing iron phosphate using iron phosphorus slag according to the present invention can effectively remove aluminum impurities, carbon impurities, titanium impurities, and copper impurities from the iron phosphorus slag through a series of impurity removal operations, and the impurity content of the produced iron phosphate is low. (2) The method for producing iron phosphate using iron phosphate slag according to the present invention uses discarded iron phosphate slag as a raw material, which has the advantages of low cost, avoiding resource waste, and being environmentally friendly. [Brief explanation of the drawings]

[0070] In order to more clearly describe the specific embodiments of the present invention or the technical solutions in the prior art, the drawings necessary for describing the specific embodiments or the prior art will be briefly introduced below. Obviously, the drawings in the following description are only some embodiments of the present invention, and those skilled in the art can further obtain other drawings based on these drawings without any creative work. [Figure 1] 1 is an XRD chart of anhydrous iron phosphate according to Example 1 of the present invention. [Figure 2] FIG. 1 is a 50,000-times magnified SEM image of anhydrous iron phosphate according to Example 1 of the present invention. [Figure 3] FIG. 2 is a 200,000-times magnified SEM image of anhydrous iron phosphate according to Example 1 of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0071] The technical solutions of the present invention will be described clearly and completely below with reference to the drawings and specific embodiments. However, those skilled in the art should understand that the examples described below are only some of the examples of the present invention, not all of the examples, and are intended to illustrate the present invention and not to limit the scope of the present invention. All other examples that can be obtained by those skilled in the art based on the examples of the present invention without any creative work fall within the scope of protection of the present invention. Unless specific conditions are specified in the examples, they should be in accordance with normal conditions or conditions suggested by the manufacturers. Unless the manufacturers of the reagents or equipment used are specified, they are all ordinary products available on the market.

[0072] The iron-phosphor slag in each of the following examples and comparative examples of the present invention is a waste product obtained after lithium is extracted from discarded lithium iron phosphate batteries. The main components of the iron-phosphor slag include iron phosphate, aluminum hydroxide, metallic aluminum, carbon, metallic copper, copper oxide, and titanium oxide. Example 1

[0073] The method for producing iron phosphate using iron phosphorus slag according to this embodiment includes the following steps (1) to (5).

[0074] In step (1), 100 g of iron phosphate slag is taken and put into a 14% mass NaOH solution to form a slurry, disperse, and react. The reaction temperature is 50°C, and the mass ratio of iron phosphate slag to NaOH solution is 1:3. After reacting for 2 hours, solid-liquid separation is performed to obtain a filter cake and a first filtrate containing metaaluminate ions and phosphate ions.

[0075] In step (2), phosphoric acid having a mass fraction of 85% was added to the first filtrate containing metaaluminate ions and phosphate ions obtained in step (1), the pH value of the mixture was adjusted to 7.0±0.1, and a dealumination reaction was carried out. After the reaction was completed, solid-liquid separation was carried out to obtain a filter cake of aluminum hydroxide and a second filtrate containing phosphate ions (prepared for use).

[0076] In step (3), the filter cake obtained in step (1) was added to and dissolved in a sulfuric acid solution having a molar concentration of 3 mol / kg to carry out a decarbonization reaction. The molar ratio of iron element in the filter cake to hydrogen ions in the sulfuric acid solution was 1:3.6, and the reaction temperature was 80°C. After the reaction was carried out for 1 hour, solid-liquid separation was carried out to obtain a carbon cake and a third filtrate containing iron ions, titanium ions, and copper ions.

[0077] In step (4), iron powder was added to the third filtrate containing iron ions, titanium ions, and copper ions obtained in step (3) to carry out a detitanization and decopperization reaction. The reaction temperature was 80°C, and the reaction was continued until the pH value of the mixture reached 4.0±0.2. Solid-liquid separation was then performed to obtain a fourth filtrate containing ferrous ions and a mixed filter cake containing metallic copper and metatitanic acid.

[0078] In step (5), the hydrogen peroxide solution and the second filtrate containing phosphate ions obtained in step (2) were uniformly mixed to prepare a phosphate solution, and the phosphate solution was then added dropwise to the fourth filtrate containing ferrous ions obtained in step (4) to carry out a reaction to synthesize iron phosphate. The molar ratio of the phosphate ions in the second filtrate to the ferrous ions in the fourth filtrate was 1.1:1, and the molar ratio of the ferrous ions in the fourth filtrate to the hydrogen peroxide in the hydrogen peroxide solution was 1:0.6. The reaction temperature was 95°C, and the reaction was carried out for 3 hours, followed by solid-liquid separation. The product was then washed, dried, and sintered (sintering temperature: 600°C) to obtain anhydrous iron phosphate with an iron / phosphorus ratio of 0.9637.

[0079] The detection results of the contents of phosphorus and aluminum elements in the first filtrate containing metaaluminate ions and phosphate ions obtained in step (1) (i.e., before dealumination) and the second filtrate containing phosphate ions obtained in step (2) (i.e., after dealumination) are shown in Table 1 below.

[0080] Table 1 Comparison of phosphorus and aluminum content before and after dealumination [Table 1]

[0081] The results of detecting the contents of copper and titanium elements in the third filtrate containing iron ions, titanium ions, and copper ions obtained in step (3) (i.e., before copper and titanium were removed) and the fourth filtrate containing ferrous ions obtained in step (4) (i.e., after copper and titanium were removed) are shown in Table 2 below.

[0082] Table 2 Comparison of copper and titanium element contents before and after copper and titanium removal [Table 2]

[0083] The results of detecting the content of impurity elements (metal elements) in the anhydrous iron phosphate obtained in step (5) are shown in Table 3 below.

[0084] Table 3. Content of impurity elements in anhydrous iron phosphate [Table 3]

[0085] As can be seen from the detection results in Table 3, the contents of all impurity elements in the anhydrous iron phosphate are all less than 100 ppm.

[0086] The anhydrous iron phosphate obtained in step (5) was subjected to XRD detection, and the results are shown in Figure 1. As can be seen from Figure 1, the anhydrous iron phosphate obtained in the present invention is FePO4( JCPDS Based on the types and contents of the detected impurity elements in Table 3, the purity of the iron phosphate produced in this example is 99.74%, and the total content of impurities is 0.26%.

[0087] The anhydrous iron phosphate obtained in step (5) was subjected to SEM detection, and the results are shown in Figures 2 and 3. Figure 2 is an SEM image of iron phosphate magnified 50,000 times, and Figure 3 is an SEM image of iron phosphate magnified 200,000 times. It can be seen that the microstructure of the anhydrous iron phosphate obtained in the present invention is a nanosheet structure, and the particle size of the primary particles is about 400 nm. Example 2

[0088] The method for producing iron phosphate using iron phosphorus slag according to this embodiment includes the following steps (1) to (5).

[0089] In step (1), 100 g of iron phosphate slag is taken and put into a KOH solution with a mass fraction of 8%, and then slurried and dispersed to react. The reaction temperature is 35°C, and the mass ratio of iron phosphate slag to KOH solution is 1:10. After reacting for 3 hours, solid-liquid separation is performed to obtain filter cake and a first filtrate containing metaaluminate ions and phosphate ions.

[0090] In step (2), sulfuric acid having a mass fraction of 40% was added to the first filtrate containing metaaluminate ions and phosphate ions obtained in step (1), the pH value of the mixture was adjusted to 6.5±0.1, and a dealumination reaction was carried out. After the reaction was completed, solid-liquid separation was carried out to obtain a filter cake of aluminum hydroxide and a second filtrate containing phosphate ions (prepared for use).

[0091] In step (3), the filter cake obtained in step (1) was added to and dissolved in a sulfuric acid solution having a molar concentration of 1 mol / kg to carry out a decarbonization reaction. The molar ratio of iron element in the filter cake to hydrogen ions in the sulfuric acid solution was 1:3.1, and the reaction temperature was 60°C. After the reaction was carried out for 3 hours, solid-liquid separation was carried out to obtain a carbon cake and a third filtrate containing iron ions, titanium ions, and copper ions.

[0092] In step (4), iron powder was added to the third filtrate containing iron ions, titanium ions, and copper ions obtained in step (3) to carry out a detitanization and decopperization reaction. The reaction temperature was 75°C, and the reaction was continued until the pH value of the mixture reached 2.5±0.2. Solid-liquid separation was then performed to obtain a fourth filtrate containing ferrous ions and a mixed filter cake containing metallic copper and metatitanic acid.

[0093] In step (5), the hydrogen peroxide solution and the second filtrate containing phosphate ions obtained in step (2) were uniformly mixed to prepare a phosphate solution, and then the phosphate solution was added dropwise to the fourth filtrate containing ferrous ions obtained in step (4) to carry out a reaction to synthesize iron phosphate. The molar ratio of the phosphate ions in the second filtrate to the ferrous ions in the fourth filtrate was 1.5:1, and the molar ratio of the ferrous ions in the fourth filtrate to the hydrogen peroxide in the hydrogen peroxide solution was 1:0.55. The reaction temperature was 80°C, and the reaction was carried out for 4 hours, followed by solid-liquid separation. The reaction mixture was then washed, dried, and sintered (sintering temperature: 700°C) to obtain anhydrous iron phosphate with an iron / phosphorus ratio of 0.9701.

[0094] Through detection and calculation, the Al removal rate in step (2) of this example is 96.01%, the Cu removal rate in step (4) is 99.95%, and the Ti removal rate in step (4) is 99.02%. In addition, the contents of all impurity elements in the anhydrous iron phosphate obtained in step (5) are less than 100 ppm. Example 3

[0095] The method for producing iron phosphate using iron phosphorus slag according to this embodiment includes the following steps (1) to (5).

[0096] In step (1), 100 g of iron phosphate slag is taken and put into a 20% mass fraction NaOH solution to form a slurry, disperse, and react. The reaction temperature is 80°C, and the mass ratio of iron phosphate slag to NaOH solution is 1:5. After reacting for 1 hour, solid-liquid separation is performed to obtain filter cake and a first filtrate containing metaaluminate ions and phosphate ions.

[0097] In step (2), hydrochloric acid having a mass fraction of 60% was added to the first filtrate containing metaaluminate ions and phosphate ions obtained in step (1) to adjust the pH value of the mixture to 5.5±0.1, and a dealumination reaction was carried out. After the reaction was completed, solid-liquid separation was carried out to obtain a filter cake of aluminum hydroxide and a second filtrate containing phosphate ions (prepared for use).

[0098] In step (3), the filter cake obtained in step (1) was added to and dissolved in a nitric acid solution having a molar concentration of 2 mol / kg to carry out a decarbonization reaction. The molar ratio of iron element in the filter cake to hydrogen ions in the nitric acid solution was 1:4, and the reaction temperature was 70°C. After the reaction was carried out for 1.5 hours, solid-liquid separation was carried out to obtain a carbon cake and a third filtrate containing iron ions, titanium ions, and copper ions.

[0099] In step (4), iron powder was added to the third filtrate containing iron ions, titanium ions, and copper ions obtained in step (3) to carry out a detitanization and decopperization reaction. The reaction temperature was 85°C, and the reaction was continued until the pH value of the mixture reached 3.0±0.2. Solid-liquid separation was then performed to obtain a fourth filtrate containing ferrous ions and a mixed filter cake containing metallic copper and metatitanic acid.

[0100] In step (5), the hydrogen peroxide solution and the second filtrate containing phosphate ions obtained in step (2) were uniformly mixed to prepare a phosphate solution, and the phosphate solution was then added dropwise to the fourth filtrate containing ferrous ions obtained in step (4) to carry out a reaction to synthesize iron phosphate. The molar ratio of the phosphate ions in the second filtrate to the ferrous ions in the fourth filtrate was 1.3:1, and the molar ratio of the ferrous ions in the fourth filtrate to the hydrogen peroxide in the hydrogen peroxide solution was 1:0.75. The reaction temperature was 90°C, and the reaction was carried out for 4 hours, followed by solid-liquid separation, followed by washing, drying, and sintering (sintering temperature: 550°C), to obtain anhydrous iron phosphate with an iron / phosphorus ratio of 0.9723.

[0101] Through detection and calculation, the Al removal rate in step (2) of this example is 95.72%, the Cu removal rate in step (4) is 99.96%, and the Ti removal rate in step (4) is 98.21%. In addition, the contents of all impurity elements in the anhydrous iron phosphate obtained in step (5) are less than 100 ppm. Comparative Example 1

[0102] The method for producing iron phosphate using iron phosphate slag according to this comparative example is almost the same as that of Example 1, except that in step (2), the pH value of the mixture is adjusted to 4.0±0.1.

[0103] Through detection and calculation, the Al removal rate in step (2) of the comparative example is 42.32%, the purity of the produced iron phosphate is 98.56%, and the total content of impurity elements is 1.44%. Comparative Example 2

[0104] The method for producing iron phosphate using iron phosphorus slag according to this comparative example is almost the same as that of Example 1, except that the reaction temperature is changed to 50°C in step (4).

[0105] Through detection and calculation, the Cu removal rate in step (4) of the comparative example was 95.45%, the Ti removal rate was 64.20%, the purity of the produced iron phosphate was 99.45%, and the total content of impurity elements was 0.55%.

[0106] Although the present invention has been described with reference to specific embodiments, the above embodiments are merely for illustrating the technical means of the present invention and are not intended to be limiting. It should be understood that those skilled in the art may modify the technical means described in the above embodiments or make equivalent substitutions for some or all of the technical features thereof without departing from the spirit and scope of the present invention. These modifications and substitutions do not cause the essence of the corresponding technical means to depart from the scope of the technical means of the embodiments of the present invention. Therefore, the appended claims are intended to include all substitutions and modifications that fall within the scope of protection of the present invention.

Claims

1. Step (a) of adding iron phosphorus slag to an alkaline solution, reacting the slag, and then performing solid-liquid separation to obtain a filter cake and a first filtrate containing metaaluminate ions and phosphate ions; adding an acid solution to the first filtrate until the pH value of the mixture reaches 5.0 to 7.5 to carry out a dealumination reaction; and performing solid-liquid separation after the dealumination reaction to obtain a second filtrate containing phosphate ions; Step (b) of mixing the filter cake obtained in step (a) with an acid solution to carry out a decarbonization reaction, and then performing solid-liquid separation to obtain a carbon cake and a third filtrate containing iron ions, titanium ions, and copper ions; Step (c) of adding metallic iron to the third filtrate obtained in step (b), carrying out a detitanization and decopperization reaction at a temperature of 75°C to 85°C, and then performing solid-liquid separation to obtain a fourth filtrate containing ferrous ions; and step (d) of mixing an oxidizing agent with the second filtrate containing phosphate ions obtained in step (a) and the fourth filtrate containing ferrous ions obtained in step (c) to cause a reaction, and after the reaction is completed, performing solid-liquid separation and sintering in this order to obtain iron phosphate; The method for producing iron phosphate using iron phosphorus slag, wherein the iron phosphorus slag comprises waste obtained after extracting lithium from discarded lithium iron phosphate batteries, and the iron phosphorus slag comprises iron phosphate, aluminum hydroxide, metallic aluminum, carbon, metallic copper, copper oxide, and titanium oxide.

2. In step (a), the mass ratio of the ferrophosphorus slag to the alkaline solution is 1:3-10; In step (a), the mass fraction of the alkaline liquid is 8% to 20%; In step (a), the alkaline solution comprises a sodium hydroxide solution and / or a potassium hydroxide solution; 2. The method for producing iron phosphate using iron phosphorus slag according to claim 1, wherein in step (a), during the reaction of the iron phosphorus slag with the alkaline solution, the temperature of the mixture is 30°C to 80°C, and the reaction time is 1 hour to 3 hours.

3. In step (a), the acid used in the acid solution includes at least one of sulfuric acid, hydrochloric acid, phosphoric acid, and nitric acid; The method for producing iron phosphate using iron phosphorus slag according to claim 1, wherein in step (a), the mass fraction of the acid solution is 30% to 85%.

4. In step (b), the molar ratio of iron element in the filter cake to hydrogen ions in the acid solution is 1:3.1-4; In step (b), the acid in the acid solution comprises at least one of sulfuric acid, hydrochloric acid, nitric acid, and phosphoric acid; In step (b), the molality of the acid solution is between 1 mol / kg and 3 mol / kg; In step (b), the temperature of the mixture during the decarbonization reaction is between 60°C and 80°C; The method for producing iron phosphate using iron phosphorus slag according to claim 1, wherein in step (b), the decarbonization reaction time is 1 hour to 3 hours.

5. The method for producing iron phosphate using iron phosphorus slag according to claim 1, wherein in step (c), the solid-liquid separation is carried out when the pH value of the mixture during the titanization and copper removal reaction reaches 2 to 4.

2.

6. In step (d), the oxidizing agent includes at least one of hydrogen peroxide, sodium peroxide, potassium peroxide, sodium persulfate, ammonium persulfate, and potassium persulfate; 2. The method for producing iron phosphate using iron phosphorus slag according to claim 1, wherein in step (d), the molar ratio of ferrous ions in the fourth filtrate to hydrogen peroxide in the hydrogen peroxide solution is 1:0.55 to 0.

75.

7. 2. The method for producing iron phosphate using iron phosphorus slag according to claim 1, wherein in step (d), the molar ratio of phosphate ions in the second filtrate to ferrous ions in the fourth filtrate is 1.05 to 1.5:

1.

8. In step (d), the temperature of the mixture during the reaction is between 80°C and 95°C; In step (d), the reaction time is between 2 hours and 6 hours; The method for producing iron phosphate using iron phosphorus slag according to claim 1, wherein in step (d), the sintering temperature is 550°C to 700°C.

9. A method for producing iron phosphate using the iron phosphate slag described in claim 1, wherein the iron / phosphorus ratio of the iron phosphate obtained in step (d) is 0.96 to 0.

98.

10. A method for producing a positive electrode material for a lithium ion battery, comprising the steps of producing iron phosphate by the production method described in any one of claims 1 to 9, and producing a positive electrode material for a lithium ion battery containing the produced iron phosphate.

Citation Information

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