Recycling of lithium iron phosphate batteries
A method for recycling LFP batteries using alkaline and acid leaching with ion exchange columns effectively isolates and recovers valuable elements, addressing inefficiencies in conventional methods and enhancing material recovery purity.
Patent Information
- Application Number
- JP2024063355
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2024-04-10
- Publication Date
- 2026-01-14
- Estimated Expiration
- 2042-01-17
AI Technical Summary
Conventional recycling methods for lithium iron phosphate (LFP) batteries are inefficient in separating and recovering valuable materials like iron and iron phosphate, leading to significant material loss and contamination issues due to impurities, particularly aluminum and fluoride, which affect the purity and performance of recycled cathodes.
A multi-step process involving alkaline and acid leaching, followed by ion exchange columns to selectively remove fluoride and copper, and pH adjustment with phosphoric acid to precipitate iron phosphate, allowing for the isolation and recovery of lithium, iron, and other elements.
The process achieves high purity (>99.5%) recovery of iron phosphate and lithium, reducing material loss and equipment damage, while maintaining the quality of recovered materials for reuse.
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Abstract
Description
[Technical Field]
[0001] FIELD OF THE INVENTION The present invention relates generally to a method for recycling used lithium ion batteries, and more particularly to a method for recycling used lithium iron phosphate batteries. [Background technology]
[0002] (background) Lithium-ion batteries contain valuable materials that are wasted when the batteries are consumed and discarded. With the increasing use of lithium-ion batteries, the recovery of valuable materials from used lithium-ion batteries has become an important industry. In particular, lithium iron phosphate ("LFP") batteries are becoming a popular type of lithium-ion battery. Consumption of LFP batteries is increasing rapidly in electric vehicles and power grids, in preference to other types of lithium-ion batteries, because they tend to be cheaper, safer, and longer-lasting. Therefore, the presence of LFP in lithium-ion battery waste streams cannot simply be ignored, even though most processing focuses solely on the recovery of nickel, cobalt, and manganese.
[0003] Post-consumption of lithium-ion batteries, especially LFP batteries, could reduce the life cycle impact of electric vehicles by almost 50%. [1] Using life cycle analysis, the global warming potential associated with the production of 1 kg of LFP active material is calculated to be approximately 19-55 MJ. Therefore, reusing all lithium-ion batteries, not just nickel-, cobalt-, and manganese-rich lithium-ion batteries, would represent a significant opportunity to strengthen local economies, as long as circular economy principles are in place.
[0004] Conventionally, used LFP batteries are first disassembled to separate their cathodes. The cathodes are then crushed or shredded for reuse. The remaining used LFP batteries, e.g., anodes, are discarded as waste. Separating the different parts of the battery is very labor-intensive and time-consuming. Therefore, conventional recycling methods cannot adequately handle the recycling of battery parts of LFP batteries, specifically, from the black mass, which includes both cathodes and anodes, obtained by shredding used batteries and which do not first undergo further pretreatment before reuse.
[0005] Current efforts to reuse LFP batteries tend to focus on recovering lithium, which is cheaper than other materials such as iron and iron phosphate, but nevertheless compromises usable materials. CN107240731B describes a method for obtaining lithium from LFP batteries in the form of lithium carbonate through a chemical process, without any reference to obtaining iron or iron phosphate. As a result, significant amounts of such materials can be discarded as waste instead of being recovered.
[0006] LFP black mass contains many types of impurities that adversely affect the purity of the valuable materials recovered from recycling. This black mass must undergo further processing, including chemical separation to remove impurities such as fluoride, aluminum, and copper. Conventional processes for recycling black mass obtained from other types of batteries typically remove aluminum by changing the pH level, a process similar to that used for LFP, resulting in the removal of iron along with the aluminum. Conventional processes typically remove copper by cementation or precipitation with the addition of sodium hydroxide, but when using this process for LFP black mass, other elements, such as iron phosphate, are removed with the copper. These methods for removing such impurities do not allow for the isolated recovery of such elements, since they are removed along with the other elements.
[0007] Aluminum plays a crucial role as the cathode current collector in lithium-ion batteries, and LFP batteries are no exception. Failure to separate the aluminum current conductor from the active material can reduce the capacity of the regenerated cathode by almost 40% when the molar ratio of aluminum to active material exceeds 3%. Furthermore, in known LFP processes, impurity removal is a necessary step to isolate and recover valuable materials (e.g., lithium) for reuse, while other usable materials are simply discarded as waste [2, 3].
[0008] Furthermore, conventional LFP battery recycling processes do not adequately address fluorine removal. Tasaki, Ken, et al. [4] explain the danger of hydrogen fluoride, a result of lithium hexafluorophosphate present in most lithium-ion batteries, by explaining that it reacts with small amounts of water or alcohol in the electrolyte solution without providing a solution. Fluorine compounds are corrosive and can damage recycling equipment, negatively affect the purity of elements that can be subsequently extracted, and negatively impact battery performance. Summary of the Invention [Problem to be solved by the invention]
[0009] Therefore, there is a need for an LFP battery recycling process that reduces the loss of valuable materials and reduces the need for better handling to remove impurities.
[0010] The present invention is directed to meeting these needs.Further, other desirable features and characteristics will become apparent from the following description read in conjunction with the accompanying drawings. [Means for solving the problem]
[0011] (Summary of the Invention) In one aspect of the present disclosure, there is provided a method for recycling black mass obtained from a lithium iron phosphate battery, the method comprising: an alkaline leaching step, which comprises adding an alkaline solution to the black mass to obtain a first leachate and a first solid residue; an acid leaching step, which comprises adding an acid solution to the first solid residue for a first duration to obtain a second leachate; passing the second leachate through a first ion exchange column and retaining fluoride ions from the second leachate on the first ion exchange column to obtain a first eluate; The method includes the steps of passing the first leachate through a second ion exchange column and retaining copper ions from the first leachate on the second ion exchange column to obtain a second leachate; an iron precipitation step including increasing the pH of the second leachate and adding an amount of phosphoric acid to the second leachate to obtain a first solution and an iron (III) phosphate precipitate; combining the first leachate with the first solution to obtain a second solution; and adjusting the pH of the second solution to obtain a residual precipitate and a lithium solution.
[0012] In one embodiment of the present disclosure, a method for recycling black mass obtained from a lithium iron phosphate battery includes: an alkaline leaching step, which includes adding an alkaline solution having a pH of 13 to 14 to the black mass to obtain a first leachate and a first solid residue; an acid leaching step, which includes adding a 4M to 6M acid solution to the first solid residue for a first duration to obtain a second leachate; a step of passing the second leachate through a first ion exchange column and retaining fluoride ions from the second leachate on the first ion exchange column to obtain a first eluate; a step of passing the first eluate through a second ion exchange column and retaining copper ions from the first eluate on the second ion exchange column to obtain a second eluate; and a step of iron precipitation, which includes raising the pH of the second eluate to 2.5 to 5 and adding an amount of phosphoric acid to the second eluate to obtain a first solution and an iron(III) phosphate precipitate. In one aspect of the present invention, there is provided a method for recycling black mass obtained from a lithium iron phosphate battery, comprising: an alkaline leaching step, in which an alkaline solution having a pH of 13-14 is added to the black mass to obtain a first leachate and a first solid residue; an acid leaching step, in which a 4M-6M acid solution is added to the first solid residue for a first duration to obtain a second leachate; passing the second leachate through a first ion exchange column to obtain a first eluate; and The method includes retaining the copper ions from the leachate on a second resin column to obtain a second eluate; increasing the pH of the second eluate to 2.5-5 and adding an amount of phosphoric acid to the second eluate to obtain a first solution and an iron(III) phosphate precipitate; combining the first leachate and the first solution to obtain a second solution; adjusting the pH of the second solution to about 6.5 to obtain a residual precipitate and a lithium solution, the amount of phosphoric acid being sufficient to achieve a stoichiometric ratio of equivalent amounts of ferric iron and phosphate anions in the second eluate.
[0013] Optionally, the acid solution is selected from the group consisting of sulfuric acid and hydrochloric acid. Optionally, the acid leaching step further comprises diluting the acid solution by about half and adding a first oxidizing agent to the acid solution for a second duration to obtain a second leachate. Optionally, the first and second durations are each about 30-60 minutes and are carried out continuously. Optionally, the iron precipitation step further comprises adding a second oxidizing agent to the second leachate.
[0014] Optionally, the first and / or second oxidizer is selected from the group consisting of hydrogen peroxide, ozone, oxygen, chlorine, and potassium permanganate. Optionally, the first and / or second oxidizer is added in an amount of about 500 ml per kg of hydrogen peroxide and black mass. Optionally, the iron(III) phosphate precipitate has a purity of >99.5%. Optionally, the residual precipitate primarily comprises aluminum hydroxide, copper(II) hydroxide, calcium fluoride, and iron(III) hydroxide. [Effects of the Invention]
[0015] According to one aspect of the present disclosure, an LFP battery recycling process can be provided. DETAILED DESCRIPTION OF THE INVENTION
[0016] BRIEF DESCRIPTION OF THE DRAWINGS FIG. 1 is a block diagram illustrating a lithium iron phosphate recycling process according to one embodiment of the present invention.
[0017] FIG. 2 shows the XRD analysis graph of the precipitate obtained from the first solution.
[0018] (Detailed explanation) In the following detailed description, reference is made to the accompanying drawings, which form a part of this specification. The processes and systems described in the detailed description and drawings are for purposes of illustration and not meant to be limiting. Other embodiments may be utilized, and other changes may be made, without departing from the scope of the disclosure presented herein. In this disclosure, the depiction of a given element or consideration in a particular figure, or the use of a particular element number, or reference thereto in corresponding descriptive material, may encompass the same, equivalent, or similar element or element number identified in another figure or descriptive material associated therewith.
[0019] Black mass is prepared by crushing / shredding at least the cathode and anode LFP battery materials together. The black mass can collectively contain all the major components of a spent LFP battery, including both the anode and cathode materials.
[0020] Referring to FIG. 1, a block diagram 100 illustrating a lithium iron phosphate recycling process according to a primary embodiment of the present invention is shown. The previously obtained black mass is subjected to an alkaline leaching step. An alkaline solution having a pH of 13-14 is added to the black mass to obtain a first leachate and a first solid residue, and aluminum present in the black mass is leached into the first leachate 101. In a non-limiting example, the alkaline solution is a 10% sodium hydroxide solution. While a strong alkali, i.e., a strong alkali that completely ionizes in water, is preferred, it will be readily apparent to those skilled in the art that any alkali can be used as long as the resulting pH is between 13 and 14 and the alkali does not introduce undesirable contaminants such as aluminum hydroxide. Examples of suitable alkalis include sodium hydroxide, lithium hydroxide, and potassium hydroxide.
[0021] The amount of alkaline solution used should be proportional to the amount of black mass used and at least sufficient volume to allow complete immersion of the black mass in the alkaline solution. For example, 18-25 liters of sodium hydroxide solution can be used per 1 kg of black mass. Preferably, 20 liters of sodium hydroxide solution is used per 1 kg of black mass. A reaction temperature of 60-80°C is preferably achieved. The reaction time is preferably 30-60 minutes. Mechanical agitation is preferably provided throughout the reaction period to ensure a high level of aluminum enters the solution and the first leachate is homogeneous.
[0022] The first solid residue is subjected to an acid leaching process. A 4M to 6M acid solution is added to the first solid residue over a first duration to obtain a second leachate 102. Preferably, at the end of the first duration, the acid solution is diluted by approximately half, and an oxidizing agent is added to the acid solution over a second duration to obtain a second leachate. Preferably, the oxidizing agent is selected from the group consisting of hydrogen peroxide, ozone, oxygen, chlorine, and potassium permanganate. More preferably, the oxidizing agent is hydrogen peroxide. Because a very low pH is desired, the acid solution is preferably a strong acid, i.e., a strong acid that completely dissociates into its ions in aqueous solution. In a non-limiting example, the acid solution is a sulfuric acid solution. It will be readily apparent to those skilled in the art that any acid solution can be used as long as it does not introduce undesirable contaminants. The amount of acid solution used should be proportional to the amount of black mass used and at least sufficient volume to allow complete immersion of the first residue in the acid solution. Approximately 95% of the iron and copper and 70% of the lithium are expected to enter the secondary leachate.
[0023] The first and second durations are preferably about 30 to 60 minutes each and are carried out continuously. Preferably, a reaction temperature of 60 to 80°C is maintained throughout the first and second durations. Preferably, mechanical stirring is performed throughout the first and second durations.
[0024] For example, 8 to 10 liters of sulfuric acid are added to the first solid residue for each 1 kg of starting black mass used for the first duration. At the end of the first duration, 8 to 10 liters of deionized water are added to dilute the acid solution by approximately half, and a first oxidizing agent is added simultaneously for a second duration, each of which is approximately 30 to 60 minutes. The first oxidizing agent is preferably selected from the group consisting of hydrogen peroxide, ozone, oxygen, chlorine, and potassium permanganate. The first oxidizing agent is more preferably hydrogen peroxide, and is added in an amount of 400 to 600 ml per kg of black mass, most preferably 500 ml per kg of black mass.
[0025] At the end of the second duration, the second leachate can optionally be passed through a press filter to separate the graphite residue from the second leachate. The filter membrane may be made of polypropylene, cellulose acetate, or polyvinylidene fluoride. The filter membrane should preferably have a pore size of 2 to 15 microns. Those skilled in the art will readily appreciate that other filter membrane materials can be used, as long as they do not degrade when exposed to the temperature and pH of the second leachate and have an appropriate pore size. In this manner, the second leachate passes through the membrane, while the graphite residue is retained by the filter.
[0026] While a significant amount of fluoride ions, approximately 28%, is expected to enter the first leachate during the alkaline leaching stage, a sufficiently undesirable amount that could damage recycling equipment, adversely affect the purity of subsequent extracted elements, and adversely affect subsequent battery performance remains as fluoride ions in the second leachate and needs to be removed. To this end, the second leachate is passed through a first ion exchange column, and the fluoride ions from the second leachate are retained on the first ion exchange column to obtain a first eluate 103.
[0027] In a preferred embodiment of the present invention, the first ion exchange column is a fixed-bed column containing a fluoride-selective ion exchange resin, the resin being a chelating resin loaded with aluminum ions and comprising a polymer structure of divinylbenzene and gel polystyrene cross-linked with sulfonic acid functional groups. It will be readily understood by those skilled in the art that any ion exchange column that is highly selective for fluoride ions under acidic conditions can be used in this manner.
[0028] The second leachate is cooled to a temperature of approximately 30-40°C before passing through the first ion exchange column with a retention time of approximately 10-40 minutes, depending on the specific characteristics of the chelating resin. As the second leachate passes through the first ion exchange column, fluoride ions present in the second leachate come into contact with the functional groups of the chelating resin, resulting in an exchange of chloride for fluoride. Fluoride is retained in the first ion exchange column, while the first eluate passes through the first ion exchange column with only traces of fluoride ions present in the first eluate. The first ion exchange column can be regenerated by passing an aluminum solution, e.g., an aluminum chloride solution with a concentration of 35 g / L or less, through the column. In this way, fluoride ions are retained in the first ion exchange column and subsequently eluted and recovered for subsequent reuse.
[0029] The first eluate is then passed through a second ion exchange column, and copper ions present in the first eluate are retained in the first resin column to obtain a first eluate 104. In a preferred embodiment of the present invention, the second ion exchange column is a fixed-bed column comprising a cation exchange resin. The cation exchange resin preferably comprises a copolymer of styrene-divinylbenzene, a gel matrix, and bis-picolylamine functional groups. The functional groups of the cation exchange resin may optionally be polyethyleneimine, aminomethylphosphonic acid, iminodiacetic acid, carboxylic acid, or any other suitable functional group that has a high affinity for copper ions. The gel matrix may optionally be an epoxy resin, a modified epoxy resin, a polyester, or other suitable matrix system. An example of a suitable cation exchange resin is Dupont AMBERSEP TM M4195. It will be readily understood by one skilled in the art that any ion exchange column that is highly selective for copper under acidic conditions can be used in this manner.
[0030] The first eluate is passed through a second ion exchange column with a retention time of approximately 10-40 minutes, depending on the resin properties. Stoichiometric and efficient removal of X for cation exchange sites + Higher CU than2+ This is possible due to the affinity of the copper-X bonds, i.e., the copper-X decomposition constant is 1(α Cu / X >1), where X is the random cationic resin. Thus, copper ions are selectively retained in the second ion exchange column while the second eluate is discharged. The copper ions may be recovered and reused. The cation exchange resin used for copper extraction can be regenerated and reused for subsequent copper extraction cycles. Resin regeneration is performed by using 4M-6M sulfuric acid (HCl or nitric acid can be used instead). An acidic solution is passed through the resin column from top to bottom, or vice versa, to remove copper ions from the resin.
[0031] The second eluate is subjected to further processing to obtain iron(III) phosphate precipitate from the second eluate. The pH of the first eluate is also increased to about 2.5-5 to precipitate iron(III) phosphate, obtaining a first solution 105. The pH can be increased by adding an alkali, such as sodium hydroxide, until the desired pH of about 2.5-5 is obtained. Those skilled in the art will readily understand that any alkali can be added as long as it does not introduce contaminants. Subsequently, a certain amount of phosphoric acid is added to the first solution until a stoichiometric ratio of equivalent amounts of ferric and phosphate anions in the solution is achieved. The amount of ferric ion in the first solution, and therefore the amount of phosphoric acid to add, can be derived from the expected amount of ferric ion present in the starting amount of black mass used, since the ratio will be skewed toward ferric ion. Iron(III) phosphate can then be separated from the first aqueous solution by physical means, such as a press filter. In a preferred embodiment, a second oxidizing agent is also added to the second eluate to promote the oxidation of ferrous ions present in the first solution to ferric ions. The second oxidizing agent is preferably selected from the group consisting of hydrogen peroxide, ozone, oxygen, chlorine, and potassium permanganate. The second oxidizing agent is more preferably hydrogen peroxide, and is added in an amount of 400-600 ml per kg of black mass, most preferably 500 ml per kg of black mass.
[0032] Referring to Figure 2, the peaks in the graph indicate high concentrations of iron(III) phosphate with no other apparent peaks in the graph indicating high purity of the iron(III) phosphate. Subsequent analysis by inductively coupled plasma-optical emission spectroscopy (results not shown) revealed a purity of at least 99.5% of the iron(III) phosphate product obtained from the precipitate.
[0033] The first solution, which contains primarily sodium and lithium cations, is then combined with the first leachate obtained during the aforementioned alkaline leaching step to obtain a second solution. The pH of the second solution is then adjusted to about 6.5 by adding an alkaline or acidic solution as needed to obtain a residue. Because the pH of the first leachate is alkaline, while the pH of the first solution is acidic, the resulting second leachate may have a pH higher or lower than about 6.5. For example, the pH can be lowered to about 6.5 by adding sulfuric acid, or raised by adding sodium hydroxide, potassium hydroxide, or lithium hydroxide. Alternatively, the pH of the second solution can be raised by adding deionized water. Those skilled in the art will readily understand that any acid or alkali can be used to adjust the pH of the second solution, as long as it does not introduce contaminants, such as aluminum hydroxide.
[0034] Optionally, lime, also known as calcium hydroxide, can be added to the second solution to remove fluoride ions present in the first leachate by precipitation as calcium fluoride. The amount of calcium hydroxide added to the second solution should be proportional to the amount of fluoride present, preferably about 1% w / v. pH adjustment allows for the precipitation of a residual precipitate along with the lithium solution 106. Preferably, the residual precipitate contains primarily aluminum hydroxide, copper(II) hydroxide, calcium fluoride, and iron(III) hydroxide. Precipitation preferably occurs over a duration of about 1 hour. A temperature of about 50-60°C is preferably maintained throughout the precipitation. Preferably, the second solution is subjected to mechanical agitation during precipitation. The residual precipitate is then physically separated by a press filter to obtain a lithium solution that is largely free of contaminants and can be subjected to further processing to recover the lithium present.
[0035] Table 1 shows the concentrations (g / l) of the elements of interest present in each solution obtained throughout the process.
[0036] [Table 1] 〔summary〕 Aspect A1 of the present disclosure is a method for recycling black mass obtained from a lithium iron phosphate battery, comprising: an alkaline leaching step, which comprises adding an alkaline solution having a pH of 13-14 to the black mass to obtain a first leachate and a first solid residue; an acid leaching step, which comprises adding a 4M-6M acid solution to the first solid residue for a first duration to obtain a second leachate; passing the second leachate through a first ion exchange column and retaining fluoride ions from the second leachate on a first resin column to obtain a first eluate; and passing the first eluate through a second ion exchange column and retaining the first fluoride ions on a first resin column to obtain a first eluate. a second resin column to retain copper ions from the eluate to obtain a second eluate; an iron precipitation step, comprising increasing the pH of the second eluate to 2.5-5 and adding an amount of phosphoric acid to the second eluate to obtain a first solution and an iron(III) phosphate precipitate; combining the first leachate with the first solution to obtain a second solution; and adjusting the pH of the second solution to about 6.5 to obtain a residual precipitate and a lithium solution, wherein the amount of phosphoric acid is sufficient to achieve a stoichiometric ratio of equivalent amounts of ferric iron and phosphate anions in the second eluate.
[0037] Aspect A2 of the present disclosure can be the method according to Aspect A1, wherein the acid solution is selected from the group consisting of sulfuric acid and hydrochloric acid.
[0038] Aspect A3 of the present disclosure can be a method according to Aspect A1, wherein the acid leaching step further comprises diluting the acid solution by about half and adding a first oxidizing agent to the acid solution for a second duration to obtain the second leach solution.
[0039] Aspect A4 of the present disclosure can be a method according to Aspect A1, wherein the iron precipitation step further comprises adding a second oxidizing agent to the second eluate.
[0040] Aspect A5 of the present disclosure may be a method according to aspect A3, wherein the first duration and the second duration are each about 30 to 60 minutes and are performed continuously.
[0041] Aspect A6 of the present disclosure can be a method according to aspect A3 or A4, wherein the first oxidizing agent and / or second oxidizing agent is selected from the group consisting of hydrogen peroxide, ozone, oxygen, chlorine, and potassium permanganate.
[0042] Aspect A7 of the present disclosure can be a method according to Aspect A6, wherein the first oxidant and / or second oxidant added is hydrogen peroxide and is about 500 ml per kg of the black mass.
[0043] Aspect A8 of the present disclosure can be a method according to Aspect A1, wherein the iron(III) phosphate precipitate has a purity greater than 99.5%.
[0044] Aspect A9 of the present disclosure can be a method according to Aspect A1, wherein the residual precipitate comprises primarily aluminum hydroxide, copper(II) hydroxide, calcium fluoride, and iron(III) hydroxide.
[0045] Aspect B1 of the present disclosure is a method for recycling black mass obtained from a lithium iron phosphate battery, comprising: an alkaline leaching step, which comprises adding an alkaline solution having a pH of 13-14 to the black mass to obtain a first leachate and a first solid residue; an acid leaching step, which comprises adding a 4M-6M acid solution to the first solid residue for a first duration to obtain a second leachate; a step of passing the second leachate through a first ion exchange column and retaining fluoride ions from the second leachate on the first ion exchange column to obtain a first eluate; and a step of passing the first eluate through a second ion exchange column and retaining fluoride ions from the second leachate on the first ion exchange column to obtain a first eluate. a second ion exchange column to obtain a second eluate; an iron precipitation step, comprising: increasing the pH of the second eluate to 2.5-5 and adding an amount of phosphoric acid to the second eluate to obtain a first solution and an iron(III) phosphate precipitate; combining the first leachate with the first solution to obtain a second solution; and adjusting the pH of the second solution to 6.5 to obtain a residual precipitate and a lithium solution, wherein the amount of phosphoric acid is sufficient to achieve a stoichiometric ratio of equivalent amounts of ferric iron and phosphate anions in the second eluate.
[0046] Aspect B2 of the present disclosure can be the method according to Aspect B1, wherein the acid solution is selected from the group consisting of sulfuric acid and hydrochloric acid.
[0047] Aspect B3 of the present disclosure can be a method according to aspect B1, wherein the acid leaching step further comprises diluting the acid solution by 2 and adding a first oxidizing agent to the acid solution for a second duration to obtain the second leachate.
[0048] Aspect B4 of the present disclosure can be a method according to Aspect B1, wherein the iron precipitation step further comprises adding a second oxidizing agent to the second eluate.
[0049] Aspect B5 of the present disclosure may be a method according to aspect B3, wherein the first duration and the second duration are each about 30 to 60 minutes and are performed continuously.
[0050] Aspect B6 of the present disclosure can be a method according to aspect B3 or B4, wherein the first oxidizing agent and / or the second oxidizing agent is selected from the group consisting of hydrogen peroxide, ozone, oxygen, chlorine, and potassium permanganate.
[0051] Aspect B7 of the present disclosure can be the method of aspect B6, wherein the first oxidant and / or second oxidant added is hydrogen peroxide, and is 500 ml per kg of the black mass.
[0052] Aspect B8 of the present disclosure can be the method of Aspect B1, wherein the iron(III) phosphate precipitate has a purity greater than 99.5%.
[0053] Aspect B9 of the present disclosure can be a method according to aspect B1, wherein the residual precipitate comprises primarily aluminum hydroxide, copper (II) hydroxide, calcium fluoride, and iron (III) hydroxide.
[0054] The present invention relates to a method for recycling lithium iron phosphate batteries for the purpose of enabling isolated recovery of elements from black mass. Black mass, including at least cathode and anode components, is immersed in a pH 13-14 solution to obtain a first leachate and a first solid residue. The first leachate is immersed in a 4-6 M acid solution to obtain a second leachate. The second leachate is passed through a first ion exchange column, where fluoride ions are retained, and a second ion exchange column, where copper ions are retained, to obtain a second leachate. The pH of the second leachate is adjusted to about 2.5-5, and sufficient phosphoric acid is added to achieve an equivalent stoichiometric ratio of ferric iron and phosphate anions to obtain a first solution and an iron(III) phosphate precipitate. The first solution is combined with the first leachate to obtain a second solution. The pH of the second solution is adjusted to about 6.5 to obtain a residual precipitate and a lithium solution. (References) [Prior art documents] [Non-patent literature]
[0055] [Non-Patent Document 1] [1] Larouche, F., Tedjar, F., Amouzegar, K., Houlachi, G., Bouchard, P., Demopoulos, GP, Zaghib, K., 2020. Progress and Status of Hydrometallurgical and Direct Recycling of Li-Ion Batteries and Beyond. Materials 13, 801. https: / / doi.org / 10.3390 / ma13030801 [Non-patent document 2] [2] Federica Forte, Massimiliana Pietrantonio, Stefano Pucciarmati, Massimo Puzone & Danilo Fontana (2020): Lithium iron phosphate batteries recycling: An assessment of current status, Critical Reviews in Environmental Science and Technology, DOI: 10.1080 / 10643389.2020.1776053. [Non-patent document 3] [3] Tingting Yan, Shengwen Zhong, Miaomiao Zhou, Xiaoming Guo, Jingwei Hu, Fangfang Wang, Fantao Zeng, and Sicheng Zuo: High-efficiency method for recycling lithium from spent LiFePO4 cathode. Nanotechnology Reviews 2020; 9: 1586-1593. [Non-patent document 4] [4] Decomposition of LiPF6 and Stability of PF 5 in Li-Ion Battery Electrolytes: Density Functional Theory and Molecular Dynamics Studies." Journal of the Electrochemical Society 150.12 (2003): A1628. DOI: 10.1149 / 1.1622406 [Brief explanation of the drawings]
[0056] [Figure 1] FIG. 1 is a block diagram illustrating a lithium iron phosphate recycling process according to one embodiment of the present invention. [Figure 2] FIG. 2 shows the XRD analysis graph of the precipitate obtained from the first solution.
Claims
1. 1. A method for recycling black mass obtained from a lithium iron phosphate battery, comprising: an alkaline leaching step, comprising adding an alkaline solution to the black mass to obtain a first leachate and a first solid residue; an acid leaching step of adding an acid solution to the first solid residue for a first duration to obtain a second leachate; passing the second leachate through a first ion exchange column and retaining fluoride ions from the second leachate on the first ion exchange column to obtain a first eluate; passing the first eluate through a second ion exchange column and retaining copper ions from the first eluate on the second ion exchange column to obtain a second eluate; an iron precipitation step, comprising increasing the pH of the second eluate and adding an amount of phosphoric acid to the second eluate to obtain a first solution and an iron (III) phosphate precipitate; combining the first leachate with the first solution to obtain a second solution; and adjusting the pH of the second solution to obtain a residual precipitate and a lithium solution.
2. the alkaline solution has a pH of 13 to 14; increasing the pH of the second eluate to 2.5 to 5; 10. The method of claim 1, wherein the pH of the second solution is adjusted to 6.
5.
3. the alkaline solution contains any one of sodium hydroxide, lithium hydroxide, and potassium hydroxide; 2. The method of claim 1, wherein the acid solution is 4M to 6M and is selected from the group consisting of sulfuric acid and hydrochloric acid.
4. the acid leaching step comprising: diluting the acid solution by half; 2. The method of claim 1, further comprising adding a first oxidizing agent to the acid solution for a second duration to obtain the second leach solution.
5. 5. The method of claim 4, wherein the iron precipitation step further comprises adding a second oxidizing agent to the second eluate.
6. 5. The method of claim 4, wherein the first duration and the second duration are each 30 to 60 minutes and are performed continuously.
7. 6. The method of claim 5, wherein the first oxidant and / or the second oxidant is selected from the group consisting of hydrogen peroxide, ozone, oxygen, chlorine, and potassium permanganate.
8. 2. The method of claim 1, wherein the amount of phosphoric acid is sufficient to achieve a stoichiometric ratio of equivalent amounts of ferric iron and phosphate anions in the second eluate.
9. 10. The method of claim 1, wherein the iron (III) phosphate precipitate has a purity greater than 99.5%.
10. 10. The method of claim 1, wherein the residual precipitate comprises primarily aluminum hydroxide, copper (II) hydroxide, calcium fluoride, and iron (III) hydroxide.
11. and / or separating a graphite residue from said second leachate.
10. The method of claim 1, further comprising adding calcium hydroxide to the second solution to precipitate calcium fluoride.
12. 1. A method for recycling black mass obtained from a lithium iron phosphate battery, comprising: an alkaline leaching step, comprising adding an alkaline solution having a pH of 13-14 to the black mass to obtain a first leachate and a first solid residue; an acid leaching step of adding a 4M to 6M acid solution to the first solid residue for a first duration to obtain a second leachate; passing the second leachate through a first ion exchange column and retaining fluoride ions from the second leachate on the first ion exchange column to obtain a first eluate; passing the first eluate through a second ion exchange column and retaining copper ions from the first eluate on the second ion exchange column to obtain a second eluate; an iron precipitation step, comprising increasing the pH of the second eluate to 2.5-5 and adding an amount of phosphoric acid to the second eluate to obtain a first solution and an iron (III) phosphate precipitate.
13. combining the first leachate with the first solution to obtain a second solution; and adjusting the pH of the second solution to 6.5 to obtain a residual precipitate and lithium solution.
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