Battery material manufacturing method
By charging lithium-ion batteries to a specific SOC and using an aqueous medium to dissolve lithium before roasting, the method enhances lithium recovery efficiency by preventing Li-Al alloy formation and achieving a high recovery rate.
Patent Information
- Application Number
- JP2023119554
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-07-24
- Publication Date
- 2025-09-22
- Estimated Expiration
- 2043-07-24
AI Technical Summary
Conventional lithium-ion secondary battery discharge treatment reduces the lithium recovery rate due to Li absorption into the positive electrode active material, leading to the formation of difficult-to-dissolve Li-Al alloy during roasting.
A method involving charging lithium-ion secondary batteries to a predetermined state of charge (SOC) or higher, filling them with an aqueous medium, and collecting this medium to dissolve lithium before roasting, thereby preventing Li-Al alloy formation and enhancing recovery efficiency.
This approach significantly improves the lithium recovery rate by ensuring lithium is collected from the negative electrode active material, allowing for a high recovery rate of up to 85% or more.
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Abstract
Description
[Technical Field]
[0001] The technology disclosed herein relates to a method for producing battery materials. [Background technology]
[0002] Lithium ion secondary batteries are widely used in various fields. These lithium ion secondary batteries (hereinafter simply referred to as "batteries") contain various metal materials (Li, Ni, Co, Mn, Al, Cu, etc.). For example, lithium transition metal composite oxides such as lithium nickel cobalt manganese composite oxide are used as the positive electrode active material. Aluminum or the like is used as the positive electrode core. Meanwhile, carbon materials or the like are used as the negative electrode active material. Copper or the like is used as the negative electrode core. Aluminum or the like is also used for the battery case.
[0003] In recent years, developments have been made in recovery technologies (battery material manufacturing methods) that recover valuable metals (Li, Ni, Co, Mn, etc.) from used batteries and reuse them as battery materials. For example, in this type of recovery technology, the used battery is first roasted. Next, the roasted electrode body (black mass) is removed from inside the battery. Then, an acid leaching process is performed in which the black mass is immersed in an acid solution. This produces an acid leachate in which metal components (Li, Ni, Co, Mn, Al, Cu, etc.) are dissolved in the acid solution. This acid leachate is then subjected to various separation processes (neutralization precipitation, solvent extraction, etc.). This allows the desired valuable metals to be recovered and reused as battery materials.
[0004] Examples of such recovery techniques are disclosed in Patent Documents 1 and 2. As described in these documents, conventional techniques recommend discharging a battery before carrying out valuable metal recovery processing. For example, Patent Document 1 discloses the finding that discharging a lithium-ion secondary battery causes Li to be absorbed into the positive electrode active material, thereby improving the Li recovery rate. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] Japanese Patent Publication No. 2022-49831 [Patent Document 2] Patent Publication No. 2021-72157 Summary of the Invention [Problem to be solved by the invention]
[0006] Recently, growing awareness of environmental issues has led to a demand for further improvement in the Li recovery rate from used lithium-ion secondary batteries. To meet this demand, the inventors conducted extensive research and made the surprising discovery that the discharge treatment recommended in conventional technologies was a factor in reducing the Li recovery rate. Specifically, as described in Patent Document 1 and elsewhere, when a lithium-ion secondary battery is discharged, Li is absorbed into the positive electrode active material. However, in typical lithium-ion secondary batteries, Al is used in the positive electrode core, which is the component adjacent to the positive electrode active material. That is, a large amount of Li and Al is present on the positive electrode side of the battery after discharge. When roasting is performed in this state, an alloy of Li and Al (Li-Al alloy) is produced. This Li-Al alloy is difficult to dissolve in acid solution and is therefore difficult to recover by acid leaching. In this case, Li remains in the solid content (residue), which reduces the Li recovery rate.
[0007] The technology disclosed herein has been made to solve the above-mentioned problems, and aims to improve the Li recovery rate when reproducing battery materials from lithium-ion secondary batteries. [Means for solving the problem]
[0008] To address the above-mentioned problems, a method for producing a battery material (hereinafter also simply referred to as "production method") having the following configuration is provided.
[0009] The method for producing a battery material disclosed herein includes a preparation step of preparing a lithium ion secondary battery charged to a predetermined standard SOC or higher, a filling step of filling an aqueous medium into the lithium ion secondary battery, and a collection step of collecting the aqueous medium from the lithium ion secondary battery.
[0010] In the manufacturing method configured as described above, batteries charged to a certain level or higher are targeted for recovery. In contrast to the above-described discharged battery, Li is absorbed in the negative electrode active material in a charged battery. In the manufacturing method disclosed herein, an aqueous medium is filled into the interior of the charged battery. This causes Li in the negative electrode active material to dissolve into the aqueous medium. A large amount of Li can be easily recovered by collecting the aqueous medium into which Li has dissolved. Furthermore, in the manufacturing method disclosed herein, Li can be recovered before the roasting treatment is performed, thereby suppressing a decrease in the Li recovery rate due to alloying. As described above, the manufacturing method disclosed herein can achieve a high Li recovery rate. [Brief explanation of the drawings]
[0011] [Figure 1] FIG. 1 is a vertical cross-sectional view schematically showing the internal structure of a lithium ion secondary battery. [Figure 2] FIG. 2 is a perspective view schematically showing an electrode body of the lithium ion secondary battery shown in FIG. [Figure 3] FIG. 3 is a flowchart illustrating a method for producing a battery material according to one embodiment. [Figure 4] FIG. 4 is a flowchart illustrating in detail the preparation steps in the manufacturing method according to one embodiment. [Figure 5] FIG. 5 is a flowchart illustrating in detail the separation step in the manufacturing method according to one embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0012] Hereinafter, embodiments of the technology disclosed herein will be described. It should be noted that matters other than those specifically mentioned in this specification that are necessary for implementing the technology disclosed herein can be understood as design matters for a person skilled in the art based on the prior art in the relevant field. The technology disclosed herein can be implemented based on the contents disclosed in this specification and common general technical knowledge in the relevant field.
[0013] 1. Lithium-ion secondary battery The manufacturing method according to this embodiment recovers valuable metals such as lithium (Li) from lithium ion secondary batteries to regenerate battery materials (typically, materials for the positive electrode active material of lithium ion secondary batteries). An example of a battery to be recovered will be described below. FIG. 1 is a vertical cross-sectional view schematically showing the internal structure of a lithium ion secondary battery. FIG. 2 is a perspective view schematically showing an electrode assembly of the lithium ion secondary battery shown in FIG. 1. As shown in FIG. 1, the lithium ion secondary battery 1 includes an exterior body 10, an electrode assembly 20, and an electrolyte (not shown).
[0014] (1) Exterior body The exterior body is not particularly limited as long as it is a container that accommodates the electrode assembly and the electrolyte. For example, the exterior body 10 shown in FIG. 1 is a box-shaped case. This box-shaped exterior body 10 is made of, for example, a metal material (such as aluminum (Al)) that has a certain level of strength. As shown in FIG. 1, a positive electrode terminal 12 and a negative electrode terminal 14 are attached to the exterior body 10. The positive electrode terminal 12 and the negative electrode terminal 14 are connected to the electrode assembly 20 inside the exterior body 10. Specifically, the positive electrode terminal 12 is connected to the positive electrode plate 30 of the electrode assembly 20 (see FIG. 2). The positive electrode terminal 12 is made of aluminum (Al) or the like. On the other hand, the negative electrode terminal 14 is connected to the negative electrode plate 40 of the electrode assembly 20. The negative electrode terminal 14 is made of copper (Cu) or the like.
[0015] Furthermore, the exterior body 10 shown in Fig. 1 is formed with a liquid inlet 16. This liquid inlet 16 is an opening that connects the inside and outside of the exterior body 10. In manufacturing the lithium-ion secondary battery 1, the interior of the exterior body 10 is filled with an electrolyte through this liquid inlet 16. Then, after filling with the electrolyte, the liquid inlet 16 is sealed with a sealing plug 17.
[0016] (2) Electrode body The electrode body 20 is a power generating element of the lithium ion secondary battery 1. As shown in FIG. 2, the electrode body 20 includes a positive electrode plate 30, a negative electrode plate 40, and a separator 50. The electrode body 20 shown in FIG. 2 is a wound electrode body. This wound electrode body is formed by winding a long strip-shaped laminate in which the positive electrode plate 30, the negative electrode plate 40, and the separator 50 are stacked together. The structure of the electrode body 20 is not limited to a wound electrode body, and may be any other conventionally known structure (such as a stacked electrode body).
[0017] The positive electrode plate 30 includes a foil-shaped positive electrode core 32 and a positive electrode active material layer 34 applied to the surface of the positive electrode core 32. The positive electrode core 32 is made of aluminum (Al) or the like. The positive electrode active material layer 34 is a composite layer containing a positive electrode active material, a conductive material, a binder, and the like. The positive electrode active material is a metal material containing at least lithium (Li). Examples of such positive electrode active materials include lithium transition metal composite oxides such as lithium nickel composite oxide, lithium cobalt composite oxide, lithium manganese composite oxide, lithium nickel manganese composite oxide, lithium manganese cobalt composite oxide, lithium nickel cobalt composite oxide, and lithium nickel cobalt manganese composite oxide. Other examples of positive electrode active materials include lithium transition metal phosphate compounds such as lithium iron phosphate, lithium manganese phosphate, and lithium manganese iron lithium phosphate. As will be described in more detail later, the manufacturing method disclosed herein can also contribute to improving the recovery rate of valuable metals other than Li (such as Ni, Co, and Mn). Therefore, it is preferable that the object to be recovered (batteries) contains a lithium transition metal composite oxide containing Ni, Co, Mn, etc. Furthermore, examples of conductive materials include carbon materials such as acetylene black and graphite. Examples of binders include resin materials such as polyvinylidene fluoride (PVdF).
[0018] On the other hand, the negative electrode plate 40 includes a foil-shaped negative electrode core 42 and a negative electrode active material layer 44 applied to the surface of the negative electrode core 42. The negative electrode core 42 is made of copper (Cu) or the like. The negative electrode active material layer 44 is a composite layer containing a negative electrode active material, a binder, a thickener, and the like. Examples of negative electrode active materials include carbon materials such as graphite, hard carbon, and soft carbon. Other examples of negative electrode active materials include lithium titanate (LTO), silicon carbide (SiC), a composite containing carbon and silicon, and silicon oxide (SiO X ) and the like. As a binder, styrene butadiene rubber (SBR) and the like are used. As a thickener, carboxymethyl cellulose (CMC) and the like are used.
[0019] The separator 50 is an insulating sheet interposed between the positive electrode plate 30 and the negative electrode plate 40. For example, a resin material such as polyethylene (PE), polypropylene (PP), polyester, cellulose, or polyamide is used for the separator 50. A heat-resistant layer containing an inorganic filler may be formed on the surface of the separator 50. Examples of such inorganic fillers include inorganic oxides such as aluminum oxide, magnesium oxide, silicon oxide, and titanium oxide; nitrides such as aluminum nitride and silicon nitride; metal hydroxides such as calcium hydroxide, magnesium hydroxide, and aluminum hydroxide; and clay minerals such as mica, talc, boehmite, zeolite, apatite, and kaolin.
[0020] (3) Electrolyte In this lithium ion secondary battery 1, an electrolyte is present between the positive electrode plate 30 and the negative electrode plate 40. This allows charge carriers (Li ions) to move between the positive electrode plate 30 and the negative electrode plate 40. The form of the electrolyte is not limited to the technology disclosed herein, and any conventionally known form can be used without particular limitation. Examples of such electrolyte forms include non-aqueous electrolyte, gel electrolyte, and solid electrolyte.
[0021] 2. Battery material manufacturing method The manufacturing method according to this embodiment will be described below. Fig. 3 is a flowchart illustrating the manufacturing method according to this embodiment. Fig. 4 is a flowchart illustrating the preparation step in detail. Fig. 5 is a flowchart illustrating the separation step in detail.
[0022] 3, the manufacturing method according to this embodiment includes a preparation step S10, a filling step S20, a collection step S30, a roasting step S40, a sorting step S50, an acid leaching step S60, a separation step S70, a Li crystallization step S80, an NCM crystallization step S90, and an active material production step S100. Each step will be described below.
[0023] (1) Preparation process S10 In the preparation step S10, a lithium ion secondary battery 1 charged to a predetermined standard SOC or higher is prepared. In this step, it is sufficient to prepare a battery charged to a standard SOC or higher, and the specific procedure is not particularly limited. In addition, it is preferable that the batteries to be collected in the manufacturing method disclosed herein are used batteries. This makes it possible to produce battery materials (typically Li) while reducing the burden on the environment. However, the batteries to be collected in the manufacturing method disclosed herein are not limited to used batteries. For example, unused batteries that were deemed defective during manufacturing and could not be shipped can also be collected.
[0024] Here, the preparation step S10 in this embodiment includes a measurement step S11, a determination step S12, and a charging step S13 (see FIG. 4). This makes it possible to reliably prepare a battery with a standard SOC or higher. This will be explained in detail below.
[0025] (a) Measurement process S11 In the measurement step S11, the SOC of the lithium-ion secondary battery 1 is measured. In this specification, "SOC" refers to the state of charge (SOC). Specifically, in this specification, the state of charge that is the upper limit of the operating voltage (i.e., a state where the voltage does not increase even with continued charging) is defined as SOC=100%. On the other hand, the state of charge that is the lower limit of the operating voltage (i.e., a state where the voltage does not decrease even with continued discharging) is defined as SOC=0%. In a battery with a high SOC (a charged battery), Li is absorbed in the negative electrode active material. On the other hand, in a battery with a low SOC (a discharged battery), Li is absorbed in the positive electrode active material. Note that a specific means for measuring the SOC can be any known measuring means without any particular limitation, and detailed description thereof will be omitted as it does not limit the technology disclosed herein.
[0026] (b) Judgment step S12 Next, in the determination step S12, it is determined whether the measured SOC is equal to or greater than the reference SOC. The "reference SOC" here is a threshold value representing a state of charge in which sufficient Li is absorbed in the negative electrode active material. This reference SOC is preferably set according to the specifications (materials, dimensions, etc.) and degradation state of the battery to be recovered. Setting the reference SOC higher increases the amount of Li absorbed in the negative electrode active material, which tends to improve the Li recovery rate in the collection step S30. For example, the reference SOC is preferably set to 30% or higher (more preferably 35% or higher, particularly preferably 40% or higher). Meanwhile, the upper limit of the reference SOC is not particularly limited and may be 100%. However, setting the reference SOC too high results in excessive charging, which tends to increase the energy and time required for Li recovery. From this perspective, the upper limit of the reference SOC is preferably set to 75% or lower (more preferably 70% or lower, even more preferably 65% or lower, particularly preferably 60% or lower). If it is determined in the determination step S12 that the state of charge is equal to or higher than the reference SOC (YES in S12), the preparation step S10 ends (END in FIG. 4). In this case, the charging step S20 shown in FIG. 3 starts. On the other hand, if the state of charge is lower than the reference SOC (NO in S12), the charging step S13 is performed.
[0027] (c) Charging process S13 In the charging step S13, the lithium ion secondary battery 1 determined to be below the reference SOC is charged until the SOC reaches or exceeds the reference SOC. In the manufacturing method according to this embodiment, the preparation step S10 ends after the charging step S13 is performed (END in FIG. 4). As described above, the preparation step S10 in this embodiment includes the measurement step S11, the determination step S12, and the charging step S13. This ensures that a battery charged to or above the reference SOC can be supplied to the filling step S20.
[0028] (2) Filling process S20 In this step, an aqueous medium is filled into the lithium-ion secondary battery 1 after the preparation step S10. In this liquid filling step S20, first, the sealing plug 17 is removed from the exterior body 10 of the lithium-ion secondary battery 1 (see FIG. 1). This allows communication between the inside and outside of the exterior body 10 via the liquid filling hole 16. Then, a liquid filling nozzle is inserted into the liquid filling hole 16, and the aqueous medium is poured into the interior of the exterior body 10. This allows the aqueous medium to be filled into the battery. Here, the battery supplied to the filling step S20 has been charged to a reference SOC or higher, and therefore a large amount of Li is occluded in the negative electrode active material. When this negative electrode active material is immersed in the aqueous medium, Li dissolves from the negative electrode active material into the aqueous medium. As a result, an aqueous medium in which a large amount of Li is dissolved (hereinafter also referred to as a "Li solution") is prepared.
[0029] As used herein, the term "aqueous medium" refers to a liquid medium primarily composed of water. Examples of such aqueous media include distilled water, ion-exchanged water, pure water, and ultrapure water. The aqueous medium may contain components other than water as long as they do not significantly impair the effects of the technology disclosed herein (Li elution from the negative electrode active material). For example, the aqueous medium may be an aqueous solution of a specific metal salt (sodium chloride, calcium chloride, lithium chloride, nitrate salts, organic acid, etc.). However, because these metal salts contain metal elements, they may increase impurities in the separation step S70 described below. Furthermore, the use of an aqueous solution of a metal salt tends to reduce the amount of Li dissolved. From these perspectives, it is preferable that the aqueous medium be substantially free of metal salts. Specifically, the content of metal salts relative to the total weight (100 wt%) of the aqueous medium is preferably 0.1 wt% or less, more preferably 0.05 wt% or less, even more preferably 0.01 wt% or less, and particularly preferably 0.005 wt% or less.
[0030] The aqueous medium may also contain a liquid medium other than water. For example, a mixture of water and a water-soluble organic solvent (e.g., an alcohol such as ethanol) can be used as the aqueous medium. In consideration of the amount of Li eluted, it is preferable that the content of the organic solvent in the aqueous medium is low. For example, the content of the organic solvent relative to the total weight (100 wt%) of the aqueous medium is preferably 50 wt% or less, more preferably 10 wt% or less, even more preferably 1 wt% or less, and particularly preferably 0.1 wt% or less.
[0031] In this specification, "filling" refers to a state in which an aqueous medium is present only inside the battery (exterior body). Meanwhile, in this specification, "submersion" refers to a state in which an aqueous medium is continuously present inside and outside the battery via an opening (such as the liquid inlet hole 16) in the exterior body. As will be described in detail later, experiments have confirmed that even when a charged battery is submerged in an aqueous medium, almost no Li elution into the aqueous medium occurs. This is presumably because, when a charged battery is submerged in water, an external short circuit causes a sudden drop in voltage, inhibiting the elution of Li from the negative electrode active material. In contrast, in the filling step of the manufacturing method disclosed herein, the aqueous medium is injected only inside the battery to prevent an external short circuit via the aqueous medium. This allows Li in the negative electrode active material to be appropriately eluted into the aqueous solvent.
[0032] Note that most of the Li in the negative electrode active material is eluted one day after the aqueous solvent is filled. However, from the viewpoint of ensuring the elution of Li more reliably, it is preferable to leave the battery filled with the aqueous solvent for at least one day (more preferably at least two days, and particularly preferably at least three days) in this step. On the other hand, in consideration of production efficiency, the upper limit of the leaving time is preferably 14 days or less, more preferably 7 days or less, even more preferably 5 days or less, and particularly preferably 4 days or less. This prevents the filling step S20 from being unnecessarily prolonged. Furthermore, it is preferable to appropriately set the temperature of the aqueous medium in this step within the range of 10°C to 40°C. This improves the elution efficiency of Li.
[0033] (3) Collection process S30 In this step, an aqueous medium is collected from the inside of a lithium-ion secondary battery. As described above, the aqueous medium (Li solution) after the filling step S20 contains a large amount of Li. By collecting this Li solution, a large amount of Li can be recovered from the inside of the battery. As described above, the technology disclosed herein can achieve a high Li recovery rate when reproducing battery materials (Li) from a battery by performing the preparation step S10, the filling step S20, and the collection step S30.
[0034] After the collecting step S30, some of the Li and metal elements other than Li (Ni, Co, Mn, Al, Cu, etc.) may remain inside the battery. For this reason, the manufacturing method disclosed herein may include a step of recovering valuable metals (Li, Ni, Co, Mn, etc.) from the battery after the collecting step S30. An example of a step after the collecting step S30 will be described below.
[0035] (4) Roasting process S40 In the manufacturing method according to this embodiment, a roasting step S40 is carried out in which the battery is heated after the aqueous medium (Li solution) is collected. Here, in the manufacturing method according to this embodiment, a large amount of Li can be recovered before the roasting step S40 is carried out. In addition, in this embodiment, the target to be recovered is A battery charged to a reference SOC or higher (Li is absorbed in the negative electrode active material) is prepared. Therefore, the manufacturing method according to this embodiment can prevent a large amount of Li and Al from coexisting in the positive electrode in the roasting step S40. As a result, it is possible to prevent the formation of an alloy of Li and Al (Li-Al alloy) in the roasting step S40. This can more effectively prevent a decrease in the Li recovery rate.
[0036] The heating temperature in this step is preferably 400°C or higher, more preferably 500°C or higher, even more preferably 600°C or higher, and particularly preferably 700°C or higher. Increasing the heating temperature in the roasting step S40 facilitates the transfer of oxygen elements from the valuable metal oxide (e.g., transition metal composite oxide) to the carbon material (e.g., negative electrode active material). This allows the valuable metal to be reduced to its metallic state. This metallic valuable metal can be easily dissolved in the acid leaching step S60 described below, contributing to improved production efficiency. From the perspective of reducing the valuable metal, the upper limit of the heating temperature is not particularly limited and may be 1500°C or lower, 1400°C or lower, or 1300°C or lower. Considering the cost required for heating, the upper limit of the heating temperature is preferably 1200°C or lower, more preferably 1100°C or lower, and particularly preferably 1000°C or lower. This step is preferably performed in an inert atmosphere such as argon or nitrogen. This prevents the valuable metals from being oxidized during heating.
[0037] (5) Sorting process S50 In this step, the battery after the roasting step S40 is crushed and the constituent components of the battery are sorted. For example, in the lithium-ion secondary battery 1 shown in FIG. 1, the electrode assembly 20 is housed inside the exterior housing 10. Therefore, after crushing the exterior housing 10, it is preferable to further pulverize the electrode assembly 20 inside. Then, by sieving the crushed solid content, the recovered target (black mass) made by powdering the fired electrode assembly 20 can be easily recovered. This easily reduces the content of impurities (e.g., Al, Cu) in the black mass, thereby improving the recovery efficiency of valuable metals (e.g., Li, Co, Ni, Mn). However, the sorting step S40 is not intended to completely remove impurities such as Al and Cu from the recovered target. As will be described in detail later, even if impurities are contained in the black mass, they can be removed by subsequent steps (e.g., acid leaching step S50 and separation step S60). In other words, this step can be omitted as necessary.
[0038] (6) Acid leaching process S60 Next, in the acid leaching step S60, the electrode body (black mass) after the collection step S30 (here, after the sorting step S50) is immersed in an acid solution. This produces an acid leaching solution in which metal components (Li, Ni, Co, Mn, Cu, Al, etc.) in the black mass are dissolved in the acid solution. On the other hand, carbon in the black mass does not dissolve in the acid solution and precipitates as a residue. This allows the carbon to be removed. The acid leaching procedure can be any conventionally known procedure without particular limitations. For example, the pH of the acid solution is preferably −1.5 to 1.5 (more preferably −0.5 to 0.5). This allows the metal components in the black mass to be suitably dissolved. Specific examples of the acid solution include inorganic acids such as sulfuric acid, nitric acid, hydrochloric acid, and phosphoric acid, and organic acids such as citric acid, ascorbic acid, oxalic acid, and acetic acid. In this step, the acid leaching solution after acid leaching is preferably filtered. This allows undissolved carbon to be removed efficiently. The temperature of the acid solution is preferably set to 50°C or higher (more preferably 55°C or higher, and particularly preferably 60°C or higher). This allows the time required for the acid leaching step S60 to be shortened. The upper limit of the temperature of the acid solution is not particularly limited, and may be 90°C or lower, 85°C or lower, or 80°C or lower.
[0039] (7) Separation process S70 As described above, the acid leaching solution obtained in the acid leaching step S60 contains Li, Al, Cu, Co, Ni, Mn, and the like. In the separation step S70, these metal components are individually separated. This allows each valuable metal to be recovered from the acid leaching solution. Any conventionally known processing technology that can be used for metal extraction can be used in the separation step S70 without any particular restrictions. For example, as shown in FIG. 5, the separation step S70 in this embodiment includes a neutralization precipitation step S71, a Mn extraction step S72, a Co extraction step S73, a Ni extraction step S74, and a Li separation step S75. These steps are described in detail below.
[0040] (a) Neutralization and precipitation step S71 In this step, a neutralizing agent is added to the acid leaching solution obtained in the acid leaching step S60. This causes a precipitate containing Al hydroxide (Al(OH)3) to precipitate in the acid leaching solution. As a result, most of the Al in the acid leaching solution can be removed. The neutralizing agent used in this step is an alkaline solution with a pH of 11 to 15 (preferably pH 12 to 14). Specific examples of such alkaline solutions include aqueous sodium hydroxide, calcium hydroxide, and ammonia. In this step, too, it is preferable to filter the acid leaching solution to separate the precipitate. This allows Al(OH)3 to be efficiently removed from the acid leaching solution.
[0041] (b) Mn extraction step S72 In the Mn extraction step S72, Mn is extracted from the acid leachate. For example, in this step, an organic solvent (first extracting solution) with high Mn extractability and low Li, Al, Cu, Co, and Ni extractability may be added to the acid leachate. The acid leachate and the first extracting solution are then stirred to form a suspension. This causes the Mn in the acid leachate to dissolve in the first extracting solution. The two solutions are then allowed to stand until they separate. This allows for the production of a Mn solution in which Mn is dissolved in the first extracting solution, and an acid leachate from which Mn has been removed. A phosphate ester extractant, an oxime extractant, or the like can be used as the first extracting solution. Specific examples of phosphate ester extractants include di-2-ethylhexyl phosphoric acid (DEHPA). Specific examples of oxime extractants include 2-hydroxy-5-nonylacetophenone oxime (LIX84), 5-dodecylsalicylardoxime (LIX860), 5-nonylsalicylaldoxime (ACORGA M5640), etc. The first extractant may be a mixture or dilution of these extractants.
[0042] In this step, the extracted Mn solution (first extract containing Mn) may be subjected to a back-extraction treatment. In this back-extraction treatment, first, the Mn solution (organic phase) and an acidic aqueous solution are stirred and mixed. Then, the mixture is left to stand until the two liquids separate. This allows for the production of an aqueous Mn solution in which Mn is dissolved in the acidic aqueous solution. The acidic aqueous solution used in the back-extraction treatment may be sulfuric acid, hydrochloric acid, or the like (particularly sulfuric acid).
[0043] (c) Co extraction step S73 In the Co extraction step S73, Co is extracted from the acid leachate. Specifically, in this step, an organic solvent (second extractant) that has high extractability for Co but low extractability for Li, Al, Cu, and Ni is added to the acid leachate. This separates Co from the acid leachate and produces a Co solution in which Co is dissolved in the second extractant. Specific examples of the second extractant include phosphonate esters such as 2-ethylhexyl 2-ethylhexylphosphonate (PC-88A). Alternatively, a back-extraction process may be performed on the extracted Co solution (second extractant containing Co). This allows an aqueous Co solution to be obtained.
[0044] (d) Ni extraction process S74 In the Ni extraction step S74, Ni is extracted from the acid leachate. Specifically, in this step, an organic solvent (third extractant) that has high extractability for Ni but low extractability for Li, Al, and Cu is added to the acid leachate. This separates Ni from the acid leachate, and a Ni solution in which Ni is dissolved in the third extractant can be obtained. Specific examples of the third extractant include carboxylic acid extractants such as neodecanoic acid and naphthenic acid. Furthermore, a back-extraction process may be performed on the extracted Ni solution (third extractant containing Ni). This allows an aqueous Ni solution to be obtained.
[0045] (e) Li separation process S75 As described above, the acid leachate after the Ni extraction step S64 contains mainly Li, Al, and Cu because Ni, Co, and Mn have been removed. In this step, Cu and Al are removed from the acid leachate. The method for removing Cu and Al is not particularly limited, and conventional methods such as solvent extraction and ion exchange can be appropriately used. The acid leachate after the Li separation step S75 can be mixed with the Li solution obtained in the collection step S30. This further improves the Li recovery rate in the Li crystallization step S80, which will be described later.
[0046] (8) Li precipitation process S80 In this step, a Li compound is precipitated from the aqueous medium (Li solution) collected in the collection step S30. For example, in this step, sodium carbonate may be added to the Li solution. This precipitates lithium carbonate (Li2CO3) crystals. As described above, in the manufacturing method according to this embodiment, a large amount of Li can be recovered from the battery by performing the filling step S20 and the collection step S30. Furthermore, Li remaining in the battery after the collection step S30 is recovered in the Li separation step S75. Then, in the Li precipitation step S80 according to this embodiment, the Li recovered in the collection step S30 and the Li separation step S75 is precipitated. This allows for a very high Li recovery rate (e.g., 85% or more).
[0047] (9)NCM crystallization process S90 Meanwhile, the valuable metals (Ni, Co, Mn) other than Li recovered in the separation step S70 are used as materials for the precursor of the positive electrode active material (NCM precursor). Specifically, in this step, a mixed solution is prepared by mixing a Co solution, a Ni solution, and a Mn solution. The pH of this mixed solution is then controlled to be alkaline. This results in the precipitation of crystals of NiCoMn hydroxide (NCM precursor). Note that, in preparing the mixed solution, the mixing ratios of the Co solution, the Ni solution, and the Mn solution may be changed as necessary. The pH may be adjusted by dropping the mixed solution into a reaction tank together with an alkaline solution (ammonia water, sodium hydroxide aqueous solution).
[0048] (10) Active material generation process S100 In this step, a positive electrode active material is produced using the NCM precursor obtained in the NCM crystallization step S90 and the Li compound obtained in the Li crystallization step S70. Specifically, the NCM precursor (NiCoMn hydroxide) and the Li compound (lithium carbonate) are mixed and calcined. This produces a positive electrode active material (lithium transition metal composite oxide) for lithium-ion secondary batteries.
[0049] The manufacturing method for battery materials according to this embodiment has been described above. As described above, the manufacturing method with the above configuration involves a filling step in which an aqueous medium is filled into the interior of a battery charged to a standard SOC or higher. This allows for the preparation of a Li solution in which Li in the negative electrode active material is dissolved into the aqueous medium. By collecting this Li solution, a large amount of Li can be easily recovered. As described above, the manufacturing method according to this embodiment allows for the easy realization of a high Li recovery rate.
[0050] 3. Other Embodiments One embodiment of the technology disclosed herein has been described above. Note that the technology disclosed herein is not limited to the above embodiment, and includes other embodiments with various configuration changes. Other embodiments of the technology disclosed herein will be described below.
[0051] (1) Processes after collection In the manufacturing method according to the embodiment described above, the roasting step S40 to the active material production step S100 are performed after the collection step S30. However, the embodiment described above is not intended to limit the steps after the collection step S30. That is, in the manufacturing method disclosed herein, steps after the collection step can be added, deleted, or changed as needed.
[0052] For example, in the manufacturing method according to the above-described embodiment, various valuable metals (Li, Ni, Co, Mn) are recovered from the battery after the collection step S30 by performing the roasting step S40 to the NCM crystallization step S90. However, the technology disclosed herein only requires efficient recovery of Li from the lithium-ion secondary battery, and therefore does not require the roasting step S40 to the NCM crystallization step S90. For example, in the manufacturing method disclosed herein, a sufficient amount of Li can be recovered simply by collecting the aqueous medium (Li solution) in which Li is dissolved. Therefore, the manufacturing method disclosed herein may also be used to manufacture a positive electrode active material (lithium transition metal composite oxide) using Li in the Li solution and transition metals (Ni, Co, Mn, etc.) that are not recycled materials.
[0053] Furthermore, the various separation processes performed in the separation step S70 are not limited to the neutralization precipitation step S71 to the Li separation step S75 described above. For example, a battery that uses a lithium nickel manganese composite oxide as the positive electrode active material contains almost no cobalt (Co). When such a battery is to be recovered, the Co extraction step S73 can be omitted. Furthermore, if most of the Li in the battery can be recovered by the filling step S20 and the collection step S30, the Li separation step S75 can also be omitted. As described above, the steps after the collection step S30 can be changed as appropriate depending on the constituent elements of the recovery target (battery), and are not limited to specific steps.
[0054] (2) Recall items Furthermore, the object of collection in the manufacturing method disclosed herein is not limited to the lithium-ion secondary battery 1 shown in FIGS. 1 and 2. For example, in the above-described embodiment, an aluminum box-shaped case is used as the exterior body. However, the shape and material of the exterior body do not limit the technology disclosed herein. For example, the exterior body may be a laminate exterior body. This laminate exterior body is formed by placing two laminate films facing each other with the electrode body sandwiched between them and welding the outer edges of the pair of laminate films. When this type of laminate exterior body is used, it is preferable to fill the exterior body with an aqueous medium using a syringe or the like. This makes it easy to fill the aqueous medium inside the battery.
[0055] [Test example] Test examples relating to the technology disclosed herein will be described below. Note that the contents of the test examples described below are not intended to limit the technology disclosed herein.
[0056] 1. Test Battery Preparation In this test, a predetermined test battery was prepared, and Li was recovered from the test battery. The materials of the test battery used in this test will be explained below. First, the test battery used in this test had a positive electrode active material of lithium nickel cobalt manganese composite oxide (LiNi 1 / 3 Co 1 / 3 Mn 1 / 3 O2) was used. Aluminum foil was used for the positive electrode core. Meanwhile, graphite was used for the negative electrode active material. Copper foil was used for the negative electrode core. A three-layer separator of PP / PE / PE was used for the separator. An aluminum square case was used for the exterior. That is, the main components of the test batteries in this test were Li, Ni, Co, Mn, Cu, Al, and C. Furthermore, 3V-class batteries were prepared in Test Examples 1 to 10, and 4.1V-class batteries were prepared in Test Examples 11 to 13.
[0057] 2. Lithium recovery procedure In this test, 13 different test examples with different collection procedures were conducted. The collection procedures for each example are explained below.
[0058] (1) Test Example 1 In Test Example 1, the test battery was first discharged until SOC = 0% (remaining battery capacity: 0.2 Ah). Next, the discharged battery was heated (roasted) at 800°C. The exterior body was then crushed and sieved to collect the roasted electrode body (black mass). The Al components (positive electrode core, etc.) obtained during sieving were also collected as Al components. Then, acid leaching was performed by immersing the black mass in sulfuric acid. This resulted in an acid leachate containing the metal elements in the black mass. Next, neutralization precipitation was performed by dropping NaOH into the acid leachate to adjust the pH to 3 to 5. This resulted in the formation of a precipitate in the acid leachate. The precipitate was then removed by solid-liquid separation, and the acid leachate was collected.
[0059] (2) Test Example 2 In Test Example 2, a test battery discharged under the same conditions as Test Example 1 was submerged in water. Specifically, after removing the sealing plug from the discharged battery, the battery was immersed (submerged) in 20 L of an aqueous medium (5 wt % sodium chloride aqueous solution) for 7 days. The battery was then pulled out and the aqueous medium was collected. The collected battery was then subjected to roasting, acid leaching, and neutralization precipitation under the same conditions as Test Example 1, and the acid leaching solution and the Al component were collected.
[0060] (3) Test Example 3 In Test Example 3, an aqueous medium was filled into a test battery discharged under the same conditions as Test Example 1. Specifically, the sealing plug of the discharged battery was removed, and 100 mL of the aqueous medium (5 wt % sodium chloride aqueous solution) was poured into the exterior body and then allowed to stand for 7 days. The interior of the exterior body was then suctioned to collect the aqueous medium. Then, the battery from which the aqueous medium had been removed was subjected to roasting, acid leaching, and neutralization precipitation under the same conditions as Test Examples 1 and 2, and the acid leaching solution and the Al component were collected.
[0061] (4) Test Example 4 In Test Example 4, the aqueous medium filled in the battery was changed to pure water. Other procedures and conditions were set to be the same as in Test Example 3, and the aqueous medium, acid exudate, and Al member were collected.
[0062] (5) Test Example 5 In Test Example 5, the test battery was charged to SOC = 20% (remaining capacity: 2.2 Ah). Then, an aqueous solvent (pure water) was filled into the battery in the same manner as in Test Example 4. Then, the aqueous medium, acid exudate, and Al component were collected according to the same procedures as in Test Examples 3 and 4.
[0063] (6) Test Example 6 In Test Example 6, the aqueous medium, acid leachate, and Al component were collected according to the same procedures as in Test Examples 4 and 5, except that the test battery was charged to SOC = 40% (remaining capacity: 4.2 Ah).
[0064] (7) Test Example 7 In Test Example 7, the test battery was charged to SOC = 60% (remaining capacity: 6.2 Ah). Thereafter, the test battery was submerged in an aqueous solvent (aqueous sodium chloride solution) in the same manner as in Test Example 2. Then, the aqueous medium, acid exudate, and Al component were collected according to the same procedure as in Test Example 2.
[0065] (8) Test Example 8 In Test Example 8, the test battery was charged to SOC = 60% (remaining capacity: 6.2 Ah). After that, an aqueous solvent (pure water) was filled into the battery in the same manner as in Test Examples 4 to 6. Then, the aqueous medium, acid exudate, and Al component were collected according to the same procedures as in Test Examples 4 to 6.
[0066] (9) Test Example 9 In Test Example 9, the test battery was charged to SOC = 60% (remaining capacity: 6.2 Ah). Then, an aqueous solvent was filled into the battery in the same manner as in Test Examples 4 to 6. However, in Test Example 9, the aqueous solvent filled into the battery was changed to a 5 wt% sodium chloride aqueous solution. Then, the aqueous medium, acid exudate, and Al component were collected according to the same procedures as in Test Examples 4 to 6.
[0067] (10) Test Example 10 As described above, in Test Examples 10 to 12, a 4.1 V class battery was used as the test battery. In Test Example 10, the test battery was charged to SOC = 100% (remaining capacity: 10.2 Ah). Thereafter, an aqueous solvent (pure water) was filled into the battery in the same manner as in Test Examples 4 to 6 and 8. Then, the aqueous medium, acid exudate, and Al member were collected according to the same procedures as in Test Examples 4 to 6 and 8.
[0068] (11) Test Example 11 In Test Example 11, the test battery was first charged to SOC = 60% (remaining capacity: 6.2 Ah). Then, in Test Example 11, the charged battery was roasted without filling with an aqueous solvent or submerging in water, as in Test Example 1. Then, the acid leachate and the Al member were recovered according to the same procedure as in Test Example 1.
[0069] (12) Test Example 12 In Test Example 12, the test battery was discharged so that the SOC was 0%. Next, in Test Example 12, an aqueous solvent (pure water) was filled into the battery, as in Test Examples 4 to 6 and 8. Then, after collecting the aqueous medium inside the battery, roasting, acid leaching, and neutralization precipitation were performed, as in the other test examples, to collect the acid leaching solution and the Al member. Note that in Test Example 12, the heating temperature during roasting was reduced to 400°C.
[0070] (13) Test Example 13 In Test Example 13, the aqueous medium, acid leachate, and Al component were recovered following the same procedure as in Test Example 12, except that the test battery was charged to SOC = 60% (remaining capacity: 6.2 Ah).
[0071] 3.Evaluation Test In this test, the amount of Li (g) contained in the samples (aqueous medium, acid leachate, and Al component) collected in each test example was measured. The amount of Li (g) in the aqueous medium was measured using inductively coupled plasma (ICP). The amount of Li (g) in the acid leachate was measured by ICP after acid leaching. This "amount of Li (g) in the acid leachate" was considered to be the "amount of Li in the black mass (BM)." The amount of Li (g) in the precipitate was measured by ICP after dissolving the precipitate in acid. The measurement results are shown in Table 1.
[0072] In this test, the amount of Li in the Al material was considered to be the "amount of discarded Li." The sum of the amount of Li in the aqueous medium and the amount of Li in the BM was considered to be the "amount of recovered Li." The percentage (%) of the amount of recovered Li relative to the total amount of Li (the total amount of Li used in the test battery in terms of design) was calculated as the "Li recovery rate." The results are shown in Table 1.
[0073] [Table 1]
[0074] As shown in Table 1, in Test Examples 6, 8 to 10, and 13, an extremely high Li recovery rate of 85% or more was achieved. This indicates that when an aqueous medium is filled into a battery charged to a certain level or higher, a large amount of Li is eluted into the aqueous medium. It was also found that the Li recovery rate can be significantly improved by recovering this aqueous medium.
[0075] In addition, in the acid leaching of Test Examples 1 to 11, it was confirmed that the metal components in the black mass were fully dissolved 4 hours after mixing the black mass with sulfuric acid. On the other hand, in Test Examples 12 and 13, it took about 12 hours to fully dissolve the metal components. This is presumably because the roasting temperature in Test Examples 12 and 13 was low, so the metal materials in the black mass were not fully reduced, and a large amount of metal oxide remained.
[0076] The technology disclosed herein has been described in detail above, but these are merely examples and do not limit the scope of the claims. The technology described in the claims includes various modifications and variations of the specific examples exemplified above. In other words, the technology disclosed herein encompasses the aspects described in items 1 to 8 below.
[0077] <Item 1> a preparation step of preparing a lithium ion secondary battery charged to a predetermined reference SOC or higher; a filling step of filling an aqueous medium into the lithium ion secondary battery; a collecting step of collecting the aqueous medium from the inside of the lithium ion secondary battery; A method for producing a battery material, comprising:
[0078] <Item 2> The preparation step includes: a measuring step of measuring an SOC of the lithium ion secondary battery; a determination step of determining whether the measured SOC is equal to or greater than the reference SOC; a charging step of charging the lithium ion secondary battery whose measured SOC is less than the reference SOC until the SOC is equal to or greater than the reference SOC; Item 2. A method for producing the battery material according to Item 1, comprising:
[0079] <Item 3> 3. The method for producing a battery material according to item 1 or 2, wherein the reference SOC is set within a range of 20% or more and 100% or less.
[0080] <Item 4> a roasting step of heating the lithium ion secondary battery after the collecting step; a sorting step of recovering electrode bodies from the interior of the lithium ion secondary battery after the heating step; an acid leaching step of immersing the electrode body in an acid solution; 4. The method for producing a battery material according to any one of items 1 to 3, further comprising:
[0081] <Item 5> 5. The method for producing a battery material according to any one of items 1 to 4, wherein the filling step comprises leaving the lithium ion secondary battery filled with the aqueous medium to stand for one day or more.
[0082] <Item 6> 6. The method for producing a battery material according to any one of items 1 to 5, wherein the aqueous medium does not substantially contain a metal salt. [Explanation of symbols]
[0083] 1. Lithium-ion secondary battery 10 cases 12 Positive terminal 14 Negative terminal 20 Electrode body 30 positive electrode plate 32 Positive electrode core 34 Cathode active material layer 40 negative electrode plate 42 negative electrode core 44 Negative electrode active material layer 50 Separator
Claims
1. a preparation step of preparing a lithium ion secondary battery charged to a predetermined reference SOC or higher; a filling step of filling an aqueous medium into the lithium ion secondary battery; a collecting step of collecting the aqueous medium from the inside of the lithium ion secondary battery; Including, The method for manufacturing a battery material, wherein the reference SOC is set to 30% or more.
2. The preparation step includes: a measuring step of measuring an SOC of the lithium ion secondary battery; a determination step of determining whether the measured SOC is equal to or greater than the reference SOC; a charging step of charging the lithium ion secondary battery whose measured SOC is less than the reference SOC until the SOC is equal to or greater than the reference SOC; The method for producing the battery material according to claim 1 , comprising:
3. The method for producing a battery material according to claim 1 , wherein the reference SOC is set to 100% or less.
4. a roasting step of heating the lithium ion secondary battery after the collecting step; a sorting step of recovering electrode bodies from the interior of the lithium ion secondary battery after the roasting step; an acid leaching step of immersing the electrode body in an acid solution; The method for producing the battery material according to claim 1 , further comprising:
5. The method for producing a battery material according to claim 1 , wherein the filling step comprises leaving the lithium ion secondary battery filled with the aqueous medium to stand for one day or more.
6. The method for producing a battery material according to claim 1 , wherein the aqueous medium does not substantially contain a metal salt.
Citation Information
Patent Citations
Method for preparing metal elementary substance and compound thereof by recycling waste lithium ion battery and and application of method
CN114085995A
Recycling method of lithium ion secondary battery
JP2013004299A
Processing method of positive electrode active material waste of lithium ion secondary battery
JP2020072032A
Recycling method for lithium ion battery
JP2021072157A
Lithium-ion battery recycling method and recycling equipment
JP2022049831A