Method for reproducing negative electrode active material, negative electrode material, and secondary battery

By charging a secondary battery with a phosphorus-containing compound to decompose it and attach its oxide to the negative electrode active material, the method addresses the lack of cycle characteristics in conventional reproduction methods, resulting in a material with enhanced performance.

JP7742862B2Active Publication Date: 2025-09-22PRIME PLANET ENERGY & SOLUTIONS INC
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Patent Information

Application Number
JP2023102890
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-06-23
Publication Date
2025-09-22
Estimated Expiration
2043-06-23

AI Technical Summary

Technical Problem

Conventional methods for reproducing negative electrode active materials do not consider cycle characteristics, which are essential for improved battery performance.

Method used

A method involving charging a secondary battery with a phosphorus-containing compound at a temperature equal to or higher than its decomposition temperature to decompose the compound, allowing its decomposition product to adhere to the negative electrode active material, thereby enhancing cycle characteristics.

Benefits of technology

The method produces a negative electrode active material with improved cycle characteristics by attaching a phosphorus-containing oxide on its surface, stabilizing the material and suppressing electrolyte decomposition.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a method for re-producing a negative electrode active material with an improved cycle characteristic from a secondary battery.SOLUTION: The technique disclosed therein is a method for re-producing a negative electrode active material including: a preparation step S10 of preparing a secondary battery 1 including a positive electrode 30, a negative electrode 40, an electrolyte, and a phosphorus-containing compound; a charging step S20 of charging the secondary battery 1 under a temperature environment not lower than the decomposition temperature of the phosphorus-containing compound; and a recovery step 30 of collecting the negative electrode active material from the negative electrode 40 for the secondary battery 1 after the charging step S20.SELECTED DRAWING: Figure 3
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Description

[Technical Field]

[0001] The present disclosure relates to a method for reproducing a negative electrode active material, a negative electrode material, and a secondary battery. [Background technology]

[0002] Secondary batteries are suitable for a variety of applications, including as drive power sources for vehicles such as hybrid electric vehicles (HEVs), plug-in hybrid electric vehicles (PHEVs), and electric vehicles (BEVs), and demand for them is rapidly expanding. In response to this demand, there is also a growing demand for technologies related to the reproduction of negative electrode active materials from secondary batteries. Patent Document 1, for example, discloses a technology for the reproduction of negative electrode active materials, which involves removing a negative electrode plate from a secondary battery, washing the negative electrode plate with a water-containing liquid, separating the negative electrode plate into a negative electrode mixture containing a negative electrode active material and a binder, and a current collecting substrate, and then mixing the negative electrode mixture with a solvent capable of dissolving or dispersing the binder to prepare a negative electrode paste, which is then applied to a negative electrode current collector. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2006-228509 Summary of the Invention [Problem to be solved by the invention]

[0004] In recent years, there has been a demand for improved cycle characteristics for negative electrode active materials. However, the cycle characteristics are not taken into consideration in the negative electrode active materials recovered by conventional techniques such as those disclosed in Patent Document 1. Therefore, the demand for cycle characteristics as described above cannot be fully met.

[0005] The technology disclosed herein has been made in consideration of the above circumstances, and relates to a remanufacturing method for obtaining a negative electrode active material with improved cycle characteristics from a secondary battery. Another object of the present invention is to provide a negative electrode active material with improved cycle characteristics and a secondary battery including the negative electrode active material. [Means for solving the problem]

[0006] The technology disclosed herein is a method for reproducing a negative electrode active material, and includes a preparation step of preparing a secondary battery including a positive electrode, a negative electrode, an electrolyte, and a phosphorus-containing compound; a charging step of charging the secondary battery in a temperature environment equal to or higher than the decomposition temperature of the phosphorus-containing compound; and a recovery step of recovering the negative electrode active material from the negative electrode of the secondary battery after the charging step.

[0007] According to this configuration, the phosphorus-containing compound contained in the secondary battery is decomposed by charging the secondary battery under predetermined conditions. This allows the negative electrode active material having the decomposition product of the phosphorus-containing compound disposed on its surface to be recovered. Therefore, the negative electrode active material with improved cycle characteristics can be reproduced. [Brief explanation of the drawings]

[0008] [Figure 1] FIG. 1 is a cross-sectional view schematically showing the internal structure of a secondary battery according to one embodiment. [Figure 2] FIG. 2 is a perspective view schematically showing an electrode assembly of a secondary battery according to one embodiment. [Figure 3] FIG. 3 is a flowchart illustrating a reproduction method according to one embodiment. [Figure 4] FIG. 4 is a flowchart illustrating sub-steps of the preparation step according to one embodiment. [Figure 5] FIG. 5 is a flowchart illustrating a sub-step of the recovery step according to one embodiment. [Figure 6] FIG. 6 is a schematic diagram showing a negative electrode active material (recovered negative electrode active material) obtained by a method for reproducing a negative electrode active material according to one embodiment. [Figure 7]FIG. 7 is a surface SEM-EDS image of a recovered negative electrode active material according to one embodiment. [Figure 8] FIG. 8 is a graph showing the relationship between the number of cycles and the capacity retention rate. DETAILED DESCRIPTION OF THE INVENTION

[0009] Hereinafter, embodiments of the technology disclosed herein will be described with reference to the drawings. 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 technical knowledge in the relevant field.

[0010] In the following drawings, components and parts that perform the same function are denoted by the same reference numerals, and redundant explanations may be omitted or simplified. In this specification, the notation "A to B" indicating a range means greater than or equal to A and less than or equal to B, and also encompasses the meanings of "preferably greater than A" and "preferably smaller than B." In this specification, the term "secondary battery" refers to an energy storage device that can be repeatedly charged and discharged, and is a term that encompasses so-called storage batteries and energy storage elements such as electric double-layer capacitors. In this specification, the term "lithium ion secondary battery" refers to a secondary battery that uses lithium ions as a charge carrier and achieves charging and discharging by the transfer of charge associated with the lithium ions between the positive and negative electrodes.

[0011] 1. Preparation target In the method for reproducing a negative electrode active material according to this embodiment, a predetermined secondary battery is prepared and the negative electrode active material is reproduced. An example of the preparation target here is a used secondary battery. This secondary battery will be described in detail below. FIG. 1 is a vertical cross-sectional view schematically showing the internal structure of a secondary battery. FIG. 2 is a perspective view schematically showing an electrode assembly of the secondary battery shown in FIG. 1. As shown in FIG. 1, the secondary battery 1 includes a case 10, an electrode assembly 20, an electrolyte (not shown), and a phosphorus-containing compound (not shown).

[0012] (1) Case The case 10 is a box-shaped container. An electrode assembly 20 and an electrolyte are housed inside the case 10. For example, a metal material (such as aluminum (Al)) having a certain strength is used for the case 10. A liquid inlet 16 may be provided in the case 10. The liquid inlet 16 is a hole for injecting the electrolyte. After the electrolyte is injected, the liquid inlet 16 is sealed with a sealing member 18. A positive electrode terminal 12 and a negative electrode terminal 14 are attached to the case 10. The positive electrode terminal 12 and the negative electrode terminal 14 are connected to the electrode assembly 20 inside the case 10. Specifically, the positive electrode terminal 12 is connected to a positive electrode plate 30 (see FIG. 2 ) of the electrode assembly 20. 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 a negative electrode plate 40 of the electrode assembly 20. The negative electrode terminal 14 is made of copper (Cu) or the like.

[0013] (2) Electrode body The electrode assembly 20 is a power generating element of the secondary battery 1. As shown in FIG. 2, the electrode assembly 20 includes a positive electrode plate 30, a negative electrode plate 40, and a separator 50. The electrode assembly 20 shown in FIG. 2 is a wound electrode assembly. This wound electrode assembly is produced by stacking the positive electrode plate 30, the negative electrode plate 40, and the separator 50 to form a long strip-shaped laminate, and then winding the laminate. However, the structure of the electrode assembly 20 is not particularly limited, and may have another conventionally known structure (such as a laminated electrode assembly). The positive electrode plate 30 is an example of a "positive electrode" disclosed herein, and the negative electrode plate 40 is an example of a "negative electrode" disclosed herein.

[0014] The positive electrode plate 30 includes a positive electrode core 32, which is a conductive metal foil, and a positive electrode active material layer 34 applied to the surface of the positive electrode core 32. Aluminum (Al) or the like is used for the positive electrode core 32. 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 particulate material that can reversibly absorb and release charge carriers. Examples of the positive electrode active material include lithium nickel composite oxides (e.g., LiNiO2, etc.), lithium cobalt composite oxides (e.g., LiCoO2, etc.), and lithium nickel cobalt manganese composite oxides (e.g., LiNi 1 / 3 Co 1 / 3 Mn 1 / 3 O2, etc.), lithium nickel cobalt aluminum composite oxides (e.g., LiNi 0.8 Co 0.15 Al 0.5 O2, etc.), lithium manganese composite oxides (e.g., LiMn2O4, etc.), lithium nickel manganese composite oxides (e.g., LiNi 0.5 Mn 1.5 Examples of the conductive material include carbon materials such as acetylene black and graphite. Examples of the binder include resin materials such as polyvinylidene fluoride (PVdF).

[0015] On the other hand, the negative electrode plate 40 includes a negative electrode core 42, which is a conductive metal foil, and a negative electrode active material layer 44 applied to the surface of the negative electrode core 42. Copper (Cu) or the like is used for the negative electrode core 42. The negative electrode active material layer 44 is a composite layer containing a negative electrode active material, a binder, a thickener, and the like. The negative electrode active material is a particulate material that can reversibly absorb and release charge carriers. Examples of the negative electrode active material to be prepared include carbon materials such as graphite, hard carbon, and soft carbon. The graphite may be natural graphite or artificial graphite. Examples of the negative electrode active material include lithium titanate (LTO), silicon carbide, a composite containing carbon and silicon (Si-C composite), silicon oxide (SiO XThe binder may include a resin material such as styrene butadiene rubber (SBR). The thickener may include a resin material such as carboxymethyl cellulose (CMC).

[0016] 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.

[0017] (3) Electrolyte The electrolyte is present between the positive electrode plate 30 and the negative electrode plate 40. This allows charge carriers to move between the positive electrode plate 30 and the negative electrode plate 40. Examples of the electrolyte include a nonaqueous electrolyte and a gel electrolyte. The electrolyte can be any electrolyte that can be used in secondary batteries without any particular limitations. The electrolyte typically contains a solvent and a supporting salt. The solvent can be any of various nonaqueous solvents used in this type of secondary battery, such as carbonate-based nonaqueous solvents such as ethylene carbonate (EC), diethyl carbonate (DEC), dimethyl carbonate (DMC), and ethyl methyl carbonate (EMC). The supporting salt can be, for example, a lithium salt, a sodium salt, or a magnesium salt (e.g., a lithium salt for a lithium-ion secondary battery) depending on the type of secondary battery. Examples of the lithium salt used as the supporting salt include fluorine-containing lithium salts such as LiPF6 and LiBF4, and LiClO4. The concentration of the supporting salt is not particularly limited, but is preferably about 0.7 mol / L or more and 1.3 mol / L or less. The electrolyte may contain components other than the above-mentioned solvent and supporting salt, as long as the effects of the present technology are not significantly impaired, and may contain various additives such as a gas generating agent, a film forming agent, a dispersing agent, and a thickener.

[0018] (4) Phosphorus-containing compounds The secondary battery 1 as the preparation target according to this embodiment is characterized by containing a phosphorus-containing compound. As will be described in detail later, by using a secondary battery 1 containing a phosphorus-containing compound as the preparation target, it is possible to reproduce a negative electrode active material with improved cycle characteristics. The phosphorus-containing compound may be contained, for example, as an electrolyte solution or may be contained separately from the electrolyte solution. When the phosphorus-containing compound is contained as an electrolyte solution, for example, the phosphorus-containing compound can also serve as a supporting salt. Examples of the phosphorus-containing compound include fluorophosphates. The fluorophosphates are preferably alkali metal salts (fluorophosphates of alkali metals). The alkali metals are preferably Li, Na, and K, and more preferably Li. Examples of fluorophosphates of alkali metals containing Li as the alkali metal include Li2PO3F (lithium monofluorophosphate), LiDFP (lithium difluorophosphate), LiPF6 (lithium hexafluorophosphate), LiPFO (lithium difluorobis(oxalato)phosphate), and LiTFOP (lithium tetrafluoro(oxalato)phosphate). In some preferred embodiments, the secondary battery 1 preferably includes LiPF6 as the phosphorus-containing compound. Among phosphorus-containing compounds, LiPF6 has the property of being relatively easily decomposed in high-temperature environments. For this reason, by including LiPF6 as the phosphorus-containing compound, it is possible to more suitably reproduce a negative electrode active material with improved cycle characteristics.

[0019] The content of the phosphorus-containing compound is not particularly limited, but is preferably 0.01 wt% or more, more preferably 0.1 wt% or more, when the entire electrolyte is taken as 100 wt%. This allows the phosphorus-containing oxide to be suitably attached to the surface of the negative electrode active material in the charging step S20 described below. On the other hand, the amount of the phosphorus-containing compound added is not particularly limited, but is preferably 20 wt% or less, more preferably 16 wt% or less, when the entire electrolyte is taken as 100 wt%.

[0020] The secondary battery 1 has been described above as an example of a preparation target for the remanufacturing method according to this embodiment. However, the remanufacturing method disclosed herein is not limited to a method in which the preparation target is the secondary battery 1 having the above configuration. In other words, the preparation target for the remanufacturing method disclosed herein is not particularly limited to a specific structure as long as it includes a positive electrode, a negative electrode, an electrolyte, and a phosphorus-containing compound.

[0021] 2. Method for reproducing negative electrode active material The method for recycling a negative electrode active material according to this embodiment will be described below. Fig. 3 is a flowchart illustrating the recycling method according to one embodiment. Fig. 4 is a flowchart illustrating a sub-step of the preparation step S10 according to one embodiment. Fig. 5 is a flowchart illustrating a sub-step of the recovery step S30 according to one embodiment.

[0022] As shown in Figure 3, the method for recycling a negative electrode active material according to this embodiment includes a preparation step S10, a charging step S20, and a recovery step S30. The recycling method disclosed herein may further include other steps at any stage, and the remaining processes may be the same as conventional processes. Each step will be described below.

[0023] (1) Preparation process S10 In the preparation step, a secondary battery including a positive electrode, a negative electrode, an electrolyte, and a phosphorus-containing compound is prepared. Although not particularly limited, the preparation step S10 may include sub-steps, a battery preparation step S11 and an addition step S12, as shown in Fig. 4. These steps will be described in detail below.

[0024] (1-1) Battery preparation process S11 In the battery preparation step S11, a secondary battery for reproducing the negative electrode active material is prepared. The secondary battery prepared here includes a positive electrode, a negative electrode, and an electrolyte. The secondary battery may or may not contain a phosphorus-containing compound at the time of the battery preparation step S11. Details of the secondary battery have already been described, so repeated description will be omitted.

[0025] (1-2) Addition step S12 In some preferred embodiments, the preparation step S10 may include, as a sub-step, an addition step S12. In the addition step S12, a phosphorus-containing compound is added to the secondary battery 1 prepared in the battery preparation step S11.

[0026] When performing the adding step S12, the phosphorus-containing compound to be added may be the same as the phosphorus-containing compound described above as the preparation target. The adding step S12 may be performed on a secondary battery that does not contain a phosphorus-containing compound, or on a secondary battery 1 that already contains a phosphorus-containing compound. In other words, the preparation step S10 includes adding a phosphorus-containing compound to a secondary battery that does not contain a phosphorus-containing compound, or adding a phosphorus-containing compound to a secondary battery that contains a phosphorus-containing compound.

[0027] The method of adding the phosphorus-containing compound in the adding step S12 is not particularly limited, and for example, the phosphorus-containing compound may be added through the injection hole 16. Although not limited thereto, it is preferable to discharge the secondary battery to the discharge end voltage before the adding step S12. This allows the adding step S12 to be performed more safely. Furthermore, the adding step S12 is not essential and can be omitted. For example, if the secondary battery contains a phosphorus-containing compound at the time of preparation in the battery preparation step S11, the adding step S12 may be omitted.

[0028] (2) Charging process S20 In the charging step S20, the secondary battery prepared in the preparation step S10 is charged. The charging step S20 is characterized in that charging is performed in a temperature environment equal to or higher than the decomposition temperature of the phosphorus-containing compound contained in the secondary battery 1. This decomposes the phosphorus-containing compound, and a decomposition product of the phosphorus-containing compound (typically, a phosphorus-containing oxide) adheres to the surface of the negative electrode active material to be prepared.

[0029] The charging step S20 is preferably performed in a temperature environment of 60°C or higher, more preferably 80°C or higher. This allows the phosphorus-containing compound contained in the secondary battery 1 to be suitably decomposed. Therefore, the decomposition product of the phosphorus-containing compound (typically, a phosphorus-containing oxide) is suitably attached to the surface of the negative electrode active material to be prepared. The temperature at which the charging step S20 is performed is not particularly limited, but is, for example, 100°C or lower, preferably 90°C or lower.

[0030] In the charging step S20, from the viewpoint of ensuring a charge amount for decomposing the phosphorus-containing compound and attaching a decomposition product of the phosphorus-containing compound (typically, a phosphorus-containing oxide) to the surface of the negative electrode active material to be prepared, it is preferable to charge the secondary battery 1 until its state of charge (SOC) reaches 50% or more. It is more preferable to charge the secondary battery 1 until its SOC reaches 80% or more, and even more preferable to charge it until it reaches 100% (rated voltage). Charging may be performed once, or may be repeated two or more times, for example, with a discharge in between.

[0031] The charge rate in the charging step S20 is preferably 0.1 C or less, and more preferably 0.05 C or less. This allows a decomposition product of the phosphorus-containing compound (typically, a phosphorus-containing oxide) to be suitably attached to the surface of the negative electrode active material to be prepared. The charge rate in the charging step S20 is not particularly limited, but is, for example, 0.001 C or more, and preferably 0.01 C or more.

[0032] (3) Recovery process S30 In the recovery step S30, the negative electrode active material is recovered from the secondary battery that has been subjected to the charging step S20. The method for recovering the negative electrode active material in the recovery step S30 is not particularly limited, and any conventionally known technology can be used. The recovery step S30 may include, as sub-steps, a discharging step S31, a roasting step S33, a sorting step S35, an acid treatment step S37, and a magnetic sorting step S39, as shown in FIG. 5, for example. The following describes these sub-steps in detail.

[0033] (3-1) Discharge process S31 In the discharging step S31, the secondary battery is discharged to a discharge end voltage. This stops the battery function. The method of the discharging step S31 can be any technique used in conventional recovery techniques without particular limitations, and since it does not characterize the technology disclosed herein, a detailed description will be omitted. However, the discharging step S31 is not essential and can be omitted. For example, the battery function can also be stopped by carrying out the roasting step S33 described below.

[0034] (3-2) Roasting process S33 In the roasting step S33, the secondary battery is roasted at a predetermined temperature. This removes liquid components (such as electrolyte) from the recovered material and carbonizes resin components (such as binders and separators). Furthermore, by carrying out the roasting step S33, the battery's function can be terminated. The roasting step S33 can be performed using any technique used in conventional recovery techniques without any particular limitations, and is not a feature of the technology disclosed herein, so a detailed description thereof will be omitted.

[0035] (3-3) Sorting process S35 In the sorting step S35, each member included in the secondary battery 1 is sorted. The sorting step S35 can be carried out by a conventionally known method, for example, by using a sieve or by visual inspection.

[0036] In the sorting step S35, the secondary battery 1 may be subjected to a crushing process as needed. This allows crushed secondary batteries 1 to be obtained, and the efficiency of sorting each component can be improved. For example, if the secondary battery 1 is to be recycled, it is advisable to crush the case 10 and the electrode assembly 20. This makes it easier to remove the case 10, negative electrode core 42, and positive electrode plate 30 from the secondary battery 1.

[0037] Although not limited to this, the crushed secondary battery 1 obtained by the above-described crushing process is sorted using a sieve. In this case, typically, metal components (Al, Cu, etc.) derived mainly from the case 10, positive electrode core 32, and negative electrode core 42 remain as coarse particles above the sieve, and black mass from which most of the metal components (Al, Cu, etc.) have been removed remains as fine particles below the sieve. The black mass typically contains negative electrode active material and positive electrode active material (e.g., Ni, Co, etc.).

[0038] In addition, in the sorting step S35, the sorted black mass can be further sorted by flotation. This allows components other than the negative electrode active material (e.g., Ni, Co, etc.) in the black mass to be largely removed. As the flotation method, known techniques such as oil-rich flotation, water surface flotation, and foam flotation can be used without any particular restrictions.

[0039] (3-4) Acid treatment step S37 In the acid treatment step S37, the black mass separated in the sorting step S35 is mixed with an acidic solution. As a result, metal elements (e.g., Al, Cu, Ni, Co) in the black mass dissolve in the acidic solution, while the negative electrode active material remains as a residue. Depending on the structure of the object to be recovered and the composition of the acidic solution, some metal elements (e.g., Fe) in the black mass may remain as a residue without dissolving in the acidic solution. That is, the residue obtained in the acid treatment step S37 may contain, in addition to the negative electrode active material, elements such as Fe. In this case, the metal elements in the residue can be removed, for example, by the magnetic separation step S39 described below. The procedure for the acid treatment step S37 can be any conventional procedure without particular limitations. For example, the pH of the acid solution used in the acid treatment step S37 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 acid solutions 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. Furthermore, although not limited to these, a reducing agent such as hydrogen peroxide can be added to the acid solution in the acid treatment step S37. This allows the metal elements in the black mass to dissolve in the acid solution, thereby shortening the treatment time for the acid treatment step S37.

[0040] The acid solution after the acid treatment step S37 and the residue are subjected to solid-liquid separation by filtration or the like, thereby obtaining a residue containing the negative electrode active material. The solid-liquid separation method can be any conventionally known method without particular limitation. Metal elements (such as Ni and Co) in the acid solution after solid-liquid separation can be recovered, for example, by a conventionally known treatment method, although this is not limited thereto.

[0041] (3-5) Magnetic separation process S39 In the magnetic separation step S39, the residue obtained in the acid treatment step S37 is separated by magnetic force. This allows the negative electrode active material as a non-magnetic substance in the residue to be separated from the magnetic substance (metallic components). That is, the negative electrode active material according to this embodiment can be obtained by the magnetic separation step S39. For the magnetic separation step S39, a conventionally known procedure can be adopted without particular limitation.

[0042] The above has described the method for recycling a negative electrode active material according to this embodiment. As described above, the recycling method according to this embodiment, which includes the preparation step S10, the charging step S20, and the recovery step S30, can obtain a negative electrode active material in which a decomposition product of a phosphorus-containing compound (typically, a phosphorus-containing oxide) adheres to the surface of a negative electrode active material (hereinafter referred to as an "active material substrate") that is the preparation target. Therefore, the recycling method for a negative electrode active material according to this embodiment can obtain a negative electrode active material with excellent cycle characteristics.

[0043] 3. Recovered negative electrode active material As described above, the negative electrode active material obtained by the method for recycling a negative electrode active material according to this embodiment (hereinafter also referred to as "recovered negative electrode active material") has a phosphorus-containing oxide attached to the surface of the negative electrode active material (hereinafter referred to as "active material substrate") that is the preparation target. That is, it is different from the negative electrode active material contained in the secondary battery 1 prepared in the preparation step S10. Features of the recovered negative electrode active material 80 will be described in detail below. FIG. 6 is a schematic diagram showing a negative electrode active material (recovered negative electrode active material 80) obtained by the method for recycling a negative electrode active material according to one embodiment. As shown in FIG. 6, the recovered negative electrode active material 80 includes an active material substrate 82 and a phosphorus-containing oxide 84. The recovered negative electrode active material 80 is an example of "a negative electrode active material including a carbon material and a phosphorus-containing oxide disposed on the surface of the carbon material."

[0044] The active material substrate 82 corresponds to the negative electrode active material to be prepared. That is, the active material substrate 82 is a particulate material that can reversibly store and release charge carriers. Typically, a carbon material such as graphite, hard carbon, or soft carbon is used as the active material substrate. The graphite may be natural graphite or artificial graphite.

[0045] The average particle diameter (median diameter: D50) of the active material substrate 82 is not particularly limited, but is, for example, 0.1 μm or more and 50 μm or less, and preferably 1 μm or more and 25 μm or less. The average particle diameter (D50) of the active material substrate 82 can be determined, for example, by a laser diffraction scattering method.

[0046] The phosphorus-containing oxide 84 is formed by decomposing a phosphorus-containing compound in the secondary battery 1 in the charging step S20 and disposing the phosphorus-containing oxide 84 on the surface of the active material substrate 82 (the surface of the negative electrode active material to be prepared). The phosphorus-containing oxide 84 acts like a coating called an SEI film (Solid Electrolyte Interface). More specifically, disposing the phosphorus-containing oxide 84 on the surface of the active material substrate 82 stabilizes the recovered negative electrode active material 80 and suppresses decomposition of the electrolyte. Therefore, the recycling method according to this embodiment can provide a negative electrode active material with excellent cycle characteristics.

[0047] The presence of the phosphorus-containing oxide 84 on the surface of the active material substrate 82 can be measured, for example, by a scanning electron microscope (SEM) and energy dispersive X-ray spectroscopy (EDS) (SEM-EDS). That is, the state of the phosphorus-containing oxide 84 in the recovered negative electrode active material 80 can be determined by SEM-EDS. FIG. 7 shows a surface SEM-EDS image of the recovered negative electrode active material according to one embodiment. FIG. 7(A) shows a surface SEM image of the recovered negative electrode active material, FIG. 7(B) shows a mapping of oxygen (O), and FIG. 7(C) shows a mapping of phosphorus (P). The light-colored (bright) areas in FIG. 7(B) indicate the locations of O atoms, and the light-colored (bright) areas in FIG. 7(C) indicate the locations of P atoms. As shown in FIGS. 7(A) to 7(C), it can be seen that P atoms and O atoms are present on the surface of the recovered negative electrode active material. In this way, it can be confirmed that the phosphorus-containing oxide is disposed on the surface of the active material substrate.

[0048] Elements other than P and O may be disposed on the surface of recovered negative electrode active material 80 within a range that does not significantly impair the effects of the present disclosure. For example, elements such as silicon (Si) and sulfur (S) may be disposed.

[0049] In the recovered negative electrode active material 80, the average mass ratio of the phosphorus (P) element to the total mass of elements detected by elemental mapping obtained by SEM-EDS is preferably 0.2 mass% or more, more preferably 0.4 mass% or more, even more preferably 0.6 mass% or more, and even more preferably 1.0 mass% or more. The higher the average mass ratio of the phosphorus (P) element, the more suitably the phosphorus-containing oxide 84 is disposed on the surface of the active material substrate 82. In other words, the higher the average mass ratio of the phosphorus (P) element, the more suitably the cycle characteristics of the recovered negative electrode active material 80 are improved. Note that, in the recovered negative electrode active material 80, the upper limit of the average mass ratio of the phosphorus (P) element to the total mass of elements detected by elemental mapping obtained by SEM-EDS is not particularly limited, but may be, for example, 10 mass% or less, and preferably 5 mass% or less.

[0050] Note that the "average mass ratio of phosphorus (P) element to the total mass of elements detected by element mapping obtained by SEM-EDS" in this specification can be measured by the following procedure. First, an SEM image of the surface of the recovered negative electrode active material 80 is acquired. At this time, the SEM image is acquired (imaged) by adjusting the field of view so that the entire particle of the recovered negative electrode active material 80 is included in the imaging area. Next, EDS analysis is performed on the SEM image to obtain the mass ratio (mass %) of each element relative to one particle of the negative electrode active material, where the total mass of the detected elements is taken as 100 mass %. At this time, the mass ratio (mass %) of the phosphorus (P) element can also be obtained. This analysis is performed on 10 or more particles (n≧10) of the recovered negative electrode active material 80, and the average value can be calculated.

[0051] Another aspect of the technology disclosed herein provides a negative electrode active material (recovered negative electrode active material) according to the above-described embodiment. Specifically, the negative electrode active material includes a carbon material and a phosphorus-containing oxide disposed on the surface of the carbon material, and is characterized in that the average mass ratio of phosphorus element to the total mass of elements detected by elemental mapping obtained by SEM-EDS is 0.2 mass% or more. This provides a negative electrode active material with improved cycle characteristics.

[0052] Another aspect of the technology disclosed herein provides a secondary battery. The secondary battery disclosed herein includes a negative electrode containing a negative electrode active material, a positive electrode, and an electrolyte. The negative electrode contains the negative electrode active material (recovered negative electrode active material) of the above-described embodiment as the negative electrode active material. Specifically, the negative electrode includes a negative electrode active material including a carbon material and a phosphorus-containing oxide disposed on the surface of the carbon material. The negative electrode active material has an average mass ratio of phosphorus element to the total mass of elements detected by elemental mapping obtained by SEM-EDS of 0.2 mass% or more. This provides a secondary battery with improved cycle characteristics. The negative electrode may contain other negative electrode active materials in addition to the negative electrode active material (recovered negative electrode active material) of the above-described embodiment, as long as the effects of the present disclosure are not significantly impaired. The electrolyte may or may not contain a phosphorus-containing compound. The other configurations of the secondary battery may be the same as those of the secondary battery described above as the preparation target, and since these have already been described, redundant description will be omitted.

[0053] Furthermore, the shape of the secondary battery disclosed herein is not limited to a rectangular shape, and may be a coin type, a button type, a cylindrical type, etc. Also, the secondary battery may be configured with a laminated case.

[0054] The above describes one embodiment of the technology disclosed herein. Note that the technology disclosed herein is not limited to the above embodiment, and includes other embodiments with various modifications.

[0055] <Uses of secondary batteries> A secondary battery including the above-described negative electrode active material can be used for various purposes, and for example, because of its high capacity and excellent thermal stability, it can be suitably used as a power source (driving power source) for motors mounted on vehicles such as passenger cars and trucks. The type of vehicle is not particularly limited, and examples include plug-in hybrid electric vehicles (PHEVs), hybrid electric vehicles (HEVs), and battery electric vehicles (BEVs). The secondary battery can also be suitably used as a battery pack formed by arranging a plurality of secondary batteries in a predetermined arrangement direction and applying a load from the arrangement direction using a restraining mechanism.

[0056] Hereinafter, examples of the technology disclosed herein will be described, but it is not intended that the technology disclosed herein be limited to those shown in these examples.

[0057] [Preparing the secondary battery] (Example 1) First, a secondary battery was prepared in which an electrode assembly including a positive electrode plate, a negative electrode plate, and a separator, and an electrolyte solution were housed inside a case. The positive electrode plate is made of aluminum, and the surface of the positive electrode core is covered with LiNi 1 / 3 Co 1 / 3 Mn 1 / 3 A cathode active material layer containing O2 (lithium nickel cobalt manganese composite oxide) was provided. The negative electrode plate was prepared by providing a negative electrode active material layer containing natural graphite as a negative electrode active material on the surface of a copper negative electrode core. The electrolyte solution was prepared by dissolving LiPF6 as a supporting salt in a mixed solvent containing ethylene carbonate (EC), dimethyl carbonate (DMC), and ethyl methyl carbonate (EMC) in a volume ratio of EC:DMC:EMC = 30:30:40 to a concentration of 1 mol / L. That is, in Example 1, a secondary battery was prepared in which a phosphorus-containing compound (LiPF6) was contained as a supporting salt in the electrolyte solution.

[0058] [charging] The secondary battery prepared above was subjected to constant current constant voltage (CCCV) charging at a charge rate of 0.1 C in a temperature environment of 60° C. until the SOC at the end of charge reached 100%.

[0059] [Recovery of negative electrode active material] The secondary battery after the charging was discharged to a discharge end voltage. Thereafter, the secondary battery was disassembled, and the negative electrode plate (negative electrode) was removed. The negative electrode active material layer was peeled off from the negative electrode plate by washing with water. The negative electrode active material was recovered from the negative electrode active material layer and dried at 100°C to remove moisture. In this way, a powdered negative electrode active material was recovered.

[0060] (Examples 2 to 4) In Examples 2 to 4, secondary batteries having the same configuration as in Example 1 were prepared. In the charging step, constant current constant voltage (CCCV) charging was performed at a charge rate of 0.1 C in a temperature environment of 80°C up to the SOC (end-of-charge SOC) shown in Table 1. Except for this, the negative electrode active materials for Examples 2 to 4 were recovered in the same manner as in Example 1.

[0061] (Example 5) In Example 5, a secondary battery similar to that of Example 1 was used, except that it contained an electrolyte in which LiBF6 was dissolved to a concentration of 1 mol / L instead of LiPF6 as the supporting electrolyte. Lithium difluorobis(oxalato)phosphate (LiPFO) was further added at 1 wt% relative to the total electrolyte. A secondary battery similar to that of Example 1 was otherwise prepared. In Example 5, constant-current constant-voltage (CCCV) charging was performed at a charge rate of 0.1 C in an 80°C temperature environment until the SOC at the end of charge reached 100%. The negative electrode active material was recovered in the same manner as in Example 1, except for the above.

[0062] (Example 6) In Example 6, a secondary battery was prepared having the same configuration as in Example 1. The charging step was not carried out in Example 6. Except for this, the negative electrode active material was recovered in the same manner as in Example 1.

[0063] [Evaluation of recovered negative electrode active material] The recovered negative electrode active materials according to Examples 1 to 6 (hereinafter also referred to as "recovered negative electrode active materials") were evaluated for the mass ratio of phosphorus in the recovered negative electrode active materials. Specifically, first, an SEM image of the recovered negative electrode active materials (recovered negative electrode active materials) was obtained using a scanning electron microscope (JSM-IT800) manufactured by JEOL Ltd. The image was captured in a field of view such that one particle of the recovered negative electrode active material was included in the imaging area. For each particle, the mass ratio (mass %) of phosphorus was measured using an energy dispersive X-ray spectroscopy (EDS) device manufactured by Oxford Electric Co., Ltd., where the total mass of the elements detected by EDS analysis was taken as 100 mass %. This measurement was performed on 10 particles (n = 10) for each example, and the average value was calculated to be the mass ratio of phosphorus for each example. The results are shown in Table 1.

[0064] [Preparation of evaluation coin cells] To evaluate the performance of the recovered negative electrode active material, a coin cell was fabricated as a single-electrode cell, with a negative electrode as the working electrode and metallic lithium as the counter electrode facing each other. First, a negative electrode was fabricated using the recovered negative electrode active material. Specifically, the recovered negative electrode active material, styrene butadiene rubber (SBR) as a binder, and carboxymethyl cellulose (CMC) as a thickener were mixed with ion-exchanged water as a solvent in a solid mass ratio of recovered negative electrode active material:SBR:CMC = 98:1:1 to prepare a negative electrode paste. This negative electrode paste was applied to one side of a long sheet of copper foil (thickness 10 μm) serving as a negative electrode core (negative electrode current collector), dried, and pressed with a roll press to fabricate a sheet-shaped negative electrode.

[0065] The separator used was a 24 μm-thick porous polyolefin sheet with a three-layer structure of PP / PE / PP, with a ceramic layer (4 μm thick) containing alumina (Al2O3), boehmite, etc., applied to one side of the separator.

[0066] The electrolyte was prepared by dissolving LiPF6 as a supporting electrolyte at a concentration of 1.0 mol / L in a mixed solvent containing ethylene carbonate (EC), dimethyl carbonate (DMC), and ethyl methyl carbonate (EMC) in a volume ratio of 30:30:40.

[0067] A coin cell was fabricated by stacking the negative electrode, separator, and metallic lithium in that order and impregnating them with an electrolyte solution, with the ceramic layer of the separator facing the negative electrode.

[0068] [Evaluation of capacity retention rate (cycle characteristics)] The capacity retention rates of the recovered negative electrode active materials of Examples 1 to 6 were evaluated using the evaluation coin cells obtained above. It should be noted that a higher capacity retention rate indicates better cycle characteristics. Specifically, each evaluation coin cell was placed in a 25°C environment and charged to 3 mV at a current rate of 1 C. It was then further charged at a constant voltage of 3 mV until the current reached 1 / 10 of the current rate, followed by a 10-minute pause. It was then discharged to 1.6 V at a current rate of 1 C, and further discharged at a constant voltage of 1.6 V until the current reached 1 / 10 of the current rate, followed by a 10-minute pause. This cycle of charge and discharge constituted one cycle, and this cycle was repeated 10 times. The discharge capacity was measured for each cycle from the first to the tenth cycle. The discharge capacity at the first cycle and the discharge capacity at the tenth cycle were measured, and the capacity retention rate was calculated using the following formula (1). The results are shown in Table 1. Capacity retention rate (%) = ((discharge capacity at 10th cycle) / (discharge capacity at 1st cycle)) × 100 Formula (1) Figure 8 is a graph showing the relationship between the number of cycles and the capacity retention rate. For Examples 1, 2, and 6, the capacity retention rate was calculated for each cycle in the capacity retention rate test, compared with the first cycle, and the calculated values ​​were plotted on a graph with the number of cycles on the horizontal axis and the capacity retention rate (%) on the vertical axis. The results are shown in Figure 8.

[0069] [Table 1]

[0070] As shown in the results in Table 1, in Example 1, in which a charging process was performed on a secondary battery containing a phosphorus-containing compound, the P mass ratio of the recovered negative electrode active material was higher than in Example 6, in which a charging process was not performed. This indicates that, in Example 1, a negative electrode active material in which a phosphorus-containing oxide was attached to the surface of the active material substrate was obtained by performing the charging process. Furthermore, as shown in the results in Figure 8, in the coin cell using the negative electrode active material of Example 6, a decrease in capacity retention rate was observed with each cycle. On the other hand, in the coin cell of Example 1, the decrease in capacity retention rate was significantly suppressed compared to Example 1. This indicates that the attachment of a phosphorus-containing oxide to the surface of the active material substrate improved the cycle characteristics of the negative electrode active material.

[0071] From the results of Examples 1 and 2, in Example 2 in which the charging step was carried out in a temperature environment of 80° C., the P mass ratio of the recovered negative electrode active material was larger and better capacity retention rate was also obtained. Furthermore, the results of Examples 2 to 4 show that the higher the end-of-charge SOC, the greater the P mass ratio on the surface of the negative electrode active material, and the improved capacity retention rate.The results of Example 3 show that even when the end-of-charge SOC is set to 50%, phosphate can be suitably attached to the surface of the negative electrode active material, and the improved capacity retention rate can be achieved. From the results of Example 5, even when a secondary battery containing no phosphorus-containing compound (LiPFO) was used to which a phosphorus-containing compound was added, the P mass ratio of the recovered negative electrode active material increased, and good results were obtained in terms of the capacity retention rate.

[0072] As described above, specific aspects of the technology disclosed herein include those described in the following sections. Item 1: A preparation step of preparing a secondary battery including a positive electrode, a negative electrode, an electrolyte, and a phosphorus-containing compound; a charging step of charging the secondary battery in a temperature environment equal to or higher than the decomposition temperature of the phosphorus-containing compound; a recovery step of recovering the negative electrode active material from the negative electrode of the secondary battery after the charging step. Item 2: The above preparation process includes: Adding the phosphorus-containing compound to a secondary battery that does not contain the phosphorus-containing compound, or adding the phosphorus-containing compound to the secondary battery containing the phosphorus-containing compound; Item 2. The method for reproducing a negative electrode active material according to Item 1, comprising: Item 3: The method for reproducing a negative electrode active material according to Item 1 or 2, wherein the charging step is carried out at a charge rate of 0.1 C or less. Item 4: The method for reproducing a negative electrode active material according to any one of Items 1 to 3, wherein the charging step is carried out until the state of charge (SOC) of the secondary battery reaches 50% or more. Item 5: The method for reproducing a negative electrode active material according to any one of Items 1 to 4, wherein the charging step is carried out in a temperature environment of 60° C. or higher. Item 6: The method for reproducing a negative electrode active material according to any one of Items 1 to 5, wherein the secondary battery contains LiPF6 as the phosphorus-containing compound. Item 7: Carbon materials, a phosphorus-containing oxide disposed on the surface of the carbon material; A negative electrode active material comprising: In the negative electrode active material, the average mass ratio of phosphorus element to the total mass of elements detected by element mapping obtained by SEM-EDS is 0.2 mass% or more. Negative electrode active material. Item 8: A secondary battery comprising a negative electrode containing the negative electrode active material according to item 7, a positive electrode, and an electrolyte solution. [Explanation of symbols]

[0073] 1 Secondary battery 10 cases 12 Positive terminal 14 Negative terminal 16 Liquid injection hole 18 Sealing member 20 Electrode body 30 Positive electrode plate (positive electrode) 32 Positive electrode core 34 Cathode active material layer 40 Negative electrode plate (negative electrode) 42 negative electrode core 44 Negative electrode active material layer 50 Separator 80 Recovered negative electrode active material 82 Active material base material 84 Phosphorus-containing oxides

Claims

1. a preparation step of preparing a secondary battery including a positive electrode, a negative electrode, an electrolyte, and a phosphorus-containing compound; a charging step of charging the secondary battery in a temperature environment of 60°C or higher; a recovery step of recovering the negative electrode active material from the negative electrode of the secondary battery after the charging step.

2. The preparation step includes: Adding the phosphorus-containing compound to a secondary battery that does not contain the phosphorus-containing compound, or adding a further phosphorus-containing compound to the secondary battery containing the phosphorus-containing compound; The method for reproducing a negative electrode active material according to claim 1 , comprising:

3. 3. The method for reproducing a negative electrode active material according to claim 1, wherein the charging step is carried out at a charge rate of 0.1 C or less.

4. 3. The method for reproducing a negative electrode active material according to claim 1, wherein the charging step is carried out until the state of charge (SOC) of the secondary battery reaches 50% or more.

5. A method for reproducing a negative electrode active material as described in claim 1 or 2, wherein the charging process is carried out in a temperature environment of 80°C or higher.

6. The secondary battery contains LiPF as the phosphorus-containing compound. 6 The method for reproducing a negative electrode active material according to claim 1 or 2, comprising:

Citation Information

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