Method for alkalizing or re-alkalizing electrode active materials

The electrochemical alkalinization of electrode materials using alkali metal salts and regenerable reducing agents addresses the challenges of hazardous materials and uneven distribution, enhancing efficiency and scalability in lithium battery production and recycling.

JP7803857B2Active Publication Date: 2026-01-21HYDRO QUEBEC CORP
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Patent Information

Application Number
JP2022527115
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-11-13
Filing Date
2020-11-13
Publication Date
2026-01-21
Estimated Expiration
2040-11-13

AI Technical Summary

Technical Problem

Existing methods for lithiating or relithiating electrode materials in lithium batteries face challenges such as the use of hazardous metallic lithium, generation of toxic gases, uneven distribution leading to low current efficiency, and difficulties in large-scale implementation, particularly in recycling spent batteries.

Method used

A method involving electrochemical alkalinization of electrochemically active materials using an alkali metal salt solution in a solvent, applying a direct current to achieve uniform alkalization, and optionally using a chemical reduction process with a regenerable reducing agent to produce stable, alkalized electrodes.

Benefits of technology

This method enables efficient, safe, and uniform alkalization of electrode materials, improving current efficiency and scalability, suitable for large-scale battery recycling and production of lithium-ion batteries.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

A method is described for the direct or indirect electrochemical alkalinization of alkali metal-deficient electrochemically active materials. The method includes an electrolysis step either during alkalinization of the alkali metal-deficient electrochemically active material on an electrode current collector (direct) or during regeneration of the reducing agent used in alkalinization of the electrochemically active material (indirect). In another embodiment, the electrochemical cell or battery as defined herein is for use in a portable device such as a cell phone, camera, tablet, or laptop, an electric or hybrid vehicle, or renewable energy storage.
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Description

[Technical Field]

[0001] Related Applications This application claims priority under applicable law to U.S. Provisional Patent Application No. 62 / 934,782, filed November 13, 2019, the entire contents of which are incorporated herein by reference for all purposes.

[0002] Technical Field TECHNICAL FIELD The present technology relates generally to the field of methods for intercalating or re-intercalating alkali metal ions into electrochemically active materials, for example, for the production of alkali metal-containing metal oxides and metal phosphates. [Background technology]

[0003] background In the manufacture of lithium batteries, positive electrodes are typically fabricated by coating a current collector (usually aluminum foil) with a suspension of active material, conductive material, and binder, followed by drying. The active material is typically a lithiated metal oxide or lithiated metal phosphate, where the metal can be a transition metal or a combination of two or more transition metals. Electrochemical cells are typically assembled with the negative electrode and separator in a discharged state; i.e., the positive electrode is fully lithiated. An exception is the active material VO, which is applied to the current collector in a non-lithiated form. In such cases, the battery is assembled in a fully charged state, which represents a serious safety and fire hazard. Walk et al. described a prelithiation process for VO electrodes under electrochemical conditions using metallic lithium as the negative electrode (see U.S. Pat. No. 5,496,663). Such a lithiation process is galvanic and requires the use of an aprotic and nonaqueous electrolyte due to the presence of metallic lithium as the necessary lithium source and its incompatibility with various solvents, particularly aqueous solutions. Another drawback of this approach relates to the fact that metallic lithium is not the most advantageous source of lithium, both from an economic standpoint and in terms of the precautions required for use in large-scale processes.

[0004] The use of metallic lithium or metallic lithium alloys for relithiation in organic solvents has also been proposed for other electrode materials by Liu et al. (See PCT Patent Publication No. WO2019 / 070896A1.) However, this approach is also based on the use of metallic lithium (or one of its alloys) and an organic electrolytic solvent applied directly to the electrode material in a complex multi-step process that requires steps such as forming a pouch cell, waiting for a long time (typically more than 20 hours), and then stripping off the excess metallic lithium.

[0005] To avoid the aforementioned drawbacks of using metallic lithium as the lithium source in the lithiation process, others have proposed using inexpensive materials such as lithium chloride in organic solvents (see Grant et al., U.S. Patent Application No. 2018 / 0040914). In this process, the electrode materials into which lithium is inserted are anode materials of the lithium-ion battery, graphite, silicon oxide, and tin oxide types. The lithium halides used in the process generate toxic and corrosive halogen gases at the counter electrode. The halogen gases can also react with any residual water in the setup, producing more corrosive acids (such as HCl or HF), which requires additional precautions to be taken during the process.

[0006] Another group proposed the reproduction of electrode materials from lithium-depleted batteries (see U.S. Pat. No. 9,287,552 to Sloop). Various approaches are described, including high-temperature solid-state reactions, hydrothermal processes carried out in sealed pressure vessels, and the use of reducing conditions, potentially implemented in situ by directly introducing a reducing solution into spent batteries. The latter approach fails to take into account that lithium depletion is not the only drawback of spent batteries. In fact, electrodes may also exhibit active material and binder fracture, lithium antisites, passivation layers, current collector peeling, reduced copper adhesion to the cathode surface, and current collector corrosion. Furthermore, Sloop proposed that the positive electrode be separated from the battery intact, which is very difficult to implement on a large scale, including, for example, extraction of the rotating electrode (“jelly roll”) from the spent battery and unpacking and sorting the electrodes while retaining the entire electrode strip for subsequent steps. Such sorted electrodes also suffer from the additional drawbacks mentioned above. Sloop also mentions, but does not demonstrate, the relithiation of spent positive electrodes by depositing them in a sorted, charged tray or grid. Poor electrical contact between the electrode portions and the tray or grid leads to uneven current and potential distribution that favors other electrochemical reactions (such as hydrogen evolution), resulting in low current efficiency and uneven relithiation across the electrode. Accordingly, there is a need for new processes for alkalizing or re-alkalizing active electrode materials or for reusing them, including processes that can be used in the preparation of new electrode materials. [Prior art documents] [Patent documents]

[0007] [Patent Document 1] U.S. Patent No. 5,496,663 [Patent Document 2] International Publication No. 2019 / 070896 [Patent Document 3] US Patent Application Publication No. 2018 / 0040914 [Patent Document 4] U.S. Patent No. 9,287,552 Summary of the Invention [Means for solving the problem]

[0008] overview According to a first aspect, the present disclosure provides a method for electrochemical alkalinization of an electrochemically active material, comprising: a) obtaining a working electrode comprising a working electrode material on a current collector, said working electrode material comprising an electrochemically active material, and optionally a binder and / or an electronically conductive material; b) introducing the working electrode together with an inert counter electrode and a solution containing an alkali metal salt in a solvent into an electrochemical reactor in continuous and / or batch mode; c) applying a direct current between the working electrode and the counter electrode to obtain an alkalized electrode comprising an alkalized electrochemically active material; d) removing the alkalized electrode obtained in step (c) from the electrochemical reactor; Including, The electrochemically active material comprises a metal oxide (including complex oxides), a metal phosphate, a metal silicate, a metal sulfate, or a partially alkalized metal oxide (including complex oxides), a metal phosphate, a metal silicate, or a metal sulfate; Regarding the method.

[0009] According to one embodiment, the electrochemically active material is alkali metal deficient. In another embodiment, the method comprises preparing an electrochemically active material of Formula I: A w-p M n+p x X y O z (I) with an alkalized electrochemically active material of Formula II: A w M n x X y O z (II) (In the formula, A is an alkali metal; M is a transition metal, a post-transition metal, or a combination thereof; X is selected from P, Si and S; O is an oxygen atom, w is a number selected from 1 to 4 and corresponds to the number of A atoms in the alkalized electrochemically active material; x is a number selected from 1 to 5 and corresponds to the number of M atoms; y is a number between 0 and 2, and if y is zero, then X is absent; z is a number selected from 1 to 12 and corresponds to the number of oxygen atoms in the formula; n indicates the oxidation state of M; p in formula I represents both the average number of missing A atoms and the average increase in oxidation state of M, where p≦w (preferably 0 <p≦1)であり、 (w, y, z, n, and p are chosen to give a stable, electrically neutral compound) This includes converting it into

[0010] In another embodiment, p=w, A in Formula I is absent, and the electrochemically active material of Formula I has the formula I(a): M n+p x X y O z In another embodiment, X is phosphorus, y is 1, and z is 4. In another embodiment, M is Fe, Ni, Mn, Co, or a combination of at least two thereof. In an alternative embodiment, M is V, Mn, Ni, Co, Fe, Cr, Ti, Zr, Sn, or a combination of at least two thereof. In yet another embodiment, y is 0 and X is absent. According to some preferred embodiments, A is Li, Na, or K, or A is Li.

[0011] In another embodiment, the electrochemically active material or alkalized electrochemically active material is further doped by partially substituting M with a transition metal (e.g., V, Cr, Mn, Fe, Co, Ni, Cu, Zn, Mo, W, or Y) and / or a metal other than a transition metal (e.g., Mg, Ca, Sr, Al, Sb, or Sn).

[0012] In additional embodiments, the solvent is selected from an aqueous solvent, an organic solvent, or a mixture thereof, for example, the solvent is water.

[0013] In other embodiments, the alkali metal salt comprises at least one of an alkali metal sulfate, carbonate, bicarbonate, hydroxide, nitrate, acetate, oxalate, or phosphate. In one embodiment, the alkali metal salt is an alkali metal sulfate. In another embodiment, the alkali metal salt is an alkali metal bicarbonate, e.g., steps (b) and / or (c) are carried out in the presence of gaseous carbon dioxide. In another embodiment, the method further comprises adjusting the pH of the solution to a pH compatible with the electrochemically active material of step (a) (e.g., for FePO4, the pH is adjusted to 5-9, preferably 6-7.5). In one embodiment, the alkali metal of the alkali metal salt is lithium.

[0014] In other embodiments, step (c) is carried out in a continuous or batch mode. In another embodiment, step (c) is carried out in a continuous mode, where the working electrode is introduced to one side of the electrochemical reactor and moved along a predetermined path so as to remain a constant distance from the counter electrode while moving along the electrochemically active region of the electrochemical reactor to maintain a relatively uniform current and potential distribution. In other embodiments, the rate at which the working electrode moves through the electrochemical reactor is adjusted based on the residence time required for a predetermined level of alkalinity at the applied current density.

[0015] In yet another embodiment, step (c) is performed in a mode in which the current density between the working electrode and the counter electrode is controlled, or step (c) is performed in a mode in which the voltage between the working electrode and the counter electrode is controlled.

[0016] In another embodiment, the electrochemically active material is FePO4 or partially delithiated LiFePO4, and the current density at the working electrode is in the range of 0.001 A / g to 100 A / g active LiFePO4, preferably in the range of 1 to 15 A / g active LiFePO4.

[0017] In another embodiment, step (c) is carried out at a temperature ranging from 5° C. to 90° C., preferably from 25° C. to 50° C. In some embodiments, step (b) can further include a reference electrode.

[0018] In other embodiments, the method further comprises the step (e) of washing the alkalized electrochemically active electrode material of the alkalized electrode and / or the step of drying the alkalized electrochemically active electrode material of the alkalized electrode.

[0019] In yet another embodiment, the working electrode material includes a binder, and the binder is selected from fluorine-containing polymer binders and other solvating polymer binders. According to one embodiment, the binder is a fluorine-containing polymer binder such as PVDF, HFP, PVDF-co-HFP, or PTFE. According to another embodiment, the binder is a solvating polymer binder selected from poly(ethylene oxide), poly(propylene oxide), poly(dimethylsiloxane), poly(alkylene carbonate), poly(alkylene sulfone), poly(alkylene sulfamide), polyurethane, poly(vinyl alcohol), and copolymers (block, random, alternating, statistical, etc.) comprising at least one of the above polymers or their monomers, and combinations of at least two of these, wherein the polymers are optionally branched and / or crosslinked.

[0020] In another embodiment, the working electrode material comprises an electronically conductive material selected from the group consisting of carbon black (such as Ketjen™ black and Super P™), acetylene black (such as Shawinigan black and Denka™ black), graphite, graphene, carbon fibers or nanofibers (such as vapor-grown carbon fibers (VGCF)), carbon nanotubes (e.g., single-walled or multi-walled), and combinations of at least two thereof.

[0021] In some embodiments, the working electrode material is an electrode material (e.g., a positive electrode material) of a spent battery, and step (a) includes at least one step of separating the electrode material from other elements of the spent battery and applying the material to a current collector.

[0022] In other embodiments, step (a) comprises mixing the electrochemically active material, the binder, and optionally the electronically conductive material in a solvent, applying the mixture to a current collector, and drying.

[0023] According to a second aspect, the present application relates to an electrode obtainable by the method described above.

[0024] According to a third aspect, the present disclosure provides a method for electrochemical alkalinization of an electrochemically active material, comprising: (i) adding an electrochemically active material to a solution containing a reducing agent and an alkali metal salt in a solvent to form an alkalized electrochemically active material; (ii) separating the alkalized electrochemically active material from the solution; (iii) electrochemically treating the solution separated in step (ii) to regenerate the reducing agent in the solution; The present invention relates to a method, comprising:

[0025] In one embodiment, the electrochemically active material and the alkalized electrochemically active material are as defined herein. According to another embodiment, the electrochemically active material is alkali metal deficient. In another embodiment, the reducing agent is the reducing member of a redox couple having a redox potential lower than that of the electrochemically active material (alkali metal deficient) being reduced. According to one embodiment, the redox couple is, for example, [Fe(CN)] 3- / [Fe(CN)6] 4- , [Fe(nta)] / [Fe(nta)] - , [Fe(tdap)] 2- / [Fe(tdap)] 3- , [Fe(edta)] - / [Fe(edta)] 2- , [Fe(citrate)] / [Fe(citrate)] - , [Fe(TEOA)OH] - / [Fe(TEOA)OH] - , and [Fe(oxalate)] + / [Fe(oxalate)].

[0026] According to one embodiment, step (i) further comprises deoxygenating the solution. According to another embodiment, steps (i) and / or (iii) are carried out in the presence of a gas that excludes the presence of oxygen.

[0027] In another embodiment, the alkali metal salt is selected from alkali metal sulfates, carbonates, bicarbonates, hydroxides, nitrates, acetates, oxalates, phosphates, and combinations thereof. In one embodiment, the alkali metal salt is an alkali metal sulfate. In another embodiment, the alkali metal salt is an alkali metal bicarbonate, e.g., step (i) is carried out in the presence of gaseous carbon dioxide. In another embodiment, the method further comprises adjusting the pH of the solution to a pH compatible with the electrochemically active material of step (i) (e.g., for FePO4, the pH is adjusted to 5-9, preferably 6-7.5). In one embodiment, the alkali metal salt is lithium. In another embodiment, the solvent is an aqueous solvent.

[0028] According to one embodiment, step (iii) of the electrochemical treatment is carried out in an electrolysis cell by passing an electric current between at least one cathode and at least one anode. In one embodiment, the electrolysis cell includes at least one ionic or non-ionic separator disposed between the anode and the cathode to protect the regenerated reducing agent. In another embodiment, the electrolysis cell further includes a system for keeping the solution deoxygenated, for example, the system includes maintaining an oxygen-free gas (such as carbon dioxide, nitrogen, or argon) in the electrolysis cell.

[0029] In yet another embodiment, the electrochemically active material is in the form of a suspension in the solution of step (i), and step (ii) is carried out by filtration, centrifugation, or decantation, optionally followed by a washing step.

[0030] Alternatively, the electrochemically active material is contained in an electrode material on a current collector (forming the electrode), and step (ii) comprises removing the electrode from the solution, followed by an optional washing step.

[0031] In this alternative embodiment, the electrode material further comprises a binder selected from, for example, fluorine-containing polymer binders and other solvating polymer binders. According to one embodiment, the binder is a fluorine-containing polymer binder (such as PVDF, HFP, PVDF-co-HFP, or PTFE). Alternatively, the binder is a solvating polymer binder selected from poly(ethylene oxide), poly(propylene oxide), poly(dimethylsiloxane), poly(alkylene carbonate), poly(alkylene sulfone), poly(alkylene sulfamide), polyurethane, poly(vinyl alcohol), and copolymers (block, random, alternating, statistical, etc.) comprising at least one of the above polymers or their monomers, and combinations of at least two of these, where these polymers are optionally branched and / or crosslinked. According to another embodiment, the electrode material further comprises an electronically conductive material selected from the group consisting of, for example, carbon black (such as Ketjen™ black and Super P™), acetylene black (such as Shawinigan black and Denka™ black), graphite, graphene, carbon fibers or nanofibers (such as vapor-grown carbon fibers (VGCF)), carbon nanotubes (e.g., single-walled or multi-walled), and combinations of at least two thereof.

[0032] In another embodiment, the method further comprises the step of drying the alkalized electrochemically active material.

[0033] According to a fourth aspect, the present invention relates to an electrode comprising an alkalized electrochemically active material obtainable by the method defined herein, a binder and optionally an electronically conductive material.

[0034] According to a fifth aspect, the present invention relates to an electrochemical cell comprising a negative electrode, a positive electrode, and an electrolyte, wherein the positive electrode is an electrode as defined herein, or a battery comprising at least one such electrochemical cell. For example, the battery is a lithium battery or a lithium-ion battery.

[0035] In another embodiment, the electrochemical cell or battery as defined herein is for use in a portable device such as a cell phone, camera, tablet or laptop, an electric or hybrid vehicle, or renewable energy storage. [Brief explanation of the drawings]

[0036] [Figure 1] FIG. 1 depicts a graph of lithium leaching rate during delithiation as a function of time according to Example 1(a).

[0037] [Figure 2] FIG. 2 shows the X-ray diffraction patterns of LiFePO4 before and after charging and discharging (top line) and its delithiated FePO4 (bottom line) according to Example 1(a).

[0038] [Figure 3] FIG. 3 shows linear scan voltammetry of an FePO4 electrode performed at a rate of 1 mV / s from 0 V vs. OCP (open circuit potential) to −1 V vs. SCE (saturated calomel electrode), as described in Example 1(c).

[0039] [Figure 4] FIG. 4 shows the X-ray diffraction patterns of LiFePO4 (top line), delithiated FePO4 (middle line), and relithiated LiFePO4 (bottom line) before and after charging and discharging according to Example 1.

[0040] [Figure 5] FIG. 5 shows the voltammogram of the galvanostatic relithiation of the FePO 4 electrode carried out at 10 mA according to Example 2.

[0041] [Figure 6] FIG. 6 shows the X-ray diffraction patterns of LiFePO4 (top line), delithiated FePO4 (middle line), and relithiated LiFePO4 (bottom line) before and after charging and discharging according to Example 2.

[0042] [Figure 7] FIG. 7 shows the galvanic response of two FePO 4 electrodes subjected to potentiostatic relithiation at −0.2 V vs. SCE at 25° C. (dashed line) and 50° C. (solid line) according to Example 3.

[0043] [Figure 8] FIG. 8 shows the X-ray diffraction patterns of LiFePO4 before charge and discharge (top line), LiFePO4 relithiated at 25° C. (middle line), and LiFePO4 relithiated at 50° C. (bottom line) according to Example 3.

[0044] [Figure 9] FIG. 9 shows cathodic linear scan voltammetry of an FePO electrode carried out between 0 V vs. OCP and −1.1 V vs. SCE in a 0.5 M aqueous LiHCO solution according to Example 4 at a flow rate of 1 mV / s.

[0045] [Figure 10] FIG. 10 shows the galvanic response of two FePO 4 electrodes subjected to potentiostatic relithiation with SCE in 0.25 M Li 2 SO 4 (dashed line) and 0.5 M LiHCO 3 (solid line) at −0.2 V vs. 25° C. according to Example 4.

[0046] [Figure 11] FIG. 11 shows the X-ray diffraction patterns of LiFePO4 (top line), delithiated FePO4 (middle line), and relithiated LiFePO4 (bottom line) before and after charging and discharging according to Example 4.

[0047] [Figure 12] FIG. 12 shows the change in current as a function of time for electrode material applied onto an aluminum current collector according to the process of Example 5.

[0048] [Figure 13] FIG. 13 shows the X-ray diffraction patterns of LiFePO4 (top line), delithiated FePO4 (middle line), and relithiated LiFePO4 (bottom line) electrode materials before and after charging and discharging according to Example 5.

[0049] [Figure 14] FIG. 14 shows the discharge capacity of relithiated LiFePO4 (circles) compared to reference LiFePO4 (triangles) according to Example 5.

[0050] [Figure 15] FIG. 15 shows a voltammogram of Fe(III)-EDTA solution carried out between 2.05 V and 4.25 V vs. Li / Li at a scan rate of 200 mV / sec according to Example 6(b).

[0051] [Figure 16] FIG. 16 shows the polarization curves for a solution of EDTA-LiOH (dashed line) and a solution of Fe(III)-EDTA in LiOH (solid line) according to Example 6(b).

[0052] [Figure 17] FIG. 17 shows the evolution of the redox potential of the suspension during the reduction of FePO4 by Fe(II)-EDTA according to Example 7(a).

[0053] [Figure 18] FIG. 18 shows the X-ray diffraction patterns of LiFePO4 (top line), delithiated LiFePO4 (middle line), and relithiated LiFePO4 (bottom line) before and after charging and discharging according to Example 7(a).

[0054] [Figure 19] FIG. 19 shows the evolution of the redox potential of the suspension during the reduction of FePO4 by Fe(II)-citrate according to Example 7(b).

[0055] [Figure 20] FIG. 20 shows the X-ray diffraction patterns of LiFePO4 (top line), delithiated LiFePO4 (middle line), and relithiated LiFePO4 (bottom line) before and after charging and discharging according to Example 7(b).

[0056] [Figure 21] FIG. 21 shows the change in Fe(II)-EDTA concentration and the change in the redox potential of the solution during electrolysis as presented in Example 8(a).

[0057] [Figure 22] FIG. 22 shows the evolution of the redox potential of the suspension during the reduction of FePO4 by Fe(II)-EDTA generated by electrolysis of Fe(II)-EDTA according to Example 8(b).

[0058] [Figure 23] FIG. 23 shows the X-ray diffraction patterns of LiFePO4 (top line), delithiated LiFePO4 (middle line), and relithiated LiFePO4 (bottom line) before and after charging and discharging according to Example 8(b). DETAILED DESCRIPTION OF THE INVENTION

[0059] Detailed Description The following detailed description and examples are intended for illustrative purposes and are not to be construed as further limiting the scope of the present invention.

[0060] All technical and scientific terms and expressions used herein have the same definitions as those commonly understood by those skilled in the art when related to the present technology. Nevertheless, for the purpose of clarity, the definitions of some terms and expressions used herein are set out below.

[0061] The term "about" as used herein means approximately, in the region, and in the vicinity.When the term "about" is used in relation to a numerical value, it can be modified, for example, by a 10% variation around the numerical value.This term can also take into account the probability of random error in experimental measurements or rounding values.

[0062] As used herein, the terms "alkalinize" and "alkalization" refer to the reduction of a metal-containing active material with the insertion of an alkali metal ion into the active material. The terms "lithiate" and "lithiation" are used when the alkali metal ion is lithium ion. Similarly, the terms "alkalinized" and "lithiated" generally refer to the material resulting from alkalinization or lithiation, respectively. Similarly, the terms "realkalinize," "realkalization," "relithiate," and "relithiation" refer to the alkalinization or lithiation of an active material from which an alkali metal ion or lithium ion, respectively, has been lost or incorporated.

[0063] Thus, the present disclosure relates to alkalizing an electrochemically active material containing at least one metal in a non-zero oxidation state. The first step in this method is to obtain a working electrode comprising an electrode material on a current collector. The electrode material includes the electrochemically active material to be alkalized and may also include other components. For example, the electrochemically active material is uniformly dispersed in a binder and, optionally, a conductive material.

[0064] Electrochemically active materials may be generally defined as comprising metal oxides (including composite oxides), metal phosphates, metal silicates, metal sulfates, or partially alkalized oxides, phosphates, silicates, or sulfates thereof. By way of example, electrochemically active materials may be those represented by Formula I: A w-p M n+p x X y O z (I) (In the formula, A is an alkali metal (e.g., Li, Na, and K, preferably lithium); M is a transition metal, a post-transition metal, or a combination thereof; X is selected from P, Si and S; O represents oxygen; w is a number selected from 1 to 4 and corresponds to the number of A atoms in the alkalized electrochemically active material; x is a number selected from 1 to 5 and corresponds to the number of M atoms; y is a number between 0 and 2, and if y is zero, then X is absent; z is a number selected from 1 to 12 and corresponds to the number of oxygen atoms in the formula; n indicates the oxidation state of M; p denotes both the average number of missing A atoms and the average increase in the oxidation state of M, where p≦w (preferably 0 <p≦1)であり、 (w, y, z, n, and p are chosen to give a stable, electrically neutral compound) is.

[0065] The alkalized electrochemically active material obtained by this method also has the formula II: A w M n x X y O z (II) wherein A, M, X, O, n, w, x, y, and z are as defined herein. is.

[0066] Examples of electrochemically active materials include compounds of Formula I, where p=w and A is absent, and the electrochemically active materials of Formula I have the formula I(a): M n+p x X y O z In some examples, X is phosphorus, y is 1, and z is 4.

[0067] Examples of transition metals M include Fe, Ni, Mn, Co, or combinations thereof, and preferably when X is phosphorus, y is 1 and z is 4. In another example, the electrochemically active material is FePO4 or partially delithiated LiFePO4. Examples of M can also include a metal selected from V, Mn, Ni, Co, Fe, Cr, Ti, Zr, Sn, or a combination of at least two thereof. In some examples, y is 0, X is absent, and Formula I represents an oxide or composite oxide.

[0068] The electrochemically active material and / or alkalized electrochemically active material may also be doped by partially (10 mol % or less, or 5 mol % or less) substituting M with, for example, a transition metal (e.g., Ti, V, Cr, Mn, Fe, Co, Ni, Cu, Zn, Mo, W, or Y) and / or a metal other than a transition metal (e.g., Mg, Ca, Sr, Al, Sb, or Sn).

[0069] In the first method step, an alkali metal-deficient material, such as that represented by Formula I or I(a), can be mixed with all the components required to fabricate an electrode for an energy storage device and applied to a current collector. The material to be alkalized can be commercially available and included in the working electrode material of the method to achieve alkalization prior to use as an electrode in an electrochemical cell. Alternatively, the electrochemically active material to be alkalized can be the result of a battery recycling process.

[0070] The electrochemically active material may be in the form of microparticles or nanoparticles and / or may further include a carbon coating.

[0071] The composition for the electrode material can further include at least one binder, for example a polymeric binder, preferably a polar and solvating polymeric binder.

[0072] Non-limiting examples of solvating polymers that may be suitable for use as positive electrode binders include fluorine-containing polymer binders such as PVDF, HFP, PVDF-co-HFP, and PTFE. Other examples of solvating polymer binders include poly(ethylene oxide), poly(propylene oxide), poly(dimethylsiloxane), poly(alkylene carbonate), poly(alkylene sulfone), poly(alkylene sulfamide), polyurethane, poly(vinyl alcohol), and copolymers (block, random, alternating, statistical, etc.) comprising at least one of the above polymers or their monomers, as well as combinations of at least two of these. These solvating polymers may also be branched and / or crosslinked. Other examples of binders include water-soluble binders such as SBR (styrene butadiene rubber), NBR (acrylonitrile butadiene rubber), HNBR (hydrogenated NBR), CHR (epichlorohydrin rubber), ACM (acrylate rubber), and cellulosic binders (e.g., carboxyalkyl cellulose, hydroxyalkyl cellulose, and combinations thereof), or any combination of at least two of these. It should be understood that water-soluble binders cannot be used in the present alkalization method when the solvent of the method is an aqueous solvent.

[0073] Examples of electronically conductive materials include, but are not limited to, carbon black (such as Ketjen™ black and Super P™), acetylene black (such as Shawinigan black and Denka™ black), graphite, graphene, carbon fibers or nanofibers (such as vapor-grown carbon fibers (VGCF)), carbon nanotubes (e.g., single-walled or multi-walled), and combinations of at least two thereof.

[0074] The second step of the method involves introducing the working electrode into an electrochemical reactor together with an inert counter electrode and a solution containing an alkali metal salt in a solvent. The electrochemical reactor may further include a reference electrode (such as a saturated calomel electrode (SCE)). In another example, the electrochemical reactor may also include a potentiostat or rectifier for electrolysis. The electrochemical reactor may be configured for continuous or batch mode electrolysis and may include additional elements such as a stirring mode and / or a temperature control device to increase mass transfer to the working electrode.

[0075] The solution contained in the electrochemical reactor contains at least one alkali metal salt (e.g., lithium, sodium, or potassium salts, preferably lithium salts, preferably excluding halide salts) that acts as an electrolyte and intercalates into the active material. Examples of suitable salts include alkali metal sulfates, carbonates, bicarbonates, hydroxides, nitrates, acetates, oxalates, or phosphates, such as A2SO4 or AHCO3 (where A is as defined above). The solution solvent is an organic solvent, an aqueous solvent, or a combination thereof, preferably an aqueous solvent. For example, the solvent is water (e.g., distilled water or high-purity water). A pH adjustment step can also be included in the method. The pH of the solution must be compatible with the electrochemically active material (and its alkalinized form), for example, to maintain stability and avoid dissolution. For example, when treating an electrochemically active material or a partially alkalinized form thereof, the pH is adjusted to 5 to 9, preferably 6 to 7.5. For example, if the solution is overly acidic, the pH can be adjusted with an alkali metal hydroxide. A supporting electrolyte may also be added to reduce the resistance of the electrolyte.

[0076] The counter electrode is made of a material that is inert under electrolytic conditions, such as platinum, a noble metal oxide, or lead oxide, and can optionally contain a layer of a catalytic compound to reduce the electrode overpotential. For example, in aqueous solutions, the reaction at the counter electrode leads to the release of oxygen, and a dimensionally stable anode can be used as the counter electrode material.

[0077] The third step involves applying a direct current between the working electrode containing the alkali-metal-deficient electrochemically active material and the counter electrode to obtain an alkalized electrode containing the alkalized electrochemically active material (e.g., as defined in Formula II). This step can be carried out at a temperature ranging from 5°C to 90°C, preferably from 25°C to 50°C.

[0078] As described above, electrochemical reactors can be operated in either continuous or batch mode. In continuous mode, the working electrode enters the electrochemical reactor from one side and follows a predetermined path, so that the working electrode remains a fixed distance from the counter electrode while moving through the electrochemically active region of the electrochemical reactor to maintain a relatively uniform current and potential distribution. The rate at which the working electrode moves through the electrochemical reactor is determined by the residence time required for a given level of alkalinization and the applied current density. The electrochemical reactor can be operated in either a current density-controlled mode or a voltage-controlled mode between the working and counter electrodes.

[0079] According to a specific example, the electrochemically active material is FePO4 or partially delithiated LiFePO4, and the current density at the working electrode is in the range of 0.001 A / g to 100 A / g active LiFePO4, preferably in the range of 1 to 15 A / g active LiFePO4.

[0080] Once the target alkylation level is reached, the working electrode is removed from the electrochemical reactor and the thus alkylated electrode is then preferably subjected to a washing step to remove excess electrolyte from the alkalized electrode material, followed by a drying step to remove excess washing solution.

[0081] If present, a reference electrode can be placed in the reactor to monitor the potential of the working electrode. Its presence minimizes parasitic reactions at the working electrode and maximizes the efficiency of the alkalinization current.

[0082] Alternatively, a chemical reduction process can be used to alkalize the electrochemically active material defined herein. This alternative alkalization method includes a reducing agent and further includes a step of electrochemically regenerating the reducing agent. As an example, the electrochemically active material can be treated with a solution of the reducing agent and an alkali metal salt in a solvent. When the electrochemically active material is easily oxidized in the presence of oxygen, the solution can be deoxygenated before adding the reducing agent and / or electrochemically active material. Similarly, this step can be carried out in the presence of a gas (such as CO, N, or Ar) to eliminate the presence of oxygen. The resulting electrochemically active material and alkalized electrochemically active material are as described above. Preferably, the electrochemically active material is alkali metal deficient.

[0083] Non-limiting examples of alkali metal salts used in the chemical reduction step include alkali metal sulfates, carbonates, bicarbonates, hydroxides, nitrates, acetates, oxalates, and phosphates, or any combination thereof. The solvent used is preferably an aqueous solvent.

[0084] In this method, the alkalized material is treated as a suspension in a reactor, separated from the spent reducing agent solution, rinsed, dried, and then used as an active electrode in the manufacture of an electrode. Separation of the alkalized material from the spent reducing agent can be achieved by typical physical separation methods, such as filtration, centrifugation, or decantation. The separated and dried alkalized material can then be mixed with the necessary components to form an electrode and applied to a current collector. For example, these components can include a binder and, if necessary, the above-mentioned electronically conductive material.

[0085] Alternatively, the material to be alkalized using this method can be first mixed with the components of the electrode material described above and then applied onto a suitable current collector to obtain an electrode such as the working electrode described in the previous method. The prepared electrode is then treated with a reducing agent solution, for example, by immersion in the reducing agent solution, washing, and drying.

[0086] In either case, the spent reducing agent is recovered and then regenerated in a subsequent step. For example, the solution containing the spent reducing agent can be transferred to a highly efficient, high-current-density electrochemical (or electrolytic) cell to reduce (thereby regenerating) the spent reducing agent, which can then be reused to treat alkali-metal-deficient materials. For example, the regenerating step of the reducing agent is carried out by electrochemical treatment in the electrolytic cell by passing an electric current between at least one cathode and at least one anode. The electrolytic cell can further include at least one ionic or nonionic separator disposed between the anode and cathode to protect the regenerated reducing agent.

[0087] When the regenerated agent is susceptible to oxidation in the presence of oxygen, the electrolytic cell can also include a system for maintaining the solution deoxygenated, for example, by maintaining an oxygen-free gas (such as carbon dioxide, nitrogen, or argon) in the electrolytic cell.

[0088] The current density of an electrolytic cell can be increased by influencing mass transfer in the electrolytic cell by well-known methods (such as the use of turbulence promoters, increasing the temperature, etc.) as well as by increasing the effective surface area of ​​the cathode (e.g., by using materials in the form of felts, grids, etc.) When the electrolyte solvent is aqueous, the cathode material is preferably selected from those with high hydrogen overpotentials, such as graphite, lead, etc.

[0089] Since the reducing agent can be reused almost infinitely, it can be considered as an indirect electrochemical reduction in which only electrons are used as the reducing agent for the electrode material, and therefore this method has several advantages (economic, environmental, etc.) compared to using the reducing agent without regeneration.

[0090] A variety of redox couples can be used as regenerable reducing agents. The redox couple selected has a redox potential lower than the electrochemically active (alkali metal deficient) material it reduces. For example, for the relithiation of FePO4, the redox couple has a redox potential of 3.45 V vs. Li / Li + (See A. K. Padhi et al., J. Electrochem. Soc., 1997, 144, 1188-1194).

[0091] Another desirable property of the redox couple is believed to be a relatively high solubility, especially in its oxidized state, which avoids the formation of precipitates in the presence of the treated electrode material. Examples of redox couples that can be used include Fe(II) / Fe(III) complexes, which exhibit interesting properties for use in this indirect electrochemical technique. These complexes include, for example, [Fe(CN)6] 3- / [Fe(CN)6] 4- , [Fe(nta)] / [Fe(nta)] - , [Fe(tdpa)] 2- / [Fe(tdpa)] 3- , [Fe(edta)] - / [Fe(edta)] 2- , [Fe(citrate)] / [Fe(citrate)] - , [Fe(TEOA)OH] - / [Fe(TEOA)OH] - , and [Fe(oxalate)] + / [Fe(oxalate)]. These redox couples are of particular interest for the alkalinization of iron-containing electrochemically active (alkali metal deficient) materials such as FePO4.

[0092] The advantage of this indirect electrochemical approach compared to direct electrochemical reduction of the electrode material is the possibility of using much higher current densities, thus increasing the productivity of the electrochemical reactor.

[0093] The electrodes prepared by the above method can then be directly used to prepare electrochemical cells, for example, by stacking the electrode with an active counter electrode and separating the two electrodes with an electrolyte (a liquid or gel electrolyte impregnating a separator, or a solid polymer electrolyte). These electrochemical cells can be further used in the preparation of electrochemical energy storage devices.

[0094] As previously mentioned, the material alkalized by the present method can be either a spent electrode material obtained in a battery recycling process or a pre-charged electrode material (or its precursor) that is converted to a discharged electrode material before assembly in an electrochemical cell.

[0095] This specification also contemplates a battery, comprising at least one electrochemical cell as defined herein.For example, the battery is a lithium or lithium-ion battery.This battery and electrochemical cell can be used in portable devices such as mobile phones, cameras, tablets or laptops, electric or hybrid vehicles, or renewable energy storage. [Example]

[0096] The following non-limiting examples are illustrative embodiments and should not be construed as further limiting the scope of the invention. These examples will be better understood with reference to the accompanying drawings. Example 1 (a) Preparation of delithiated FePO4

[0097] Using virgin cathode material containing primarily LiFePO4 with small amounts of PVDF and graphite, delithiated material was produced from the LiFePO4 sample using the process described in Patent Application US 2019 / 0207275 (Amouzegar et al.). Ten parts of this material were dispersed in 100 parts of an aqueous solution containing HO (the amount of HO was adjusted to a 2:1.33 Fe:HO molar ratio) in a stirred reactor bubbled with CO2 gas at room temperature under a pressure of 30 psi. Filtered samples of the suspension taken at various intervals were analyzed by ICP to determine the concentrations of Li, Fe, and P. The solid residue from the leachate was then separated by centrifugation, washed with deionized water, and dried in an oven at 120°C for 48 hours.

[0098] Seven batches were prepared in this manner and then combined. Figure 1 shows the leaching rates of Li, Fe, and P obtained for each batch. These results were then used to calculate the leaching efficiency of each element. After 30 minutes, it was observed that almost 80% of the Li could be found in solution, and after 75 minutes, this parameter reached a value of about 90%. The leaching rates of Fe and P did not exceed 0.5% and 3%, respectively, indicating very high selectivity and efficiency of lithium extraction.

[0099] X-ray diffraction spectra of the solid composite sample and the LiFePO4 sample before and after charging and discharging were obtained using a MiniFlex 600™ instrument equipped with a cobalt source and are presented in Figure 2. As shown, the sample is composed primarily of FePO4 with some residual LiFePO4. Indeed, the X-ray diffraction results confirm a higher delithiation rate than calculated from the ICP analysis results (90% for ICP analysis compared to 95% for the diffraction results). (b) Preparation of FePO4 electrode

[0100] To characterize the electrochemical behavior of the delithiated material of 1(a) during relithiation, FePO powder was mixed with conductive carbon (Denka™ Black and VGCF™-H, 1:1 by weight) and binder (PVDF) in a weight ratio of 87.5:7.5:5, and then dispersed in N-methyl-2-pyrrolidone (NMP) to form a suspension. This suspension was finally cut into 4.16 cm diameter pieces using a doctor blade. 2 and dried (final electrode coverage of FePO4 was approximately 4.3 mg / cm 2 was). (c) Relithiation of FePO4 electrode material

[0101] The electrode fabricated in (b) was tested as the working electrode in a three-electrode electrochemical setup. A platinum mesh was used as the counter electrode, while a saturated calomel electrode (SCE) served as the reference. The electrolyte consisted of an aqueous LiSO solution (0.25 M) with the pH adjusted to 7 by adding LiOH. The temperature was set at 25 °C using a double-walled glass electrochemical cell (thermostat). Figure 3 shows the current vs. potential voltammetry curve at a potential scan rate of 1 mV / s.

[0102] First, the working electrode was scanned between its open-circuit potential (in this case, 165 mV vs. SCE) and -1.0 V vs. SCE using a Versastat™ 4 instrument (Princeton Applied Research). Within this potential range, no other reactions occurred except for the reduction peak corresponding to the lithiation of FePO4 to LiFePO4. This means that operating the battery within this potential window is likely to result in good coulombic current efficiency for the relithiation process. The X-ray diffraction pattern of the relithiated sample is compared with that of the LiFePO4 material before and after charging and discharging and that of the delithiated composite sample, as shown in Figure 4. It is clearly demonstrated that after relithiation, the structure of the delithiated sample is restored to that of the material before and after charging and discharging. Example 2

[0103] To perform electrochemical relithiation under conditions more suitable for large-scale production processes, the same type of electrode prepared in Example 1(b) was relithiated under galvanostatic conditions by applying a constant current of 10 mA between the cathode (FePO4 electrode) and the anode (an inert electrode, in this case a Pt mesh). The cathode potential was measured against an SCE reference electrode to determine the time required to relithiate nearly all of the delithiated FePO4. The electric field was carried out in the same type of solution as in Example 1(c) and at the same temperature (25°C).

[0104] The change in cathode potential as a function of electrolysis time is presented in Figure 5. The initial cathode potential was approximately 0 V vs. SCE and gradually shifted to more cathodic potentials as a function of time as the degree of lithiation of the cathode material increased. After approximately 1200 seconds, the electrode potential stabilized and remained constant at -1.4 V vs. SCE, indicating the onset of a new electrochemical reaction involving hydrogen evolution.

[0105] X-ray diffraction analysis of the electrode, presented in Figure 6, confirms a very high degree of FePO4 rearrangement in lithium ions, leading to a conversion rate to the LiFePO4 phase of nearly 100%. In fact, the FePO4 peak clearly changes to a LiFePO4 peak. Other phases represented in the diffractogram include the stainless steel support (2θ: 51, 54, and 90) and conductive graphite (2θ: 30).

[0106] The coulombic efficiency of relithiation was calculated to be greater than 80%, thus making it possible to determine the expected electrochemical behavior under the specific conditions of current density at the cathode presented in Example 1 and minimize side reactions (such as hydrogen evolution) to achieve high current efficiency. Example 3

[0107] To evaluate the effect of temperature on the lithiation process, two electrodes prepared in Example 1(b) were relithiated at temperatures of 25° C. and 50° C. in an aqueous solution of LiSO (0.5 M) adjusted to pH 7 by adding LiOH. The relithiation was carried out at a constant potential of −0.2 V vs. SCE.

[0108] The change in current between the cathode and anode as a function of time is presented in Figure 7. The higher rate of electrochemical relithiation at higher temperatures (50°C) results in a less pronounced current reduction at the beginning of the process and a shorter time to reach virtually zero current between the cathode and anode (at which point relithiation is nearly complete) compared to relithiation carried out at 25°C.

[0109] The X-ray diffractograms in Figure 8 confirm that both electrodes were highly relithiated, with less than 8% and undetectable residual FePO4, when tested at 25°C and 50°C, respectively. Example 4

[0110] To demonstrate the feasibility of directly using LiHCO3 solution generated during processing of spent battery electrode material, as described in published U.S. Patent Application No. 2019 / 0207275 (Amouzegar et al.), an electrode similar to that described in Example 1(b) was relithiated in an electrochemical cell using a 0.5 M aqueous LiHCO3 solution (generated by bubbling CO2 into a Li2CO3 suspension in water at 30 psi and room temperature). The cell was maintained under CO2 by gently bubbling CO2 gas into the electrolyte at pH 7 and 25°C.

[0111] Cathodic linear scan voltammetry of the electrode, performed at a rate of 1 mV / s between 0 V vs. OCP (open circuit potential) and −1.1 V vs. SCE, is shown in FIG. 9. The same type of relithiation reduction peak was observed as in Example 1 using LiSO solution, thereby demonstrating the feasibility of using LiHCO solution as a Li ion source during the relithiation process. Indeed, relithiation in bicarbonate-based electrolytes appears to exhibit better kinetics than sulfate-based electrolytes under similar conditions, as shown in FIG. 10. Compositional analysis by X-ray diffraction also indicates complete relithiation of the electrode (see FIG. 11). Example 5 (a) Preparation of FePO4 electrode

[0112] To demonstrate that the same technique can be easily applied using industrial current collectors used in commercial batteries, the same type of electrode prepared in Example 1(b) was prepared using a 15 μm thick aluminum current collector coated with a thin carbon layer. Dry iron phosphate powder was mixed with conductive carbon (Denka™ Black and VGCF™-H, 1:1 weight ratio) and PVDF binder in an 89:6:5 weight ratio and dispersed in N-methyl-2-pyrrolidone (NMP). The resulting suspension was coated onto an aluminum current collector and dried in an oven. The electrode had a coating weight of approximately 7.12 mg FePO4 / cm. 2 It was decided that this was the case. (b) Relithiation of FePO4 electrode material

[0113] To simulate an electrochemical setup operating in batch mode, a surface area of ​​37.5 cm 2 The electrode piece prepared in (a) was placed at a distance of 90 cm (using a SS support to maintain a constant distance from the counter electrode). 2The electrochemical cell was equipped with a platinum mesh and an SCE electrode as the counter and reference electrodes, respectively. The electrodes were prepared in LiSO (0.5 M), and the pH was adjusted to 9 using diluted LiOH. The cathode potential was controlled at -200 mV vs. SCE by a Princeton Applied Research potentiostat. Electrolysis was carried out under stirring at a temperature of 25 °C. Figure 12 shows the change in current as a function of time. When the current had decreased by 95% (in this case, after 2860 seconds), the electrolysis was stopped, and the working electrode was washed with deionized water and dried.

[0114] Comparison of the X-ray diffractograms (Figure 13) obtained from the original LiFePO4, delithiated FePO4, and relithiated LiFePO4 confirmed that the relithiation process had worked. In fact, the relithiated electrode consisted of 93% LiFePO4 and 7% FePO4. The relithiated LiFePO4 exhibits an orthorhombic crystal structure similar to that of the original LiFePO4. (c) Use of relithiated LiFePO4 electrodes in coin cells

[0115] The electrochemical properties of the relithiated electrode in (b) and commercial LiFePO4 material applied in the same manner onto an aluminum current collector were tested against metallic lithium in coin cells. The active material loading, calculated in mg of LiFePO4 per unit area, was 7.32 mg LiFePO4 / cm2 for the relithiated and raw LiFePO4 samples, respectively. 2 and 5.88 mg LiFePO4 / cm 2 Both batteries were cycled in duplicate between 2 V and 3.8 V at a discharge rate of 1 C and a charge rate of C / 4. Prior to the cycling procedure, a pre-charge / discharge cycle at C / 24 was applied to each coin. In addition, the cycling procedure required an initial discharge at C / 12, repeated every 20 cycles to monitor the health of the batteries.

[0116] Figure 14 shows the discharge capacity curves of these electrode materials. Both electrode materials appear to exhibit very good stability in terms of capacity (less than 2% loss after 100 cycles). After 100 cycles, the electrochemically relithiated LiFePO4 material and the control LiFePO4 material exhibited good and very similar discharge capacities at a 1C discharge rate, 138 and 143 mAh / g, respectively. The very small capacity difference may be related to slight differences in the active material loading; i.e., a slightly higher loading of the electrochemically relithiated material may result in slightly lower capacity. Example 6 (a) Preparation of Fe(II) / Fe(III) redox couple solution i. Preparation of Fe(II) and Fe(III) citrate solutions

[0117] A citric acid solution was prepared by dissolving 3.18 parts of acid in 200 parts of water. The solution was then alkalized to pH 6 using a 4M LiOH solution. After adjusting the lithium concentration to a minimum of 0.5M, the volume was adjusted to 250 parts by adding the required amount of Li2SO4.

[0118] Then, to prepare the ferrous solution, 0.56 parts of hydrated ferrous sulfate (FeSO4·7H2O) was dissolved in 100 parts of the previously prepared citric acid solution.

[0119] Similarly, for the ferric solution, 0.21 parts of hydrated ferric sulfate (Fe2(SO4)3·xH2O) was dissolved in 100 parts of the citric acid solution prepared above.

[0120] Each solution was filtered at 0.22 μm and then deoxygenated by argon injection before subsequent use. If necessary, the pH of each solution was adjusted to a value between 4.5 and 8 using LiOH or H2SO4. ii. Preparation of Fe(II) and Fe(III) EDTA solutions

[0121] An EDTA solution was prepared by dissolving 14.6 parts of the salt in its acid form in 100 parts of 1 M LiOH solution. The solution was then alkalized to pH 6 using 4 M LiOH solution. After adjusting the lithium concentration to a minimum of 0.5 M, the volume was adjusted to 250 parts by adding the required amount of Li2SO4.

[0122] Then, to prepare the ferrous solution, 2.78 parts of hydrated ferrous sulfate (FeSO4·7H2O) was dissolved in 100 parts of the previously prepared EDTA solution.

[0123] Similarly, for the ferric iron solution, 1 part hydrated ferric sulfate (Fe2(SO4)3·xH2O) was dissolved in 100 parts of the previously prepared EDTA solution.

[0124] Each solution was filtered at 0.22 μm and then deoxygenated by argon injection before subsequent use. If necessary, the pH of each solution was adjusted to a value between 4.5 and 8 using LiOH or H2SO4. (b) Examination of the electrochemical properties of the Fe(II) / Fe(III) redox couple

[0125] To determine the feasibility of reducing FePO4 to LiFePO4 by each redox couple prepared in section (a) of this example, the electrochemical behavior of Fe(III) solutions of each iron complex was tested in a three-electrode electrochemical setup.

[0126] Each Fe(III) solution was placed in the cathode compartment of a cell (under an argon blanket) with a glassy carbon disk (3 mm diameter) installed as the working electrode. A Pt mesh was placed in the electrolyte-filled anode compartment separated by a sintered glass disk. An Ag / AgCl electrode was used as the reference electrode.

[0127] Voltammograms were obtained using a Versastat™ 4 potentiostat (Princeton Applied Research). Figure 15 shows the results of the voltammograms at 2.05 V and 4.25 V vs. Li at a scan rate of 200 mV / s. + / Li 0 The figure shows the voltammogram of Fe(III)-EDTA solution at pH 4.5, where the oxidation peak of Fe(II)-EDTA is approximately 3.16 V vs. Li. A large separation (approximately 650 mV) can be observed between the oxidation peak of Fe(II)-EDTA and the reduction peak of Fe(III)-EDTA, indicating relatively slow reaction kinetics. However, the oxidation of Fe(II)-EDTA is approximately 3.16 V vs. Li. + / Li, which is the minimum potential of 3.45 V vs. Li required for the reduction of FePO4 to LiFePO4. + / Li is significantly negative.

[0128] Table 1 shows the potential values ​​at which oxidation currents were observed for each Fe(II)-based reductant prepared. [Table 1]

[0129] Polarization curves for EDTA-LiOH solution and Fe(III)-EDTA in LiOH are shown in Figure 16. It can be observed that the reduction peak of Fe(III)-EDTA appears at a less negative potential than the hydrogen evolution reaction in this medium, demonstrating the possibility of performing electrochemical regeneration of Fe(II)-EDTA from Fe(III)-EDTA with reasonable coulombic efficiency while minimizing the current associated with hydrogen formation. Example 7 (a) Relithiation of FePO4 with Fe(II)-EDTA

[0130] To demonstrate the use of Fe(II)-EDTA for the relithiation of FePO, 50 mL of a solution prepared according to a protocol similar to that described in Example 6 was contacted with 0.65 g of FePO prepared in Example 1(a) at 40 °C under an argon atmosphere. In this assay, the EDTA concentration was increased to satisfy an EDTA / Fe(II) molar ratio of 4, and the pH was adjusted to 8 with 1 M LiOH solution to maximize the solubility of the redox couple. The FePO powder was maintained in suspension using a magnetic stirrer, the concentration of Fe(II)-EDTA was reduced, and the appearance of Fe(III)-EDTA was monitored using an ORP sensor placed in suspension.

[0131] Figure 17 shows the evolution of the potential of the suspension during relithiation. An increase in potential can be observed upon oxidation of Fe(II)-EDTA to Fe(III)-EDTA (by reducing FePO to LiFePO).

[0132] At the end of the assay, the solid was isolated by vacuum filtration, washed, dried, and analyzed by X-ray diffraction (Rigaku MiniFlex™ 600). A comparison of the diagrams of LiFePO4 before charging and discharging, delithiated FePO4, and the solid obtained after contact with Fe(II)-EDTA solution in the presence of lithium salts (Figure 18) shows that the solid treated with Fe(II)-EDTA solution was completely relithiated to form LiFePO4. (b) Relithiation of FePO4 with Fe(II)-citrate

[0133] A relithiation assay was performed using an Fe(II)-citrate solution similar to the procedure presented for Fe(II)-EDTA in Section 7(a). In this example, the citrate / Fe(II) ratio was adjusted to 2 by adding ferrous sulfate, and the pH was adjusted to 6 by adding 1 M LiOH. 50 mL of the solution was contacted with 0.19 g of FePO4 prepared in Example 1(a) at 40°C under an argon atmosphere. The FePO4 powder was kept in suspension using a magnetic stirrer, the concentration of Fe(II)-citrate was reduced, and the appearance of Fe(III)-citrate was monitored using an ORP sensor placed in suspension (Figure 19).

[0134] At the end of the assay, the solid was isolated by vacuum filtration, washed, dried, and analyzed by X-ray diffraction. As in the case of the solid of Example 7(a), a comparison of the diffractograms of LiFePO4 before charging and discharging, delithiated FePO4, and the solid obtained after contact with Fe(II)-citrate solution in the presence of lithium salt (Figure 20) shows that FePO4 was completely relithiated to form LiFePO4. Example 8 (a) Electrochemical regeneration of Fe(III)-EDTA in Fe(II)-EDTA

[0135] A volume of 800 mL of Fe(III)-EDTA solution, with initial Fe(III), Li2SO4, and EDTA concentrations of 0.08 M, 1 M, and 0.2 M, respectively, and its pH adjusted to 6.3 with LiOH, was placed in the catholyte reservoir of an ICI-FM01 filter press electrolysis cell assembly under the protection of inert gas (Ar). The FM01 cell was assembled with a graphite cathode, a titanium anode coated with an indium oxide layer, and a Nafion™ 324 type cation membrane. The geometric active surface of all components (cathode, anode, and membrane) was 64 cm 2 It was.

[0136] The flow rates of the catholyte and anolyte were 2 L / min, and the linear velocity of the catholyte was approximately 16 cm / s. The electrolysis temperature was controlled at approximately 50 °C by recirculating a heat transfer fluid heated by a thermostatic bath (PolyScience #PD07R-20-A11B) through heat exchangers installed in the anolyte and catholyte tanks. Electrolysis was carried out by setting the voltage between the anode and cathode to 1.65 V (Instek #SPS-1230). An ORP sensor was placed in the catholyte tank to monitor the development of the solution potential.

[0137] The concentration of Fe(III)-EDTA in each sample during electrolysis was determined by diluting 1 mL of the sample in 10 mL of 0.2 M EDTA in LiOH solution (pH 7.70) and measuring the absorbance of the solution at 470 nm. The total iron concentration was determined by making a 1:1000 dilution in water, adding FerroVer™ iron reagent from Hach, and measuring the absorbance at 510 nm. The difference between total iron and Fe(III)-EDTA allowed for the evaluation of the concentration of Fe(II)-EDTA formed during electrolysis. Figure 21 shows the evolution of the Fe(II)-EDTA concentration and the redox potential of the solution for 240 minutes of electrolysis.

[0138] It can be observed that as the concentration of Fe(II)-EDTA (formed by reduction of Fe(III)-EDTA on the cathode) increases in the catholyte, the redox potential of the solution decreases. During electrolysis, the total cell current decreased from 600 mA to 300 mA.

[0139] It should be noted that it is possible to increase the current density of the cell by improving mass transfer in the cell by well-known methods (use of turbulence promoters, increased temperature, etc.) and by increasing the effective surface area of ​​the cathode (e.g., by use of materials in the form of felts, grids, etc.) It will be apparent that the choice of cathode material is not limited to graphite, and other cathode materials (preferably those with high hydrogen overvoltages) can be used. (b) Relithiation of FePO4 with electrochemically generated Fe(II)-EDTA

[0140] Relithiation of FePO4 was then carried out using the Fe(II)-EDTA solution obtained during electrolysis using the FMO1 cell in (a). 50 mL of the solution was contacted with 0.32 g of FePO4 prepared in Example 1(a) at 40 °C under an argon atmosphere. The FePO4 powder was kept in suspension using a magnetic stirrer to reduce the concentration of Fe(II)-EDTA, and the appearance of Fe(III)-EDTA was monitored using an ORP sensor placed in the suspension. Figure 22 shows the change in potential of the suspension during relithiation. An increase in potential can be observed depending on the oxidation of Fe(II)-EDTA to Fe(III)-EDTA (by reducing FePO4 to LiFePO4).

[0141] At the end of the assay, the solid was isolated by vacuum filtration, washed, dried, and analyzed by X-ray diffraction. A comparison of the LiFePO4 before charging and discharging, the delithiated FePO4, and the solid obtained after contact with the Fe(II)-EDTA solution generated by electrolysis in the presence of lithium salts (Figure 23) shows that the solid was completely relithiated to form LiFePO4.

[0142] Numerous modifications can be made to any of the above-described embodiments without departing from the intended scope of the invention. Any reference, patent or document in the scientific literature referred to in this application is hereby incorporated by reference in its entirety for all purposes. The present invention provides, for example, the following items. (Item 1) 1. A method for electrochemical alkalinization of an electrochemically active material, comprising: a) obtaining a working electrode comprising a working electrode material on a current collector, the working electrode material comprising the electrochemically active material, and optionally a binder and / or an electronically conductive material; b) introducing said working electrode together with an inert counter electrode and a solution comprising an alkali metal salt in a solvent into an electrochemical reactor in continuous and / or batch mode; c) applying a direct current between the working electrode and the counter electrode to obtain an alkalized electrode comprising an alkalized electrochemically active material; d) removing the alkalized electrode obtained in step (c) from the electrochemical reactor; Including, The method, wherein the electrochemically active material comprises a metal oxide (including complex oxides), a metal phosphate, a metal silicate, a metal sulfate, or a partially alkalized metal oxide (including complex oxides), a metal phosphate, a metal silicate, or a metal sulfate. (Item 2) 2. The method of claim 1, wherein the electrochemically active material is alkali metal deficient. (Item 3) The electrochemically active material of Formula I: A w-p M n+p x X y O z (I) with an alkalized electrochemically active material of Formula II: A w M n x X y O z (II) (In the formula, A is an alkali metal; M is a transition metal, a post-transition metal, or a combination thereof; X is selected from P, Si and S; O is an oxygen atom, w is a number selected from 1 to 4 and corresponds to the number of A atoms in the alkalized electrochemically active material; x is a number selected from 1 to 5 and corresponds to the number of M atoms; y is a number between 0 and 2, and if y is zero, then X is absent; z is selected from the group consisting of 1 to 12 and corresponds to the number of oxygen atoms in the formula; n indicates the oxidation state of M; p in formula I represents both the average number of missing A atoms and the average increase in oxidation state of M, where p≦w (preferably 0 <p≦1)であり、 (w, y, z, n, and p are chosen to give a stable, electrically neutral compound) 3. The method according to item 1 or 2, comprising converting (Item 4) p=w, A in formula I is absent, and said electrochemically active material of formula I is represented by formula I(a):M n+p x X y O z Item 3. The method according to Item 3, (Item 5) 5. The method according to item 3 or 4, wherein X is phosphorus, y is 1 and z is 4. (Item 6) 6. The method according to any one of items 3 to 5, wherein M is Fe, Ni, Mn, Co or a combination of at least two thereof. (Item 7) 5. The method according to item 3 or 4, wherein M is V, Mn, Ni, Co, Fe, Cr, Ti, Zr, Sn or a combination of at least two thereof. (Item 8) 8. The method of any one of items 3, 4 and 7, wherein y is 0 and X is absent. (Item 9) 9. The method of any one of items 3 to 8, wherein A is Li, Na or K, or A is Li. (Item 10) 10. The method of any one of items 1 to 9, wherein the electrochemically active material or alkalized electrochemically active material is further doped by partially substituting M with a transition metal (e.g., Ti, V, Cr, Mn, Fe, Co, Ni, Cu, Zn, Mo, W or Y) and / or a non-transition metal (e.g., Mg, Ca, Sr, Al, Sb or Sn). (Item 11) 11. The method according to any one of items 1 to 10, wherein the solvent is selected from an aqueous solvent, an organic solvent or a mixture thereof. (Item 12) Item 12. The method of item 11, wherein the solvent is water. (Item 13) 13. The method of any one of items 1 to 12, wherein the alkali metal salt comprises at least one alkali metal sulfate, carbonate, bicarbonate, hydroxide, nitrate, acetate, oxalate, or phosphate. (Item 14) Item 14. The method of item 13, wherein the alkali metal salt is an alkali metal sulfate. (Item 15) 14. The method of claim 13, wherein the alkali metal salt is an alkali metal bicarbonate. (Item 16) 16. The method of claim 15, wherein steps (b) and / or (c) are carried out in the presence of gaseous carbon dioxide. (Item 17) The pH of the solution is adjusted to a pH compatible with the electrochemically active material of step (a) (e.g., FePO 4 17. The method according to any one of items 1 to 16, further comprising the step of: (in this case, the pH is adjusted to 5 to 9, preferably 6 to 7.5). (Item 18) 18. The method according to any one of items 1 to 17, wherein the alkali metal of the alkali metal salt is lithium. (Item 19) 19. The method according to any one of items 1 to 18, wherein step (c) is carried out in continuous or batch mode. (Item 20) 20. The method of claim 19, wherein step (c) is carried out in a continuous mode, the working electrode being introduced to one side of the electrochemical reactor and moving along a predetermined path to remain at a constant distance from the counter electrode while moving along the electrochemically active area of ​​the electrochemical reactor to maintain a relatively uniform current and potential distribution. (Item 21) 21. The method of claim 20, wherein the rate at which the working electrode moves through the electrochemical reactor is adjusted based on the residence time required for a given level of alkalinization at an applied current density. (Item 22) 22. The method according to any one of items 1 to 21, wherein step (c) is carried out in a mode in which the current density between the working electrode and the counter electrode is controlled. (Item 23) 22. The method according to any one of items 1 to 21, wherein step (c) is carried out in a voltage controlled mode between the working electrode and the counter electrode. (Item 24) The electrochemically active material is FePO 4 or partially delithiated LiFePO 4 and the current density at the working electrode is 0.001 A / g to 100 A / g active LiFePO 4 range, preferably 1 to 15 A / g active LiFePO 4 24. The method according to any one of items 1 to 23, wherein the (Item 25) 25. The method according to any one of items 1 to 24, wherein step (c) is carried out at a temperature in the range of 5°C to 90°C, preferably 25°C to 50°C. (Item 26) 26. The method of any one of items 1 to 25, wherein step (b) further comprises a reference electrode. (Item 27) 27. The method of any one of the preceding claims, further comprising the step (e) of washing the alkalized electrochemically active electrode material of the alkalized electrode. (Item 28) 28. The method of any one of the preceding claims, further comprising drying the alkalized electrochemically active material of the alkalized electrode. (Item 29) 29. The method of any one of items 1 to 28, wherein the working electrode material comprises a binder, the binder being selected from fluorine-containing polymer binders and other solvating polymer binders. (Item 30) 30. The method according to item 29, wherein the binder is a fluorine-containing polymer binder (such as PVDF, HFP, PVDF-co-HFP or PTFE). (Item 31) 30. The method of claim 29, wherein the binder is a solvating polymer binder selected from poly(ethylene oxide), poly(propylene oxide), poly(dimethylsiloxane), poly(alkylene carbonate), poly(alkylene sulfone), poly(alkylene sulfamide), polyurethane, poly(vinyl alcohol), and copolymers (block, random, alternating, statistical, etc.) comprising at least one of the foregoing polymers or monomers thereof, and combinations of at least two thereof, wherein the polymer is optionally branched and / or crosslinked. (Item 32) 32. The method of any one of items 1 to 31, wherein the working electrode material comprises the electronically conductive material, and the electronically conductive material is selected from the group consisting of carbon black (such as Ketjen™ black and Super P™), acetylene black (such as Shawinigan black and Denka™ black), graphite, graphene, carbon fibers or nanofibers (such as vapor-grown carbon fibers (VGCF)), carbon nanotubes (e.g., single-walled or multi-walled), and combinations of at least two thereof. (Item 33) 33. The method of any one of items 1 to 32, wherein the working electrode material is an electrode material (e.g., a positive electrode material) of a used battery, and step (a) comprises at least one step of separating the electrode material from other elements of the used battery and applying the material to a current collector. (Item 34) 33. The method of any one of the preceding items, wherein step (a) comprises mixing the electrochemically active material, the binder and optionally the electronically conductive material in a solvent, applying to the current collector and drying. (Item 35) 35. An electrode obtainable by the method according to any one of items 1 to 34. (Item 36) 1. A method for electrochemical alkalinization of an electrochemically active material, comprising: (i) adding the electrochemically active material to a solution containing a reducing agent and an alkali metal salt in a solvent to form an alkalized electrochemically active material; (ii) separating the alkalized electrochemically active material from the solution; (iii) electrochemically treating the solution separated in step (ii) to regenerate the reducing agent in the solution; A method comprising: (Item 37) 37. The method of claim 36, wherein the electrochemically active material and the alkalized electrochemically active material are as described in any one of items 1 to 10. (Item 38) 38. The method of claim 36 or 37, wherein the reducing agent is the reducing member of a redox pair having a lower redox potential than the electrochemically active material (alkali metal deficient) to be reduced. (Item 39) 39. The method of claim 38, wherein the redox couple is Fe(II) / Fe(III) based. (Item 40) The redox couple is [Fe(CN) 6 ] 3- / [Fe(CN) 6 ] 4- , [Fe(nta)] / [Fe(nta)] - , [Fe(tdap)] 2- / [Fe(tdap)] 3- , [Fe(edta)] - / [Fe(edta)] 2- , [Fe(citrate)] / [Fe(citrate)] - , [Fe(TEOA)OH] - / [Fe(TEOA)OH] - , and [Fe(oxalate)] + Item 39. The method of item 39, wherein the compound is selected from the group consisting of Fe(oxalate) and Fe(oxalate). (Item 41) 41. The method of any one of items 36 to 40, wherein step (i) further comprises deoxygenating the solution. (Item 42) 42. The method according to any one of items 36 to 41, wherein steps (i) and / or (iii) are carried out in the presence of a gas that excludes the presence of oxygen. (Item 43) 43. The method of any one of items 36 to 42, wherein the alkali metal salt is selected from alkali metal sulfates, carbonates, bicarbonates, hydroxides, nitrates, acetates, oxalates, phosphates, and combinations thereof. (Item 44) Item 44. The method of item 43, wherein the alkali metal salt is an alkali metal sulfate. (Item 45) 44. The method of claim 43, wherein the alkali metal salt is an alkali metal bicarbonate. (Item 46) Item 46. The method according to item 45, wherein step (i) is carried out in the presence of gaseous carbon dioxide. (Item 47) 47. The method of any one of items 36 to 46, wherein the alkali metal of the alkali metal salt is lithium. (Item 48) The pH of the solution is adjusted to a pH compatible with the electrochemically active material of step (i) (e.g., FePO 4 48. The method according to any one of items 36 to 47, further comprising the step of adjusting the pH to 5 to 9, preferably 6 to 7.5. (Item 49) 49. The method of any one of items 36 to 48, wherein the solvent is an aqueous solvent. (Item 50) 50. The method according to any one of items 36 to 49, wherein the electrochemical treatment step (iii) is carried out in an electrolysis cell by passing an electric current between at least one cathode and at least one anode. (Item 51) 51. The method of claim 50, wherein the electrolysis cell includes at least one ionic or nonionic separator disposed between the anode and the cathode to protect the regenerated reducing agent. (Item 52) 52. The method of claim 50 or 51, wherein the electrolytic cell further comprises a system for keeping the solution deoxygenated. (Item 53) 53. The method of claim 52, wherein the system comprises a non-oxygen-containing gas such as carbon dioxide, nitrogen, or argon. (Item 54) 54. The method according to any one of items 36 to 53, wherein the electrochemically active material is in the form of a suspension in the solution of step (i) and step (ii) is carried out by filtration, centrifugation or decantation, optionally followed by a washing step. (Item 55) 54. The method according to any one of items 36 to 53, wherein the electrochemically active material is comprised in an electrode material on a current collector, and step (ii) comprises removing the electrode from the solution followed by an optional washing step. (Item 56) Item 56. The method of item 55, wherein the electrode material further comprises a binder. (Item 57) 57. The method of claim 56, wherein the binder is selected from fluorine-containing polymer binders and solvating polymer binders. (Item 58) 58. The method according to item 57, wherein the binder is a fluorine-containing polymer binder (such as PVDF, HFP, PVDF-co-HFP or PTFE). (Item 59) 58. The method of claim 57, wherein the binder is a solvating polymer binder selected from poly(ethylene oxide), poly(propylene oxide), poly(dimethylsiloxane), poly(alkylene carbonate), poly(alkylene sulfone), poly(alkylene sulfamide), polyurethane, poly(vinyl alcohol), and copolymers (block, random, alternating, statistical, etc.) comprising at least one of the foregoing polymers or monomers thereof, and combinations of at least two thereof, wherein the polymer is optionally branched and / or crosslinked. (Item 60) 60. The method of any one of items 55 to 59, wherein the electrode material further comprises an electronically conductive material selected from the group consisting of carbon black (such as Ketjen™ black and Super P™), acetylene black (such as Shawinigan black and Denka™ black), graphite, graphene, carbon fibers or nanofibers (such as vapor-grown carbon fibers (VGCF)), carbon nanotubes (e.g., single-walled or multi-walled), and combinations of at least two thereof. (Item 61) 61. The method of any one of items 36 to 60, further comprising the step of drying the alkalized electrochemically active material. (Item 62) 62. An electrode comprising the alkalized electrochemically active material obtainable by the method according to any one of items 36 to 61, a binder and, optionally, an electronically conductive material. (Item 63) 63. An electrochemical cell comprising a negative electrode, a positive electrode and an electrolyte, wherein the positive electrode is the electrode according to item 35 or 62. (Item 64) 64. A battery comprising at least one electrochemical cell according to item 63. (Item 65) Item 65. The battery of item 64, wherein the battery is a lithium battery or a lithium ion battery. (Item 66) 66. An electrochemical cell according to item 63 or a battery according to item 64 or 65 for use in a portable device such as a mobile phone, camera, tablet or laptop, an electric or hybrid vehicle, or renewable energy storage.

Claims

1. 1. A method for electrochemical alkalinization of an electrochemically active material, comprising: a) obtaining a working electrode comprising a working electrode material on a current collector, the working electrode material comprising the electrochemically active material, optionally a binder and / or an electronically conductive material, the electrochemically active material being alkali metal deficient; b) introducing said working electrode into an electrochemical reactor in continuous and / or batch mode together with an inert counter electrode and a solution comprising an alkali metal salt in a solvent, said alkali metal salt being an alkali metal sulfate or an alkali metal bicarbonate; c) applying a direct current between the working electrode and the counter electrode to obtain an alkalized electrode comprising an alkalized electrochemically active material; d) removing the alkalized electrode obtained in step (c) from the electrochemical reactor; Including, The method, wherein the electrochemically active material comprises a metal oxide, a metal phosphate, a metal silicate, a metal sulfate, or a partially alkalized metal oxide, metal phosphate, metal silicate, or metal sulfate.

2. The electrochemically active material of Formula I: A w-p M n+p x X y O z (I) with an alkalized electrochemically active material of Formula II: A w - n x 8 y O z (A) (In the formula, A is an alkali metal; M is a transition metal, a post-transition metal, or a combination thereof; X is selected from P, Si and S; O is an oxygen atom, w is a number selected from 1 to 4 and corresponds to the number of A atoms in the alkalized electrochemically active material; x is selected from the number 1 to 5 and corresponds to the number of M atoms; y is selected from the numbers 0 to 2, and when y is zero, X is absent; z is selected from the number 1 to 12 and corresponds to the number of oxygen atoms in the formula; n indicates the oxidation state of M; p in formula I denotes both the average number of missing A atoms and the average increase in oxidation state of M, where p≦w; w, y, z, n and p are selected to result in a stable, electrically neutral compound. , which includes converting 10. The method of claim 1, wherein the electrochemically active material or alkalized electrochemically active material is optionally further doped by partial substitution of M with a transition metal and / or a non-transition metal.

3. The method of claim 2 , wherein p is in the range 0<p≦1.

4. p=w, A in formula I is absent, and said electrochemically active material of formula I has the formula I(a): M n+p x X y O z The method according to claim 2 or 3, wherein

5. 4. The method of claim 2 or 3, wherein A is Li, Na or K.

6. The method of claim 5 wherein A is Li.

7. X is phosphorus, y is 1, and z is 4; or y is 0 and X is absent; 7. The method according to any one of claims 2 to 6.

8. 8. The method of claim 2, wherein M is Fe, Ni, Mn, Co, or a combination of at least two of these.

9. 8. The method of any one of claims 2 to 7, wherein M is V, Mn, Ni, Co, Fe, Cr, Ti, Zr, Sn or a combination of at least two thereof.

10. 9. The method of claim 1, wherein the solvent is selected from an aqueous solvent, an organic solvent, or a mixture thereof.

11. The method of claim 10 wherein the solvent is water.

12. 12. The method of any one of claims 1 to 11, wherein the alkali metal salt is an alkali metal bicarbonate and steps (b) and / or (c) are carried out in the presence of gaseous carbon dioxide.

13. 13. The method of any one of claims 1 to 12, wherein the alkali metal of the alkali metal salt is lithium.

14. 14. The method of any one of claims 1 to 13, further comprising adjusting the pH of the solution to a pH compatible with the electrochemically active material of step (a).

15. The electrochemically active material of step (a) is FePO 4 and the pH is adjusted to 5 to 9.

16. 16. The method of claim 15, wherein the pH is adjusted to between 6 and 7.

5.

17. 17. The method of any one of claims 1 to 16, wherein step (c) is carried out in continuous or batch mode.

18. 18. The method of claim 17, wherein step (c) is carried out in a continuous mode, wherein the working electrode is introduced to one side of the electrochemical reactor and moved along a predetermined path to remain at a constant distance from the counter electrode while moving along an electrochemically active area of ​​the electrochemical reactor to maintain a relatively uniform current and potential distribution.

19. 20. The method of claim 18, wherein the rate at which the working electrode moves through the electrochemical reactor is adjusted based on the residence time required for a desired level of alkalinization at an applied current density.

20. 20. The method of claim 1, wherein step (c) is performed in a mode in which the current density between the working electrode and the counter electrode is controlled, or step (c) is performed in a mode in which the voltage between the working electrode and the counter electrode is controlled.

21. The electrochemically active material is FePO 4 or partially delithiated LiFePO 4 and the current density at the working electrode is 0.001 A / g to 100 A / g active LiFePO 4 21. The method of claim 1, wherein the solubility of the solubility of the

22. The current density at the working electrode is 1 to 15 A / g active LiFePO 4 22. The method of claim 21 , wherein the range is:

23. Step (c) is carried out at a temperature in the range of 5°C to 90°C; and / or step (b) further comprises a reference electrode; and / or the method further comprising the step (e) of washing the alkalized electrochemically active electrode material of the alkalized electrode; and / or 23. The method of any one of claims 1 to 22, wherein the method further comprises the step of drying the alkalized electrochemically active material of the alkalized electrode.

24. 24. The method of claim 23, wherein step (c) is carried out at a temperature in the range of 25°C to 50°C.

25. 25. The method of claim 1, wherein the working electrode material comprises a binder, the binder being selected from fluorine-containing polymer binders and other solvating polymer binders.

26. 26. The method of any one of claims 1 to 25, wherein the working electrode material comprises the electronically conductive material, and the electronically conductive material is selected from the group consisting of carbon black, acetylene black, graphite, graphene, carbon fibers or nanofibers, carbon nanotubes, and combinations of at least two thereof.

27. the working electrode material is an electrode material of a spent battery, and step (a) comprises at least one step of separating the electrode material from other elements of the spent battery and applying the electrode material to the current collector; or 27. The method of any one of claims 1 to 26, wherein step (a) comprises mixing the electrochemically active material, the binder, and optionally the electronically conductive material in a solvent, applying to the current collector, and drying.

28. The method described in claim 27, wherein the electrode material of the used battery is a positive electrode material.

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