Alluaudited structure material for battery electrode
A simplified synthesis method for alluaudite materials using high-energy grinding and ionothermal synthesis addresses the complexity of existing methods, resulting in electrodes with improved performance for lithium-ion, sodium-ion, and potassium-ion batteries.
Patent Information
- Application Number
- FR2024003213
- Authority / Receiving Office
- FR · FR
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-03-28
- Publication Date
- 2025-10-03
AI Technical Summary
Existing methods for synthesizing alluaudite materials for battery electrodes are complex due to the need for multiple precursors and reactions, leading to impurities and non-stoichiometric compositions, which complicates their industrial application.
A simplified method involving high-energy grinding and ionothermal synthesis under inert conditions to produce a crystalline material with a phosphated and sulfated alluaudite structure, comprising transition metals and alkali metals, ensuring optimal oxidation state control and electrochemical performance.
The method enables the production of electrodes with good charging and discharging behavior, high capacity, and stability over battery cycles, suitable for lithium-ion, sodium-ion, and potassium-ion batteries.
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Abstract
Description
Title of the invention: Alluaudited structure material for battery electrode Technical field
[0001] The present invention relates to a material of alluaudite structure intended to form a battery electrode, in particular of a sodium-ion battery. It also relates to a method of manufacturing such a material. Prior art
[0002] Crystalline polyanionic materials are materials of interest for the battery industry, in particular for forming a positive electrode of a sodium-ion, lithium-ion or potassium-ion battery. Among them, the materials of alluaudite and NASICON structure are promising, thanks in particular to a high operating voltage and chemical and thermal stability during charge and discharge cycles.
[0003] It is known from Richardson et al., Journal of Power Sources, 2003, vol. 119-121, pp. 262-265 that sodium (Na)-containing phosphate-containing alluaudite materials such as Na2FeMn2(PO4)3 and LiNaFeMn2(PO4)3 exhibit electrochemical activity. It is also known from Barpanda et al., Nat Commun, 2014, 5, 5:4358 that a sulfated alluaudite material of formula Na2Fe2(SO4)3 has the largest potential difference with Li for the Fe2+ / Fe3+ couple, while delivering a capacity of more than 100 mAh / g. Several methods are known for synthesizing alluaudite structure materials, such as solid-state synthesis assisted by grinding to thoroughly mix solid precursors, soft chemistry syntheses such as the Pechini method, ionothermal synthesis, or hydrothermal synthesis. However, despite the range of known methods for synthesizing alluaudite materials, complete reactions are difficult to achieve.In other words, the known materials contain impurities and / or are of non-stoichiometric compositions.
[0004] It is known from J. Lu et al. Chemistry of Materials, 2017, 29, 3597-3602 a phosphated and sulfated alluaudite material of formula NaxFey(PO4)3 z(SO4)z. For z=2 the material has a composition Na237Fe2 i5PO4(SO4)2 with approximately 15% of Fe3+ ions. The synthesis of this material requires seven precursors and the implementation of six reactions, consisting of forming two intermediate phases, precursors in turn, Na2Fe3(PO4)3 and Na256Fei 72(SO4)3, and not ensuring that all the iron ions are in a +2 oxidation state. The application of the synthesis of this material of structure Na2 37Fe2 i5PO4(SO4)2 of alluaudited structure to an industrial context for the manufacture of battery electrodes is made complex by the number of precursors and reactions necessary to implement. The control of the degree of oxidation of iron in a +2 state allows obtaining electrodes with an optimal theoretical capacity.
[0005] There is therefore a need for a crystalline material with a phosphated and sulfated alluaudite structure, comprising an oxidizable transition metal and an alkali metal which can be reversibly deintercalated and reintercalated from the host structure, and with a method for manufacturing this material which can be implemented industrially in a simple manner. Presentation of the invention
[0006] The invention relates to a material with an alluaudite crystallographic structure of formula
[0007] A3_ôlM2+ô2(PO4)n(SO4)m
[0008] in which: - M is a transition metal chosen from iron (Fe), manganese (Mn), cobalt (Co), nickel (Ni) and their mixtures, - A is an alkali chosen from sodium (Na), lithium (Li), potassium (K) and their mixtures, - the average oxidation state d of the transition metal M being between +2 and +2.30, - n, m, ôl and ô2 are coefficients which meet the following conditions: • 0 < ôl < 0.60, • 0 < Ô2 < 0.30 and • n + m =3 with n > 0 and m > 0.
[0009] Advantageously, the material according to the invention makes it possible to produce an electrode exhibiting good behavior during charging and discharging, and over the course of battery cycling, as well as good capacity, in particular linked to the degree of oxidation of the transition metal such as according to the invention.
[0010] The invention also relates to a manufacturing method comprising: (a) the preparation of a starting charge comprising, as constituents, phosphate groups PO4, sulfate groups SO4, the alkali metal A and the transition metal M,
[0011] b) the implementation, under an inert atmosphere, of at least one technique chosen from grinding, in particular high-energy grinding, sintering and iono-thermal synthesis, to cause the constituents of the starting charge to react with each other until a material is obtained, the composition of the starting charge in step a) being determined such that the material obtained in step b) is according to the invention.
[0012] Furthermore, the invention relates to a battery cathode, in particular chosen from a lithium-ion (Li-ion) battery cathode, a sodium-ion (Na-ion) battery cathode, a potassium-ion (K-ion) battery cathode, a lithium (Li) battery cathode, a sodium (Na) battery cathode and a potassium (K-ion) battery cathode. potassium (K), said battery cathode comprising the material according to the invention or obtained according to the method of the invention.
[0013] Finally, the invention relates to a battery, preferably chosen from a lithium-ion (Li-ion) battery, a sodium-ion (Na-ion) battery, a potassium-ion (K-ion) battery, a sodium (Na) battery, a lithium (Li) battery, a potassium (K) battery, the battery comprising a battery cathode according to the invention.
[0014] The expression "between A and B" is strictly equivalent to "greater than or equal to A and less than or equal to B". Material
[0015] The alluaudite structure is a structure described in the C2 / c space group, as described for example in J. Lu et al. Chemistry of Materials, 2017, 29, 3597-3602, after having been first proposed as a possible alternative to the P2j / c space group in Barpanda et al. Nat Commun, 2014, 5, :4358.
[0016] Preferably, the transition metal M is chosen from iron (Fe), manganese (Mn), cobalt (Co), nickel (Ni) and mixtures thereof. In particular, M may be iron (Fe) or manganese (Mn). Preferably, M is iron (Fe).
[0017] Preferably, the alkali metal A is chosen from sodium (Na), lithium (Li), potassium (K) and mixtures thereof. A is preferably sodium (Na).
[0018] In particular, n and m are real numbers. In particular, n and m may be integers. Preferably n is equal to 1 and m is equal to 2.
[0019] According to the variant where the transition metal M is a mixture of at least two metals chosen from Fe, Mn, Co and Ni, the “average oxidation state” d of the transition metal M is the arithmetic mean of the oxidation states of each of said metals. For example, if M is a mixture of Fe and Mn, the average oxidation state of M is the arithmetic mean of the oxidation state of iron and the oxidation state of Mn. Obviously, according to the variant where the transition metal M is a single metal, its average oxidation state d is equal to its oxidation state.
[0020] Preferably, the average oxidation state d of the transition metal is less than or equal to +2.20, or even less than or equal to +2.14, or even less than or equal to +2.08.
[0021] ôl may be greater than 0.10, or even greater than 0.20, or even greater than 0.30, or even greater than 0.40, or even greater than 0.50.
[0022] ôl may be less than 0.50, or even less than 0.40, or even less than 0.30, or even less than 0.20, or even less than 0.10.
[0023] ô2 may be greater than 0.05, or even greater than 0.10, or even greater than 0.15, or even greater than 0.20, or even greater than 0.25.
[0024] ô2 may be less than 0.25, or even less than 0.20, or even less than 0.15, or even less than 0.10, or even less than 0.05.
[0025] Preferably, the coefficient ôl is equal to twice the coefficient ô2. Process
[0026] The starting charge may comprise, as constituents, A(0H) and H3PO4.
[0027] According to a preferred variant, the constituents of the starting charge comprise a phosphate precursor comprising phosphate groups PO4 and the alkali metal A and a sulfate precursor comprising sulfate groups SO4 and the transition metal M. In step b), the implementation of the technique causes the sulfate precursor and the phosphate precursor to react with each other.
[0028] The molar ratio A / PO4 of the number of moles of the alkali metal to the number of moles of phosphate groups PO4 in the phosphate precursor can be between 1 and 3, in particular equal to 3.
[0029] The molar ratio M / SO4 of the number of moles of the alkali metal to the number of moles of sulfate groups SO4 in the sulfated precursor can be between 1 and 2, in particular equal to 1.
[0030] The phosphate precursor may be of formula A3PO4.
[0031] According to the variant where A is Na, the phosphate precursor can be Na3PO4.
[0032] According to the variant where A is Li, the phosphate precursor can be Li3PO4.
[0033] According to the variant where A is K, the phosphate precursor can be K3PO4.
[0034] According to the variant where A is a mixture of at least two alkalis among Na, Li and K, the phosphate precursor may be a mixture of at least two compounds among Na3PO4, Li3PO4, and K3PO4 respectively.
[0035] The sulfated precursor may be of formula MSO4.
[0036] According to the variant where M is Fe, the sulfated precursor can be FeSO4.
[0037] According to the variant where M is Mn, the sulfated precursor can be MnSO4.
[0038] According to the variant where M is Co, the sulfated precursor can be CoSO4.
[0039] According to the variant where M is Ni, the sulfated precursor can be NiSO4.
[0040] According to the variant where M is a mixture of at least two metals among Fe, Mn, Co and Ni, the sulfate precursor may be a mixture of at least two compounds among FeSO4, MnSO4, CoSO4 and NiSO4 respectively.
[0041] The sulfated precursor may be dehydrated. Preferably, it is dehydrated prior to carrying out step a). The dehydration of the hydrated precursor is carried out under an inert atmosphere. It may be carried out at a temperature of between 150°C and 400°C, in particular 250°C, for a period of more than 2 hours, in particular 3 hours.
[0042] In step a), the starting charge may comprise, or even consist of, a mixture of dehydrated and phosphated sulfated precursors, in particular formed from a powder comprising, or even consisting of, particles made of the sulfated precursor and a powder comprising, or even consisting of, particles made of the phosphated precursor.
[0043] In step b), the atmosphere is inert, which limits the oxidation of the transition metal. It is preferably formed of argon (Ar).
[0044] Step b) may comprise or consist of grinding the starting charge. This makes it possible to obtain primary particles of small size, for example less than 0.1 μm, which are particularly well suited to an electrochemical application. Furthermore, this technique has the advantage of simple implementation.
[0045] Grinding to mix the constituents of the starting charge, in particular the phosphate and sulfate precursors, can be carried out in a ball mill, a planetary mill or a roller mill. Synthesis by grinding can be carried out in a high-energy planetary mill.
[0046] Preferably, the mixing by grinding can be carried out in a ball mill, for a period of between 0.5 h and 5 h, for example 1 h. The ratio of the mass of the balls to the mass of the starting charge, in particular to the total mass of the phosphate and sulfate precursors, can be between 7 and 30, for example equal to 20.
[0047] Preferably, the synthesis by grinding is carried out with a high-energy planetary mill, for a duration of between 3 h and 40 h, for example equal to 10 h.
[0048] Step b) may include annealing after grinding. In particular, the method may include preparing a preform by compacting the ground starting charge, then annealing the preform. The material is thus quickly formed. In addition, it can be easily transformed subsequently, for example by carrying out additional grinding to form a powder.
[0049] Preferably, the annealing is carried out at a temperature between 370°C and 480°C, for example 450°C and for a duration between 8 and 19 h, for example 15 h.
[0050] Preferably, the sintering is subsequent to the grinding, the method comprising in particular the preparation of a preform by compacting the ground starting charge and the sintering of the preform.
[0051] The implementation of step b) may include an ionothermal synthesis from the starting charge, optionally ground. By adapting the parameters of the ionothermal synthesis, it is possible to modify the morphology of the particles of the material obtained.
[0052] Preferably, the ionothermal synthesis comprises the dispersion of the starting charge, optionally ground, in an ionic solvent, being for example l-Ethyl-2,3-dimethylimidazolium-bis(trifluoromethanesulfonyl)imide, and the heating of the dispersion at a temperature between 160°C and 250°C, for example equal to 250°C, and for a duration between 5 h and 48 h, for example 24 h. The ionic solvent can be reused. Examples
[0053] The following non-limiting examples are given for the purpose of illustrating the invention.
[0054] In the examples, the following raw materials were used:
[0055] - phosphate precursor: Na3PO4 powder of reference 04277 marketed by the Sigma-Aldrich Company;
[0056] - sulfated and hydrated precursor: FeSO4-7H2O powder of reference F7002 commercial commercialized by the Sigma-Aldrich company.
[0057] In all the examples according to the invention, the sulfated precursor was first dehydrated in an argon oven or in a vacuum oven (Buchi) at a temperature of 250°C for 3 hours until dehydrated FeSO4 was obtained.
[0058] Furthermore, the materials obtained were characterized by X-ray diffraction to confirm the formation of an alluaudite structure, using a D8 Discover reference diffractometer with the Mo source marketed by the company Bruker.
[0059] [Fig.l] represents the diffractograms, with an arbitrary scale ordinate, of examples 1 to 3 described below.
[0060] The chemical composition is obtained by plasma torch spectrometry.
[0061] The analysis of the electrode performances of the material is carried out by galvanostatic cycling of dry electrodes comprising for a total of 100% by mass: 75% of material according to the invention, 20% of carbon black and 5% of Polytetrafluoroethylene. Example 1
[0062] 0.3936 g of Na3PO4 and 0.7934 g of FeSO4 (molar ratio 1:2) were ground in a SPEX 8000M high-energy ball mill, marketed by SPEX, equipped with ZrO2 balls. The grinding time was 1 hour. The ratio of the mass of the balls to the total mass of the Na3PO4 and FeSO4 powders was 20, with the mill operating at a rate of 875 cycles per minute.
[0063] The ground material was then compacted into a pellet and then annealed under an inert atmosphere for 15 hours at 450°C.
[0064] The pellet thus annealed was then ground in a ball mill for 40 minutes. The powder obtained was annealed at 400°C for 20 h.
[0065] A material according to the invention of formula Na253Fe22PO4(SO4)2 was thus synthesized. It was further determined that the material has a crystallographic structure described in the space group C2 / c with the following lattice parameters: a=12.28(l) Â, b=12.83(2) Â, c=6.63(l) Â, [3=115.6(1)° which are characteristic of the alluaudited structure.
[0066] Furthermore, a measurement by inductively coupled plasma optical emission spectroscopy (ICP-OES) made it possible to characterize the elemental molar ratios Na / S=1.55, P / S=0.49 and Fe / S=1.04 with an error of 0.03, close respectively to the values of 1.5, 0.5 and 1 of the reference material with the alluaudited structure of formula Na3 Fe2PO4(SO4)2.
[0067] [Fig.2] shows for different dry electrodes, the evolution of the voltage vs. the Na+ / Na couple, expressed in V, as a function of the capacity, expressed in mAh / g, and as a function of the number of cycles and for different charging regimes C / n, with n=10, 15 and 20 (exchange of 2 Na+ respectively in 10 h, 15 h and 20 h) and for different quantities of active material per unit area, 12, 15, 19 and 25 g / cm2. All the electrodes were obtained without grinding the material with carbon black, mixed in a mortar, except the one tested at a charging regime of C / 10 and a quantity of material per unit area of 12 mg / cm2.
[0068] The material thus exhibits good behavior during successive charges and discharges, in particular for electrodes heavily loaded with activated material, i.e. thick. Example 2
[0069] 0.5859 g of Na3PO4 and 1.08963 g of FeSO4 were ground in a micro-mill Reference planetary Pulverisette 7 marketed by Fritsch, equipped with ZrO2 balls. The grinding time was 20 h. The ratio of the mass of the balls to the total mass of the Na3PO4 and FeSO4 powders was 25. The rotation speed of the mill was 750 rpm [rotations per minute].
[0070] A material according to the invention was thus synthesized. It has a crystallographic structure described in the space group C2 / c with the following lattice parameters: a=12.18(l) Â, b=12.72(l) Â, c=6.53(l) Â and [3=115.1(1)° which are characteristic of the alluaudite structure. Example 3
[0071] 0.3936 g of Na3PO4 and 0.7934 g FeSO4 were ground in a ball mill at SPEX 8000M high-energy reference mill marketed by SPEX, equipped with ZrO2 balls. The grinding time was 1 h. The ratio of the mass of the balls to the total mass of the Na3PO4 and FeSO4 powders was 20.
[0072] In a Teflon reactor, under an inert atmosphere, the ground material was dispersed in 7 ml of 1-Ethyl-2,3-dimethylimidazolium-bis(trifluoromethanesulfonyl)imide.
[0073] The solution thus obtained was stirred for 15 minutes to promote the dispersion of the ground material in the liquid. The whole was heated to 250°C for 24 h.
[0074] An aggregate was thus obtained, extracted from the reactor and washed with acetone.
[0075] A material according to the invention was formed whose structure is described in group of C2 / c space with mesh parameters: a= 12.32(1) Â, b=12.81(1) Â, c=6.58(l) Â, [3=115.3(1)° characteristics of the alluaudite structure.
Claims
Claims
1. Material with an alluaudite-type crystallographic structure of formula A3_ôlM2+ô2(PO4)n(SO4)m in which: - M is a transition metal chosen from iron (Fe), manganese (Mn), cobalt (Co), nickel (Ni) and mixtures thereof, - A is an alkali chosen from sodium (Na), lithium (Li), potassium (K) and mixtures thereof, - the average oxidation state d of the transition metal M being between +2 and +2.30, - n, m, ôl and ô2 being coefficients which satisfy the following conditions: • 0 < ôl < 0.60, • 0 < Ô2 < 0.30 and • n + m = 3 with n > 0 and m > 0.
2. Material according to claim 1, M being chosen from iron (Fe), manganese (Mn) and mixtures thereof.
3. Material according to any one of claims 1 and 2, M being iron (Fe) or manganese (Mn).
4. A material according to any preceding claim, A being sodium (Na).
5. Material according to any one of the preceding claims, wherein ôl = 2 * ô2.
6. Material according to any one of the preceding claims, wherein d < +2.20, preferably d < +2.14, preferably d < +2.
08.
7. A method of manufacturing the material according to any one of the preceding claims, the method comprising: a) preparing a starting charge comprising, as constituents, phosphate groups PO4, sulfate groups SO4, the alkali metal A and the transition metal M, b) implementing, under an inert atmosphere, at least one technique chosen from grinding, in particular high-energy grinding, sintering and ionothermal synthesis, to react the constituents of the starting charge with each other until a material is obtained, the composition of the starting charge in step a) being determined in such a way that: such that the material obtained in step b) is according to any one of the preceding claims.
8. A method according to claim 7, the constituents of the starting charge comprising a phosphate precursor comprising phosphate groups PO4 and the alkali metal A, and a sulfate precursor comprising sulfate groups SO4 and the transition metal M, and in step b), the implementation of the technique reacting the sulfate precursor and the phosphate precursor with each other.
9. Method according to the preceding claim, the starting charge comprising, or even consisting of, a mixture of the sulfated and phosphated precursors, in particular formed from a powder comprising, or even consisting of, particles made of the sulfated precursor and a powder comprising, or even consisting of, particles made of the phosphated precursor.
10. Method according to any one of claims 7 to 9, step b) comprising, or even consisting of, the grinding of the starting charge.
11. Method according to the preceding claim, the grinding being carried out in a ball mill, a planetary mill or a roller mill.
12. A method according to any one of claims 10 and 11, step b) comprising annealing after grinding.
13. Method according to the preceding claim, the sintering is subsequent to the grinding, the method comprising in particular the preparation of a preform by compacting the ground starting charge and the sintering of the preform.
14. Method according to any one of claims 7 to 10, the implementation in step b) comprising an ionothermal synthesis, preferably following the grinding.
15. Process according to the preceding claim, the ionothermal synthesis comprising the dispersion of the starting charge, optionally ground, in an ionic solvent, for example being l-Ethyl-2,3-dimethylimidazolium-bis(trifluoromethanesulfonyl)imide, and the heating of the dispersion to a temperature between 160°C and 260°C, for example equal to 250°C, and for a duration between 5 h and 48 h, for example 24 h.
16. Battery cathode, in particular chosen from a lithium-ion (Li-ion) battery cathode, a sodium-ion (Na-ion) battery cathode, a potassium-ion (K ... lithium (Li), a sodium (Na) battery cathode and a potassium (K) battery cathode, said battery cathode comprising the material according to any one of claims 1 to 6 or obtained by the method according to any one of claims 7 to 15.
17. Battery, preferably selected from a lithium-ion (Li-ion) battery, a sodium-ion (Na-ion) battery, a potassium-ion (K-ion) battery, a sodium (Na) battery, a lithium (Li) battery, a potassium (K) battery, the battery comprising a battery cathode according to the preceding claim.
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