Lithium sulfide manufacturing method
A two-step process using carbon-containing reducing agents and gases effectively produces high-purity lithium sulfide by minimizing impurities and maintaining reactivity, addressing issues in existing lithium sulfide production methods.
Patent Information
- Application Number
- JP2022535304
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-07-09
- Filing Date
- 2021-07-02
- Publication Date
- 2025-09-02
- Estimated Expiration
- 2041-07-02
AI Technical Summary
Existing methods for producing lithium sulfide result in impurities such as lithium carbonate when using large amounts of carbon-based reducing agents, and high temperatures from reducing gases lead to reduced reactivity due to melting and decreased specific surface area.
A two-step process using a carbon-containing reducing agent followed by a reducing gas to produce lithium sulfide, minimizing impurities by adjusting the reducing agent amount and optimizing reaction conditions.
Achieves high-purity lithium sulfide production by controlling impurity formation and maintaining reactivity through a combination of carbon-based reducing agents and reducing gases.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a method for producing lithium sulfide. [Background technology]
[0002] Known methods for producing lithium sulfide include, for example, a method of reducing lithium sulfate. For example, Patent Document 1 describes a method including a microparticulation step of adjusting a powder containing lithium sulfate into fine particles having a specific particle size, and a reduction step of reducing the fine particles with carbon black to obtain lithium sulfide.
[0003] Patent Document 2 describes a method including a step of reducing lithium sulfate to produce lithium sulfide by bringing a mixture containing lithium sulfate and graphite powder into contact with a carbon molded body while heating, and a step of separating the produced lithium sulfide from the carbon molded body. In the step of producing lithium sulfide, both the carbon material and the carbon molded body are used simultaneously as reducing agents for lithium sulfate. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2013-227180 [Patent Document 2] Japanese Patent Application Laid-Open No. 2015-74567 Summary of the Invention
[0005] Examples of reducing agents used in producing lithium sulfide include the carbon materials described in Patent Documents 1 and 2. Furthermore, reducing gases may also be used as reducing agents. Incidentally, when producing lithium sulfide, it is necessary to obtain lithium sulfide with higher purity. One possible method for obtaining high-purity lithium sulfide is, for example, a method in which lithium sulfate is sufficiently reduced using a large amount of a reducing agent. However, when a large amount of a carbon material is used as a reducing agent, lithium carbonate is by-produced as an impurity, and as a result, high-purity lithium sulfide cannot be obtained. Furthermore, when a large amount of a reducing gas is used as a reducing agent, reaction heat is generated, which leads to melting of lithium sulfate and a significant decrease in the specific surface area. This inhibits contact between lithium sulfate and the reducing gas, resulting in a decrease in reactivity.
[0006] Therefore, an object of the present invention is to provide a method capable of producing high-purity lithium sulfide.
[0007] As a result of intensive investigations conducted by the present inventors to solve the above problems, it has been found that high-purity lithium sulfide can be produced by using a combination of a carbon-containing substance and a reducing gas as a reducing agent. The present invention is based on the above findings and includes a first step of reducing a raw material containing lithium (Li) and sulfur (S) with a reducing agent containing carbon (C) to obtain an intermediate; a second step of reducing the intermediate with a reducing gas to obtain lithium sulfide; The present invention provides a method for producing lithium sulfide, comprising the steps of:
[0008] The present invention also provides a method for producing lithium sulfide, comprising a step of reducing a raw material containing lithium (Li) and sulfur (S) with a reducing agent and a reducing gas containing carbon (C) to obtain lithium sulfide.
[0009] Furthermore, the present invention provides a method for producing a lithium sulfide-containing product, comprising: A step B of mixing the lithium sulfide, diphosphorus pentasulfide, and lithium halide to obtain a raw material composition; and a step C of firing the raw material composition, The present invention provides a method for producing a solid electrolyte, wherein the step A comprises a first step of reducing a raw material containing lithium (Li) and sulfur (S) with a reducing agent containing carbon (C) to obtain an intermediate, and a second step of reducing the intermediate with a reducing gas to obtain lithium sulfide. DETAILED DESCRIPTION OF THE INVENTION
[0010] The present invention will be described below based on its preferred embodiments. The present invention relates to a method for producing lithium sulfide (LiS). In the present invention, a material containing lithium (Li) and sulfur (S) is used as a raw material for producing lithium sulfide. This raw material is reduced to obtain an intermediate (this step will be referred to as the "first step" below), and the intermediate is then reduced (this step will be referred to as the "second step" below) to obtain the desired lithium sulfide. These steps will be described in detail below.
[0011] The raw material used in the first step is preferably a compound containing lithium (Li) and sulfur (S). Examples of such compounds include lithium sulfate (LiSO), lithium sulfite (LiSO), and lithium thiosulfate (LiSO). These compounds can be used alone or in combination of two or more. From the viewpoints of industrial availability and ease of handling, it is preferable to use lithium sulfate as the raw material. Lithium sulfate is generally provided in a solid state, such as powder or granules, in the first step. Lithium sulfate is generally a hydrated salt. In the present invention, the hydrated salt of lithium sulfate may be used as is, or the hydrated salt of lithium sulfate may be dehydrated and used in the form of an anhydrous salt.
[0012] In the first step, the raw materials described above are reduced with a reducing agent to obtain the target lithium sulfide intermediate. The reducing agent used in this step preferably contains carbon (C) element, since this facilitates the production of highly pure lithium sulfate. The "reducing agent containing carbon (C) element" refers to a substance that has the reducing power to reduce the raw materials described above and contains carbon (C) element as a constituent element.
[0013] The reducing agent containing carbon (C) element is not particularly limited as long as it is a substance commonly used as a carbon-based reducing agent, and may be in the form of a gas, liquid, or solid. The reducing agent may be any reducing agent capable of serving as a carbon source and may contain non-carbon atoms. Examples of such reducing agents include organic compounds such as monohydric alcohols, polyhydric alcohols, and reducing sugars such as glucose. Other examples include solid carbonaceous materials such as coal, coke, graphite, carbon black, fullerenes, carbon tubes, charcoal, carbide, and elemental carbon and its allotropes. Graphite is a typical example of elemental carbon and its allotropes. In the present invention, from the viewpoint of reducing ability, it is preferable to use charcoal, such as wood charcoal, bamboo charcoal, or activated carbon, or carbon black, and activated carbon is particularly preferable. The activated carbon may be powdered or granular activated carbon. The carbon-containing reducing agent may be one of the above-mentioned materials, or a combination of two or more of them.
[0014] The shape of the reducing agent containing carbon element is not particularly limited, and may be, for example, fibrous, granular, or powdered. The average particle size of the granular reducing agent may be, for example, 1000 μm or less, 300 μm or less, or 150 μm or less. On the other hand, the average particle size of the reducing agent may be, for example, 0.1 μm or more, 1 μm or more, or 10 μm or more. The smaller the average particle size of the reducing agent, the greater the contact area when mixed with the raw material, thereby enabling more efficient reduction. The average particle size referred to here is the volume cumulative particle size D at 50% cumulative volume as determined by a laser diffraction / scattering particle size distribution measurement method.50 This is what I mean.
[0015] The first step is preferably a step of mixing a raw material with a reducing agent and reducing the raw material using the reducing agent. When the reducing agent is solid, the reaction between the reducing agent and the raw material is a solid-phase reaction, and therefore, it is preferable to subject the raw materials to the reduction reaction in a well-mixed state, from the viewpoint of efficiently reducing the raw materials. The mixer used for mixing may be, for example, a mixer in which the raw materials to be mixed and the reducing agent are filled in a container that moves to mix them. Alternatively, a mixer in which a rotating body having a plate, screw, ribbon, cylinder, disk, or any other shape is installed in a container filled with the raw materials and the reducing agent and rotates to mix them may be used. Alternatively, a mixer in which grinding media such as balls or beads made of ceramic, glass, metal, resin, or other material are filled into a container filled with the raw materials and the reducing agent, together with the raw materials and the reducing agent, and force is applied to the media to mix them by the movement of the media may be used. The dispersion medium used to disperse the raw materials and the reducing agent during mixing may be a gas such as air (a so-called dry method), or a liquid such as water or an organic solvent (a so-called wet method). Alternatively, the raw materials and the reducing agent may be mixed under vacuum. When a liquid is used as the dispersion medium, a liquid that does not dissolve the raw materials may be used, or a liquid that dissolves the raw materials may be used. Furthermore, when a liquid is used as the dispersion medium, drying may be performed after mixing to remove the liquid.
[0016] The first step is preferably a step of reducing after pulverizing at least one of the raw material and the reducing agent. "Pulverizing at least one of the raw material and the reducing agent" means that only the raw material may be pulverized, or only the reducing agent may be pulverized. In particular, pulverizing both the raw material and the reducing agent is preferable. This is because the contact area between the raw material and the reducing agent can be increased, allowing the raw material to be reduced efficiently. When pulverizing both the raw material and the reducing agent, the raw material and the reducing agent may be pulverized separately, or a mixture of the raw material and the reducing agent may be pulverized. In particular, adopting the latter is preferable because it simplifies the process, is economically advantageous, and allows for more efficient reduction.
[0017] Methods for pulverizing at least one of the raw material and the reducing agent include wet pulverization and dry pulverization. The dispersion medium used in wet pulverization is not particularly limited, and is preferably, for example, water. Using water as the dispersion medium is economically preferable. When the raw material is water-soluble, for example, the raw material and the reducing agent are mixed and wet-pulverized to form a suspension in which the reducing agent is suspended in a raw material solution in which at least a portion of the raw material is dissolved.
[0018] When wet grinding is performed, it is preferable to dry the turbid liquid to which the dispersion medium has been added in order to remove the dispersion medium as needed. For example, when the raw material and the reducing agent are mixed and wet-ground, drying after wet grinding causes the raw material to precipitate on the surface of the reducing agent, resulting in a mixture in which the raw material adheres to the reducing agent so as to surround it and cover it. This results in a state in which the raw material and the reducing agent are in closer contact than when the raw material and the reducing agent powder are simply mixed together, which is more favorable for the solid-phase reaction. Furthermore, when both the mixing step and the grinding step are performed wet, it is economically preferable to perform both steps continuously or simultaneously in the wet method and then provide a drying step, since the drying step can be performed in a single step.
[0019] In the first step, the reduction reaction may be carried out without heating or with heating, depending on the types of raw materials and reducing agent. When the reduction reaction is carried out with heating, in order to efficiently carry out the reduction reaction, the temperature in the system is preferably set to 700°C or more and 850°C or less, more preferably 720°C or more and 830°C or less, and even more preferably 750°C or more and 800°C or less. In this case, in order to efficiently carry out the reduction reaction, the heating time is preferably set to 0.5 hours or more and 6 hours or less, and more preferably 1 hour or more and 3 hours or less.
[0020] The atmosphere in which the reduction reaction is carried out may be a reducing atmosphere or a non-reducing atmosphere. In the present invention, from the viewpoint of obtaining lithium sulfide with higher purity, it is preferable that the first step is carried out in a non-reducing atmosphere. Examples of reducing atmospheres include a hydrogen gas atmosphere and a hydrogen gas atmosphere diluted with an inert gas. On the other hand, examples of non-reducing atmospheres include an inert gas atmosphere such as a nitrogen gas atmosphere and an argon gas atmosphere. When a reducing atmosphere is used as the atmosphere for the reduction reaction, the first step and the second step described below can be carried out simultaneously, or the second step can be carried out separately after the first step. When the first step and the second step are carried out simultaneously, it is preferable to appropriately adjust the concentration of the reducing gas, the reaction temperature between the raw material and the gas, the reaction time, etc. so that the reducing agent containing carbon (C) does not remain after the reaction in the first step is completed.
[0021] In the first step, the amount of the reducing agent used is preferably determined in relation to the amount of the raw material used. Specifically, the amount of the reducing agent is preferably equal to or less than the amount that is consumed in a manner that is neither excessive nor insufficient in the reaction in which all of the raw material is reduced to lithium sulfide (hereinafter referred to as "substantially equivalent amount"). For example, when the raw material is lithium sulfate and the reducing agent is elemental carbon (e.g., activated carbon), the reduction reaction of lithium sulfate can be expressed by the following formula (1): Li2SO4+2C→Li2S+2CO2(1) In equation (1), two moles of elemental carbon are required to reduce one mole of lithium sulfate to produce one mole of lithium sulfide (LiS), and one equivalent of reduction is two moles. Alternatively, comparing the raw material, elemental carbon, with the oxygen (O) element in the product, carbon dioxide, two moles of elemental oxygen (O) are consumed for one mole of elemental carbon (C). Hereinafter, for convenience, the ratio of the amount of reducing agent used to a given amount of raw material will be expressed as the equivalent ratio of 1 mole of C / 2 moles of O (hereinafter referred to as "C / O") shown in equation (1). The "substantial equivalent" mentioned above is not equivalent to a "C / O ratio of 1" for reasons described below. In actual reduction reactions, when elemental carbon is used as a reducing agent, the reaction product is not limited to carbon dioxide; depending on the conditions, carbon monoxide may also be produced, as shown in equation (2) below. Li2SO4+4C→Li2S+4CO (2) The carbon monoxide produced in the reaction system (2) may be discharged directly to the outside of the reaction system, or may be further subjected to a reduction reaction as shown in the reaction system (3). Li2SO4+4CO→Li2S+4CO2(3) It can also be considered that the reaction of formula (1) has occurred if the reactions of formula (2) and formula (3) occur consecutively. In reality, the present inventors believe that the reactions of formula (1), formula (2), and formula (3) occur simultaneously. Furthermore, since at least a portion of the produced carbon monoxide is discharged outside the reaction system without being consumed by the reduction reaction, even if the amounts of raw materials and reducing agent are adjusted so that C / O2 becomes 1, the amount of reducing agent in that case is less than the substantial equivalent. The preferable range of C / O2, which is less than the substantial equivalent, is 0.8 to 1.3, more preferably 0.9 to 1.2, and even more preferably 1.0 to 1.1.
[0022] Using the reducing agent in the amount described above has the following advantages. Specifically, when converting raw materials to the desired lithium sulfide through a reduction reaction, it is advantageous to use a reducing agent in an amount equal to or greater than the substantial equivalent in order to convert as much raw material as possible to lithium sulfide. However, if a reducing agent in an amount greater than the substantial equivalent is used, although all of the raw materials are reduced, unreacted reducing agent remains in the product, and a large amount of lithium carbonate is produced as a by-product. The presence of residual reducing agent and lithium carbonate in the product contributes to the impairment of the lithium ion conductivity of sulfide solid electrolytes produced using lithium sulfide as raw materials. Furthermore, it is extremely difficult to adjust the ratio of the raw material to the reducing agent to a substantial equivalent. Even if this were possible, the by-production of lithium carbonate cannot be avoided. When reducing raw materials using a carbon-containing reducing agent, it is extremely difficult to produce only lithium sulfide without the by-production of lithium carbonate. Therefore, in the present invention, the ratio of the reducing agent to the raw material is set to a substantial equivalent or less to suppress the excessive by-production of lithium carbonate. Although the excessive by-production of lithium carbonate can be suppressed by using an amount of reducing agent that is substantially equivalent or less, there is a risk that unreacted (i.e., unreduced) raw materials will remain in the reaction system. Therefore, in the present invention, in the second step described below, the raw materials remaining in the reaction system are reduced and lithium carbonate (if present in the reaction system) is also decomposed to obtain high-purity lithium sulfide. This decomposition reaction of lithium carbonate can be expressed by the following formula (4): Li2CO3+H2→Li2O+CO+H2O (4)
[0023] From the viewpoint of minimizing the amount of impurities contained in lithium sulfide, which is the target product of this manufacturing method, the substance present in the system at the time of completion of the first step, i.e., the intermediate obtained in the first step, is determined to have an intensity of the peak observed at 2θ=25.6°±0.5° in an X-ray diffraction pattern measured by an X-ray diffractometer, which is I A The intensity of the peak observed at 2θ = 27.1° ± 0.5° is defined as I B When I B I againstA The ratio (I A / I B In addition, it is preferable that the intensity of the peak observed at 2θ=21.2°±0.5° in the X-ray diffraction pattern is I C When I B I against C The ratio (I C / I B ) is preferably 0.03 or more and 0.09 or less. From the viewpoint of further reducing the amount of impurities in lithium sulfide, I A / I B It is more preferable that the value of I is 0.05 or less. A / I B The value of is most preferably zero. C / I B It is more preferable that the value is 0.03 or more and 0.08 or less.
[0024] The peak observed at 2θ=25.6°±0.5° is attributed to lithium sulfate. The peak observed at 2θ=27.1°±0.5° is attributed to lithium sulfide. The peak observed at 2θ=21.2°±0.5° is attributed to lithium carbonate. In other words, the first step is preferably carried out so that the amount of remaining lithium sulfate used as one of the raw materials is minimized and the amount of lithium carbonate produced as a by-product is within a predetermined range.
[0025] The first step is preferably carried out by placing the raw material and the reducing agent in a container that is inert to the reduction reaction, such as an alumina sagger.
[0026] The reduction reaction in the first step produces an intermediate. This intermediate is usually a mixture of unreacted raw materials, the target product lithium sulfide, and by-products. The by-products vary depending on the type of raw material. For example, if the raw material is lithium sulfate, the by-product is typically the aforementioned lithium carbonate.
[0027] After the first step is completed, the substance (the intermediate described above) present in the reaction system is subjected to the second step. If necessary, an additional step may be performed between the first and second steps. An example of this additional step is a step of pulverizing the intermediate obtained in the first step. Since the reaction occurring in the second step is a gas-solid reaction between the solid intermediate and a reducing gas, adding a pulverization step promotes contact between the intermediate and the reducing gas, allowing the reaction to proceed efficiently.
[0028] In the second step, the substances present in the reaction system after the completion of the first step are reduced using a reducing gas. Examples of reducing gases include hydrogen gas and hydrogen gas diluted with an inert gas. The second step is preferably carried out in the absence of the reducing agent used in the first step. In other words, when carrying out the second step, it is preferable that the reducing agent used in the first step is not present in the reaction system.
[0029] The pressure of the reducing gas in the reaction system may be atmospheric, subatmospheric, or superatmospheric, but generally satisfactory results are obtained by flowing the reducing gas through the reaction system at atmospheric pressure.
[0030] The reduction reaction in the second step may be carried out without heating or with heating, depending on the type of reducing gas. When the reduction reaction is carried out with heating, from the viewpoint of efficiently carrying out the reduction reaction, the temperature in the system is preferably set to 830°C or more and 930°C or less, more preferably 830°C or more and 900°C or less, and even more preferably 830°C or more and 870°C or less. In this case, from the viewpoint of efficiently carrying out the reduction reaction, the heating time is preferably set to 1 hour or more and 12 hours or less, more preferably 2 hours or more and 8 hours or less, and even more preferably 3 hours or more and 6 hours or less.
[0031] The second step may be carried out simultaneously with the first step or after the first step. In the second step, the substance present in the reaction system after the completion of the first step, i.e., the intermediate obtained in the first step, is reduced to further produce lithium sulfide. Specifically, in the second step, the unreacted raw material lithium sulfate contained in the intermediate is reduced to lithium sulfide, and the by-product lithium carbonate is decomposed to lithium oxide. As a result, the amount of impurities contained in the final product after the completion of the second step is further reduced.
[0032] It is also possible to perform only the second step without performing the first step and reduce the raw materials with a reducing gas to obtain lithium sulfide. However, in this case, the reduction generates reaction heat, which increases the temperature in the reaction system, and in some cases, the raw materials may melt, exceeding their melting points. Melting the raw materials results in a significant decrease in their specific surface area, which in turn reduces their reactivity. Therefore, it is not easy to reduce the raw materials using only a reducing gas. Thus, according to the present invention, it has become possible for the first time to easily produce high-purity lithium sulfide by appropriately combining a reducing gas and a carbon-based reducing agent, in contrast to the prior art techniques that have been unable to successfully produce lithium sulfide by using only a reducing gas or a carbon-based reducing agent. Note that in the present invention, a carbon-based reducing agent is used in the first step and a reducing gas is used in the second step. However, the present inventors have confirmed that the expected effect cannot be obtained even if this order is reversed, that is, if a reducing gas is used in the first step and a carbon-based reducing agent is used in the second step.
[0033] In the second step, from the viewpoint of further increasing the purity of the target lithium sulfide, when the substance present in the system at the time of completion of the second step, i.e., the final product lithium sulfide, is measured by an X-ray diffractometer, the X-ray diffraction pattern obtained thereby exhibits the above-mentioned I B I against C The ratio (I C / I BIn addition, it is preferable that the intensity of the peak observed at 2θ=33.6°±0.5° in the X-ray diffraction pattern is I D When I B I against D The ratio (I D / I B ) is preferably 0.05 or less. From the viewpoint of further reducing the amount of impurities in lithium sulfide, I C / I B It is more preferable that the value of I is 0.01 or less. C / I B The value of is most preferably zero. D / I B It is more preferable that the value of I is 0.03 or less. D / I B It is most preferable that the value of is 0. The peak observed at 2θ=33.6°±0.5° is attributed to lithium oxide.
[0034] The second step is preferably carried out by placing the intermediate obtained in the first step in a container that is inert to reducing gases, such as an alumina sagger.
[0035] The above steps result in the production of the desired lithium sulfide. This lithium sulfide has a high purity and a low content of impurities. The main impurity is lithium oxide (LiO). Lithium oxide is produced by the reduction of lithium carbonate in the second step. To further improve the purity of lithium sulfide, the lithium sulfide obtained after the second step can be subjected to a third step. In the third step, a reaction is carried out to convert the lithium oxide contained in the lithium sulfide obtained in the second step into lithium sulfide. For this purpose, it is preferable to heat the lithium sulfide obtained in the second step under a sulfur-containing gas atmosphere. This sulfurizes the lithium oxide, an impurity contained in the lithium sulfide, to produce lithium sulfide.
[0036] Examples of sulfur-containing gases used in the third step include hydrogen sulfide (HS) gas and sulfur (S) gas. These gases may be used alone or in combination of two or more. These gases may be used as they are or may be diluted with a rare gas. The pressure of the sulfur-containing gas in the reaction system may be atmospheric pressure, or may be a pressure below or above atmospheric pressure. Generally, sulfurization can be successfully carried out by flowing the sulfur-containing gas through the reaction system under atmospheric pressure.
[0037] In the third step, from the viewpoint of efficiently sulfurizing the lithium oxide, the temperature in the system is preferably set to 200° C. or more and 1000° C. or less, more preferably 300° C. or more and 900° C. or less, and even more preferably 400° C. or more and 800° C. or less. In this case, from the viewpoint of efficiently sulfurizing the reaction, the heating time is preferably set to 15 minutes or more and 6 hours or less, more preferably 30 minutes or more and 4 hours or less, and even more preferably 1 hour or more and 3 hours or less.
[0038] In the third step, from the viewpoint of further increasing the purity of the target lithium sulfide, when the third step is completed, the substances present in the system are measured by an X-ray diffractometer, and the X-ray diffraction pattern obtained thereby shows the above-mentioned I B I against C The ratio (I C / I B It is preferable to carry out the third step so that the intensity of the peak observed at 2θ=33.6°±0.5° in the X-ray diffraction pattern is I D When I B I against D The ratio (I D / I B It is preferable to carry out the second step so that I ) is 0.05 or less. From the viewpoint of further reducing the amount of impurities in lithium sulfide, C / I B It is more preferable that the value of I is 0.01 or less. C / I BThe value of is most preferably zero. D / I B The value of is preferably 0.03 or less, more preferably 0.02 or less, and particularly preferably 0.01 or less. D / I B Most preferably, the value of is zero.
[0039] In the above description, the first step and the second step were performed separately in time series. However, instead, the first step and the second step can be performed simultaneously. Specifically, lithium sulfide can be obtained by reducing a raw material containing lithium (Li) and sulfur (S) using a reducing agent and reducing gas containing carbon (C). In this case, the types of raw material, the reducing agent containing carbon (C), and the reducing gas are the same as those described above. The pressure of the reducing gas is also the same as that described above. Furthermore, the charging ratio of the raw material to the reducing agent containing carbon (C) is also the same as that described above.
[0040] From the viewpoint of efficiently carrying out the reduction reaction of the raw materials, the temperature conditions in the system during reduction are preferably set to 830° C. or higher and 870° C. or lower, and more preferably set to 840° C. or higher and 860° C. In this case, from the viewpoint of efficiently carrying out the reduction reaction, the heating time is preferably set to 1 hour or higher and 12 hours or lower, more preferably set to 2 hours or higher and 8 hours or lower, and even more preferably set to 3 hours or higher and 6 hours or lower.
[0041] The reduction under the above conditions can also produce the desired high-purity lithium sulfide. However, when comparing the purity of the obtained lithium sulfide, particularly the amount of lithium oxide as an impurity, performing the first and second steps separately is superior to this step.
[0042] Once lithium sulfide is obtained by this step, it may be subjected to the third step, the sulfurization step, as described above. By subjecting the lithium sulfide to the third step, even if lithium oxide is contained in the lithium sulfide as an impurity, sulfurization of this impurity makes it possible to increase the purity of the lithium sulfide finally obtained.
[0043] The lithium sulfide thus obtained is preferably used as a raw material for a solid electrolyte. A method for producing a solid electrolyte of the present invention will now be described. The method for producing a solid electrolyte of the present invention comprises: a step A for obtaining lithium sulfide; a step B for mixing the lithium sulfide, diphosphorus pentasulfide, and a lithium halide to obtain a raw material composition; and a step C for firing the raw material composition. The step A comprises a first step for reducing a raw material containing lithium (Li) and sulfur (S) with a reducing agent containing carbon (C) to obtain an intermediate; and a second step for reducing the intermediate with a reducing gas to obtain lithium sulfide. Each step will be described below, but since step A can be the same as the above-mentioned method for producing lithium sulfide, the description thereof will be omitted here.
[0044] The lithium halide used in step B may be one type or two or more types. Examples of lithium halides include lithium chloride (LiCl) and lithium bromide (LiBr). The mixing in step B can be performed by mechanical milling. Examples of mechanical milling include a vibration mill, a ball mill, a turbo mill, a mecha fusion mill, and a disk mill, with a ball mill being preferred. The conditions for the ball mill are not particularly limited as long as the desired raw material composition can be obtained, but for example, the table rotation speed is 200 rpm or more, preferably 300 rpm or more, and 500 rpm or less, preferably 400 rpm or less. The treatment time in the ball mill can be appropriately adjusted, for example, from 1 hour to 100 hours.
[0045] The firing in step C is preferably carried out under conditions that allow a desired solid electrolyte to be obtained. Specifically, the conditions are preferably such that a solid electrolyte containing a crystalline phase having an argyrodite-type crystal structure is obtained. From this perspective, firing is preferably carried out in a hydrogen sulfide gas atmosphere. The firing temperature is, for example, 300°C or higher, preferably 400°C or higher, and 700°C or lower, preferably 600°C or lower. The firing time can be adjusted appropriately depending on the firing temperature, and is, for example, preferably 1 hour to 10 hours, preferably 2 hours to 6 hours.
[0046] Details of the solid electrolyte and its manufacturing method are described, for example, in the pamphlet of International Publication No. 2019 / 009228, a previous application filed by the applicant.
[0047] In order to have good lithium ion conductivity, the solid electrolyte obtained by the present invention, the so-called sulfide solid electrolyte, has a molar ratio of the halogen (X) element content to the phosphorus (P) element content (halogen (X) element content / phosphorus (P) element content) of preferably 0.50 or more and 2.1 or less, more preferably 0.80 or more and 2.0 or less, and even more preferably 1.2 or more and 1.8 or less.
[0048] When the solid electrolyte obtained by the present invention has a crystalline phase with an argyrodite-type crystal structure, the solid electrolyte has the composition formula: Li a PS b X c (wherein X is at least one halogen atom) is an element, where a is 3.0 or more and 6.5 or less, b is 3.5 or more and 5.5 or less, and c is 0.50 or more and 3.0 or less.) The presence of a crystalline phase including an argyrodite-type crystal structure can be confirmed, for example, by an X-ray diffraction pattern measured using CuKα1 radiation. Note that details can be similar to those described in the pamphlet of WO 2019 / 009228, and therefore will not be described here. [Example]
[0049] The present invention will be described in more detail below with reference to examples. However, the scope of the present invention is not limited to such examples. Unless otherwise specified, "%" means "% by mass."
[0050] Example 1 <1st process> Li2SO4·H2O powder was used as the raw material. Activated carbon powder was used as the solid reducing agent containing carbon. The amount of Li2SO4·H2O used was 86.26g, and the amount of activated carbon used was 13.74g. Therefore, the C / O2 ratio, which is the molar ratio of carbon (C) element contained in the activated carbon to 2 moles of oxygen (O) element contained in the sulfate ions that make up Li2SO4·H2O, was 85%. Two polyamide pots (500 ml capacity) were prepared, each containing 43.13 g of LiSO₄·H₂O and 6.87 g of activated carbon. 125 g of pure water and 600 g of ZrO₂ beads (5 mm diameter) were added to each pot, and the lids were closed. The two pots were shaken for 5 hours using a paint shaker to grind and mix the mixed powder inside the pot. After grinding and mixing, the slurry and beads were separated using a 1 mm mesh sieve. The slurry was then placed in a 1 L stainless steel jacketed reactor and heated and dried while stirring. The resulting mixed powder was placed in a stainless steel container, which was then placed in a vacuum dryer at 200°C and in vacuum to dehydrate the LiSO₄·H₂O in the mixed powder. 30.00 g of the mixed powder was placed in an alumina sagger with an internal volume of 100 ml and internal dimensions of 40 mm length, 130 mm width, and 24 mm depth, and placed inside the core tube of a tubular furnace. While argon gas was flowing through the core tube, the temperature was raised to 800 °C at a rate of 300 °C / hour, and the mixture was heated in the argon atmosphere for 2 hours. While argon gas was still flowing, the furnace temperature was lowered to room temperature at a rate of 300 °C / hour, and the intermediate was removed from the furnace. A portion of the obtained intermediate was extracted and crushed in an agate mortar. After that, it was measured by a powder X-ray diffractometer. A / I B and I C / I BThe values are shown in Table 1 below. The powder X-ray diffractometer used was a SmartLab manufactured by Rigaku Corporation. CuKα1 radiation was used as the radiation source. The steps from removing the intermediate from the furnace, extracting a portion of the intermediate, pulverizing the intermediate, and measuring the X-ray diffraction of the intermediate using a powder X-ray diffractometer were all carried out in an N2 gas atmosphere without exposure to the air.
[0051] <Second process> The remainder of the intermediate product obtained in the first step was placed in the sagger and placed inside the furnace core tube of a tubular furnace. While a mixed gas of hydrogen and nitrogen (hydrogen concentration 3.5 vol%) was circulated through the furnace core tube, the temperature was increased to 850°C at a heating rate of 300°C / hour, and the mixture was heated in the mixed gas atmosphere for 4 hours. While the mixed gas was still circulating, the furnace temperature was lowered to room temperature at a cooling rate of 300°C / hour, and the target lithium sulfide was removed from the furnace. A portion of the obtained lithium sulfide was extracted and crushed in an agate mortar. After that, it was measured using a powder X-ray diffractometer. C / I B and I D / I B The values are shown in Tables 1 and 2 below. The steps from removing the target object from the furnace, extracting a portion of the target object, crushing the target object, and measuring the X-ray diffraction of the target object using a powder X-ray diffractometer were all carried out in an N2 gas atmosphere without exposure to air.
[0052] Example 2 In the first step of Example 1, the molar ratio of carbon (C) element contained in activated carbon to 2 moles of oxygen (O) element contained in sulfate ions constituting LiSO·H0 was changed to 95%, except that lithium sulfide was obtained in the same manner as in Example 1.
[0053] Example 3 In the first step of Example 1, the molar ratio of carbon (C) element contained in activated carbon to 2 moles of oxygen (O) element contained in sulfate ions constituting LiSO·H0 was changed to 105%, except that lithium sulfide was obtained in the same manner as in Example 1.
[0054] Example 4 In the first step of Example 1, the molar ratio of carbon (C) element contained in activated carbon to 2 moles of oxygen (O) element contained in sulfate ions constituting LiSO·H0, C / O ratio, was changed to 125%. Otherwise, lithium sulfide was obtained in the same manner as in Example 1.
[0055] Example 5 In the first step of Example 1, the molar ratio of carbon (C) element contained in activated carbon to 2 moles of oxygen (O) element contained in sulfate ions constituting LiSO·H0 was changed to 125%, and the heating temperature in the first step was changed to 700°C. Except for these changes, lithium sulfide was obtained in the same manner as in Example 1.
[0056] Example 6 In the first step of Example 1, the molar ratio of carbon (C) element contained in activated carbon to 2 moles of oxygen (O) element contained in sulfate ions constituting LiSO·H0 was changed to 125%, and the heating temperature in the second step was changed to 900°C. Except for these changes, lithium sulfide was obtained in the same manner as in Example 1.
[0057] Example 7 In this example, the third step was carried out after the second step was completed. In the first step of Example 1, the molar ratio of carbon (C) element contained in activated carbon to 2 moles of oxygen (O) element contained in sulfate ions constituting LiSO·H0 was changed to 125%. Furthermore, after the second step was completed, the third step was carried out. Otherwise, lithium sulfide was obtained in the same manner as in Example 1. In the third step, the lithium sulfide obtained in the second step was placed in the sagger inside the furnace core tube of a tubular furnace. While hydrogen sulfide gas (concentration: 100 vol%) was circulated through the furnace core tube, the temperature was increased to 500°C at a rate of 300°C / hour, and the furnace was heated in this state for 1 hour in the hydrogen sulfide gas atmosphere. While hydrogen sulfide gas was still circulating, the furnace temperature was lowered to room temperature at a rate of 300°C / hour, and the target lithium sulfide was removed from the furnace.
[0058] Example 8 In this example, the first and second steps were carried out simultaneously. The C / O2 ratio, which is the molar ratio of carbon (C) element in activated carbon to 2 moles of oxygen (O) element in sulfate ions that make up Li2SO4·H2O, was set to 105%. 30.00 g of the mixed powder was filled into an alumina sagger with an internal volume of 100 ml, internal dimensions of 40 mm length, 130 mm width, and 24 mm depth, and placed inside the furnace tube of a tubular furnace. While flowing a mixed gas of hydrogen and nitrogen (hydrogen concentration 3.5 vol%) through the furnace tube, the temperature was increased to 850 °C at a heating rate of 300 °C / hour, and the furnace was heated in this mixed gas atmosphere for 4 hours. While continuing to flow the mixed gas, the furnace temperature was lowered to room temperature at a cooling rate of 300 °C / hour, and the target lithium sulfide was removed from the furnace. Other than that, the same procedures as in Example 1 were carried out.
[0059] Comparative Example 1 This comparative example corresponds to an example of Patent Document 1 (JP 2013-227180 A). Li2SO4·H2O powder was used as the raw material. Activated carbon powder was used as the solid reducing agent containing carbon. The amount of Li2SO4·H2O used was 58.48g, and the amount of activated carbon used was 11.52g. Therefore, the C / O2 ratio, which is the molar ratio of carbon (C) element contained in the activated carbon to 2 moles of oxygen (O) element contained in the sulfate ions that make up Li2SO4·H2O, was 105%. Two polyamide pots (500 ml capacity) were prepared, each containing 29.24 g of Li2SO4·H2O and 5.76 g of activated carbon. 85 g of n-heptane and 600 g of ZrO2 beads (5 mm diameter) were added to the pot, and the lid was closed. The pot was shaken for 5 hours using a paint shaker to grind and mix the mixed powder inside the pot. After grinding and mixing, the slurry and beads were separated using a 1 mm mesh sieve, and the slurry was then dried in a dryer. The resulting mixed powder was placed in a stainless steel container, which was then placed in a vacuum dryer at 200°C and in vacuum to dehydrate the Li2SO4·H2O in the mixed powder. 30.00 g of the mixed powder was placed in an alumina sagger with an internal volume of 100 ml, measuring 40 mm in length, 130 mm in width, and 24 mm in depth, and placed inside the core tube of a tubular furnace. While argon gas was flowing through the core tube, the temperature was increased to 830°C at a rate of 300°C / hour, and the mixture was then heated in the argon atmosphere for 3 hours. While argon gas was still flowing, the furnace temperature was lowered to room temperature at a rate of 300°C / hour, and the target material was removed from the furnace. A portion of the obtained target material was extracted and crushed in an agate mortar. After that, it was measured using a powder X-ray diffractometer. C / I B and I D / I B The values are shown in Tables 1 and 2 below. The steps from removing the target object from the furnace, extracting a portion of the target object, crushing the target object, and measuring the X-ray diffraction of the target object using a powder X-ray diffractometer were all carried out in an N2 gas atmosphere without exposure to air.
[0060] Comparative Example 2 In Comparative Example 1, the molar ratio of carbon (C) element contained in activated carbon to 2 moles of oxygen (O) element contained in sulfate ions constituting LiSO·H0 was changed to 125%, except that the other conditions were the same as in Comparative Example 1.
[0061] Comparative Example 3 This comparative example corresponds to an example of Patent Document 2 (JP 2015-74567 A). Li2SO4·H2O powder was used as the raw material. Activated carbon powder was used as the solid reducing agent containing carbon. The amount of Li2SO4·H2O used was 61.36g, and the amount of activated carbon used was 8.64g. Therefore, the C / O2 ratio, which is the molar ratio of carbon (C) element in the activated carbon to 2 moles of oxygen (O) element in the sulfate ions that make up Li2SO4·H2O, was 75%. Two polyamide pots (500 ml capacity) were prepared, each containing 30.68 g of Li2SO4·H2O and 4.32 g of activated carbon. 85 g of n-heptane and 600 g of ZrO2 beads (5 mm diameter) were added to the pot, and the lid was closed. The pot was shaken for 5 hours using a paint shaker to grind and mix the mixed powder inside the pot. After grinding and mixing, the slurry and beads were separated using a 1 mm mesh sieve, and the slurry was then dried in a dryer. The resulting mixed powder was placed in a stainless steel container, which was then placed in a vacuum dryer at 200°C and in vacuum to dehydrate the Li2SO4·H2O in the mixed powder. A graphite sagger with an internal volume of 100 ml and internal dimensions of 40 mm length, 130 mm width, and 24 mm depth was filled with 30.00 g of the mixed powder and placed inside the core tube of a tubular furnace. While argon gas was flowing through the core tube, the temperature was increased to 860°C at a rate of 300°C / hour and then heated in the argon atmosphere for 3 hours. While argon gas was still flowing, the furnace temperature was lowered to room temperature at a rate of 300°C / hour, and the target material was removed from the furnace. A portion of the obtained target material was extracted and crushed in an agate mortar. After that, it was measured using a powder X-ray diffractometer. C / I B and I D / I B The values are shown in Table 1 below. The steps from removing the target object from the furnace, extracting a portion of the target object, crushing the target object, and measuring the X-ray diffraction of the target object using a powder X-ray diffractometer were all carried out in an N2 gas atmosphere without exposure to air.
[0062] Comparative Example 4 In Comparative Example 3, the molar ratio of carbon (C) element contained in activated carbon to 2 moles of oxygen (O) element contained in sulfate ions constituting LiSO·H0 was changed to 85%, except that the other conditions were the same as in Comparative Example 3.
[0063] [Rating 1] Using the lithium sulfide obtained in the Examples and Comparative Examples as raw materials, sulfide solid electrolytes were produced by the following method. The lithium ion conductivity of the obtained sulfide solid electrolytes was measured by the following method, and the results are shown in Table 1 below.
[0064] <Production of sulfide solid electrolyte> Li 5.4 PS 4.4 Cl 0.4 Br 1.2 Lithium sulfide powder, diphosphorus pentasulfide powder, lithium chloride powder, and lithium bromide powder were weighed out to a total weight of 75 g and ground and mixed in a ball mill for 6 hours to prepare a mixed powder. This mixed powder was packed into a graphite sagger, which was then placed inside the core tube of a tubular furnace. While hydrogen sulfide gas (100 vol%) was circulated through the core tube at 1.0 L / min, the temperature was increased to 500 °C at a rate of 200 °C / hour and then maintained for 4 hours to obtain a sulfide solid electrolyte. All of these operations were carried out in a glove box filled with thoroughly dried argon gas (dew point below -60 °C).
[0065] <Lithium ion conductivity measurement> The sulfide solid electrolyte was uniaxially pressed at a pressure of 200 MPa, and then cold isostatically pressed (CIP) at a pressure of 200 MPa to produce pellets with a diameter of 10 mm and a thickness of 2 to 5 mm. Carbon paste was applied to the top and bottom surfaces of the pellets as electrodes, and the pellets were then heat-treated at 180°C for 30 minutes to produce samples for measuring lithium ion conductivity. The lithium ion conductivity was measured at 25°C using an AC impedance method. All of these operations were performed in a glove box filled with thoroughly dried argon gas (dew point below -60°C).
[0066] [Table 1]
[0067] [Table 2]
[0068] As is clear from the results shown in Tables 1 and 2, the lithium sulfide obtained in each Example contains less lithium carbonate and lithium sulfate as impurities than the lithium sulfide in the Comparative Examples. As a result, the sulfide solid electrolytes made from the lithium sulfide obtained in each Example have higher lithium ion conductivity than the sulfide solid electrolytes made from the lithium sulfide in the Comparative Examples. [Industrial Applicability]
[0069] As described above in detail, according to the method of the present invention, lithium sulfide with high purity can be produced.
Claims
1. a first step of reducing a raw material containing lithium (Li) and sulfur (S) using a reducing agent containing carbon (C) to obtain an intermediate; a second step of reducing the intermediate with a reducing gas to obtain lithium sulfide; In an X-ray diffraction pattern of the intermediate measured with an X-ray diffractometer, when the intensity of a peak observed at 2θ=25.6°±0.5° is defined as I A and the intensity of a peak observed at 2θ=27.1°±0.5° is defined as I B , the ratio of I A to I B (I A / I B ) is 0.10 or less, and when the intensity of a peak observed at 2θ=21.2°±0.5° is defined as I C , the ratio of I C to I B (I C / I B ) is 0.03 or more and 0.09 or less.
2. In the X-ray diffraction pattern of lithium sulfide measured by an X-ray diffractometer, the intensity of the peak observed at 2θ=27.1°±0.5° is defined as I B The intensity of the peak observed at 2θ = 21.2° ± 0.5° is defined as I C When the above I B The above I C The ratio (I C / I B 2. The method for producing lithium sulfide according to claim 1, wherein the second step is carried out so that the (R) is 0.02 or less.
3. 3. The method for producing lithium sulfide according to claim 1, wherein the first step is carried out under an inert gas atmosphere.
4. The method for producing lithium sulfide according to any one of claims 1 to 3, wherein the first step is carried out under a temperature condition of 700°C or higher and 850°C or lower.
5. The method for producing lithium sulfide according to any one of claims 1 to 4, wherein the second step is carried out under a temperature condition of 830°C or higher and 930°C or lower.
6. A step A for obtaining lithium sulfide; A step B of mixing the lithium sulfide, diphosphorus pentasulfide, and lithium halide to obtain a raw material composition; and a step C of firing the raw material composition, the step A comprises a first step of reducing a raw material containing lithium (Li) and sulfur (S) using a reducing agent containing carbon (C) to obtain an intermediate, and a second step of reducing the intermediate using a reducing gas to obtain lithium sulfide, a first step of producing a solid electrolyte, the first step being carried out so that, in an X-ray diffraction pattern of the intermediate measured by an X-ray diffractometer, the ratio of I A to I B (I A / I B ) is 0.10 or less, where I A is the intensity of a peak observed at 2θ=25.6°±0.5° and I B is the intensity of a peak observed at 2θ=27.1°±0.5°, and the ratio of I C to I B (I C / I B ) is 0.03 or more and 0.09 or less, where I C is the intensity of a peak observed at 2θ=21.2°±0.5°.
7. The method for producing a solid electrolyte according to claim 6 , wherein the solid electrolyte contains a crystalline phase having an argyrodite-type crystal structure.
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