Positive electrode mixture

The composite material with sulfur, carbon, and phosphorus-based ion conductor enhances interface formation and ion conduction paths, addressing the limitations of existing materials to improve lithium-ion battery performance and reduce production complexity.

WO2025142863A1PCT designated stage expired Publication Date: 2025-07-03IDEMITSU KOSAN CO LTD
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Patent Information

Application Number
PCT/JP2024/045522
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2023-12-27
Filing Date
2024-12-23
Publication Date
2025-07-03

AI Technical Summary

Technical Problem

Existing positive electrode composite materials for lithium-ion batteries using sulfur face limitations in forming effective interfaces and ion conduction paths due to insufficient mechanical mixing and solution-based methods, leading to suboptimal charge and discharge characteristics.

Method used

A positive electrode composite material comprising a sulfur-based active material, a carbon material with pores, an ion conductor containing a phosphorus element, and a solid electrolyte, where the ion conductor is mixed in a molten state with the composite to form a precursor, followed by pulverization under conditions that reduce crystallinity, enhancing interface formation and ion conduction paths.

Benefits of technology

The proposed composite material improves charge and discharge characteristics of lithium-ion batteries, reduces the need for complex solid electrolyte production, and offers potential cost savings while maintaining high performance.

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Abstract

This positive electrode mixture comprises: a sulfur-based active material; a carbon material having pores; at least one of an ion conductor containing a phosphorus element and a modified body of the ion conductor; and a solid electrolyte. The rate of change in the element ratio C / P of carbon to phosphorus, as determined by surface element analysis using X-ray photoelectron spectroscopy before and after Ar sputtering treatment, is 0.365-1.00.
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Description

Positive electrode mixture

[0001] The present invention relates to a positive electrode mixture, and more particularly to a positive electrode mixture that can be suitably used for the positive electrode of an all-solid-state lithium-ion battery.

[0002] Lithium-ion batteries require high battery capacity. To improve battery capacity, the use of sulfur in the cathode has been investigated due to its large theoretical capacity. However, sulfur has low lithium ion and electronic conductivity, so when sulfur is used in the cathode, it is necessary to ensure the lithium ion and electronic conductivity within the cathode.

[0003] To address the above-mentioned issues, a cathode composite has been investigated in which sulfur, a carbon material, diphosphorus pentasulfide, a solid electrolyte, etc. are mechanically mixed in a planetary ball mill to form a composite (see, for example, Patent Documents 1 and 2). Also, a cathode composite has been investigated in which sulfur, a carbon material having pores, and a solid electrolyte are combined, with the solid electrolyte being placed in the pores of the carbon material from a solution state (see, for example, Patent Documents 3 and 4).

[0004] Patent No. 7156157 Patent No. 6061139 Patent No. 7283657 International Publication No. 2023 / 187466

[0005] There is a demand for further improvement in charge-discharge characteristics compared to conventional techniques. Conventional mechanical mixing (mechanical milling) methods, such as those described in Patent Documents 1 and 2, result in insufficient interface formation between the sulfur and carbon material in the resulting composite and the solid electrolyte, diphosphorus pentasulfide, etc., limiting the formation of ion conduction paths between the sulfur and the carbon material. Techniques for precipitating a solid electrolyte from a solution, such as those described in Patent Documents 3 and 4, result in insufficient interface formation between the sulfur and carbon material in the resulting composite and the solid electrolyte, limiting the formation of ion conduction paths between the sulfur and the carbon material. One object of the present invention is to provide a positive electrode composite that can improve the charge-discharge characteristics of lithium-ion batteries.

[0006] According to the present invention, the following positive electrode mixtures and the like are provided. 1. A positive electrode mixture comprising a sulfur-based active material, a carbon material having micropores, at least one of an ionic conductor containing elemental phosphorus and a modified form of said ionic conductor, and a solid electrolyte, wherein the rate of change in the elemental ratio C / P of carbon to phosphorus before and after Ar sputtering treatment, as determined by surface elemental analysis using X-ray photoelectron spectroscopy, is 0.365 or more and 1.00 or less. 2. The positive electrode mixture according to 1, wherein the rate of change in the elemental ratio C / P is 0.380 or more and 0.950 or less. 3. A solid 31 3. The positive electrode mixture according to claim 1, wherein a peak having a peak top at about 101.0 ppm is observed in P-NMR measurement. 31 In the P-NMR measurement, P 2 S 5 , P 2 S 6 4- and P.S. 3 - 5. The positive electrode mixture according to 1, wherein the sum of the areas of the peaks of 1 and 2 is 68% or less of the total. 31 In the P-NMR measurement, P 2 S 7 4-is 23% or more of the total. 6. The cathode mixture according to any one of 1 to 5, wherein the melting point of the ion conductor is 130°C to 450°C. 7. The cathode mixture according to any one of 1 to 6, wherein the ion conductor comprises a lithium ion conductive material containing elemental phosphorus and one or more elements selected from lithium, boron, sulfur, and oxygen, or a precursor thereof. 8. The cathode mixture according to any one of 1 to 7, wherein the ion conductor comprises phosphorus sulfide. 9. The cathode mixture according to any one of 1 to 8, wherein the ion conductor comprises diphosphorus pentasulfide. 10. The cathode mixture according to any one of 1 to 9, wherein the sulfur-based active material comprises elemental sulfur. 11. The cathode mixture according to any one of 1 to 10, wherein the mass ratio of the sum of the sulfur-based active material, the ion conductor containing elemental phosphorus, and a modified product of the ion conductor to the carbon material is less than 5.00. 12. 13. A method for producing a cathode composite, comprising mixing at least one of a composite and a mixture of a sulfur-based active material and a carbon material having pores with a molten ion conductor to prepare a cathode composite precursor, and mixing and grinding the cathode composite precursor and a crystalline solid electrolyte under conditions that reduce the crystallinity of the solid electrolyte and promote amorphization to produce a cathode composite. 13. The method according to 12, in which the composite of a sulfur-based active material and a carbon material having pores is mixed with the molten ion conductor. 14. The method according to 12 or 13, in which the ion conductor has a melting point of 130°C to 450°C. 15. The method according to any one of 12 to 14, in which the ion conductor comprises a lithium ion conductive material or a precursor thereof, containing elemental phosphorus and one or more elements selected from lithium, boron, sulfur, and oxygen. 16. The method according to any one of 12 to 15, in which the ion conductor is phosphorus sulfide. 17. 17. The manufacturing method according to any one of 12 to 16, wherein the ionic conductor contains diphosphorus pentasulfide. 18. The manufacturing method according to any one of 12 to 17, wherein the sulfur-based active material contains elemental sulfur. 19. The manufacturing method according to any one of 12 to 18, wherein the mass ratio of the sulfur-based active material, carbon material, and ionic conductor satisfies the following relationship:(sulfur-based active material + carbon material): ionic conductor = 50: 1 to 80 20. The manufacturing method according to any one of 12 to 19, wherein the mass ratio of the total of the sulfur-based active material and ionic conductor to the carbon material is less than 5.00. 21. A positive electrode comprising the positive electrode mixture according to any one of 1 to 11. 22. A lithium ion battery comprising the positive electrode mixture according to any one of 1 to 11 or the positive electrode of 21.

[0007] The present invention provides a positive electrode composite that can improve the charge-discharge characteristics of lithium-ion batteries. Furthermore, the amount of solid electrolyte used, which is often produced through a complex manufacturing process, can be reduced, which is expected to result in cost savings.

[0008] Solid of Example 1 31 1 shows the results of waveform separation of the P-NMR spectrum. 31 This is the result of waveform separation of the P-NMR spectrum.

[0009] 1. First embodiment of cathode composite A cathode composite according to one embodiment of the present invention includes a sulfur-based active material, a porous carbon material, at least one of an ionic conductor containing elemental phosphorus and a modified version of the ionic conductor, and a solid electrolyte. The change in the carbon to phosphorus elemental ratio C / P between before and after Ar sputtering, as determined by surface elemental analysis using X-ray photoelectron spectroscopy, is 0.365 or more and 1.00 or less.

[0010] The Ar sputtering process is a process for scraping the surface layer of the positive electrode composite material and measuring the internal state of the positive electrode composite material. A ) indicates the change in element ratio between the outermost surface and the interior of the positive electrode composite, and is calculated using the following formula: A = (internal element ratio C / P) / (surface element ratio C / P)

[0011] R Ais 1 means that the elemental composition of the interior and the surface is equal, and as the difference from 1 increases, the difference in elemental composition between the interior and the surface increases. Due to the influence of the sputtering rate of Ar sputtering, the elemental ratio C / P tends to be smaller in the interior than on the surface. On the other hand, in the positive electrode composite of this embodiment, there is a tendency for phosphorus (P) to be unevenly distributed on the surface and carbon (C) to be unevenly distributed in the interior. From the relationship between the influence of Ar sputtering and the properties of the positive electrode composite, in the positive electrode composite of this embodiment, the rate of change of the elemental ratio C / P (R A ) is 0.365 or more and 1.00 or less. This is thought to indicate that the sulfur-based active material, the carbon material, the ion conductor, and the modified ion conductor form an interface in a form different from conventional forms. As a result, an ion conduction path is efficiently formed within the positive electrode composite, resulting in a positive electrode composite that can improve the charge / discharge characteristics of lithium ion batteries. The rate of change in the element ratio C / P is preferably 0.380 or more and 0.950 or less, more preferably 0.395 or more and 0.900 or less, and particularly preferably 0.410 or more and 0.800 or less. Details of the measurement of the rate of change in the element ratio C / P are as described in the Examples.

[0012] The positive electrode mixture according to one embodiment of the present invention is a solid 31 In P-NMR measurement, there is a peak with a peak top at around 101.0 ppm. Note that "around" means that the chemical shift position may vary slightly depending on the measuring device, etc., but it means, for example, within a range of ±2 ppm. 31 The state of the phosphorus element near the surface of the positive electrode composite can be confirmed by P-NMR measurement. 2 S 6 4- and P 2 S 7 4- In this embodiment, the sulfur-based active material, the carbon material, the ionic conductor, and the modified ionic conductor form an interface in a form different from that of the conventional one, which is considered to be why the peak is observed.

[0013] For the same reason, in the positive electrode mixture according to one embodiment of the present invention, the ionic conductor contains phosphorus sulfide, and the solid31 In the P-NMR measurement, P 2 S 5 , P 2 S 6 4- and P.S. 3 - The sum of the areas of the peaks is 68% or less of the total. This indicates that in this embodiment, the sulfur-based active material, the carbon material, the ionic conductor, and the modified ionic conductor form an interface in a form different from that of the conventional one. Furthermore, in the positive electrode composite according to one embodiment of the present invention, the ionic conductor contains phosphorus sulfide, and the solid 31 In the P-NMR measurement, P 2 S 7 4- The area of ​​the peak of is 23% or more of the total. This indicates that in this embodiment, the sulfur-based active material, the carbon material, the ion conductor, and the modified ion conductor form an interface in a form different from conventional ones. 31 The details of the P-NMR measurement are as described in the Examples.

[0014] In one embodiment, the solid electrolyte contained in the positive electrode mixture is amorphous or low-crystalline. Being amorphous or low-crystalline means that the crystallite size calculated from the peak of X-ray diffraction measurement is 65 nm or less.

[0015] In one embodiment, the mass ratio of the sulfur-based active material (S), the ionic conductor containing elemental phosphorus, and the modified ionic conductor to the carbon material (C) is less than 5.00. For example, when the ionic conductor is diphosphorus pentasulfide, the mass ratio [(S + P 2 S 5 ) / C] is smaller than 5.00. When the mass ratio is less than 5.00, the charge / discharge characteristics are further improved. The mass ratio may be 4.80 or less, 4.50 or less, 4.30 or less, 4.00 or less, 3.70 or less, or 3.50 or less. The mass ratio can be adjusted by the amount of each constituent material.

[0016] 2. Manufacturing Method of Cathode Composite The cathode composite of this embodiment can be manufactured by the method of the present invention, for example, including the following steps. Step (A): A cathode composite precursor is prepared by mixing at least one of a composite and a mixture of a sulfur-based active material and a porous carbon material with a molten ion conductor. Step (B): A cathode composite is manufactured by mixing and pulverizing the cathode composite precursor of step (A) and a solid electrolyte. In one embodiment, the cathode composite is obtained by the manufacturing method of the present invention. Hereinafter, the manufacturing methods of the cathode composite precursor and the cathode composite will be described.

[0017] [Step (A)] In step (A), at least one of a composite and a mixture of a sulfur-based active material and a porous carbon material is mixed with a molten ion conductor to prepare a positive electrode composite precursor.

[0018] The sulfur-based active material is not particularly limited, but sulfur, lithium sulfide (Li 2 S), lithium polysulfide (Li 2 S n : n satisfies 1<n≦8.), titanium sulfide (TiS 2 ), molybdenum sulfide (MoS 2 ), iron sulfide (FeS, FeS 2 ), copper sulfide (CuS), nickel sulfide (Ni 3 S 2 ), sulfur-containing polymer compounds, etc. Among these, sulfur is preferred. There are no particular limitations on the sulfur, but sulfur with a high purity is preferred. Specifically, the purity is preferably 95% by mass or more, more preferably 96% by mass or more, and particularly preferably 97% by mass or more. Examples of the crystal system of sulfur include α sulfur (orthorhombic system), β (monoclinic system), γ (monoclinic system), amorphous sulfur, etc. These can be used alone or in combination of two or more types.

[0019] As the ion conductor, a lithium ion conductive material containing phosphorus or a precursor thereof can be used. Examples of the lithium ion conductive material include a lithium ion conductive material containing one or more elements selected from lithium, boron, oxygen, sulfur, phosphorus, halogens, and antimony, or a precursor thereof. A lithium ion conductive material containing phosphorus and one or more elements selected from lithium, boron, sulfur, and oxygen, or a precursor thereof, is preferred. A lithium ion conductive material that does not contain phosphorus can be used in combination with a lithium ion conductive material containing phosphorus.

[0020] In this specification, a "lithium ion conductive material containing one or more elements selected from lithium, boron, oxygen, sulfur, phosphorus, a halogen, and antimony" refers to a material that remains solid at 25°C under a nitrogen atmosphere and has ionic conductivity attributable to lithium ions. Also, a "precursor of a lithium ion conductive material containing one or more elements selected from lithium, boron, oxygen, phosphorus, a halogen, and antimony" refers to a material that, when used as an active material in a lithium ion battery, reacts with lithium metal or lithium ions to form a lithium-containing compound, thereby becoming the lithium ion conductive material.

[0021] As used herein, the term "halogen" includes elements such as fluorine, chlorine, bromine, and iodine.

[0022] Since the ionic conductor is heated to form a melt, the melting point is preferably 130 to 450°C, and more preferably 220 to 450°C. Furthermore, the melting point of the ionic conductor is preferably lower, such as 440°C or lower, 430°C or lower, 420°C or lower, 410°C or lower, or 400°C or lower. Elemental sulfur, which is an example of a sulfur-based active material, has a boiling point of approximately 450°C. Mixing it with a melt of a substance having a melting point higher than this will volatilize the material, and it is believed that the desired positive electrode composite precursor cannot be obtained. Furthermore, lowering the temperature in the process reduces the energy required for production, leading to lower costs.

[0023] Lithium ion conductive material: lithium borohydride, LiBF 4, organic lithium salts, polymer electrolytes such as polyethylene oxide, etc. Precursors of lithium ion conductive materials include phosphorus sulfides such as diphosphorus pentasulfide, red phosphorus, boron sulfide, diphosphorus pentoxide, tin, etc. These compounds may be used alone or in combination of two or more.

[0024] Examples of organic lithium salts include bis(perfluoroalkylsulfonyl)imide lithium salts such as bis(trifluoromethanesulfonyl)imide lithium, bis(fluorosulfonyl)imide lithium, fluorosulfonyl-trifluoromethanesulfonylimide lithium, bis(pentafluoroethanesulfonyl)imide lithium, and bis(nonafluorobutanesulfonyl)imide lithium; lithium salts of perfluoroalkylsulfonimides such as 4,4,5,5-tetrafluoro-1,3,2-dithiazolidine-1,1,3,3-tetraoxide lithium salt; lithium salts of fluorosulfonylimides; lithium carboxylic acid salts such as trifluoromethanesulfonic acid, lithium acetate, lithium propionate, and lithium butyrate; lithium organic sulfonates such as lithium dodecylbenzenesulfonate and lithium p-styrenesulfonate; and lithium organic phosphates. These organic lithium salts are also preferably used together with ion-conductive polymers and ionic liquids, as they are expected to provide higher lithium conductivity.

[0025] The ionic conductor is preferably one or more compounds selected from the group consisting of phosphorus sulfide, red phosphorus, boron sulfide, diphosphorus pentoxide, and polymer electrolytes such as polyethylene oxide, which are substantially free of lithium element. Ionic conductors that are substantially free of lithium element are considered to have high affinity with sulfur-based active materials and carbon materials.

[0026] More preferably, the ionic conductor is one or more compounds selected from the group consisting of phosphorus sulfide, red phosphorus, and diphosphorus pentoxide. 4 S 3 ), diphosphorus pentasulfide (P 2 S 5 ), phosphorus heptasulfide (P 4 S 7), tetraphosphorus pentasulfide (P 4 S 5 ) and the like. Furthermore, phosphorus sulfide may have a dimer or polysulfide structure, or may be a mixture. Particularly preferably, the ionic conductor is diphosphorus pentasulfide, which is expected to react with lithium to form a sulfide solid electrolyte exhibiting high ionic conductivity. The content of phosphorus sulfide or diphosphorus pentasulfide relative to the entire ionic conductor is 50% by mass or more, 80% by mass or more, 95% by mass or more, or 99% by mass or more, and is substantially 100% by mass. When it is substantially 100% by mass, it may contain unavoidable impurities.

[0027] Examples of carbon materials having micropores include carbon black such as Ketjen black, acetylene black, Denka black, thermal black, channel black, and Knobel (registered trademark), graphite, activated carbon, etc. These may be used alone or in combination of two or more.

[0028] In one embodiment, the BET specific surface area of ​​the carbon material is 50 m 2 / g or more, 6000m 2 This allows a wide contact interface between the carbon material and the sulfur-based active material to be formed, improving the utilization rate of the sulfur-based active material. 2 / g or more, 100m 2 / g or more, 1000m 2 / g or more, 1500m 2 / g or more, 2000m 2 / g or more, 2500m 2 / g or more or 3000m 2 / g or more. 2 / g or less, and more preferably 5000m 2 / g or less is preferred.

[0029] In addition, the pore volume of the carbon material is 0.5 cm 3 / g or more, 6cm 3 This allows the sulfur-based active material to be impregnated into the pores of the carbon material, further improving the battery capacity. 3 / g or more, and more preferably 1.0 cm3 / g or more is preferable. 3 / g or less, and more preferably 5.0 cm 3 / g or less is preferred.

[0030] In the present invention, the BET specific surface area and pore volume can be determined using a nitrogen adsorption isotherm obtained by adsorbing nitrogen gas to a carbon material at liquid nitrogen temperature. Specifically, the BET specific surface area can be calculated by the Brenauer-Emmet-Telle (BET) multipoint method using the nitrogen adsorption isotherm. Furthermore, the pore volume can be determined by the Barret-Joyner-Halenda (BJH) method using the nitrogen adsorption isotherm. As a measuring device, for example, a specific surface area / pore distribution measuring device (Autosorb-3) manufactured by Quantacrome can be used for the measurement.

[0031] In the manufacturing method of this embodiment, at least one of the composite and mixture of the sulfur-based active material and the carbon material having pores is mixed with a molten ion conductor. In one embodiment, a composite of the sulfur-based active material and the carbon material having pores is prepared in advance, and then the composite is mixed with the molten ion conductor. As a result, the ion conductor is coated on the surface of the composite, i.e., on both the sulfur-based active material and the carbon material, and an ion conduction path between the three is efficiently formed. On the other hand, when a mixture of the sulfur-based active material and the carbon material having pores is mixed with a molten ion conductor, it is believed that the sulfur-based active material, which has a lower melting point than the ion conductor, melts first, thereby forming a composite of the sulfur-based active material and the carbon material having pores, and then the ion conductor melts, thereby forming a similar structure.

[0032] In one embodiment, the mass ratio of the sulfur-based active material (S) to the carbon material (C) is 1:9 to 9:1, preferably 5:5 to 9:1.

[0033] The method for compounding the sulfur-based active material and the carbon material having pores is not particularly limited. For example, the sulfur-based active material and the carbon material may be mixed and crushed using a mixer / crusher such as a planetary ball mill to compound them, or the sulfur-based active material and the carbon material may be heated in a sealed state to a temperature equal to or higher than the melting point of the sulfur-based active material to compound them.

[0034] At least one of the composite and mixture of the sulfur-based active material and the porous carbon material can be mixed with the molten ionic conductor by heating at a temperature equal to or higher than the melting point of the ionic conductor. The heating temperature is adjusted according to the ionic conductor used. Substances that are sublimable at normal pressure can be mixed in a molten state by applying pressure. The heating time is preferably 10 minutes to 24 hours. A positive electrode composite precursor is obtained by cooling after heating. If necessary, a pulverization step may be performed after cooling.

[0035] In one embodiment, the mass ratio of the sulfur-based active material, the carbon material, and the ionic conductor in the positive electrode composite precursor satisfies the following relationship: (sulfur-based active material + carbon material): ionic conductor = 50:1 to 80, preferably (sulfur-based active material + carbon material): ionic conductor = 50:5 to 60.

[0036] In one embodiment, the mass ratio of the total of the sulfur-based active material (S) and the ionic conductor to the carbon material (C) is less than 5.00. For example, when the ionic conductor is diphosphorus pentasulfide, the mass ratio [(S + P 2 S 5 ) / C] is smaller than 5.00. When the mass ratio is less than 5.00, the charge / discharge characteristics are further improved. The mass ratio may be 4.80 or less, 4.50 or less, 4.30 or less, 4.00 or less, 3.70 or less, or 3.50 or less. The mass ratio may be 2.00 or more, 2.60 or more, or 3.20 or more. The mass ratio can be adjusted by the amount of each constituent material.

[0037] [Step (B)] In step (B), the cathode composite precursor of step (A) and a solid electrolyte are mixed and pulverized to produce a cathode composite. The solid electrolyte is not particularly limited, but examples thereof include sulfide solid electrolytes used in lithium ion batteries, which will be described later.

[0038] The mixing of the cathode composite precursor and the solid electrolyte is not particularly limited and can be adjusted according to the characteristics of the solid electrolyte used. For example, if the solid electrolyte is crystalline and maintaining the crystallinity affects performance, the cathode composite precursor and the solid electrolyte are mixed using a relatively weak force. Examples of devices for mixing the cathode composite precursor and the solid electrolyte include a planetary ball mill, a tumbling mill, a bead mill, a Filmix, a Nauta mixer, a tornado mixer, a twin-screw extruder, a multi-screw roller, and a solid-state shear kneader.

[0039] In one embodiment, the solid electrolyte is a crystalline solid electrolyte, and the cathode composite is produced by mixing and pulverizing the solid electrolyte under conditions that reduce its crystallinity and promote amorphization. To mix and pulverize the solid electrolyte under conditions that promote amorphization, for example, a device with a relatively large impact force, such as a planetary ball mill, may be used. Furthermore, conditions such as the rotation speed may be adjusted to mix and pulverize the solid electrolyte under a higher load than usual. Whether the solid electrolyte has become amorphized can be confirmed, for example, by the presence of a crystalline peak and a change in the half-width in X-ray diffraction measurement.

[0040] 3. Lithium-ion Battery A lithium-ion battery according to one embodiment of the present invention includes the above-described cathode composite of the present invention. For example, an all-solid-state lithium-ion battery can be manufactured by using a solid electrolyte instead of a liquid electrolyte. By using the cathode composite of the present invention, an all-solid-state lithium-ion battery with good charge / discharge characteristics can be manufactured. The all-solid-state lithium-ion battery will now be described. An all-solid-state lithium-ion battery is primarily composed of a cathode layer, an anode layer, and an electrolyte layer, and the cathode composite of the present invention is suitable as a constituent material for the cathode layer. The anode layer and electrolyte layer can be manufactured by known methods. In addition to the cathode layer, anode layer, and electrolyte layer, a current collector is preferably used, and known current collectors can also be used.

[0041] The solid electrolyte is not particularly limited, but examples thereof include sulfide solid electrolytes. The sulfide solid electrolyte is a solid electrolyte that contains at least sulfur atoms and exhibits ionic conductivity due to the contained metal ions, and in addition to sulfur atoms, preferably contains lithium atoms and phosphorus atoms, more preferably contains lithium atoms, phosphorus atoms, and halogen atoms, and has ionic conductivity due to lithium atoms. The sulfide solid electrolyte may be an amorphous sulfide solid electrolyte or a crystalline sulfide solid electrolyte.

[0042] (Amorphous sulfide solid electrolyte) The amorphous sulfide solid electrolyte can be used without any particular limitation as long as it contains at least sulfur atoms and exhibits ionic conductivity due to the contained metal ions. Representative examples include Li 2 S-P 2 S 5 a solid electrolyte containing sulfur atoms, lithium atoms, and phosphorus atoms, which is composed of lithium sulfide and phosphorus sulfide such as Li; 2 S-P 2 S 5 - LiI, Li 2 S-P 2 S 5 -LiCl, Li 2 S-P 2 S 5 - LiBr, Li 2 S-P 2 S 5 -LiI-LiBr, etc., a solid electrolyte composed of lithium sulfide, phosphorus sulfide, and lithium halide; 2 S-P 2 S 5 -Li 2 O-LiI, Li 2 S-SiS 2 -P 2 S 5 In order to obtain higher ionic conductivity, a solid electrolyte such as Li 2 S-P 2 S 5 - LiI, Li 2 S-P 2 S 5-LiCl, Li 2 S-P 2 S 5 - LiBr, Li 2 S-P 2 S 5 A solid electrolyte composed of lithium sulfide, phosphorus sulfide, and lithium halide, such as LiI-LiBr, is preferred. The types of elements constituting the amorphous sulfide solid electrolyte can be confirmed, for example, by an ICP emission spectrometer.

[0043] The amorphous sulfide solid electrolyte contains at least Li 2 S-P 2 S 5 When Li 2 S and P 2 S 5 From the viewpoint of obtaining high chemical stability and higher ionic conductivity, the molar ratio of Li to Li is preferably 65 to 85:15 to 35, more preferably 70 to 80:20 to 30, and even more preferably 72 to 78:22 to 28. 2 S-P 2 S 5 In the case of -LiI-LiBr, the total content of lithium sulfide and diphosphorus pentasulfide is preferably 60 to 95 mol%, more preferably 65 to 90 mol%, and even more preferably 70 to 85 mol%. The ratio of lithium bromide to the total of lithium bromide and lithium iodide is preferably 1 to 99 mol%, more preferably 20 to 90 mol%, even more preferably 40 to 80 mol%, and particularly preferably 50 to 70 mol%.

[0044] When the amorphous sulfide solid electrolyte contains lithium atoms, sulfur atoms, phosphorus atoms, and halogen atoms, the compounding ratio (molar ratio) of these atoms is preferably 1.0 to 1.8: 1.0 to 2.0: 0.1 to 0.8: 0.01 to 0.6, more preferably 1.1 to 1.7: 1.2 to 1.8: 0.2 to 0.6: 0.05 to 0.5, and even more preferably 1.2 to 1.6: 1.3 to 1.7: 0.25 to 0.5: 0.08 to 0.4. Furthermore, when bromine and iodine are used in combination as halogen atoms, the compounding ratio (molar ratio) of lithium atoms, sulfur atoms, phosphorus atoms, bromine atoms, and iodine atoms is preferably 1.0 to 1.8: 1.0 to 2.0: 0.1 to 0.8: 0.01 to 0.3: 0.01 to 0.3, more preferably 1.1 to 1.7: 1.2 to 1.8: 0.2 to 0.6: 0.02 to 0.25: 0.02 to 0.25, more preferably 1.2 to 1.6: 1.3 to 1.7: 0.25 to 0.5: 0.03 to 0.2: 0.03 to 0.2, and even more preferably 1.35 to 1.45: 1.4 to 1.7: 0.3 to 0.45: 0.04 to 0.18: 0.04 to 0.18. By setting the compounding ratio (molar ratio) of lithium atoms, sulfur atoms, phosphorus atoms, and halogen atoms within the above range, it becomes easier to obtain a solid electrolyte having a thiolisiconregion II type crystal structure described below and having higher ionic conductivity.

[0045] The shape of the amorphous sulfide solid electrolyte is not particularly limited, but may be, for example, particulate. The average particle diameter (D 50 ) can be, for example, in the range of 0.01 μm to 500 μm, or 0.1 μm to 200 μm. 50 ) is the particle size at which 50% of the total particle size is reached when the particle size distribution integral curve is drawn and the integral is calculated from the smallest particle size, and the volume distribution is an average particle size that can be measured using, for example, a laser diffraction / scattering particle size distribution measuring device.

[0046] (Crystalline sulfide solid electrolyte) The crystalline sulfide solid electrolyte may be, for example, a so-called glass ceramic obtained by heating the amorphous sulfide solid electrolyte to a temperature equal to or higher than the crystallization temperature, and a sulfide solid electrolyte having the following crystal structure may be used. Examples of crystal structures that the crystalline sulfide solid electrolyte containing lithium atoms, sulfur atoms, and phosphorus atoms may have include Li 3 P.S. 4 Crystal structure, Li 4 P 2 S 6 Crystal structure, Li 7 P.S. 6 Crystal structure, Li 7 P 3 S 11 Examples of such a crystal structure include a crystal structure having peaks at 2θ=approximately 20.2° and 23.6° (for example, JP 2013-16423 A).

[0047] The crystalline sulfide solid electrolyte containing lithium atoms, sulfur atoms, phosphorus atoms, and halogen atoms may have a crystalline structure such as Li 4-x Ge 1-x P x S 4 Thio-LISICON Region II crystal structure (Kanno et al., Journal of the Electrochemical Society, 148(7)A742-746(2001)), Li 4-x Ge 1-x P x S 4 Examples of the thio-lisicon region II crystal structure include those having a crystal structure similar to the thio-lisicon region II type (see Solid State Ionics, 177 (2006), 2721-2725). 4-x Ge 1-x P x S 4 Thio-LISICON Region II crystal structure, Li 4-x Ge 1-x P x S 4This indicates that the thio-LISICON region II type has a similar crystal structure.

[0048] In X-ray diffraction measurement using CuKα radiation, Li 3 P.S. 4 Diffraction peaks of the crystal structure appear, for example, at 2θ=17.5°, 18.3°, 26.1°, 27.3°, and 30.0°. 4 P 2 S 6 Diffraction peaks of the crystal structure appear, for example, at 2θ=16.9°, 27.1°, and 32.5°. 7 P.S. 6 Diffraction peaks of the crystal structure appear, for example, at 2θ=15.3°, 25.2°, 29.6°, and 31.0°. 7 P 3 S 11 Diffraction peaks of the crystal structure appear, for example, at 2θ=17.8°, 18.5°, 19.7°, 21.8°, 23.7°, 25.9°, 29.6°, and 30.0°, and Li 4-x Ge 1-x P x S 4 The diffraction peaks of the thio-LISICON Region II crystal structure appear, for example, at 2θ=20.1°, 23.9°, and 29.5°, and Li 4-x Ge 1-x P x S 4 Diffraction peaks of a crystal structure similar to that of thio-LISICON Region II type appear, for example, at 2θ=20.2° and 23.6°. Note that these peak positions may vary within a range of ±0.5°.

[0049] The crystal structure of the crystalline sulfide solid electrolyte also includes an argyrodite-type crystal structure. 7 P.S. 6 Crystal structure; Li 7 P.S. 6 The structural skeleton of the composition formula Li 7-x P 1-y Si y S6 and Li 7+x P 1-y Si y S 6 (x is -0.6 to 0.6, y is 0.1 to 0.6); Li 7-x-2y P.S. 6-x-y Cl x (0.8≦x≦1.7, 0<y≦−0.25x+0.5); Li 7-x P.S. 6-x Ha x (Ha is Cl or Br, and x is preferably 0.2 to 1.8).

[0050] Among the above crystal structures, the crystal structure of the crystalline sulfide solid electrolyte is Li 3 P.S. 4 The crystal structure, the thiolicon region II crystal structure, and the argyrodite crystal structure are preferred.

[0051] The shape of the crystalline sulfide solid electrolyte is not particularly limited, but may be, for example, particulate. The average particle diameter (D 50 ) is the average particle size (D 50 ) and the ranges of 0.01 μm to 500 μm and 0.1 μm to 200 μm can be exemplified.

[0052] 4. Other Forms of Cathode Mixture A cathode mix according to one embodiment of the present invention includes a sulfur-based active material, a carbon material having micropores, an ion conductor and / or a modified form of the ion conductor, and a solid electrolyte, 31 In the P-NMR measurement, there is a peak having a peak top at about 101.0 ppm.

[0053] A positive electrode composite according to one embodiment of the present invention includes a sulfur-based active material, a carbon material having micropores, an ion conductor and / or a modified form of the ion conductor, and a solid electrolyte, wherein the ion conductor includes phosphorus sulfide, and the solid 31 In the P-NMR measurement, P 2 S 5 , P 2 S 6 4- and P.S.3 - The total area of ​​the peaks is 68% or less of the total.

[0054] A positive electrode composite according to one embodiment of the present invention includes a sulfur-based active material, a carbon material having micropores, an ion conductor and / or a modified form of the ion conductor, and a solid electrolyte, wherein the ion conductor includes phosphorus sulfide, and the solid 31 In the P-NMR measurement, P 2 S 7 4- The area of ​​the peak is 23% or more of the total.

[0055] The positive electrode mixtures of the above-mentioned respective embodiments can all be obtained by, for example, the above-mentioned manufacturing method of the present invention.

[0056] [Solid Electrolyte] Production Example 1 (Preparation of Solid Electrolyte A) 0.4398 g of lithium sulfide, 0.7084 g of diphosphorus pentasulfide, 0.2133 g of lithium iodide, 0.1384 g of lithium bromide, and 10 zirconia balls having a diameter of 10 mm were placed in a 45 mL zirconia pot and sealed. Using a planetary ball mill (manufactured by Fritsch, model number P-7), the mixture was mixed (mechanical milling) at a rotation speed of 370 rpm for 40 hours to obtain a powder. The obtained powder was heated at 195 ° C. for 3 hours to obtain a solid electrolyte A.

[0057] Production Example 2 (Preparation of Solid Electrolyte B) Lithium sulfide (Li 2 S), diphosphorus pentasulfide (P 2 S 5 ), lithium bromide (LiBr) and lithium chloride (LiCl) in a molar ratio of Li 2 S:P 2 S 5The raw materials were roughly mixed to obtain a ratio of 47.5:12.5:15.0:25.0 of LiBr:LiCl. The raw material mixture was dispersed in a mixed solvent of dehydrated toluene and 2% by mass of dehydrated isobutyronitrile relative to the raw material mixture to obtain a slurry of approximately 10% by mass. A bead mill was operated at a peripheral speed of 12 m / s and a flow rate of 500 mL / min, and the slurry was introduced into the mill and circulated for 1 hour to obtain a mixture. After removing the solvent from the obtained mixture, the mixture was heated at 400 to 430 °C for 2 hours in an electric furnace. The mixture was then slowly cooled to obtain a raw material sulfide solid electrolyte. The raw material sulfide solid electrolyte was dispersed in dehydrated toluene under a nitrogen atmosphere and placed in a zirconia pot of a planetary ball mill (manufactured by Fritsch: model number P-7) together with 0.3 mm diameter zirconia balls, and the pot was filled with an inert atmosphere. The planetary ball mill was rotated at 150 rpm for 2 hours to obtain a slurry containing a finely divided sulfide solid electrolyte. The slurry was transferred to a nitrogen-substituted Schlenk flask, dried at room temperature for 1 hour using a vacuum pump, and then heated to 80°C to 100°C to further remove the solvent contained in the finely divided sulfide solid electrolyte (drying under reduced pressure), to obtain a solid electrolyte B.

[0058] [Positive electrode composite] Example 1 (1) Preparation of activated carbon and sulfur composite (S-C composite) Activated carbon (MSC-30SSS, manufactured by Kansai Thermal Chemical Industry Co., Ltd.) and sulfur were placed in a glass bottle in a weight ratio of 3:7, and the bottle was sealed in an SUS tubular container. The mixture was heated in an electric furnace at 150°C for 6 hours and then at 300°C for 2.75 hours to obtain a powder of activated carbon and sulfur composite.

[0059] (2) Preparation of a cathode composite precursor The composite powder obtained in (1) above and diphosphorus pentasulfide (manufactured by Italmatch, melting point 286 to 290°C) were placed in a Tammann tube with an inner diameter of 12 mm in a weight ratio of 0.7143:0.2857, and the resulting mixture was sealed in an SUS tube. The mixture was heated in an electric furnace at 350°C for 6 hours to obtain a cathode composite precursor.

[0060] (3) Preparation of Positive Electrode Composite 0.6300 g of the positive electrode composite precursor (2) above and 0.2700 g of solid electrolyte A were placed in a 45 mL zirconia pot together with 10 zirconia balls having a diameter of 10 mm and sealed. Using a planetary ball mill (manufactured by Fritsch, model number P-7), the mixture was mixed (mechanical milling) at room temperature and a rotation speed of 370 rpm for 20 hours to obtain a powder of the positive electrode composite.

[0061] Example 2 A positive electrode composite precursor was prepared in the same manner as in Example 1(2), except that the powder of the S-C composite obtained in Example 1(1) above and diphosphorus pentasulfide (manufactured by Italmatch, melting point 286 to 290°C) were placed in a Tammann tube with an inner diameter of 12 mm in a weight ratio of 0.8333:0.1667. A positive electrode composite powder was obtained in the same manner as in Example 1, except that 0.5400 g of the positive electrode composite precursor and 0.3600 g of solid electrolyte A were used.

[0062] Example 3 A powder of a positive electrode mixture was obtained in the same manner as in Example 1 (3), except that solid electrolyte B was used instead of solid electrolyte A.

[0063] Comparative Example 1 0.4500 g of powder of the S—C composite obtained in the same manner as in Example 1(1) and 0.4500 g of solid electrolyte A were mixed in the same manner as in Example 1(3) to obtain a powder of a positive electrode mixture.

[0064] Comparative Example 2 0.4500 g of powder of the S-C composite obtained in the same manner as in Example 1(1), 0.1800 g of diphosphorus pentasulfide, and 0.2700 g of solid electrolyte A were mixed in the same manner as in Example 1(3) so that the mass ratio of activated carbon, sulfur, and diphosphorus pentasulfide was the same as in Example 1, to obtain a powder of a positive electrode composite.

[0065] Comparative Example 3 0.4500 g of a powder of a composite obtained in the same manner as in Example 1(1), 0.0900 g of diphosphorus pentasulfide, and 0.3600 g of solid electrolyte A were mixed in the same manner as in Example 1(3) so that the mass ratio of activated carbon, sulfur, and diphosphorus pentasulfide was the same as in Example 2, to obtain a powder of a positive electrode composite.

[0066] [Evaluation] The following evaluations were performed on the positive electrode composites prepared in the examples and comparative examples. (1) X-ray photoelectron spectroscopy (XPS) measurement (a) XPS measurement In a glove box controlled to an Ar atmosphere with a dew point of -60°C or less, double-sided carbon tape was attached to a metal substrate, and a powder sample was pressed onto the tape with a spatula. The surface of the spatula used was cleaned with an organic solvent such as acetone. A metal perforated mask (hole diameter 5 mm) was placed on the tape with the powder sample fixed and fixed with screws to prepare a measurement sample. To prevent the sample from being exposed to the atmosphere, a transfer vessel was used to introduce the sample into the XPS apparatus, and measurements were performed. Detailed measurement conditions for XPS are shown below.

[0067] XPS apparatus: VersaProbe II (ULVAC-PHI, Inc.) X-ray source: Monochromated AlKα radiation (1486.6 eV) measured at a high power of 100 W X-ray diameter: 100 μm (measured by sweeping over a range of 200 μm x 1200 μm) Pass energy: 23.5 eV (C1s, S2p, P2p) 46.95 eV (O1s, Li1s, Br3d, I3d5 / 2, Cl2p) Step energy: 0.1 eV (C1s, S2p, P2p) 0.2 eV (O1s, Li1s, Br3d, I3d5 / 2, Cl2p) Photoelectron detection angle: 45°

[0068] The XPS measurement was performed on two samples: the surface (outermost surface) of the sample and the inside A of the sample where the surface layer was cut off. The sample surface was not subjected to the surface treatment described later. -7 Measurement was performed immediately after introducing Ar monomer ions into the chamber (pressure of 1 kV, 7 mA, 2 mm x 2 mm, 60 min).

[0069] (b) Elemental ratio C / P of carbon and phosphorus The analysis software used was MultiPak manufactured by ULVAC-PHI. The background was subtracted from each spectrum by the Shirley method, and the elemental ratio C / P was calculated from the obtained area intensity using the relative sensitivity coefficient. The carbon peak has a peak top near 278-298 eV, and the phosphorus peak has a peak top near 123-143 eV. The elemental ratio C / P on the sample surface was taken as the average value of three arbitrary points within the measurement area (diameter 5 mm). The elemental ratio C / P in the sample interior A was taken as the value of one arbitrary point within the measurement area. It was confirmed that the spectra of each element were almost identical at a total of three points in the measurement area: near the center and two points approximately 500 μm away from the center. The C / P change rate R between the surface and interior A A was calculated using the following formula: A = (element ratio C / P in sample interior A) / (element ratio C / P on surface) The evaluation results of the XPS measurement are shown in Table 1.

[0070] * "P 2 S 5 The "state of" is the S-C complex and P 2 S 5 * Regarding the parentheses for solid electrolytes, (A) indicates solid electrolyte A, and (B) indicates solid electrolyte B.

[0071] From Table 1, P 2 S 5 It was confirmed that by mixing a solid electrolyte with a cathode composite precursor that is mixed with an S-C composite in a molten state, the change in the C / P ratio of the sample interior A relative to the C / P ratio of the sample surface in the composition analysis by XPS analysis becomes larger. This change is due to P 2 S 5 In the example in which the sample was melted and coated, uneven distribution of each component in the depth direction was promoted, which resulted in a difference in the proportion of each component present on the outermost surface and inside the sample, and this is thought to have resulted in an increase in the value.

[0072] (2) Solid 31Area ratio of each phosphorus component by P-NMR measurement Measurement was performed using the following apparatus under the following conditions: Apparatus: ECZL400G (manufactured by JEOL Ltd.) Magnetic field strength: 400 MHz Detector: 3.2 mm auto MAS probe Solid-state NMR sample tube diameter: 3.2 mm Observation nucleus: 31 P Observation frequency: 161.835 MHz Measurement temperature: room temperature Pulse sequence: single pulse 90° pulse length: 3.4 μs Flip angle: 45° Number of FID acquisition points: 1,024 points Waiting time after FID measurement until next pulse application: 1,500 s MAS (magic angle spinning) rotation speed: 14 kHz Number of accumulations: 64 Measurement range: 400 ppm to -300 ppm External standard: NH 4 H 2 P.O. 4 (chemical shift 1.00 ppm)

[0073] solid 31 The data processing conditions for the P-NMR measurements were an exponential function as the window function, and a value within the range in which the half-width of the peak did not change significantly was used as the line broadening value, depending on the signal-to-noise ratio of each sample. The actual values ​​of the line broadening values ​​are described in the Examples and Comparative Examples. Backward linear prediction was not used.

[0074] When peak separation is required, the obtained solid 31 The P-NMR spectrum was analyzed to determine the separated peaks. 31 From each NMR peak (experimental value) on the P-NMR spectrum, peak separation was performed using the nonlinear least squares method and a Gaussian function to calculate the separated peaks, and the calculated values ​​of the NMR peaks and the residual sum of squares R2 were calculated. 31 The following documents 1 to 4 were referenced for the assignment of each peak obtained by waveform separation of the P-NMR spectrum. Document 1: Christian Dietrich et al. J. Mater. Chem. A, 2017, 5, 18111-18119. Document 2: Japanese Patent No. 6719037 Document 3: Japanese Patent No. 7297911 Document 4: Japanese Patent Publication No. 2021-510905

[0075] For example, as disclosed in Reference 1, the peak obtained by waveform separation around 125 ppm is PS 3 - As disclosed in Reference 2, the peak at around 106 ppm was assigned to P 2 S 6 4- (amorphous), the peak around 91 ppm is P 2 S 7 4- (amorphous), the peak around -5 ppm is P 2 O 7 As disclosed in Reference 3, the peak around 50 to 60 ppm is attributed to P 2 S 5 In addition, P in this attribution 2 S 5 Generally, the main component of diphosphorus pentasulfide is P 4 S 10 Skeleton and P 4 S 9 As disclosed in Reference 4, the peak near -5 ppm is P 2 O 7 As peaks that cannot be assigned in References 1 to 4, peaks of unknown assignment were observed around 145 ppm and 101 ppm in Example 1, and around 145 ppm and 86 ppm in Comparative Example 2.

[0076] solid 31 The composition calculation of each component obtained by waveform separation of the P-NMR spectrum was carried out by using the area value of the separated peak as a percentage to calculate the proportion of each component shown below. Spinning sideband peaks were not used in calculating the composition of each component. The area ratio (%) of each peak to the total area of ​​the eight peaks shown in Table 2 was calculated. The results are shown in Table 2. 31 The results of waveform separation of the P-NMR spectrum are shown in Figures 9 (line broadening value 100 Hz) and 10 (line broadening value 100 Hz).

[0077]

[0078] From Table 2, P 2 S 5In a molten state, it is mixed with the S-C composite, and the resulting precursor composition is P 2 S 5 , P 2 S 6 4- and P.S. 3 - While the total value of the proportion of the peak components of P 2 S 7 4- The proportion of P increased to around 101.0 ppm. 2 S 6 4- and P 2 S 7 4- It was confirmed that a new peak having a chemical shift intermediate between the two peaks appeared. 2 S 5 and PS, one of the main components of solid electrolytes. 4 3- It was confirmed that the melted P had almost no oxidative stress. This is presumably because the two reacted and changed when mixed. 2 S 5 The component reacts partially with sulfur in the S-C complex, for example, inside or near the surface of the activated carbon, to form P 2 S 6 4- , P.S. 3 - By changing to PS 4 3- Ya P 2 S 7 4- It is thought that the reaction with the sulfide-based solid electrolyte, which generally contains a large amount of P, has changed. 2 S 5 Rather than P, which is thought to be present in the precursor of the example 2 S 6 4- , P.S. 3 - For those who are interested, please contact PS 4 3- Ya P 2 S 7 4- The deterioration of sulfide-based solid electrolytes, which generally contain a large amount of components with a high sulfur ratio, such as 2 S7 4- , (P 2 S 6 4- and P 2 S 7 4- There are relatively many unknown structures with intermediate chemical shifts between P 2 S 5 , P 2 S 6 4- , P.S. 3 - This suggests that the amount of molten P 2 S 5 It is believed that the fact that the S-C composite was covered and a strong interface was formed contributed to the reaction when the solid electrolyte was mixed. 2 S 5 The modified material coated the S-C composite and formed a strong interface, resulting in P 2 S 5 , P 2 S 6 4- and P.S. 3 - The total value of the proportion of the peak components of P 2 S 7 4- The ratio of the peak component of P becomes a certain value (for example, 23%) or more and P appears around 101.0 ppm. 2 S 6 4- and P 2 S 7 4- A new peak component appeared with a chemical shift intermediate between the two.

[0079] [All-solid-state lithium-ion battery] All-solid-state lithium-ion batteries were fabricated using the positive electrode composites fabricated in the examples and comparative examples as described below, and the battery characteristics (charge and discharge characteristics) were evaluated. - Fabrication of negative electrode composite Lithium titanate ("LT-112" manufactured by Ishihara Sangyo Kaisha), a conductive additive ("Li-100" manufactured by Denka Co., Ltd., powdered acetylene black), and solid electrolyte B were mixed in a mortar in a mass ratio of 60:5:35 for 5 minutes to obtain a negative electrode composite (also referred to as "LTO (lithium titanate) negative electrode composite").

[0080] - Preparation of Lithium-ion Battery 100 mg of solid electrolyte A was placed in a 10 mm diameter Macol cylinder and pressure molded to form a solid electrolyte layer (layer of solid electrolyte A). Next, 10 mg of positive electrode composite powder was placed on one pressure surface of the solid electrolyte layer and pressure molded again. Next, 166 mg of LTO negative electrode composite was placed on the other pressure surface of the solid electrolyte layer (the pressure surface opposite the positive electrode) and pressure was applied. A Li foil with a diameter of 9 mm and a thickness of 0.1 mm was placed on top of it and pressure was applied again to prepare a lithium-ion battery.

[0081] Charge / Discharge Test A constant current charge / discharge test was performed on the lithium ion batteries using the positive electrode composites of each Example and Comparative Example. The voltage range for the constant current charge / discharge test was set to -0.4 to 1.3 V, and the current value was set as shown in Table 3 at a C rate determined based on the theoretical capacity of sulfur of 1672 mAh / g. The test was performed. For charging, CC-CV charging was performed, in which constant voltage charging was performed with a termination condition of 0.02 C after constant current charging, and for discharging, constant current discharge (CC discharge) was performed. The results are shown in Table 4.

[0082]

[0083]

[0084] It is confirmed that the Examples have higher capacities at both low and high rates than the Comparative Examples. For example, Comparative Example 1 has a low high-rate capacity, and Comparative Examples 2 and 3 have low low-rate capacities. 2 S 5 In the examples where the ionic conductor was melted, improvement in charge / discharge characteristics was observed. 2 S 5 It is believed that the excellent charge / discharge characteristics were achieved due to the strong interface and good ion conduction paths formed by the melt-composite of the two.

[0085] The positive electrode composite of the present invention is suitable as a structural material for lithium ion batteries. Furthermore, lithium ion batteries containing the positive electrode composite of the present invention are suitable for use in, for example, information-related devices and communication devices such as personal computers, video cameras, and mobile phones, and vehicles such as electric vehicles.

[0086] Although several embodiments and / or examples of the present invention have been described in detail above, those skilled in the art will readily be able to make numerous modifications to these exemplary embodiments and / or examples without substantially departing from the novel teachings and advantages of the present invention. Accordingly, these numerous modifications are within the scope of the present invention. The contents of all references cited in this specification and the applications from which this application claims priority under the Paris Convention are incorporated by reference in their entirety. In this specification, "x to y" represents a numerical range of "greater than or equal to x and less than or equal to y." The upper and lower limits of numerical ranges can be arbitrarily combined. Furthermore, two or more of the individual embodiments of the present invention that are not mutually exclusive can be combined, and an embodiment combining two or more embodiments is also an embodiment of the present invention.

Claims

1. A positive electrode composite material comprising a sulfur-based active material, a carbon material having pores, at least one of an ion conductor containing a phosphorus element and a modified body of the ion conductor, and a solid electrolyte, wherein the change rate of the element ratio C / P of the carbon element and the phosphorus element by surface element analysis by X-ray photoelectron spectroscopy before and after Ar sputtering treatment is 0.365 or more and 1.00 or less.

2. The positive electrode composite material according to claim 1, wherein the change rate of the element ratio C / P is 0.380 or more and 0.950 or less.

3. Solid 31 The positive electrode composite material according to claim 1 or 2, having a peak with a peak top at around 101.0 ppm in P-NMR measurement.

4. The ion conductor contains phosphorus sulfide and is solid. 31 In the P-NMR measurement, P 2 S 5 , P 2 S 6 4- and the total area of the peaks of PS 3 - is 68% or less of the whole. The positive electrode composite material according to claim 1.

5. The ion conductor contains phosphorus sulfide and is a solid 31 In the P-NMR measurement, P 2 S 7 4- The area of the peak of is 23% or more of the whole. The positive electrode composite material according to claim 1.

6. The positive electrode composite material according to any one of claims 1 to 5, wherein the melting point of the ion conductor is 130°C to 450°C.

7. The positive electrode composite material according to any one of claims 1 to 6, wherein the ion conductor includes a lithium ion conductive material containing a phosphorus element and one or more elements selected from lithium, boron, sulfur, and oxygen, or a precursor thereof.

8. The positive electrode composite material according to any one of claims 1 to 7, wherein the ion conductor contains phosphorus sulfide.

9. The positive electrode composite material according to any one of claims 1 to 8, wherein the ion conductor contains diphosphorus pentasulfide.

10. The positive electrode composite material according to any one of claims 1 to 9, wherein the sulfur-based active material contains elemental sulfur.

11. The positive electrode composite material according to any one of claims 1 to 10, wherein the total mass ratio of the sulfur-based active material and the ion conductor containing a phosphorus element and the modified body of the ion conductor to the carbon material is less than 5.

00.

12. A method for manufacturing a positive electrode composite material, comprising mixing at least one of a composite and a mixture of a sulfur-based active material and a carbon material having pores with a molten ion conductor to prepare a positive electrode composite material precursor, and mixing and pulverizing the positive electrode composite material precursor and a crystalline solid electrolyte under conditions where the crystallinity of the solid electrolyte decreases and amorphization progresses to manufacture the positive electrode composite material.

13. The manufacturing method according to claim 12, wherein the composite of the sulfur-based active material and the carbon material having pores is mixed with the molten ion conductor.

14. The manufacturing method according to claim 12 or 13, wherein the melting point of the ion conductor is 130°C to 450°C.

15. The manufacturing method according to any one of claims 12 to 14, wherein the ion conductor includes a lithium ion conductive material containing a phosphorus element and one or more elements selected from lithium, boron, sulfur, and oxygen, or a precursor thereof.

16. The manufacturing method according to any one of claims 12 to 15, wherein the ion conductor is phosphorus sulfide.

17. The manufacturing method according to any one of claims 12 to 16, wherein the ion conductor contains phosphorus pentasulfide.

18. The manufacturing method according to any one of claims 12 to 17, wherein the sulfur-based active material contains elemental sulfur.

19. The manufacturing method according to any one of claims 12 to 18, wherein the mass ratio of the sulfur-based active material, the carbon material, and the ion conductor satisfies the following relationship: (sulfur-based active material + carbon material): ion conductor = 50:1 to 80.

20. The manufacturing method according to any one of claims 12 to 19, wherein the total mass ratio of the sulfur-based active material and the ion conductor to the carbon material is less than 5.

00.

21. A positive electrode containing the positive electrode composite material according to any one of claims 1 to 11.

22. A lithium-ion battery containing the positive electrode composite material according to any one of claims 1 to 11 or the positive electrode according to claim 21.

Citation Information

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