Electrode material
By integrating a sulfur-based active material with an organic redox compound and a sulfide solid electrolyte, the electrode material addresses high overvoltage issues in all-solid-state lithium-sulfur batteries, stabilizing the electrolyte and enhancing conductivity for improved battery performance.
Patent Information
- Application Number
- PCT/JP2025/011165
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-03-29
- Filing Date
- 2025-03-21
- Publication Date
- 2025-10-02
AI Technical Summary
All-solid-state lithium-sulfur batteries face issues with high overvoltage during charging and discharging due to insufficient ionic and electronic conduction paths, and sulfide solid electrolytes are prone to decomposition when exposed to polar substances.
Incorporating a sulfur-based active material with an organic redox compound that does not decompose the sulfide-based solid electrolyte, along with a sulfide solid electrolyte and an electronically conductive material, to facilitate effective electrochemical reactions and reduce voltage differences during charge and discharge.
The proposed electrode material significantly reduces voltage differences during charging and discharging, enhancing the performance of all-solid-state lithium-sulfur batteries by stabilizing the sulfide electrolyte and improving ionic and electronic conductivity.
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Figure JP2025011165_02102025_PF_FP_ABST
Abstract
Description
electrode material
[0001] The present invention relates to an electrode material used in lithium ion secondary batteries and the like.
[0002] All-solid-state lithium-ion batteries using solid electrolytes are expected to be highly safe because they are less susceptible to electrolyte leakage and ignition. Sulfur-based active materials, which are expected to be high-capacity active materials, have low electronic and ionic conductivities. Therefore, when a positive electrode is manufactured using a sulfur-based active material, an ionically conductive material and an electronically conductive material are generally used together with the active material (see, for example, Patent Documents 1 and 2).
[0003] In the case of a liquid-type lithium-ion secondary battery, it is known that a part or all of the sulfur-based active material is converted into discharge products during the battery reaction. Therefore, discharge products of the sulfur-based active material exist. For example, the discharge products of sulfur include Li in a fully discharged state. 2 S and its intermediate stage lithium polysulfide Li 2 S 2 , Li 2 S 4 , Li 2 S 6 , Li 2 S 8 etc. (see, for example, Non-Patent Document 1).
[0004] Non-Patent Document 2 reports that in lithium-sulfur batteries using a liquid electrolyte, polysulfides, which are intermediate products of the oxidation-reduction reaction of sulfur, are dissolved into the liquid electrolyte by using 2,6-dimethoxyanthraquinone or anthraquinone, and that Li 2 It is disclosed that the precipitation of S is suppressed.
[0005] On the other hand, Non-Patent Document 3 discloses that the electrochemical reaction of all-solid-state lithium-sulfur batteries is essentially different from that of lithium-sulfur batteries using liquid electrolytes. For example, in all-solid-state lithium-sulfur batteries using solid electrolytes, long-chain lithium polysulfides (Li 2 S n , 4≦n≦8) is not produced, and short-chain polysulfides (Li 2S 2 ) is produced, and Li 2 S 2 It is disclosed that the presence of β-glucan reduces sulfur utilization and decreases battery performance.
[0006] When the active material, solid electrolyte (ionically conductive material), and electronically conductive material are all used in particulate form, the ionic and electronic conduction paths within the electrode are formed by point contact, which poses the problem of high overvoltage during charging and discharging, resulting in a large voltage difference during charging and discharging. Conventionally, in order to reduce the overvoltage during charging and discharging, it was necessary to increase the number of contact points between the active material and the solid electrolyte, and between the active material and the electronically conductive material.
[0007] Furthermore, Non-Patent Document 4 discloses that sulfide solid electrolytes have poor chemical stability and decompose when they come into contact with polar substances such as water, N-methylpyrrolidone, ethanol, and acetonitrile. It was therefore necessary to search for auxiliary substances that would suppress decomposition upon contact and remain stable.
[0008] JP 2013-258079 A JP 2013-258080 A
[0009] Chem. Rev. 2014, 114, 11751-11787Chem. Eng. J. , 2024, 484, 149611 Angew. Chem. Int. Ed. 2023,e202302363Mater. Chem. Front. , 2023, 7, 5475-5499
[0010] One of the objects of the present invention is to provide an electrode material that can reduce the voltage difference during charging and discharging.
[0011] In order to reduce the voltage difference during charge and discharge, it is conceivable to lower the voltage during charge and increase the voltage during discharge. As a result of intensive research, the present inventors have found that by adding an oxidation-reduction (redox) compound that does not decompose the sulfide-based solid electrolyte as an auxiliary substance to the sulfur-based active material, the voltage difference during charge and discharge can be reduced more than when the auxiliary substance is not contained, and have completed the present invention.
[0012] According to the present invention, the following electrode materials and the like are provided. 1. An electrode material comprising at least one of a sulfur-based active material and a discharge product of the sulfur-based active material, and an organic redox compound. 2. The electrode material according to 1, further comprising a sulfide solid electrolyte. 3. The electrode material according to 2, wherein the sulfide solid electrolyte contains Li, P, S, and a halogen as constituent elements. 4. The electrode material according to any one of 1 to 3, further comprising an electronically conductive material. 5. The electrode material according to 4, wherein the electronically conductive material is a carbon material. 6. The electrode material according to 4 or 5, wherein the electronically conductive material has pores. 7. The electrode material according to any one of 1 to 6, wherein the organic redox compound is a quinone-based compound or a π-conjugated compound. 8. An electrode comprising the electrode material according to any one of 1 to 7. 9. The electrode according to 8, wherein the electrode is a positive electrode. 10. A lithium ion battery comprising the electrode according to 8 or 9. 11. 12. A method for producing an electrode material, comprising a step of mixing a sulfur-based active material and an organic redox compound. 13. The method for producing an electrode material according to 12, further comprising mixing an electron-conductive material. 14. The method for producing an electrode material according to 13, wherein the electron-conductive material has pores, and the pores are impregnated with at least one of the sulfur-based active material and the organic redox compound. 15. The method for producing an electrode material according to 13, wherein the at least one of the sulfur-based active material and the organic redox compound is subjected to a mechanical milling treatment with the electron-conductive material.
[0013] According to the present invention, an electrode material capable of reducing the voltage difference during charge and discharge can be provided.
[0014] 1 shows charge / discharge curves at the sixth cycle of all-solid-state lithium-ion batteries fabricated in Examples and Comparative Examples.
[0015] [Electrode Material] An electrode material according to one embodiment of the present invention includes at least one of a sulfur-based active material and a discharge product of the sulfur-based active material (hereinafter, "at least one of a sulfur-based active material and a discharge product of the sulfur-based active material" may be collectively referred to as "sulfur-based active material"). It is estimated that, in this embodiment, the use of a sulfur-based active material and an organic redox compound in combination activates the electrochemical reaction between the sulfur-based active material and lithium ions or lithium, thereby reducing the voltage difference during charge and discharge. The components of the electrode material will be described below.
[0016] (Sulfur-based active material) 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.
[0017] The sulfur-based active material is partially or entirely converted into discharge products during the battery reaction. Therefore, in one embodiment, discharge products of the sulfur-based active material are present in the electrode material. For example, the discharge products of sulfur include Li in a fully discharged state. 2 S and its intermediate stage lithium polysulfide Li 2 S 2 , Li 2 S 4 , Li 2 S 6 , Li 2 S 8 etc.
[0018] (Organic Redox Compound) The organic redox compound may be any compound that exhibits an oxidation-reduction effect on the sulfur-based active material. In one embodiment, it is preferable that the oxidation-reduction potential (charge / discharge potential) of the organic redox compound and the oxidation-reduction potential of the sulfur-based active material are approximately the same. For example, when the sulfur-based active material is sulfur, the oxidation-reduction potential of sulfur relative to lithium is 2.1 to 2.6 V for charge potential and 1.7 to 2.1 V for discharge potential. In one embodiment, the oxidation-reduction potential of the organic redox compound is within ±1.0 V, ±0.5 V, or ±0.3 V of the oxidation-reduction potential of the sulfur-based active material. When the oxidation-reduction potential of the organic redox compound is sufficiently close to the oxidation-reduction potential of the sulfur-based active material, it is believed that the organic redox compound exhibits a catalytic effect that facilitates the electrochemical reaction, thereby reducing the voltage difference during charge and discharge.
[0019] Examples of the organic redox compound include quinone compounds and π-conjugated compounds. Specific examples of the organic redox compound include benzoquinone, naphthoquinone, anthraquinone, naphthacenequinone, tetracenequinone, pentatetracenetetrone, and derivatives thereof. In one embodiment, the organic redox compound is a compound represented by any of the following formulas (1-1) to (1-6).
[0020] (In the formula, R1 to R50 each independently represent a hydrogen atom, a halogen atom, an alkyl group having 1 to 6 carbon atoms, an aryl group having 6 to 10 carbon atoms, a hydroxy group, an alkoxy group having 1 to 6 carbon atoms, an amino group, or a cyano group.)
[0021] Examples of the halogen atom include a fluorine atom, a chlorine atom, a bromine atom, and an iodine atom. The alkyl group may be a linear alkyl group, a branched alkyl group, or a cyclic alkyl group. Examples of the aryl group include a phenyl group and a naphthyl group. The alkoxy group may be a linear, branched, or cyclic group. The amino group may be a secondary amine or a tertiary amine. In addition, some or all of the hydrogen atoms bonded to the carbon atoms of the alkyl group, aryl group, alkoxy group, and amino group may be substituted with a substituent. Examples of the substituent include halogen atoms such as a fluorine atom, a chlorine atom, a bromine atom, and an iodine atom.
[0022] The compounds represented by formulas (1-1) to (1-6) include 1,4-benzoquinone, methyl-p-benzoquinone, methoxybenzoquinone, tert-butyl-1,4-benzoquinone, 2-chloro-5-methyl-1,4-benzoquinone, 2,5-di-tert-butyl-1,4-benzoquinone, 2,5-dichloro-1,4-benzoquinone, 2,6-dichloro-1,4-benzoquinone, 2,5-dimethyl-1,4-benzoquinone, 2,6-dimethyl-1,4-benzoquinone, 2,5-dibromo-1,4-benzoquinone, 2,5-dimethoxy-1,4-benzoquinone, 2,6-di-tert-butyl-1,4-benzoquinone, tetrachloro-1,4-benzoquinone, and tetrabromo-1,4-benzoquinone. tetramethyl-1,4-benzoquinone, tetrafluoro-1,4-benzoquinone, 2,3,5-trimethyl-1,4-benzoquinone, 1,4-naphthoquinone, 2-chloro-1,4-naphthoquinone, 2,3-dichloro-1,4-naphthoquinone, 2-amino-3-chloro-1,4-naphthoquinone, 2-hydroxy-1,4-naphthoquinone, 2-methyl-1,4-naphthoquinone, 1,2-naphthoquinone, anthraquinone, 2-aminoanthraquinone, 1-aminoanthraquinone, 1-amino-2-methylanthraquinone, 1,4-anthraquinone, 1,2-benzanthraquinone, 1,5-dichloroanthraquinone, naphthacenequinone, pentacenequinone, pentacenetetrone, and the like. Preferred are anthraquinone, naphthacenequinone, pentacenequinone, and pentacenetetrone.
[0023] Examples of organic redox compounds other than quinone compounds include tetracyanoquinodimethane, polythiophene, polyaniline, tetrathiafulvalene, rubeanic acid, and indigo.
[0024] In one embodiment, the mass ratio (A:B) of the sulfur-based active material A to the organic redox compound B in the electrode material is 10:90 to 90:10, 50:50 to 90:10, or 70:30 to 90:10.
[0025] (Optional Components) In one embodiment, the electrode material preferably further contains a sulfide solid electrolyte in addition to the sulfur-based active material and the organic redox compound. This facilitates the formation of a lithium ion conduction path within the electrode. Furthermore, the electrode material preferably further contains an electronically conductive material. This facilitates the formation of an electronically conductive path within the electrode.
[0026] (1) Sulfide Solid Electrolyte The sulfide solid electrolyte is a solid electrolyte that contains at least sulfur atoms and exhibits ionic conductivity due to the contained metal atoms, and contains, in addition to sulfur atoms, preferably lithium atoms and phosphorus atoms, more preferably 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.
[0027] (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 atoms. 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-P2 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.
[0028] 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 30 to 85:15 to 70, more preferably 40 to 80:20 to 60, and even more preferably 45 to 78:22 to 55. 2 S-P 2 S 5In the case of -LiI-LiBr, the total content of lithium sulfide and diphosphorus pentasulfide is preferably 30 to 95 mol%, more preferably 35 to 90 mol%, and even more preferably 40 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%.
[0029] 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.
[0030] 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.
[0031] (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 structures include a crystal structure having peaks at 2θ=approximately 20.2° and 23.6° (for example, JP 2013-16423 A).
[0032] The crystalline sulfide solid electrolyte containing lithium atoms, sulfur atoms, phosphorus atoms, and halogen atoms may have a crystal 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 Px S 4 Thio-LISICON Region II crystal structure, Li 4-x Ge 1-x P x S 4 This indicates that the thio-LISICON region II type has a similar crystal structure.
[0033] 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°.
[0034] 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 S 6 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).
[0035] 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.
[0036] 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.
[0037] (2) Electronically Conductive Material The electronically conductive material is not particularly limited as long as it has electronic conductivity and can be composited with a sulfur-based active material. It is preferable that the electronically conductive material contains a carbon material, since it is lighter than other materials and can increase the output density and capacity per unit mass of the battery. Furthermore, it is preferable that the electronically conductive material has pores, since this material has a large surface area and is highly capable of dispersing and retaining the sulfur-based active material and the organic redox compound. In order for the organic redox compound to exert its catalytic effect, it is important that the organic redox compound is dispersed in the electrode material.
[0038] Examples of carbon materials having micropores include carbon black such as ketjen black, acetylene black, denka black, thermal black, and channel black, graphite, activated carbon, etc. These may be used alone or in combination of two or more.
[0039] 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 is preferable, and 100m 2 / g or more, 1000m 2 / g or more, 1500m 2 / g or more is preferable. 2 / g or less, and more preferably 5000m 2 / g or less is preferred.
[0040] 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 cm 3 / g or more is preferable. 3 / g or less, and more preferably 5.0 cm 3 / g or less is preferred.
[0041] 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.
[0042] (3) Others In one embodiment, the electrode material may or may not contain components other than the above-described sulfur-based active material, organic redox compound, sulfide solid electrolyte, and electron conductive material. The other components are not particularly limited, and examples thereof include a binder, a solvent, and a dispersant.
[0043] In the electrode material, the contents of the sulfur-based active material, organic redox compound, sulfide solid electrolyte, and electronically conductive material are not particularly limited. For example, when the electrode material contains a sulfide solid electrolyte, the content of the sulfur-based active material is 40 to 200 parts by mass per 100 parts by mass of the sulfide solid electrolyte. The content of the electronically conductive material is 10 to 150 parts by mass per 100 parts by mass of the sulfide solid electrolyte.
[0044] In one embodiment, the electrode material comprises 50% by mass or more, 60% by mass or more, 70% by mass or more, 80% by mass or more, 90% by mass or more, 95% by mass or more, 99% by mass or more, 99.5% by mass or more, or substantially 100% by mass of the sulfur-based active material, the organic redox compound, the sulfide solid electrolyte, and the electron conductive material. Note that "substantially 100% by mass" may contain inevitable impurities.
[0045] [Method for producing electrode material] The electrode material of the present invention can be produced by mixing the above-mentioned sulfur-based active material, the organic redox compound, and optionally, the sulfide solid electrolyte and the electronic conductive material. The mixing method is not particularly limited, and can be carried out by known methods and devices. Examples of mixing devices used in the mixing 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-phase shear kneader.
[0046] In one embodiment, at least one of the sulfur-based active material and the organic redox compound is heated and melted to be impregnated into the pores of the electron-conductive material. Melting the sulfur-based active material and the organic redox compound can promote impregnation into the pores. Furthermore, the sulfur-based active material and the organic redox compound can be highly dispersed in the electron-conductive material.
[0047] The heating temperature can be appropriately set according to the sulfur-based active material and organic redox compound used. For example, when the sulfur-based active material is sulfur, the heating temperature is equal to or higher than the melting point of sulfur (about 115°C). Preferably, the heating temperature is equal to or higher than 130°C, more preferably equal to or higher than 150°C. Heating may be performed in two or more stages. For example, the heating temperature in the first stage may be equal to or higher than the melting point of sulfur, and the heating temperature in the second stage may be equal to or higher than the melting point of the organic redox compound.
[0048] In one embodiment, at least one of a sulfur-based active material and an organic redox compound and an electron-conductive material are subjected to mechanical milling. Various mills, such as a planetary ball mill, can be used for the mechanical milling. The sulfur-based active material, the organic redox compound, and the electron-conductive material can be composited by the mechanical milling.
[0049] In one embodiment, the organic redox compound and the electron conductive material may be composited, and then the composite and the sulfur-based active material may be mixed and composited. Alternatively, the organic redox compound, the sulfur-based active material, and the electron conductive material may be mixed and composited simultaneously.
[0050] In one embodiment, the sulfur-based active material, the organic redox compound, and the electron-conductive material are combined to form a composite, and then the composite and the sulfide solid electrolyte are subjected to mechanical milling, thereby combining the composite formation by heating and the composite formation by mechanical milling.
[0051] The electrode material of the present invention can be suitably used, for example, as a constituent material of a secondary battery. For example, it can be used for the positive electrode of a lithium ion battery. A lithium ion battery according to one embodiment of the present invention includes the electrode material of the present invention described above. For example, by using a solid electrolyte as the electrolyte, an all-solid-state lithium ion battery can be manufactured. By using the electrode material of the present invention, an all-solid-state lithium ion battery with a reduced voltage difference during charging and discharging can be manufactured. A lithium ion battery mainly consists of a positive electrode layer, a negative electrode layer, and an electrolyte layer. The negative electrode layer and electrolyte layer can be manufactured by known methods. For example, the sulfide solid electrolyte described above can be used for the electrolyte layer. In addition to the positive electrode layer, negative electrode layer, and electrolyte layer, it is preferable to use a current collector, and known current collectors can also be used.
[0052] The present invention will be specifically described below based on examples, but the present invention is not limited to these examples.
[0053] [Preparation of Solid Electrolyte] Production Example 1 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 ten zirconia balls with 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.
[0054] [Preparation of Electrode Material] Example 1 425 mg of anthraquinone and 1,275 mg of activated carbon (MSC-30, manufactured by Kansai Thermal Chemical Industry Co., Ltd.) were placed in a glass bottle and sealed in a 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 composite powder A of activated carbon and anthraquinone. Next, 600 mg of composite powder A and 1,050 mg of sulfur were placed in a glass bottle and sealed in the 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 an electrode material that was a composite powder of activated carbon, sulfur, and anthraquinone.
[0055] Example 2: 200 mg of anthraquinone, 1,400 mg of sulfur, and 600 mg of activated carbon were placed in a glass bottle, which was then sealed in an SUS tubular container. The bottle was heated in an electric furnace at 150°C for 6 hours and then at 300°C for 2.75 hours to obtain an electrode material, which was a composite powder of activated carbon, sulfur, and anthraquinone.
[0056] Comparative Example 1 1,400 mg of sulfur and 600 mg of activated carbon were placed in a glass bottle and sealed in an SUS tubular container. The bottle was heated in an electric furnace at 150°C for 6 hours and then at 300°C for 2.75 hours to obtain a composite powder of activated carbon and sulfur.
[0057] [Evaluation] All-solid-state lithium-ion batteries were fabricated using the electrode materials and composite powders fabricated in the Examples and Comparative Examples as the positive electrode, and their charge-discharge characteristics were evaluated. (1) Fabrication of Positive Electrode Composite Material 550 mg of the electrode material of Example 1 or 2 and 450 mg of the solid electrolyte of Production Example 1, together with ten 10 mm diameter zirconia balls, were placed in a 45 mL zirconia pot and sealed. Using a planetary ball mill (manufactured by Fritsch, model number P-7), grinding was performed at a rotation speed of 370 rpm for 20 hours at room temperature to obtain positive electrode composites A and B. Furthermore, positive electrode composite C was obtained in the same manner as above, except that 500 mg of the composite powder of Comparative Example 1 and 500 mg of the solid electrolyte of Production Example 1 were used.
[0058] (2) Preparation of all-solid-state lithium-ion battery 100 mg of the solid electrolyte of Preparation Example 1 was placed in a 10 mm diameter Macol cylinder and pressure-molded. The positive electrode composite prepared in (1) above was placed on the pressurized surface so that the sulfur content was 3.5 mg, and pressure-molded again. 166 mg of a negative electrode composite (LTO (lithium titanate) negative electrode composite) was placed on the pressurized surface opposite the positive electrode composite and pressurized, and then lithium foil was placed and pressurized to prepare an all-solid-state lithium-ion battery. The LTO negative electrode composite was composed of lithium titanate ("LT-112" manufactured by Ishihara Sangyo Kaisha), a conductive additive ("Li-100" manufactured by Denka Co., Ltd., powdered acetylene black), and Li 2 S-P 2 S 5 The solid electrolyte was prepared by adding the LiCl-LiBr type solid electrolyte to a mortar in a mass ratio of 60:5:35 and mixing in the mortar for 5 minutes.
[0059] (3) Constant Current Charge / Discharge Test For the all-solid-state lithium ion battery prepared in (2) above, the cutoff potential of the constant current test was set to −0.4 V to +1.3 V vs. Li-LTO. The current density in the charge / discharge cycle is shown in Table 1.
[0060]
[0061] Figure 1 shows the charge / discharge curves for the sixth cycle of the all-solid-state lithium-ion batteries produced in the examples and comparative examples. The charge / discharge voltage difference was defined as half the maximum value of the electrical quantity (horizontal axis) in Figure 1, i.e., the voltage difference (difference between charge voltage and discharge voltage) in the vicinity of 700 to 750 mAh / g. Table 2 shows the voltage difference during charge / discharge.
[0062]
[0063] From Table 2, it was confirmed that Examples 1 and 2 had a smaller charge / discharge voltage difference than Comparative Example 1. This shows that the internal resistance of the all-solid-state lithium ion battery can be reduced in the examples.
[0064] The electrode material of the present invention can be suitably used as a constituent material of a lithium ion battery, for example, as a positive electrode. The lithium ion battery of the present invention can also be suitably used as a battery for use in information-related devices and communication devices such as personal computers, video cameras, and mobile phones, and in vehicles such as electric vehicles.
[0065] 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 documents cited in this specification and of the applications from which this application claims priority under the Paris Convention are incorporated by reference in their entirety.
Claims
1. An electrode material comprising at least one of a sulfur-based active material and a discharge product of the sulfur-based active material, and an organic redox compound.
2. The electrode material of claim 1, further comprising a sulfide solid electrolyte.
3. The electrode material according to claim 2, wherein the sulfide solid electrolyte contains Li, P, S, and a halogen as constituent elements.
4. The electrode material according to any one of claims 1 to 3, further comprising an electron-conductive substance.
5. The electrode material according to claim 4, wherein the electron-conducting material is a carbon material.
6. The electrode material according to claim 4 or 5, wherein the electron-conductive substance has pores.
7. The electrode material according to any one of claims 1 to 6, wherein the organic redox compound is a quinone compound or a π-conjugated compound.
8. An electrode comprising the electrode material according to any one of claims 1 to 7.
9. The electrode of claim 8, which is a positive electrode.
10. A lithium ion battery comprising the electrode of claim 8 or 9.
11. A method for producing an electrode material, comprising the step of mixing a sulfur-based active material and an organic redox compound.
12. The manufacturing method according to claim 11, further comprising mixing an electronically conductive material.
13. The manufacturing method according to claim 12, wherein the electron-conductive material has pores, and the pores are impregnated with at least one of the sulfur-based active material and the organic redox compound.
14. The method of manufacturing according to claim 13, wherein at least one of the sulfur-based active material and the organic redox compound is heated and melted to be impregnated into the pores.
15. The manufacturing method according to claim 13, wherein at least one of the sulfur-based active material and the organic redox compound and the electron-conductive material are subjected to mechanical milling.
Citation Information
Patent Citations
Carbon having a redox functional group-containing polymer layer formed thereon, sulfur-carbon composite including the same, and lithium secondary battery
JP2022521562A