Lithium oxide argyrodites
Lithium oxide argyrodites address the conductivity and stability issues of solid electrolytes by replacing sulfur with oxygen, enhancing lithium ion conductivity and reducing toxicity and cost in solid-state batteries and fuel cells.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2024-05-28
- Publication Date
- 2026-03-31
AI Technical Summary
Solid electrolytes for lithium-ion batteries face challenges with low conductivity and electrochemical stability, and sulfide-based electrolytes pose risks of toxic hydrogen sulfide release and high cost.
Development of lithium oxide argyrodites with the formula Li (6-y) PS4O (1-y) X (1+y), where X is a halide and y is between 0 and 0.8, which are synthesized by reacting Li2O and LiX with Li3PS4, and optionally annealed to improve conductivity, maintaining the argyrodite structure while replacing sulfur with oxygen to reduce toxicity and cost.
Lithium oxide argyrodites offer improved lithium ion conductivity, reduced risk of dendrite formation, and lower production costs, with minimal hydrogen sulfide release, making them suitable for solid-state batteries and fuel cells.
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Abstract
Description
Background Art
[0001] Incorporation by reference The PCT request form is filed herewith simultaneously with this specification as part of this application. As described in the PCT request form filed simultaneously, each application for which this application claims benefit or priority is hereby incorporated by reference herein for all purposes.
[0002] Solid electrolytes offer various advantages over liquid electrolytes for secondary batteries. For example, in a lithium-ion battery, an inorganic solid electrolyte may be less flammable than a conventional liquid organic electrolyte. Also, a solid electrolyte can facilitate the use of a lithium metal electrode by withstanding dendrite formation. The problems with using solid electrolytes are low conductivity and low electrochemical stability.
Summary of the Invention
[0003] One aspect of the present disclosure relates to argyrodite of lithium oxide, with the general formula: Li (6-y) PS4O (1-y) X (1+y) Here, X is a halide and y is a number between 0 and 0.8. In some embodiments, y is between 0.5 and 0.7. In some embodiments, y is between 0.55 and 0.65. In some embodiments, y is between 0.3 and 0.5, for example, between 0.35 and 0.45. In some embodiments, y is about one of 0, 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, and 0.9. In some embodiments, the argyrodite of lithium oxide is incorporated into a solid-state battery or a fuel cell. In some embodiments, the argyrodite of lithium oxide is incorporated into or formed as an electrolyte separator. In some embodiments, the argyrodite of lithium oxide is incorporated into an electrode.
[0004] Another aspect of the present disclosure is a method for synthesizing the lithium aldirodite, comprising adding stoichiometric amounts of Li2O and LiX to Li3PS4, reacting the Li2O, LiX, and Li3PS4 to form the lithium aldirodite Li (6-y) PS4O (1-y) X (1+y) where X is a halide and y is a number between 0 and 0.8. Some embodiments further include a method for synthesizing Li3PS4. In some embodiments, Li2O, LiX, and Li3PS4 are reacted in a ball mill without using a solvent. In some embodiments, Li2O and LiX are added in a solvent. In some embodiments, the method further includes evaporating the solvent. In some embodiments, the solvent is ethanol. In some embodiments, the method further includes annealing the lithium aldirodite.
[0005] Another aspect of the present disclosure is an organic phase comprising one or more polymers, and the general formula is Li (6-y) PS4O (1-y) X (1+y)The solid electrolyte composition comprises an electrolyte membrane comprising a lithium-conducting inorganic phase containing an argylodite of lithium oxide, where X is a halide and y is a number between 0 and 0.8. In some embodiments, one or more polymers include a hydrophobic polymer. In some embodiments, one or more polymers are ionically non-conductive. In some embodiments, one or more polymers include styrene-ethylene-butylene-styrene (SEBS), styrene-butadiene-styrene (SBS), styrene-isoprene-styrene (SIS), styrene-isoprene / butadiene-styrene (SIBS), styrene-ethylene / propylene (SEP), styrene-ethylene / propylene-styrene (SEPS), and isoprene rubber (IR). In some embodiments, one or more polymers include a copolymer consisting of a plastic segment and an elastic segment. In some embodiments, the membrane is made up of a polymer between 0.5%-60% by weight, a polymer between 1%-40% by weight, or a polymer between 5%-30% by weight.
[0006] Another aspect of the present disclosure is a composition comprising a suspension, paste, or solution containing one or more solvents, a polymer, and ion-conductive lithium oxide argyrodite particles. Another aspect of the present disclosure relates to an electrode comprising an active material, lithium oxide argyrodite, and an organic polymer.
[0007] Another aspect of this disclosure is A (6-y) PS4O (1-y) X (1+y) The alkali metal oxide argyrodite has the formula, where A is an alkali metal, X is a halide, and y is a number between 0 and 0.8 (including both ends). Methods for synthesizing alkali metal oxide argyrodites, as well as compositions and devices containing them, are also provided.
[0008] These and other aspects of the present disclosure are further described below with reference to the figures. [Brief explanation of the drawing]
[0009] [Figure 1] This is a diagram showing the crystal structure of Li6PS5Cl.
[0010] [Figure 2] This figure shows an example of the crystal structure of Li6PS4OCl.
[0011] [Figure 3] This figure shows an example of the crystal structure of Li5.5PS4O0.5Cl1.5.
[0012] [Figure 4] This figure shows the X-ray diffraction patterns of Li6PS5Cl and Li6PS4OCl and Li5.6PS4O0.6Cl1.4.
[0013] [Figure 5] This figure shows the amount of H2S released when Li6PS5Cl and Li6PS4OCl are exposed to air in an environment with a relative humidity (RH) of 50% and a temperature of 75°F.
[0014] [Figure 6A] This figure shows an example of a schematic diagram of a cell containing lithium oxide argyrodite. [Figure 6B] This figure shows an example of a schematic diagram of a cell containing lithium oxide argyrodite. [Figure 6C] This figure shows an example of a schematic diagram of a cell containing lithium oxide argyrodite. [Modes for carrying out the invention]
[0015] This specification provides solid materials having ionic conductivity and electrochemical stability. Some embodiments of the materials conform to Formula I. [ka] Here, X is a halide and y is a number between 0 and 0.8 (including both ends). The material is a cocrystal with the material of formula I, which can also be expressed as formula II. [ka] Here, X is a halide and y is a number between 0 and 0.8 (inclusive). In some embodiments, X is bromine (Br) or chlorine (Cl), such that the anion is a bromide or chloride. Mixed halide systems are also provided, with two embodiments of the halide system shown in formula III. [ka] Here, X 1 and X 2 is a halide, and y is a number between 0 and 0.8 (including both ends). And, u + z = 1 + y.
[0016] Furthermore, methods for manufacturing these materials, as well as batteries and battery components containing these materials, are also provided. Introduction
[0017] The mineral argyrodite (Ag8GeS6) can be considered a cocrystal of Ag4GeS4 and two equivalents of Ag2S. In this crystal, both cations and anions can be substituted, but the overall spatial arrangement of each ion remains the same. For example, in Li7PS6, the first lithium-containing example of this mineral type, PS4 3- The ions are from the original mineral GeS4. 4- It is located in the crystallographic position that was occupied by S, while S 2- The ions maintain their original positions, Li + The ion is the original Ag + It is taking the position of the ion. Li7PS 6¬In this case, because there are fewer cations compared to the original Ag8GeS6, several cation sites are empty. Thus, structural analogues of the original argyrodite mineral are often also called argyrodites. Both Ag8GeS6 and Li7PS6 are orthorhombic at room temperature, but undergo a phase transition to a cubic space group at high temperatures. Furthermore, substituting one equivalent of Li2S with one equivalent of LiCl yields a material called Li6PS5Cl, which undergoes a phase transition from orthorhombic to cubic at or below room temperature while maintaining the argyrodite structure, and exhibits significantly improved lithium ion conductivity. This material is also generally called "argyrodite" because the overall arrangement of cations and anions remains unchanged. Therefore, further substitutions that maintain such an overall structure can also be called argyrodites.
[0018] Sulfide-based lithium argyrodite materials have high Li + It exhibits mobility and is attracting attention as a material for lithium batteries. A representative material in this category is Li6PS5Cl, which is a ternary eutectic of Li3PS4, Li2S, and LiCl. Figure 1 shows the crystal structure of Li6PS5Cl.
[0019] This material utilizes elements abundant on Earth and can possess high lithium-ion conductivity. Despite its advantages among solid lithium-ion electrolytes, it still has some drawbacks. The presence of lithium sulfide in its crystalline structure means that it can release toxic and flammable hydrogen sulfide when it adsorbs moisture. Furthermore, although all these components are relatively abundant on Earth, lithium sulfide is a more expensive material compared to many other electrolyte components, including other lithium salts. Also, sulfides generally have weak interactions with lithium metal when wet. Weak surface interactions can lead to uneven deposition of lithium metal, resulting in uneven mechanical stress within the cell and dendrite growth, which can be problematic when constructing lithium metal anode batteries.
[0020] General formula Li (6-y) PS4O (1-y) X (1+y)Algyrodites having (also expressed as Li3PS4*(1-y)Li2O*(1+y)X), where X is a halide anion and y is a number between 0 and 0.8 (including both ends), are provided herein. These materials are sometimes called lithium oxide aldyrodites and, like the Ag8GeS6 mentioned above, have an overall configuration in which PS4 anions, X anions, and oxide anions are regularly arranged with lithium cations in between. The halides are typically Cl - Or Br - However, it may also be an iodide or fluoride. In some embodiments, y is between 0 and 0.6. In certain embodiments, y is between 0.3 and 0.5 (inclusive) or between 0.35 and 0.45 (inclusive). In certain embodiments, y is between 0.5 and 0.7 (inclusive) or between 0.55 and 0.65 (inclusive). It should be noted that in some embodiments, while maintaining the argyrodite crystal structure, the oxygen atom of the LiO2 site may exchange positions with the S atom of the PS4 site. Unless otherwise specified, the general formula is Li (6-y) PS4O (1-y) X (1+y) This includes these embodiments.
[0021] Figures 2 and 3 show two examples of crystal structures of lithium oxide argyrodite. Figure 2 shows an example of the structure of Li6PS4OCl(y=0), and Figure 3 shows Li 5.5 PS4O 0.5 Cl 1.5 An example of the configuration for (y=0.5) is shown.
[0022] Depending on the various embodiments, this group of materials may offer one or more advantages, such as the following: Because this material replaces some of the sulfur with the lighter element oxygen, it may have a slight advantage in terms of gravimetric energy density in the final electrochemical device. Furthermore, it can be manufactured more cheaply, to the extent of replacing lithium sulfide with a material called lithium oxide. 2-Because it does not contain anions, there is no immediate risk of toxic hydrogen sulfide being generated even if the material comes into contact with moisture in the atmosphere or bulk water. (PS4) 3- The anions ultimately become hydrogen sulfide and PO4 3- It breaks down into (but this is a very slow process and is generally not considered dangerous).
[0023] In some embodiments, the use of lithium oxide argyrodites reduces the risk of dendrite formation. This is thought to be because, compared to many sulfide-based lithium ion conductors containing Li6PS5Cl, the lithium oxide component provides better surface interactions with the lithium metal, thereby improving the uniformity of lithium metal deposition. Synthesis
[0024] Furthermore, a method for producing lithium oxide argyrodites described herein is also provided. The method involves adding Li2O and LiX to Li3PS4. In some embodiments, the method involves first producing Li3PS4 and then adding Li2O and LiX (e.g., LiCl). It should be noted that this is different from the production of sulfur-based argyrodites, which involves mixing precursor compounds and causing mechochemical reactions. For example, Li6PS5Cl can be produced by mixing Li2S, P2S5 and LiCl in a high-energy ball mill. However, if Li2S, Li2O, P2S5 and LiCl are mixed in desired ratios under the same conditions, Li2S and Li2O will compete with P2S5 for reaction, resulting in a large amount of oxygen being involved in the formation of PO bonds. As a result, Li2S remains in the constituent, which may lead to the formation of H2S upon contact with moisture.
[0025] In some embodiments, this method includes producing Li3PS4 in solid form, for example, by reacting Li2S and P2S5 in a ball mill. The oxide and halide components may be further added in a boring mill. Alternatively, the oxide and halide components may be added in a polar protic solvent such as ethanol, and then the solvent may be evaporated. In some embodiments, this method includes the solution synthesis of Li3PS4 in a polar aprotic solvent such as ethyl propionate. The oxide and halide components may then be added as described above.
[0026] After synthesizing lithium oxide argyrodite, it may be annealed to improve its conductivity. Annealing can be performed at a temperature close to the melting point. Example synthesis: Li6PS4OCl
[0027] Under an argon atmosphere, a 100 mL zirconia cup was filled with 3.568 g of Li3PS4 glass (prepared by grinding Li2S and P2S5 together in a ball mill), 0.592 g of Li2O, 0.840 g of LiCl, and 100 g of 10 mm spherical zirconia grinding media. The cup was sealed tightly, and the contents were ground and mixed in a Pulverisette 5 ball mill at 200 rpm for 30 minutes. Using the same mill, the mixture was ground at 400 rpm for 20 hours, reversing the direction every hour, without interruption between steps, to form argyrodite. After grinding, the cup was returned to an argon atmosphere, and the newly formed argyrodite was scraped off the cup wall. This material and the original zirconia media were returned to the cup and it was sealed again. The argyrodite was ground at 200 rpm for 10 minutes. The cup is returned to an argon atmosphere, the material is scraped out, and finally passes through a sieve stack, with the fraction that has passed through the 25 μm sieve being collected. The conductivity of the sample is measured in its as-prepared state, and the sample is annealed at 500°C for 5 hours in an argon atmosphere. 5.6 PS4O 0.6 Cl 1.4
[0028] Under an argon atmosphere, a 100 mL zirconia cup was filled with 3.499 g of Li3PS4 glass (prepared by grinding Li2S and P2S5 together in a ball mill), 0.348 g of Li2O, 1.153 g of LiCl, and 100 g of 10 mm spherical zirconia grinding media. The cup was sealed tightly, and the contents were ground and mixed in a Pulverisette 5 ball mill at 200 rpm for 30 minutes. In the same mill, the mixture was ground continuously for 20 hours at 400 rpm, reversing the direction every hour, to form argyrodite. After grinding, the cup was returned to an argon atmosphere, and the newly formed argyrodite was scraped from the cup walls. This material and the original zirconia media were returned to the cup and it was sealed again. The argyrodite was ground at 200 rpm for 10 minutes. The cup is returned to an argon atmosphere, the material is scraped out, and finally passes through a sieve stack, with the fraction that has passed through the 25 μm sieve being collected. The conductivity of the fabricated sample is measured, and the sample is annealed at 500°C for 5 hours under an argon atmosphere.
[0029] The conductivity of the Li6PS4OCl argyrodite in its as-faded state was measured at 0.42 mS / cm, and increased to 1.33 mS / cm after annealing. 5.6 PS4O 0.6 Cl 1.4 The conductivity of the argyrodite in its as-fabricated state was measured at 1.54 mS / cm, and increased to 3.80 mS / cm after annealing. Raman spectroscopy showed (as expected) the presence of Li3PS4 in the structure and no evidence of PO bond formation. This conductivity is equivalent to that of the reference material Li6PS5Cl (1.00 mS / cm before fabrication, 3.87 mS / cm after annealing).
[0030] Figure 4 shows the X-ray diffraction pattern of Li6PS5Cl and Li6PS4OCl and Li 5.6 PS4O 0.6 Cl 1.4 The X-ray diffraction patterns are shown. The peaks marked with asterisks are associated with the argyrodite structure. Two oxygen-containing materials (Li6PS4OCl and Li 5.6PS4O 0.6 Cl 1.4 The structure closely matches that of an argyrodite. These materials, like the reference sample Li6PS5Cl, have several small peaks that do not match the argyrodite structure, indicating the presence of small crystalline impurities.
[0031] Figure 5 shows Li6PS5Cl and Li6PS4OCl at relative humidity (RH) 50% and temperature 75°C. o This shows the amount of H2S released when exposed to air under an environment of F. The peak concentration of H2S produced by oxide-containing argyrodite is one-third that of the reference argyrodite Li6PS5Cl, and the integrated total H2S release is 49% of the reference. Alkali metal oxide argyrodites Although lithium oxide argyrodites have been described, argyrodites of other alkali metals are also provided herein. These include sodium oxide argyrodites and potassium oxide argyrodites. Accordingly, compositions according to formula IV are also provided herein. [ka] Here, A is an alkali metal, X is a halide, and y is a number between 0 and 0.8 (including both ends). The material is a cocrystal with the material of formula I, which can also be expressed as formula V. [ka] Here, A is an alkali metal, X is a halide, and y is a number between 0 and 0.8 (inclusive). In some embodiments, X is bromine (Br) or chlorine (Cl), such that the anion is a bromide or chloride. Mixed halide systems are also provided, with two embodiments of the halide system represented by formula VI. [ka] Here, A is an alkali metal, and X 1 and X 2A is a halide, and y is a number between 0 and 0.8 (inclusive). And u + z = 1 + y. In some embodiments, A is selected from lithium (Li), sodium (Na), and potassium (K). Formula I is an example of Formula II when A is Li. As described above, the general formula includes embodiments in which the arrangement of oxygen and sulfur atoms is swapped while maintaining the overall argyrodite structure. Argyrodites of sodium oxide and potassium oxide may be prepared in the same manner as described above for argyrodites of lithium oxide. Furthermore, Na6PS4OCl and Na 5.6 PS4O 0.6 Cl 1.4 An example of its synthesis is shown below. Those skilled in the art will understand how to modify and synthesize other alkali metal argyrodites. Na6PS4OCl
[0032] Under an argon atmosphere, place 3.273 g of Na3PS4 glass (prepared by grinding Na2S and P2S5 together in a ball mill), 0.889 g of Na2O, 0.838 g of NaCl, and 100 g of 10 mm spherical zirconia grinding media into a 100 mL zirconia cup. Seal the cup tightly and grind and mix the contents in a Pulverisette 5 ball mill at 200 rpm for 30 minutes. Using the same mill, grind continuously for 20 hours at 400 rpm, reversing the direction every hour, to form argyrodite. After grinding, return the cup to an argon atmosphere and scrape the newly formed argyrodite from the cup wall. This material and the original zirconia media are returned to the cup and resealed. Grind the argyrodite at 200 rpm for 10 minutes. The cup is returned to an argon atmosphere, the material is scraped out, and finally passes through a sieve stack, with the fraction that has passed through the 25 μm sieve being collected. The conductivity of the prepared sample is measured, and the sample is annealed in an argon atmosphere, for example, at 500°C for 5 hours. 5.6 PS4O 0.6 Cl 1.4
[0033] Under an argon atmosphere, place 3.286 g of Na3PS4 glass (prepared by grinding Na2S and P2S5 together in a ball mill), 0.536 g of Na2O, 1.178 g of NaCl, and 100 g of 10 mm spherical zirconia grinding media into a 100 mL zirconia cup. Seal the cup tightly and grind and mix the contents in a Pulverisette 5 ball mill at 200 rpm for 30 minutes. Using the same mill, grind continuously for 20 hours at 400 rpm, reversing the direction every hour, to form argyrodite. After grinding, return the cup to an argon atmosphere and scrape the newly formed argyrodite from the cup wall. This material and the original zirconia media are returned to the cup and resealed. Grind the argyrodite at 200 rpm for 10 minutes. The cup is returned to an argon atmosphere, the material is scraped off, and finally passes through a sieve stack, with the fraction that has passed through the 25 μm sieve being collected. The conductivity of the fabricated material is measured, and the sample is annealed in an argon atmosphere, for example, at 450°C for 5 hours. Composite containing alkali metal oxide argyrodite
[0034] In some embodiments, lithium oxide argyrodites or other alkali metal argyrodites may be mixed with a compatible material to form a composite solid ion conductor. The compatible material may be an organic phase, such as those described in U.S. Patents 9,926,411 and 9,972,838, and U.S. Patent Application No. 16 / 241,784, which is incorporated herein by reference. The organic polymer phase may contain one or more polymers and is chemically compatible with the inorganic ion-conducting particles. In some embodiments, the organic phase is substantially ionically non-conductive and is referred to as "non-ionic." The non-ionic polymers described herein have an ion conductivity of less than 0.0001 S / cm.
[0035] In some embodiments, the organic phase includes a polymer binder, a relatively high molecular weight polymer. The polymer binder has a molecular weight of at least 30 kg / mol, and may be at least 50 kg / mol, or even 100 kg / mol. In some embodiments, the polymer binder has a non-polar backbone. Examples of non-polar polymer binders include polymers or copolymers containing styrene, butadiene, isoprene, ethylene, and butylene. Styrene block copolymers, including polystyrene blocks and rubber blocks, may be used, with examples of rubber blocks including polybutadiene (PBD) and polyisoprene (PI). The rubber blocks may or may not be hydrogenated. Specific examples of polymer binders include styrene-ethylene-butylene-styrene (SEBS), styrene-butadiene-styrene (SBS), styrene-isoprene-styrene (SIS), styrene-butadiene rubber (SBR), polystyrene (PSt), PBD, polyethylene (PE), and PI. Non-polar polymers, because they do not coat inorganic particles, may lead to reduced conductivity.
[0036] To improve the processability of polymers with large molecular weights, such as SEBS, polymers with smaller molecular weights may be used to lower processing temperatures and pressures, for example. These can have molecular weights ranging from, for example, 50 g / mol to 30 kg / mol. Examples include polydimethylsiloxane (PDMS), polybutadiene (PBD), and polystyrene. In some embodiments, the first component is a cyclic olefin polymer (COP). In some embodiments, the first component is a polyalkyl, polycyclic aromatic, or polysiloxane polymer having terminal groups selected from cyano, thiol, amide, amino, sulfonic acid, epoxy, carboxyl, or hydroxyl groups.
[0037] The main chains or backbones of the polymer components in the organic phase do not interact with the inorganic phase. Examples of backbones may include saturated or unsaturated polyalkyls, polycyclic aromatics, and polysiloxanes. Examples of backbones that may interact too strongly with the inorganic phase include those with strong electron-donating groups, such as polyalcohols, polyacids, polyesters, polyethers, polyamines, and polyamides. It should be understood that molecules with other sites that reduce the bond strength of oxygen or other nucleophiles may be used. In certain embodiments, for example, the totally fluorine-substituted nature of perfluoropolyether (PFPE) backbones allows for the delocalization and use of the electron density of ether oxygen.
[0038] In some embodiments, hydrophobic block copolymers having both a plastic copolymer segment and an elastic copolymer segment are used. Examples include styrene-based block copolymers such as SEBS, SBS, SIS, styrene-isoprene / butadiene-styrene (SIBS), styrene-ethylene / propylene (SEP), styrene-ethylene / propylene-styrene (SEPS), and isoprene rubber (IR).
[0039] In some embodiments, the organic phase is substantially non-ionic conductive, and examples of non-ionic conductive polymers include PDMS, PBD, and other polymers mentioned above. Unlike ionic conductive polymers such as polyethylene oxide (PEO), polypropylene oxide (PPO), polyacrylonitrile (PAN), and polymethyl methacrylate (PMMA), which are ionic conductive in order to dissolve or dissociate salts such as LiI, non-ionic conductive polymers are not ionic conductive even in the presence of salts. This is because, unless the salt is dissolved, there are no mobile ions to conduct. In some embodiments, one or another of these ionic conductive polymers may be used. As described in “Flexible Glass-Polymer Hybrid Monoionic Conductive Electrolytes for Lithium-Ion Batteries,” PNAS, Vol. 113, No. 1, 52-57 (2016), mentioned above and incorporated herein by reference, PFPE is ionic conductive and a monoionic conductor to lithium, and may be used in some embodiments.
[0040] Ion-conducting polymers such as PEO, PPO, PAN, and PMMA may be used in some embodiments, with or without the presence of additional salts.
[0041] In some embodiments, hybrid solid ion conductors are formed from precursors that are polymerized in situ after being mixed with inorganic particles. Polymerization may occur under pressure to induce interparticle contact. Once polymerized, the applied pressure may be removed with the particles fixed by the polymer matrix. In some embodiments, the organic material includes a crosslinked polymer network. This network may restrain the inorganic particles and prevent them from shifting during operation. The crosslinked polymer network can be crosslinked in situ, i.e., after the inorganic particles have been mixed with the polymer or polymer precursor to form a composite. In-situ polymerization of polymers including in-situ crosslinking is described in U.S. Patent No. 10,079,404, which is incorporated herein by reference.
[0042] The composite materials described herein may take various forms, including membranes and suspensions or pastes used to manufacture the composite membrane. Depending on the various embodiments, the composite may include any of the following: 1) Argyrodite precursors that do not contain argyrodite; and organic polymers; 2) Argyrodite precursors, argyrodites, and organic polymers; 3) Argyrodites and organic polymers that are substantially free of precursors.
[0043] In some embodiments, the composite is essentially composed of these components. In some other embodiments, additional components may be present, as will be further described below. As shown above, in some embodiments, the composite is provided as a solidified film. Depending on the particular composition and the preceding treatment, the solidified film may be provided ready for incorporation into a device without further treatment, or it may be provided ready for in-situ processing of the argyrodite, as described above. In the latter case, it may be provided as a freestanding film or incorporated into a device for processing.
[0044] In some embodiments, the amount of polymer matrix loaded in the hybrid composition may be relatively high, for example, at least 2.5%–30% by weight. According to various embodiments, the polymer may be between 0.5%–60% by weight, between 1%–40% by weight, or between 5%–30% by weight. This composite forms a continuous film.
[0045] The organic polymer is generally a non-polar hydrophobic polymer as described above. In certain embodiments, it may be a polymer precursor (monomer, oligomer, or polymer) that is treated in situ for polymerization and / or crosslinking. Such treatment may be performed during, before, or after the in situ treatment of the argyrodite.
[0046] In some embodiments, argyrodites and / or their precursors constitute 40 wt% to 95.5 wt% of the film. The balance may be an organic polymer in some embodiments. In other embodiments, one or more additional components are present. The other components may include alkali metal ion salts, including lithium ion salts, sodium ion salts, and potassium ion salts. Examples include LiPF6, LiTFSI, LiBETI, etc. In some embodiments, the solid composition is substantially free of added salts. "Substantially free of added salts" means that it contains only trace amounts of salt. In some embodiments, if salts are present, they do not contribute more than 0.05 mS / cm or 0.1 mS / cm to the ionic conductivity. In some embodiments, the solid composition may include one or more conductivity enhancers. In some embodiments, the electrolyte may include one or more fillers, including ceramic fillers such as Al2O3. When used, the fillers may be ionic conductors or not, depending on the particular embodiment. In some embodiments, the composite may include one or more dispersants. Furthermore, in some embodiments, the organic phase of the solid composition may include one or more additional organic components that facilitate the production of electrolytes having mechanical properties desirable for specific applications.
[0047] In some embodiments further described below, the solid composition is incorporated into an electrode or ready to be incorporated into an electrode and comprises an electrochemically active material and optionally an electron-conducting additive. Examples of electrode components and compositions containing argyrodite are shown below.
[0048] In some embodiments, the electrolyte may include an electrode stabilizer that can be used to form a passivation layer on the electrode surface. An example of an electrode stabilizer is described in U.S. Patent No. 9,093,722. In some embodiments, the electrolyte may include conductivity enhancers, fillers, or organic components as described above.
[0049] In some embodiments, the composite is provided as a suspension or paste. In such cases, the composition contains a solvent for later evaporation. Furthermore, the composition may contain one or more components for storage stability. Such compounds may include acrylic resins. Once ready for processing, the suspension or paste may be cast or sprayed onto a substrate and dried as needed. The in situ processing described above may then be performed.
[0050] Solid compositions can be prepared by any suitable method, and exemplary procedures are described below with reference to experimental results. Alternatively, homogeneous films can be prepared by solution processing methods. In one exemplary method, all components are mixed together using laboratory and / or industrial equipment such as ultrasonic crushers, homogenizers, high-speed mixers, rotary mills, vertical mills, and planetary ball mills. Mixing media may be added to improve mixing and aid in homogenization by crushing aggregates and lumps, thereby removing film defects such as pinholes and high surface roughness. The resulting mixture is a uniformly mixed suspension with viscosity varying depending on the hybrid composition and solvent content. Substrates for casting may have different thicknesses and compositions. Examples include aluminum, copper, and Mylar®. Casting of the suspension onto selected substrates can be achieved by different industrial methods. In some embodiments, porosity can be reduced by mechanically increasing the film density (resulting in, for example, a change in thickness of about 50%) by methods such as calendering between rollers, vertical flattening presses, or isotropic presses. The pressure involved in the densification process compels the particles to maintain close interparticle contact. For example, an external pressure of the order of 1 MPa to 600 MPa, or 1 MPa to 100 MPa, is applied. In some embodiments, pressure applied by a calender roll is used. The pressure is sufficient to achieve interparticle contact but low enough to prevent the uncured polymer from being forced out of the mold. Polymerization, which may include crosslinking, may occur under pressure to form a matrix. In some embodiments, thermal-initiated or photo-initiated polymerization techniques are used, which initiate polymerization using thermal energy or the application of ultraviolet light. Ionic conductive inorganic particles are trapped in the matrix and remain in close contact even after the external pressure is released. Composites prepared in the manner described above (as pellets or thin films) may be incorporated into actual solid-state lithium batteries, for example, by well-established methods.
[0051] In some embodiments, the film is dried rather than treated with a solution. For example, the film may be extruded. Extrusion or other drying processes can be an alternative to solution treatment, particularly when the organic phase load is higher (e.g., in embodiments where the organic phase is at least 30% by weight).
[0052] Alkali metal oxide argyrodites may, but are not limited to, be incorporated into any device that uses ion conductors, such as batteries and fuel cells. For example, in a lithium battery, lithium oxide argyrodite may be the electrolyte or incorporated into the electrolyte. Similarly, lithium oxide argyrodite may be incorporated into the electrodes. In some embodiments, lithium oxide argyrodite may be formed into a solid ion conductor by pressing or other methods for use in a device. In some embodiments, lithium oxide argyrodite may be mixed with a suitable material to form a composite solid ion conductor as described above.
[0053] In some embodiments, the composite solid composition does not contain added salts. Lithium salts (e.g., LiPF6, LiTFSI, etc.), potassium salts, sodium salts, etc., may not be necessary for contact between ion-conducting particles. In some embodiments, the solid composition is essentially composed of ion-conducting inorganic particles and an organic polymer matrix. However, in alternative embodiments, one or more additional components may be added to the hybrid solid composition.
[0054] The electrode composition further comprises an electrode active material and optionally includes conductive additives. Examples of cathode and anode compositions are shown below.
[0055] Examples of cathode compositions are shown in the table below. [Table 1]
[0056] According to various embodiments, the cathode active material is a transition metal oxide, with lithium nickel cobalt manganese oxide (LiMnCoMnO2, or NMC) being one example. NMC contains LiNi 0.6 Mn 0.2 Co 0.2 O2 (NMC-622), LiNi 0.4 Mn 0.3 Co 0.3 Various forms may be used, including O2 (NMC-4330). The lower limit of the weight percent range is set by the energy density, and compositions having less than 65% by weight of the active material may have a low energy density and may not be useful.
[0057] Any suitable argyrodite may be used. 5.6 PS4O 0.6 Cl 1.4 This is an example of an argyrodite that maintains high ionic conductivity and suppresses hydrogen sulfide. Compositions with less than 10% by weight of argyrodite have low Li + It has conductivity.
[0058] Electronically conductive additives are effective for active materials with low electronic conductivity, such as NMCs. Carbon black is one example of such additives, but other carbon-based additives including other carbon blacks, activated carbon, carbon fibers, graphite, graphene, and carbon nanotubes (CNTs) may be used. Below 1% by weight, the improvement in electronic conductivity may be insufficient, while above 5% can lead to a reduction in energy density and disruption of the active material-argyrodite contact.
[0059] Any suitable organic phase may be used. In certain embodiments, hydrophobic block copolymers having both plastic and elastic copolymer segments are used. Examples include styrene-ethylene / butylene-styrene (SEBS), styrene-butadiene-styrene (SBS), styrene-isoprene-styrene (SIS), styrene-isoprene / butadiene-styrene (SIBS), styrene-ethylene / propylene (SEP), styrene-ethylene / propylene-styrene (SEPS), and isoprene rubber (IR). Below 1% by weight may not be sufficient to obtain the desired mechanical properties, but above 5% may cause a reduction in energy density or disruption of the active material-argyrodite-carbon contact.
[0060] Examples of anode compositions are shown in the table below. [Table 2]
[0061] Graphite is used as a secondary active material to improve the initial Coulomb efficiency (ICE) of Si anodes. Si has a lower ICE (e.g., sometimes less than 80%) than NMC and other cathodes, causing irreversible capacity degradation in the first cycle. Graphite has a high ICE (e.g., over 90%), allowing it to fully utilize its capabilities. In hybrid anodes with both Si and graphite as active materials, the ICE increases with increasing graphite content, and therefore, by adjusting the Si / graphite ratio, the cathode ICE can be matched to the anode ICE, preventing irreversible capacity degradation in the first cycle. Since ICE can be altered by processing, a relatively wide range of graphite content is possible depending on the specific anode and its processing. Furthermore, graphite can improve electronic conductivity, potentially contributing to higher anode density.
[0062] A suitable argyrodite may be used. 5.6 PS4O0.6 Cl 1.4 This is an example of an argyrodite that maintains high ionic conductivity and suppresses hydrogen sulfide. Compositions with less than 10% by weight of argyrodite have low Li + It has conductivity.
[0063] In some embodiments, high-surface-area electronically conductive additives (e.g., carbon black) may be used. In addition to graphite (which has excellent electronic conductivity but a small surface area), Si can be an effective additive due to its low electronic conductivity. However, the electronic conductivity of Si alloys can be moderately high, and in some embodiments, the use of additives is unnecessary. Other high-surface-area carbons (carbon black, activated carbon, graphene, carbon nanotubes) can also be used instead of Super C.
[0064] Any suitable organic phase may be used. In certain embodiments, hydrophobic block copolymers having both a plastic copolymer segment and an elastic copolymer segment are used. Examples include styrene-ethylene / butylene-styrene (SEBS), styrene-butadiene-styrene (SBS), styrene-isoprene-styrene (SIS), styrene-isoprene / butadiene-styrene (SIBS), styrene-ethylene / propylene (SEP), styrene-ethylene / propylene-styrene (SEPS), and isoprene rubber (IR). Below 1% by weight may not be sufficient to obtain the desired mechanical properties, but above 5% may cause a reduction in energy density or disruption of the active material-argyrodite-carbon contact.
[0065] This specification provides alkali metal batteries and alkali metal ion batteries comprising an anode, a cathode, and a flexible solid electrolyte composition as described above that is operably coupled to the anode and cathode. The battery may include a separator for physically isolating the anode and cathode. This separator may be the solid electrolyte composition.
[0066] Examples of suitable anodes include, but are not limited to, anodes formed from carbonaceous materials such as lithium metal, lithium alloys, sodium metal, sodium alloys, and graphite, and combinations thereof. Examples of suitable cathodes include, but are not limited to, cathodes formed from transition metal oxides, doped transition metal oxides, metal phosphates, metal sulfides, lithium iron phosphate, sulfur, and combinations thereof. In some embodiments, the cathode may be a sulfur cathode.
[0067] In alkali metal-air batteries such as lithium-air batteries, sodium-air batteries, or potassium-air batteries, the cathode may be oxygen-permeable (e.g., mesoporous carbon, porous aluminum, etc.), and optionally the cathode may contain a metal catalyst incorporated therein to promote the reduction reaction between lithium ions and oxygen that occurs in the cathode (e.g., manganese, cobalt, ruthenium, platinum, or silver catalysts, or combinations thereof).
[0068] In some embodiments, lithium-sulfur cells comprising a lithium metal anode and a sulfur-containing cathode are provided. In some embodiments, the solid composite electrolytes described herein are unique in that they enable the use of the lithium metal anode by preventing dendrite formation and enable the use of the sulfur cathode by preventing the dissolution of the polysulfide intermediate Li2Sn formed at the cathode during discharge.
[0069] Furthermore, to prevent the anode and cathode from directly contacting each other electrically, a separator made of any suitable ion-permeable material may be included. However, since the electrolyte compositions described herein are solid compositions, they can function as separators, especially when in the form of a membrane.
[0070] In some embodiments, the solid electrolyte composition functions as an electrolyte between the anode and cathode of an alkaline-ion battery, depending on the intercalation of alkaline ions during cycling.
[0071] As described above, in some embodiments, the solid composite composition can be incorporated into the electrodes of the battery. The electrolyte may be a flexible solid electrolyte as described above, or any other suitable electrolyte including a liquid electrolyte.
[0072] In some embodiments, the battery comprises an electrode / electrolyte bilayer, each layer incorporating an ion-conductive solid composite material as described herein.
[0073] Figure 6A shows an example of a schematic diagram of a cell according to a particular embodiment of the invention. The cell comprises a negative current collector 602, an anode 604, an electrolyte / separator 606, a cathode 608, and a positive current collector 610. The negative current collector 602 and the positive current collector 610 may be any suitable electronically conductive material, such as copper, steel, gold, platinum, aluminum, or nickel. In some embodiments, the negative current collector 602 is copper and the positive current collector 610 is aluminum. The current collector may be in any suitable form, such as a sheet, foil, mesh, or foam. According to various embodiments, one or more of the anode 604, cathode 608, and electrolyte / separator 606 are solid composite materials containing thiophilic metal-doped argyrodite as described above. In some embodiments, two or more of the anode 604, cathode 608, and electrolyte 606 are solid composite materials containing thiophilic metal-doped argyrodite, as described above.
[0074] In some embodiments, the current collector is a porous material that can be embedded in the corresponding electrode. For example, it may be a mesh. Electrodes containing the hydrophobic polymer described above do not need to adhere closely to a foil-like current collector, but a mesh-like current collector provides good mechanical contact. In some embodiments, the two composite films described herein may be pressed against a mesh current collector to form an embedded current collector in the electrode.
[0075] Figure 6B shows an example of a schematic diagram of an assembled lithium metal cell according to a particular embodiment of the invention. The assembled cell includes a negative current collector 602, an electrolyte / separator 606, a cathode 608, and a positive current collector 610. Lithium metal is generated in the initial charge and plated onto the negative current collector 602 to form the anode. One or both of the electrolyte 606 and the cathode 608 may be a composite material, as described above. In some embodiments, the cathode 608 and the electrolyte 606 together form an electrode / electrolyte bilayer. Figure 6C shows an example of a schematic diagram of a cell according to a particular embodiment of the invention. The cell includes a negative current collector 602, an anode 604, a cathode / electrolyte bilayer 612, and a positive current collector 610. Each layer of the bilayer structure may contain an argyrodite. Such a bilayer structure may be prepared, for example, by preparing an electrolyte suspension and depositing it onto the electrode layer.
[0076] All components of the battery may be contained in or packaged in a suitable rigid or elastic container having external lead wires or contacts to establish electrical connections with the anode and cathode according to known techniques.
[0077] In the above description and in the claims, a numerical range includes the endpoint of the range. For example, "y is a number between 0 and 0.8" includes 0 and 0.8. Similarly, a range represented by a dashed line includes the endpoint of the range.
[0078] [Item 1] The general formula is Li (6-y)PS4O (1-y) X (1+y) Here, X is a halide and y is a number between 0 and 0.8. Lithium oxide argyrodite. [Item 2] A lithium oxide argyrodite as described in item 1, where y is between 0.5 and 0.7. [Item 3] The lithium oxide argyrodite described in item 1, where y=0. [Item 4] The lithium oxide argyrodite described in item 1, where y=0.1. [Item 5] The lithium oxide argyrodite described in item 1, where y = 0.2. [Item 6] The lithium oxide argyrodite described in item 1, where y = 0.3. [Item 7] The lithium oxide argyrodite described in item 1, where y = 0.4. [Item 8] The lithium oxide argyrodite described in item 1, where y = 0.5. [Item 9] The lithium oxide argyrodite described in item 1, where y = 0.6. [Item 10] The lithium oxide argyrodite is a lithium oxide argyrodite according to any one of items 1 to 9 above, which is incorporated into a solid-state battery or fuel cell. [Item 11] The lithium oxide argyrodite described in item 10 is incorporated into or forms an electrolyte. [Item 12] The lithium oxide argyrodite described above is the lithium oxide argyrodite described in item 10, which is incorporated into the electrode. [Item 13] A method for synthesizing lithium oxide argyrodite, Stoichiometric amounts of Li2O and LiX are added to Li3PS4, and the Li2O, LiX, and Li3PS4 are reacted to form an argylodite Li of lithium oxide, where X is a halide and y is a number between 0 and 0.8. (6-y) PS4O (1-y) X (1+y) to form Methods that include... [Item 14] The method according to item 13, further comprising synthesizing Li3PS4. [Item 15] The method according to item 13, wherein the Li2O, LiX, and Li3PS4 are reacted in a ball mill without using a solvent. [Item 16] The method according to item 13, wherein the Li2O and LiX are added in a solvent. [Item 17] The method according to item 16, further comprising evaporating the solvent. [Item 18] The method according to item 16 or 17, wherein the solvent is ethanol. [Item 19] The method according to any one of items 13 to 18, further comprising annealing the lithium oxide argyrodite. [Item 20] An organic phase comprising one or more polymers, The general formula is Li (6-y) PS4O (1-y) X (1+y) Here, X is a halide and y is a number between 0 and 0.8, i.e., an argylodite of lithium oxide. A lithium-conducting inorganic phase containing, Electrolytes, including [Item 21] The electrolyte according to item 20, wherein the one or more polymers include a hydrophobic polymer. [Item 22] The electrolyte according to item 20 or 21, wherein one or more of the polymers are not ion-conductive. [Item 23] The electrolyte according to any one of items 20 to 22, wherein the polymer is styrene-ethylene-butylene-styrene (SEBS), styrene-butadiene-styrene (SBS), styrene-isoprene-styrene (SIS), styrene-isoprene / butadiene-styrene (SIBS), styrene-ethylene / propylene (SEP), styrene-ethylene / propylene-styrene (SEPS), and isoprene rubber (IR). [Item 24] The electrolyte according to any one of items 20 to 23, wherein one or more polymers comprise a copolymer consisting of a plastic segment and an elastic segment. [Item 25] The electrolyte according to any one of items 20 to 24, wherein the membrane is a polymer between 0.5% and 60% by weight, a polymer between 1% and 40% by weight, or a polymer between 5% and 30% by weight. [Item 26] A suspension, paste, or solution containing one or more solvents, polymers, and ion-conductive lithium oxide argyrodite particles. A composition containing the following: [Item 27] An electrode comprising an active material, lithium oxide argyrodite, and an organic polymer. [Item 28] [CIV] The image is JPEG0007837577000009.jpg848, and has the following formula where A is an alkali metal, X is a halide, and y is a number between 0 and 0.8 (including both ends). Alkali metal argyrodite.
Claims
1. Solid anode and, Solid cathode and, A solid lithium-ion battery cell comprising a solid separator disposed between the solid anode and the solid cathode, The solid anode, the solid cathode, and the solid separator each contain lithium oxide argyrodite particles, The aforementioned lithium oxide argylodite is PS 4 The PS contains anions, halide anions, and oxide anions arranged in a regular pattern. 4 A lithium cation exists between anions, halide anions, and oxide anions. The lithium oxide argyrodite is Li (6-y) PS 4 O (1-y) X (1+y), where X is a halide and y is a number between 0 and 0.
8. Solid-state lithium-ion battery cell.
2. The lithium oxide argyrodite is a reference Li 6 PS 5 The solid lithium-ion battery cell according to claim 1, having an X-ray diffraction pattern that includes all the peaks of the X-ray diffraction pattern of Cl argyrodite.
3. The solid lithium-ion battery cell according to claim 1, wherein the solid anode has an active material containing silicon.
4. The solid lithium-ion battery cell according to claim 1, wherein the lithium oxide argyrodite particles are present in the solid anode.
5. The solid lithium-ion battery cell according to claim 3, wherein the solid anode further comprises an organic phase.
6. The solid lithium-ion battery cell according to claim 5, wherein the organic phase includes a polymer.
7. The solid lithium-ion battery cell according to claim 1, wherein the lithium oxide argyrodite particles are present in the solid cathode.
8. The solid lithium-ion battery cell according to claim 6, wherein the solid cathode further comprises an organic phase.
9. The solid lithium-ion battery cell according to claim 8, wherein the organic phase includes a polymer.
10. The solid lithium-ion battery cell according to claim 1, wherein the lithium oxide argyrodite particles are contained within the solid separator.
11. The solid lithium-ion battery cell according to claim 10, wherein the solid separator is 40% to 99.5% by weight of argyrodite particles.
12. The solid lithium-ion battery cell according to claim 9, wherein the solid cathode further comprises an organic phase.
13. The solid lithium-ion battery cell according to claim 12, wherein the organic phase includes a polymer.
14. It contains lithium-ion conductive particles and silicon-based active materials, The lithium-ion conductive particles are PS 4 The PS contains anions, halide anions, and oxide anions arranged in a regular pattern. 4 It has lithium oxide argylodite particles in which a lithium cation exists between the anion, halide anion, and oxide anion. The argyrodite of the aforementioned lithium oxide is Li (6-y) PS 4 O (1-y) X (1+y), where X is a halide and y is a number between 0 and 0.
8. Solid anode for solid lithium-ion battery cells.
15. The solid anode according to claim 14, wherein the silicon-based active material is a silicon element.
16. The solid anode according to claim 14, wherein the silicon-based active material is a silicon-containing alloy.
17. The solid anode according to claim 14, wherein the silicon-based active material comprises silicon and carbon.
18. The solid anode according to claim 14, wherein the solid anode further comprises an organic phase.
19. The solid anode according to claim 18, wherein the organic phase comprises a polymer.
20. The solid anode according to claim 14, wherein the solid anode is 15 wt% to 50 wt% silicon.
21. The solid anode according to claim 14, wherein the solid anode is at least 10 wt% argyrodite.
22. The solid anode according to claim 14, wherein the solid anode is 10 wt% to 50 wt% argyrodite.
23. The solid anode according to claim 18, wherein the solid anode is 1 wt% to 5 wt% of the organic phase.
24. It contains lithium-ion conductive particles and active materials, The lithium-ion conductive particles are PS 4 The PS contains anions, halide anions, and oxide anions arranged in a regular pattern. 4 It has lithium oxide argylodite particles in which a lithium cation exists between the anion, halide anion, and oxide anion. The argyrodite of the aforementioned lithium oxide is Li (6-y) PS 4 O (1-y) X (1+y), where X is a halide and y is a number between 0 and 0.
8. Solid cathode for solid lithium-ion battery cells.
25. The solid cathode according to claim 24, wherein the active material is a transition metal oxide.
26. The solid cathode according to claim 25, wherein the active material is NMC.
27. The solid cathode according to claim 24, wherein the solid cathode further comprises an organic phase.
28. The solid cathode according to claim 27, wherein the organic phase comprises a polymer.
29. The solid cathode according to claim 24, wherein the solid cathode is 65 wt% to 88 wt% of the active material.
30. The solid cathode according to claim 24, wherein the solid cathode is 10 wt% to 33 wt% argyrodite.
31. The solid cathode according to claim 27, wherein the solid cathode is 1 wt% to 5 wt% of the organic phase.
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