Lithium metal anode and method for producing the same
The lithium metal anode with embedded particulate materials addresses dendritic crystal formation by stabilizing the electrolyte and improving lithium ion transfer, enhancing battery performance and safety.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- SOELECT INC
- Filing Date
- 2020-10-27
- Publication Date
- 2026-05-19
AI Technical Summary
Lithium metal anodes in batteries are prone to dendritic crystal formation, leading to reduced performance, cycle life, and safety issues such as short circuits and overheating due to unfavorable interactions between the electrode and electrolyte.
A lithium metal anode is developed with multifunctional particulate materials embedded or added to its surface or within, selected from polymers, organic materials, inorganic materials, and lithium-affinity materials, which alter electrolyte properties to reduce dendritic crystal growth and improve surface topography.
The lithium metal anode with embedded particulate materials exhibits reduced dendritic crystal formation, leading to improved cycle life and safety by stabilizing the electrolyte and enhancing lithium ion transfer kinetics.
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Abstract
Description
[Technical Field]
[0001] Cross-reference of related applications This application claims the interests of Provisional U.S. Patent Application No. 63 / 048,921, filed on July 7, 2020, entitled “Multifunctional Lithium Metal Anode and Its Prepararion,” Provisional U.S. Patent Application No. 63 / 070,656, filed on August 26, 2020, entitled “Prepararion Method of Lithium Metal Anode,” and Provisional U.S. Patent Application No. 62 / 927,082, filed on October 28, 2019, entitled “Method of Preparing Lithium Composite Anode,” and incorporates each of the aforementioned applications in their entirety herein by reference.
[0002] The present invention as described herein generally relates to metal anodes in energy storage devices, and more specifically to lithium metal anodes suitable for use in electrochemical storage devices such as batteries and other applications where resistance to dendritic crystal formation is required. [Background technology]
[0003] Description of prior art and the purpose of the present invention Lithium metal possesses high capacity and is easy to design. With a specific capacity of 3860 mAh / g, nearly 10 times higher than graphite, and a minimum redox electrochemical potential of -3.04 V (compared to a standard hydrogen electrode), lithium metal is one of the most promising high-energy and power anode materials for next-generation electronic devices and electric vehicles. These properties make lithium metal a promising and attractive material for use as an anode in next-generation batteries. However, a common problem with lithium used in connection with conventional battery technology is its tendency to form dendritic crystals. Dendritic crystals are small strands of lithium metal that form on the electrode surface. The formation of dendritic crystals can lead to reduced battery performance, decreased Coulomb efficiency, reduced cycle life, electrochemical and thermal instability, and short circuits, which can then lead to battery overheating and combustion (i.e., fire).
[0004] Without any intention to link it to any particular theory, these drawbacks of dendritic crystal formation are thought to be due to the highly reactive nature of solid lithium metal and unfavorable interactions between the electrode and electrolyte. In particular, one process for forming a lithium metal anode according to prior art involves plating lithium metal onto a solid electrolyte intermediate phase ("SEI") film. This is thought to cause cracks in the SEI film. As additional lithium metal is plated, lithium dendritic crystals form in the spaces, voids, or cracks. The plated SEI film then undergoes a process of peeling the lithium dendritic crystals from the plated SEI film. Simultaneously, the plated SEI film shrinks or contracts, leading to further fractures. As the anode is circulated, the isolated lithium dendritic crystals accumulate, forming a layer of "dead" lithium on the surface of the plated SEI film, resulting in a thick layer of SEI film and a porous electrode. These properties lead to reduced efficiency, short circuits, and capacity degradation. [Overview of the project]
[0005] Prior art has attempted to mitigate the formation of dendritic crystals, but none of these have provided a practical and cost-effective solution for applying multifunctional solid-state particles to lithium metal anodes. Therefore, the object of the present invention is to provide a lithium metal anode with a more uniform surface topography and reduced dendritic crystal formation.
[0006] A further objective is to provide a robust, practical, and cost-effective process for manufacturing lithium metal anodes by directly or indirectly imparting multifunctional solid-state particles to lithium metal anodes.
[0007] An additional object of the present invention is to provide a solid lithium metal anode in which one or more particles are attached to, added to, or otherwise embedded on the surface or portion of the lithium metal in order to reduce the growth of lithium dendritic crystals.
[0008] Another object of the present invention is to provide a lithium metal anode defining a laminate comprising copper foil directly or indirectly treated with one or more groups of particles having multifunctional properties, wherein the group of particles is selected from: (1) polymers, (2) organic materials that can be used in any electrolyte material, (3) inorganic materials that can be dissolved in solvents, polarizable lithium salts, nonpolarizable lithium salts, and combinations thereof, and (4) metallic and nonmetallic lithium affinity (lithiophilic) materials, and mixtures thereof.
[0009] A further objective is to provide one or more methods for manufacturing the aforementioned lithium metal anode.
[0010] These and other objectives will become apparent upon further reading of this specification with reference to the drawings and attached claims.
[0011] The present invention relates to a lithium metal anode in which one or more of a group of multifunctional particulate materials are added to or embedded in the anode to form a lithium metal composite anode. In one embodiment, the particulate material is selected from (1) polymers, (2) organic materials that can be used in any electrolyte material, (3) inorganic materials that can be dissolved in solvents, polarizable lithium salts, nonpolarizable lithium salts, and combinations thereof, and (4) metallic and nonmetallic lithium-affinity (lithiophilic) materials, and mixtures thereof. The particulate material must satisfy at least one of the following criteria: (a) at least partially soluble in non-aqueous electrolytes including liquid and solid electrolytes, (b) cause a change in the viscosity of the electrolyte after activation, (c) cause a change in ionic conductivity after activation, (d) cause a change in the lithium diffusion coefficient after activation, and / or (e) cause a reduction in surface topography after activation. Alternatively, the particulate material may be insoluble, but may be dispersible in non-aqueous electrolytes including liquid and solid electrolytes. The composite lithium metal anode of the present invention is preferably prepared by distributing particulate matter directly or indirectly via a polymer substrate onto a portion of lithium metal, adding the portion of lithium metal or polymer substrate on top of the particles to form a laminate, and introducing the laminate into a nip formed between two rollers of a press to at least partially add, press, and / or embed the particulate matter into the portion of lithium metal. [Brief explanation of the drawing]
[0012] [Figure 1] This is a schematic diagram of a first embodiment of the lithium metal anode according to the present invention, specifically illustrating particulate matter embedded on the surface of a lithium metal film layer. [Figure 2] This is a schematic diagram of an alternative embodiment of the lithium metal anode according to the present invention, specifically illustrating a layer of particulate matter embedded between two layers of lithium metal film. [Figure 3]Schematic diagram of an alternative embodiment of a lithium metal anode according to the present invention, particularly illustrating particulate matter embedded and dispersed throughout the lithium metal film. [Figure 4] Schematic diagram of a process for fabricating a lithium metal anode of the present invention. [Figure 5] Schematic diagram of an alternative process for fabricating a lithium metal anode of the present invention.
Embodiments for Carrying Out the Invention
[0013] Detailed description of preferred embodiments and operations of the present invention Referring to FIGS. 1 - 3, one or more anodes of the present invention include at least a portion of lithium metal and one or more particulate materials. In the embodiment shown in FIG. 1, the lithium anode 10 has a current collector layer such as a copper foil 12 and a layer of lithium metal 14 on top of the layer of copper foil 12, although it should be understood that embodiments of the present invention are sufficient without a current collector layer. One or more particulate materials 16 are added to the surface 18 of the lithium portion 14 or embedded throughout the lithium metal portion 14. In the embodiment of FIG. 2, the anode 100 has a layer of copper foil 112, a first layer of lithium metal 114 on top of the layer of copper foil 112, and a second layer of lithium metal 116 on top of the first layer of lithium metal 114, preferably forming a laminate. One or more particulate materials 118 are added and / or embedded between the first layer of lithium metal 114 and the second layer of lithium metal 116. In the embodiment of FIG. 3, the anode 200 includes a layer of copper foil 212 and a layer of lithium metal 214 on top of the layer of copper foil 212. One or more particulate materials 216 are dispersed randomly or intentionally throughout the layer of lithium metal 214 and on the surface 216 of the lithium layer 214.
[0014] One preferred process for producing the lithium metal anode of the present invention is generally described as a roll coating process in which one or more particulate materials are distributed, added, or deposited on the surface of a layer of material, and then introduced into a nip formed between two press rollers to press or embed the particulate materials at least partially into the layer of material. The prior art teaches the use of lubricants to prevent the lithium metal from sticking to the rollers, but such use is undesirable because lubricants are considered contaminants and can adversely affect the properties of the final lithium metal anode. Referring particularly to Figure 4, the process may include: (1) providing a first layer 300; (2) adding, depositing, or otherwise distributing one or more groups of particulate matter 310 on the surface of the first layer 300; (3) providing a second film layer 320 in contact with the particulate matter 310 in order to "sandwich" or laminate the particulate matter 310 between the first layer 300 and the second film layer 320, wherein at least one of the layers is made of lithium metal or a lithium metal alloy; and (4) passing the film layer 300 and the second film layer 320, together with one or more groups of particulate matter 310 laminated between them, through a nip 330 formed between an upper press roller 340 and a lower press roller 350, so that one or more groups of particulate matter 310 are at least partially attached, pressed, or embedded in the lithium metal or lithium metal alloy. The solid-state coating process of multifunctional particulate matter (in this context, "multifunctional" means an additive to lithium metal that goes beyond the purpose of reducing the adhesion coefficient of lithium metal to prevent it from sticking to the roller) can be considered a "direct" coating process, as it occurs directly on the lithium metal portion.
[0015] In an alternative embodiment, with particular reference to Figure 5, the process comprises: (1) providing a first film layer 400; (2) depositing one or more groups of particulate matter 410 on the surface of the first layer 400; (3) evaporating all solvent and any other moisture from the first layer 400, leaving one or more groups of particulate matter 410 therein (in this specification, given the high reactivity of pure lithium, this is considered a “solid state” coating process for the removal of almost all or all liquid); and (4) “sandwiching” the particulate matter 410 between the first film layer 400 and the second layer 420. The steps may include (5) providing a second layer 420 to contact the particulate matter 410 for "embedding" or lamination, wherein at least one of the layers is made of lithium metal or a lithium metal alloy; and (6) passing the film layer 400 and the second layer 420, together with one or more groups of particulate matter 410 laminated between them, through a nip 430 formed between an upper press roller 440 and a lower press roller 450, to at least partially adhere, press, or embed one or more groups of particulate matter 10 into the lithium metal or lithium metal alloy. Although not shown in these figures, it may be desirable to further include a bare carrier layer, in particular to prevent adhesion or contamination of the lithium metal. This process of solid-state coating of multifunctional particulate matter can be considered an "indirect" coating process, in that the solid-state coating process occurs first on the film layer and then on the portion of the lithium metal via the rollers.
[0016] After passing the first lithium metal layer, the second film layer, and the particulate matter through the nip, the second film layer may be peeled off, leaving a lithium layer with at least partially added and / or embedded one or more groups of particulate matter on its exposed outer surface, as shown in Figure 1. If the second film layer is left in place, the resulting anode will have one or more groups of particulate matter at the interface between the first and second film layers, as shown in Figure 2. In addition, or alternatively, the resulting anode may have one or more groups of particulate matter embedded in the width of the first lithium metal layer. To achieve an embodiment of anode 200 as shown in Figure 3, the second film layer can be peeled off, the first lithium layer itself with particulate matter can be folded, and then passed through the nip one or more times to randomly or intentionally distribute the particulate matter across the entire width of the resulting anode. In addition, or alternatively, the resulting anode 200 can have one or more groups of particulate matter embedded within the width of the first lithium metal layer without the need to fold the lithium metal layer and the film layer itself for pressing through the nip. Once the desired anode structure is obtained, the lithium layer can be laminated onto copper foil or other material suitable for use as a current collector. Alternatively, the resulting anode structure can be attached to a transfer layer and does not need to include a current collector if desired.
[0017] In this process, the first lithium metal layer 300 may be a layer of lithium metal, a layer of lithium alloy, a layer of lithium metal supported by a polymer substrate, or a polymer substrate. Similarly, the second film layer 320 may be a layer of lithium metal, a layer of lithium metal alloy, a layer of lithium metal supported by a polymer substrate, or a layer of polymer substrate. It is preferable as an element of the present invention that at least one of the film layers contains pure lithium metal in close contact with one or more groups of particulate matter 310. As used in this context, "pure" lithium is considered acceptable if it consists substantially of only lithium that is considered to be 99.9% or more of lithium metal.
[0018] The step of depositing, adding, or otherwise distributing one or more groups of particulate matter 320 onto the surface of the first lithium metal layer 300 can be achieved by passing the first lithium metal layer 300 under a feeder device 360 containing one or more groups of particulate matter 310. The feeder device 360 may be a dry powder feeder device, a spray device, or other form of distribution device known in the art, depending on whether the particulate matter 310 is applied in a dry form (i.e., a solid-state coating process) or as a spray. Alternatively, the particulate matter 310 may be deposited on a first film layer acting as a transfer layer. In this embodiment, the first film layer may be, for example (but not limited to), a polymer substrate acting as a transfer layer, and the second layer may include a layer of lithium metal or a lithium metal alloy. As the film layer passes through the nip, one or more groups of particulate matter are transferred from the surface of the first film layer onto the outer surface layer of lithium metal or metal alloy.
[0019] Suitable materials for use as a polymer substrate film layer may be any suitable film layer, with polyolefin polymers such as polyolefins and polypropylene being particularly preferred. As used herein, the term "polymer" includes both homopolymers and copolymers. The polymer substrate film layer used in the present invention may be unoriented or oriented in any of the following directions: mechanical, cross-directional, or biaxially oriented film layers. Similarly, the film layer may be a single-layer material such as a polypropylene / polyethylene / polypropylene trilayer film or a laminated film layer.
[0020] The particulate material used to form one or more of the preferred lithium anodes described above is preferably a micron or submicron sized particle defining a size of 100 microns or less, more preferably 10 microns or less, and most preferably 1 micron or less. The particulate material is preferably selected from one or more of the following groups. Group 1: Polymers, Group 2: Organic materials that can be used in any electrolyte and are soluble in carbonate and non-carbonate solvents. Group 3: Solvents, polarizable lithium salts, non-polarizable lithium salts, and inorganic materials that can be dissolved in combinations thereof, Group 4: Metallic and nonmetallic lithium-affinity materials.
[0021] Preferred particulate matter must also meet at least one of the following criteria: (a) At least partially soluble in non-aqueous electrolytes including liquid and solid electrolytes, (b) Causes a change in the viscosity of the electrolyte after activation, (c) Causes a change in ionic conductivity after activation, (d) Causes a change in the lithium diffusion coefficient after activation, or (e) After activation, it produces a more uniform surface topography.
[0022] Alternatively, the selected particulate matter may be insoluble, but may be dispersible in non-aqueous electrolytes, including liquid and solid electrolytes.
[0023] Examples of preferred particulate materials for Group 1 include, but are not limited to, polyolefin-based materials, polymers and / or copolymer films such as polyacrylonitrile, polyvinylidene fluoride, polyethylene oxide, polyethylene, polypropylene, polyvinyl chloride, polyphthalate, polytetrafluoroethylene, polyimide, polyester, polyurethane, nylon, cellulose, lignin, combinations thereof, and blends such as PP / PE / PP. Examples of preferred materials for Group 2 include, but are not limited to, organic materials suitable for use as electrolytes such as ethylene carbonate (EC), propylene carbonate (PC), diethyl carbonate (DEC), dimethyl carbonate (DMC), ethyl methyl carbonate (EMC), γ-butyrolactone, ether-based materials, vinylene carbonate (VC), vinyl ethylene carbonate (VEC), propane sulfone, cyano molecules including monomolecular and dicyano molecules, and any other that can be dissolved in carbonate and non-carbonate solvents, and combinations thereof. Some examples of particulate materials from Group 3 include solvents and / or lithium bis(trifluoromethanesulfonyl)imide, lithium bis(fluorosulfonyl)imide, lithium hexafluoroarsenate (LiAsF6), lithium hexafluorophosphate (LiPF6), lithium tetrafluoroborate (LiBF4), lithium perchlorate (LiClO4), lithium bis(oxalato)borate, lithium (difluorooxalato)borate, NaNO 3、 CsNO 3、 RbNO 3、 KNO 3、 AgNO3, NH4NO3, Ba(NO3)2, Sr(NO3) 2、 Mg(NO3)2, Ca(NO3) 2、 Ni(NO3)2, Co(NO3) 2、 Mn(NO3) 2、 Al(NO3) 3、Examples of inorganic materials that can dissolve in either or both polar and nonpolar lithium salts, such as Ce(NO3)3, lithium nitrate (LiNO3), and combinations thereof, include (but are not limited to) these. Preferred particulate matter from group 4 includes aluminum, silver, gold, zinc, magnesium, silicon, tin, germanium, indium, barium, bismuth, boron, calcium, cadmium, iridium, palladium, platinum, rhodium, antimony, selenium, strontium, tellurium, and MnO 2、 CO3O4, SnO2, SiO2(SiO x ), ZnO, Al2O 3、 Li 1.3 Al 0.3 Ti 1.7 (PO4) 3、 Li 1.5 Al 0.5 Ge 1.5 (PO4)3, Li7La3Zr2O 12 Li 0.33 La 0.557 TiO 3、 Examples of lithium-affinity carbonaceous materials include (but are not limited to) Li2O-SiO2-TiO2-P2O5 and any nanostructured carbon material including reduced graphene, N-doped graphene, and surface-modified graphene.
[0024] In groups 1, 2, and 4, after the first cycle, the particulate matter may dissolve in the existing electrolyte, contributing to changes in the electrolyte's viscosity, lithium ion conductivity, and lithium diffusion coefficient, ultimately affecting the curvature of the lithium metal surface. In addition, the active voids left after the particulate matter dissipate provide new sites for lithium ion transfer and can increase the lithium ion flux, thus kinetically accelerating lithium ion transfer compared to before. Embodiments of the particulate matter may not be ionically interfering and can therefore be easily selected based on preferred applications. For example, the particles may be polymer materials dissolved in a conventional electrolyte, leading to an increase in the electrolyte's viscosity. If the electrolyte becomes more viscous after the cycle, dead lithium will not grow as it does in the case of a conventional liquid electrolyte. Therefore, preferred particulate matter can control the dynamic rate of dead lithium growth and ultimately improve the battery's cycle life compared to any other lithium metal anode known in the art.
[0025] In group #3, the preferred particulate matter is defined as lithium nitrate (LiNO3) because nitrate ions have a higher decomposition potential (approximately 1.7V vs. Li+) compared to any other carbonate electrolyte. However, nitrates have much lower solubility in any carbonate solution due to their low donor number. Many approaches have been attempted to improve the solubility limitations of polymer electrolytes and the like using nitrate additives. However, prior art has required multiple steps in the process of adding nitrates to electrolytes, limiting their application to any lithium-ion battery. The direct, more preferably indirect, process provided herein is the best way to improve the solubility of lithium nitrate over battery operation and is the most cost-effective process for significantly improving lithium metal anode performance.
[0026] In some embodiments, particulate matter is also 0.1 m 2 It can be characterized as having a surface area exceeding / g and an electrical conductivity exceeding 100 S / cm.
[0027] In one embodiment, the particulate material is a polymer that dissolves in the electrolyte and causes an increase in the viscosity of the electrolyte after activation (i.e., cycling). As the electrolyte becomes more viscous, the rate at which dead lithium layers grow decreases, resulting in a battery with improved cycle life. [Examples]
[0028] The cells were constructed in an argon-filled glove box with a moisture level of less than 0.5 ppm and an oxygen level of less than 0.1 ppm. Coin cells were constructed using a Celgard 2320 separator (three-layer, PP / PE / PP) with 1 M LiPF6 in a mixed solvent of ethylene carbonate / diethyl carbonate (1:2 volume ratio) as the electrolyte.
[0029] Example #1 Two symmetrical battery cells were prepared, one cell having a conventional lithium anode and the other having a lithium metal anode according to the present invention. The cells had a current of 1 mA / cm². 2 The cells were subjected to a continuous stripping / plating cycle lasting 1 hour per cycle. The test was conducted in an electrolyte solution of ethylene carbonate (EC):diethyl carbonate (DEC) [1:2, v:v] in 1M LiPF6. The voltage of each cell was measured during the repeated stripping and plating cycles. The results are plotted in the graph below.
[0030] JPEG0007862003000001.jpg83165
[0031] As can be seen in the graph, the control cell (indicated by the "Li-Li" line) showed greater voltage hysteresis during lithium deposition and dissolution, and exhibited a significantly increased overpotential after 70 hours (35 cycles of stripping and plating). In contrast, the cell composed of the lithium composite anode of the present invention (indicated by the line labeled "LiX-LiX") showed very stable and minimal overpotential up to approximately 130 hours.
[0032] Example #2 Li metal anodes were prepared through the process of the present invention and the resulting compositions. Li metal electrodes defining a thickness of 45 microns were punched out into a disk shape (16 mm in diameter). Li-Li symmetric cells were assembled using CR2032 coin cells, each having two Li metal electrodes. Electrochemical stripping / plating tests of the Li-Li symmetric cells were performed as follows: (1) 0.1 mA / cm² for each 30 minutes during stripping / plating in the first cycle. 2 (2) The 30-minute duration of the second cycle is 0.25 mA / cm². 2 (3) For 30 minutes of the third cycle, the current is 0.5 mA / cm². 2 (4) The 1 hour period from the fourth cycle to the end of the test was 1 mA / cm². 2 The experiment was conducted with (air capacitance: 1 mAh / cm²). The lifetime of the Li-Li symmetric cell was determined as the time it took for the overpotential to increase to 0.2 V.
[0033] Example #3 The tested coin cell was manufactured using a lithium metal electrode, organic liquid electrolyte, and NCA cathode according to the present invention. To prepare the cathode, poly(vinylidene fluoride) (PVDF) as a binder was dissolved in N-methylpyrrolidone, and then Super-P as conductive carbon and LiNi as active material. 0.8 Co 0.15 Al 0.05 O2(NCA) was mixed together. The positive electrode active material, conductive material, and binder had a weight ratio of 94:3:3. The fully mixed slurry solution was coated onto aluminum foil, the cathode electrode was dried under vacuum conditions, and then calendered using a roll press. The cycle performance of the NCA-Li full cell was evaluated in the voltage range of 3.0-4.4V under 1C charge / 1C discharge conditions. The following chart shows the performance at 1 mAh / cm² on bare Li metal as a control anode (comparison criterion) with LiX [in this case, "X" is defined as Ag from one of the above groups] metal anode and via a direct X embedding process. 2 (1 mA / cm² per hour for each stripping and plating process) 2 The galvanostat cycling voltage profile of a Li-Li symmetric cell cycled at ) is shown.
[0034] JPEG0007862003000002.jpg83165
[0035] The lifetimes of the Li-Ag metal anode and bare Li metal are 103 hours and 77 hours, respectively, so the Li-Ag lifetime is improved by approximately 34%. Furthermore, the 1C cycle performance of NCA-Li-Ag and NCA-bare Li cells is shown in the following chart.
[0036] JPEG0007862003000003.jpg83165
[0037] The NCA-LiX(Ag) cell showed a capacity retention ratio (CRR) of 95.7% after 50 cycles. In contrast, the CRR of NCA-bare Li was 91.7% after 50 cycles, meaning that Li-Ag has a CRR value 4 percentage points higher compared to the bare Li (reference) material.
[0038] Example #4 shows the cycling voltage profiles of one or more of the above Li-Li symmetric cells cycled with a Li-X [in this case, "X" is defined as PAN (hereinafter, "P") and LiPF6 (hereinafter, "F") from the above group] metal anode and bare Li metal via a direct X (i.e., P and F) embedding process, as shown in the following chart.
[0039] JPEG0007862003000004.jpg83165
[0040] In this specification, the lifetimes of Li(P) and Li(F) metal anodes and bare Li metal are 87 hours, 101 hours, and 77 hours, respectively, so that the lifetimes of Li(P) and Li(F) are improved by approximately 13% and 31% compared to bare Li. The 1C cycle performance of NCA-LiX(P), NCA-LiX(F), and NCA-bare Li cells is shown in the following chart.
[0041] JPEG0007862003000005.jpg83165
[0042] NCA-LiX(P), NCA-LiX(F), and NCA-Naked Li cells exhibited CRRs of 94.5%, 95.4%, and 91.7% after 50 cycles. NCA-Li(P) and Li(F) cells showed improvements of 2.8% and 3.7% in terms of CRR compared to naked Li.
[0043] Example #5 shows the galvanostat cycling voltage profile of the above Li-Li symmetric cell cycled on bare Li metal via a Li-X [in this case, "X" is defined as LiNO3 (hereinafter "N") from one of the above group] metal anode and a direct X embedding process, as shown in the following chart.
[0044] JPEG0007862003000006.jpg83165
[0045] In this specification, "ND10" is an abbreviation for "LiNO3" - "Direct X-Embedding Process" - "10% LiNO3 during Li-metal stripping". The lifetimes of Li(ND10) and Li(ND5) metal anodes, as well as bare Li metal, are 209 hours, 184 hours, and 77 hours, respectively. Thus, the lifetimes of Li-(P) and Li(F) are improved by approximately 170% and 140% compared to bare Li. The 1C cycle performance of NCA-Li(ND10), NCA-Li(ND5), and NCA-bare Li cells is shown in the following chart.
[0046] JPEG0007862003000007.jpg83165
[0047] The cells exhibited CRRs of 100% (ND10), 98.6% (ND5), and 91.7% (bare Li-reference) after 50 cycles. The CRRs of NCA-Li (ND10) and Li (ND5) cells were improved by 8.3% and 6.9% respectively compared to bare Li.
[0048] Example #6 shows the galvanostat cycling voltage profile of the above Li-Li symmetric cell cycled on a bare Li metal anode via a Li-X [in this case, "X" is defined as LiNO3 (hereinafter, "N") from one of the above group] metal anode and an indirect X embedding process, as shown in the following chart.
[0049] JPEG0007862003000008.jpg83165
[0050] For example, "NS-2M" is an abbreviation for "LiNO3" - "Indirect (Spray) X Embedding Process" - "2 moles of LiNO3 in Solvent (Ethanol)". The lifetimes of LiX(NS-1M) and LiX(NS-2M) metal anodes and bare Li metal are 143 hours, 157 hours, and 77 hours, respectively. Therefore, the lifetimes of LiX(P) and LiX(F) are improved by approximately 86% and 104% compared to bare Li. The following graph shows the 1C cycle performance of NCA-LiX(NS-1M), NCA-LiX(NS-2M), NCA-LiX(NS-4M), and NCA-Bare Li cells.
[0051] JPEG0007862003000009.jpg83165
[0052] The cells exhibited CRRs of 99.8% (NS-1M), 99.0% (NS-2M), 96.3% (NS-4M), and 91.7% (bare lithium-referenced) after 50 cycles. The CRRs of the NCA-Li(NS-1M), NCA-Li(NS-2M), and NCA-Li(NS-4M) cells improved by 8.1, 7.3, and 4.6 percentage points, respectively, compared to bare lithium.
[0053] The embodiments shown and described in the foregoing description are for illustrative and illustrative purposes only and are not intended to limit the scope of the invention in the appended claims.
Claims
1. A method for forming a lithium metal anode for a battery, Adding one or more particulate materials to at least a portion of a lithium metal portion via a solid-state process, wherein the one or more particulate materials are directly applied to the lithium metal portion in a dry form via a dry powder feeder device or as a spray via a spray device. This includes pressing the lithium metal portion and the one or more particulate materials so that the one or more particulate materials are embedded in the entire surface and interior of the lithium metal portion, The one or more particulate matter prevents or eliminates the formation of dendritic crystals, and the one or more particulate matter is at least partially soluble in a non-aqueous electrolyte, The one or more particulate substances are NaNO 3 , CsNO 3 , RbNO 3 , KNO 3 , AgNO 3 , NH 4 NO 3 , Ba(NO 3 ), 2 , Sr(NO 3 ), 2 , Mg(NO 3 ), 2 , Ca(NO 3 ), 2 , Ni(NO 3 ), 2 , Co(NO 3 ), 2 , Mn(NO 3 ), 2 , Al(NO 3 ), 3 , Ce(NO 3 ), 3 , and / or LiNO 3 , a method comprising one or more of these.
2. The method according to claim 1, further comprising the step of passing the lithium metal portion through a nip formed between an upper press roller and a lower press roller to obtain an anode in which one or more particulate materials are dispersed and embedded throughout the anode.
3. The method according to claim 1, wherein the lithium metal portion is selected from a lithium alloy or a lithium metal supported by a polymer substrate.
4. The particulate material has the property of causing a change in the viscosity of the electrolyte after activation. The particulate material has the property of causing a change in ionic conductivity after activation. The particulate matter has the property of causing a change in the lithium diffusion coefficient after activation, and The particulate material has the property of causing a change in surface topography on the surface of the lithium metal after activation. The method according to claim 1, which defines at least one of the following.
5. The method according to claim 1, wherein the one or more particulate materials are selected from the group essentially consisting of polymers, organic materials used in electrolytes and soluble in carbonate and non-carbonate solvents, metallic and nonmetallic lithium affinity materials, and combinations thereof.
6. The method according to claim 1, wherein the one or more particulate matter is defined as a polymer selected from polyacrylonitrile, polyvinylidene fluoride, polyethylene oxide, polyethylene, polypropylene, polyvinyl chloride, polyphthalate, polyimide, polyester, polyurethane, nylon, cellulose, lignin, and polytetrafluoroethylene, and combinations thereof.
7. Regardless of whether the one or more particulate matter is dissolved in the solvent, lithium bis(trifluoromethanesulfonyl)imide (LiTFSI), lithium bis(fluorosulfonyl)imide (LiFSI), lithium hexafluoroarsenate (LiAsF 6 ), lithium hexafluorophosphate (LiPF) 6 ), lithium tetrafluoroborate (LiBF 4 ), lithium perchlorate (LiClO 4 The method according to claim 1, defined as an inorganic compound selected from ), lithium bis(oxalato)borate (LiBOB), lithium (difluorooxalato)borate (LiDFOB), and combinations thereof.
8. The one or more particulate matter is aluminum, silver, gold, zinc, magnesium, silicon, tin, germanium, indium, boron, MnO 2 CO 3 O 4 , SnO 2 SiO 2 ZnO, Al 2 O 3 Li 1.3 Al 0.3 Ti 1.7 (PO 4 ) 3 Li 1.5 Al 0.5 Ge 1.5 (PO 4 ) 3 Li 7 La 3 Zr 2 O 12 Li 0.33 La 0.557 TiO 3 Li 2 O-SiO 2 -TiO 2 -P 2 O 5 The method according to claim 1, further comprising lithium-affinity carbonaceous materials including unstructured carbon materials, graphene, reduced graphene, N-doped graphene, and surface-modified graphene, and combinations thereof.
9. A lithium metal anode for a battery comprising at least a portion of lithium metal and one or more particulate materials, The one or more particulate matter is embedded within and throughout the portion of the lithium metal. The one or more particulate materials prevent or eliminate the formation of dendritic crystals. The one or more particulate matter particles are 100 microns or smaller in size. One or more particulate matter particles are at least partially soluble in a non-aqueous electrolyte, and The one or more particulate matter is NaNO 3 , CsNO 3 , RbNO 3 , KNO 3 AgNO 3 NH 4 NO 3 , Ba (NO 3 ) 2 , Sr(NO 3 ) 2 Mg(NO 3 ) 2 Ca(NO 3 ) 2 Ni (NO 3 ) 2 Co(NO 3 ) 2 , Mn(NO 3 ) 2 , Al (NO 3 ) 3 , Ce (NO 3 ) 3 , and / or LiNO 3 A lithium metal anode containing one or more of the following.
10. The lithium metal anode according to claim 9, wherein the lithium metal portion is selected from a lithium alloy or a lithium metal supported by a polymer substrate.
11. The particulate material has the property of causing a change in the viscosity of the electrolyte after activation. The particulate material has the property of causing a change in ionic conductivity after activation. The particulate matter has the property of causing a change in the lithium diffusion coefficient after activation, and The particulate material has the property of causing a change in surface topography on the surface of the lithium metal after activation. A lithium metal anode according to claim 9, defining at least one of the following.
12. The lithium metal anode according to claim 9, wherein the one or more particulate materials are selected from the group essentially consisting of polymers, organic materials used in electrolytes and soluble in carbonate and non-carbonate solvents, metallic and nonmetallic lithium affinity materials, and combinations thereof.