Lithium-ion batteries with metal foam anodes and cathodes

Metal foam electrodes with controlled pores in lithium-ion batteries address capacity and safety issues by accommodating volume expansion, enhancing energy density and power output while simplifying the manufacturing process.

JP7730151B2Active Publication Date: 2025-08-27CELLMOBILITY INC
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Patent Information

Application Number
JP2021502848
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2018-07-19
Filing Date
2019-07-19
Publication Date
2025-08-27
Estimated Expiration
2039-07-19

AI Technical Summary

Technical Problem

Conventional lithium-ion secondary batteries face limitations in capacity, power output, and operating voltage due to the stress and strain caused by volume expansion during charge-discharge cycles, leading to premature failure and safety issues.

Method used

The use of metal foam electrodes with controlled pores filled with high-capacity active materials, fabricated using methods like spacer and freeze casting, which accommodate volumetric expansion and improve energy density and safety.

Benefits of technology

The metal foam electrodes enhance energy density, power output, and cycle life by effectively managing volume expansion, reducing manufacturing costs, and improving safety compared to traditional sheet-lamination designs.

✦ Generated by Eureka AI based on patent content.

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Abstract

Anode and cathode electrodes for lithium-ion batteries are fabricated using metal foams. Lithium-ion batteries with these metal foam electrodes can have pores coated, filled, or coated and filled with high-capacity active materials for increased energy density, improved safety, improved power output, and extended cycle life. Aluminum (or nickel) and copper metal foam electrodes are fabricated using spacer and freeze casting methods. Anodes can be filled with graphite or silicon slurries, or combinations. Cathodes can be filled with lithium cobalt oxide (or other high-capacity active materials) slurries. These relatively thick metal foam electrodes are attached to cells, separated by separators, and wetted with electrolyte to form high-capacity secondary batteries. These batteries can have higher density, improved power output, and good cycle life.
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This patent application claims the benefit of U.S. Patent Application No. 62 / 700,793, filed July 19, 2018, which is incorporated herein by reference, along with all other prior art documents cited therein.

[0002] The present invention relates to the field of battery technology, and more particularly to the technology of coin cell, pouch, and cylindrical lithium-ion batteries that use integral metal foam conductive components. [Background technology]

[0003] Several different types of secondary batteries are widely used and have been put to practical use as rechargeable electrochemical energy storage systems. Among these secondary batteries, lithium-ion secondary batteries (LIBs) offer the advantage of high performance due to their high power capacity and energy density. The use of lithium-ion secondary batteries is important in portable electronic devices such as mobile phones, laptop computers, digital cameras, and camera-integrated camcorders. Summary of the Invention [Problem to be solved by the invention]

[0004] In addition, lithium-ion secondary batteries are excellent power sources for automobiles, hybrid vehicles, and electric bicycles (e-bikes), and are expected to be effectively used as promising energy storage systems (ESS) in the future.With recent technology trends, a great deal of research and development has been carried out on innovative lithium-ion secondary batteries, aiming to improve their capacity (related to energy density), power output, and operating voltage in all manners and ways.

[0005] Therefore, there is a need for lithium ion secondary batteries with metal foam electrodes that have improved capacity, improved power output, or improved operating voltage, in any combination. [Means for solving the problem]

[0006] Brief Summary of the Invention Lithium-ion batteries have been fabricated using metal foams for the anode and cathode electrodes. Lithium-ion secondary batteries with metal foam anode and cathode electrodes can have pores filled with high-capacity active materials or mixtures of these materials with standard anode (graphite) and cathode (lithium cobalt oxide or LCO) active materials to increase energy density, power output, safety, and cycle life. Aluminum or nickel metal foam cathode and copper anode metal foam are fabricated using spacer and freeze casting methods, and then coated and / or filled with slurries of graphite, tin, or silicon, or a combination (anode), and lithium cobalt oxide (cathode), respectively. These two metal foam electrodes can then be easily attached and separated with a conventional separator to form a high-capacity lithium-ion secondary battery with extended cycle life due to the high-capacity material contained in the pores and its corresponding effective accommodation of volumetric expansion. This new battery design could significantly reduce the cost of the lithium-ion battery manufacturing process and could be a more successful alternative to the traditional sheet-lamination battery process.

[0007] In one implementation, the rechargeable, storage, or secondary battery or cell is a lithium-ion battery device. The storage battery includes a cylindrical, pouch, or disk-shaped "thick" monolithic open-cell metal foam anode, or a combination. The battery includes one or more cathode electrodes. The pores of the anode, cathode, or both are at least partially or entirely filled with one or more active materials that react with lithium. The anode or cathode of the battery can be formed using freeze casting or space retention.

[0008] In one implementation, a battery formation method uses a spacer technique to form a porous metal foam electrode as an anode or cathode. Salt or sodium chloride (NaCl) powder is ground (e.g., hand-ground) or ball-milled in a ceramic mold for about 5 to about 60 minutes until uniformly small (e.g., on the order of hundreds of microns). The ground sodium chloride powder is passed through a sieve (or sieve, strainer, mesh strainer, or filter, etc.) to obtain a powder size ranging from about 40 microns to 100 microns. A metal (e.g., graphite, silicon, tin, or a mixture of graphite and silicon) is mixed or ball-milled with the sieved sodium chloride powder for about 5 to about 60 minutes.

[0009] The metal and sodium chloride powder mixture is pressed under a pressure of about 10-100 MPa for about 1 minute to about 30 minutes using a room temperature press. The pressed metal and sodium chloride powder mixture is sintered at about 400-650 degrees Celsius for about 30 minutes to several hours (e.g., 2-3 hours, 3-4 hours, 3-4 hours, or 3-6 hours) in a nitrogen, vacuum, or argon atmosphere, or a combination. The sodium chloride powder is removed by dissolving it in water or another salt dissolving solution using an ultrasonic device for about 10 minutes to several hours (e.g., 2-3 hours, 3-4 hours, 3-4 hours, or 3-6 hours), resulting in tightly controlled pores in the metal foam.

[0010] In one implementation, a battery is assembled using metal foam as both the anode and cathode electrodes. The metal foam is fabricated by freeze casting or spacer techniques. The fabricated metal foam anode and cathode electrodes are wetted with electrolyte and assembled into a cylinder, disk, or coin shape and separated by a separator.

[0011] Other objects, features, and advantages of the present invention will become apparent from a consideration of the following detailed description and the accompanying drawings, in which like reference characters represent like features throughout the drawings. [Brief explanation of the drawings]

[0012] [Figure 1] 1 shows a schematic diagram of a conventional lithium-ion battery anode and cathode manufacturing process (multilayer stacking process). [Figure 2A] 1 shows a scanning electron micrograph of a high capacity anode material. [Figure 2B] 1 shows a scanning electron micrograph of a high capacity anode material. [Figure 2C] 1 shows a scanning electron micrograph of a high capacity anode material. [Figure 3] FIG. 1 shows a schematic diagram of a new and improved lithium-ion battery manufacturing process using metal foam anode and cathode electrodes. [Figure 4A] Various examples of lithium-ion battery cells using "one-piece" copper foam anodes and aluminum (nickel) foam cathodes are shown. [Figure 4B] Various examples of lithium-ion battery cells using "one-piece" copper foam anodes and aluminum (nickel) foam cathodes are shown. [Figure 4C] Various examples of lithium-ion battery cells using "one-piece" copper foam anodes and aluminum (nickel) foam cathodes are shown. [Figure 5A] 1 shows an optical microscope photograph of an example current collector (cathode) made with a spacer technique using ball-milled and sieved sodium nitride as a spacer to create controlled pores. [Figure 5B] 1 shows an optical microscope photograph of an example current collector (cathode) made with a spacer technique using ball-milled and sieved sodium nitride as a spacer to create controlled pores. [Figure 5C]1 shows an optical microscope photograph of an example current collector (cathode) made with a spacer technique using ball-milled and sieved sodium nitride as a spacer to create controlled pores. [Figure 6] A schematic diagram of the space maintainer method is shown. [Figure 7] 1 shows an optical micrograph of a copper foam current collector (anode) fabricated by freeze casting technique to create controlled pores. [Figure 8] Optical micrographs of an aluminum foam cathode before (right) and after (left) loading with lithium cobalt oxide (LCO) active material are shown. [Figure 9] 1 shows a comparison of the schematics of a conventional cylindrical lithium ion battery and an improved metal foam based cylindrical lithium ion battery. DETAILED DESCRIPTION OF THE INVENTION

[0013] Figure 1 shows a schematic diagram of a conventional lithium-ion battery anode and cathode manufacturing process (multilayer stacking process). This lithium-ion battery design is based on two-dimensional copper and aluminum foil current collectors and active coatings.

[0014] Figures 2A-2C show scanning electron micrographs of a high-capacity anode material (tin) before (left, Figure 2A) and after (center, Figure 2B, and right, Figure 2C) several charge-discharge cycles. During the charge-discharge cycling process, a large volume expansion occurs, and when used in the form of a conventional two-dimensional sheet electrode, the stress caused by this large volume expansion causes the high-capacity material to crack and fail after a few cycles.

[0015] Figure 3 shows a schematic diagram of a new and improved lithium-ion battery manufacturing process based on metal foam anode and cathode electrodes. It is noteworthy that this process is not based on the conventional "multi-layer sheet lamination" process, but on "thick" monolithic metal foam anodes and cathodes filled with active material. Another point to note is that this metal foam electrode design can withstand greater volume expansion than conventional electrode designs, so high-capacity active materials should be selected as the active materials.

[0016] 4A-4C show schematic diagrams of lithium-ion battery cells using "all-in-one" copper foam anodes and Al (or Ni) foam cathodes: (4A) a standard 2032 coin cell, (4B) a standard 3 cm x 4 cm pouch cell, and (4C) a standard 18650 cylindrical cell. It is noteworthy that a combination of a copper foam anode and an aluminum foil cathode (based on conventional methods) is also possible.

[0017] Figure 5A (cylindrical sample) and Figure 5B (disc) show optical micrographs of aluminum foam current collectors (cathodes) fabricated using the spacer technique, which uses ball-milled and sieved sodium nitride as a spacer to create controlled pores. Figure 5C (3 cm x 4 cm pouch sample) shows an optical micrograph of a nickel foam current collector (cathode) fabricated using the same method, but with ball-milled and sieved sodium nitride to precisely control the pore size between about 70 microns and about 130 microns.

[0018] Figure 6 shows a schematic diagram of the spacer method. It is noteworthy that the spacer method can be applied to the fabrication of anode and cathode electrodes made of copper, nickel, and aluminum foams. In particular, this spacer technique is a method for creating controlled pores (tens of microns) and filling these pores with active materials. To obtain controlled pore sizes, sodium nitride was subjected to ball milling and sieving, so that the size of the appropriate sodium nitride powder could be tens of microns.

[0019] Figure 7 shows an optical micrograph of a copper foam current collector (anode) fabricated by freeze-casting to create controlled pores. It is noteworthy that this freeze-casting technique is a method for creating random or elongated pores (controlled pore size, tens of microns). The elongated pore structure is favorable for easy loading of active materials.

[0020] Figure 8 shows optical micrographs of an aluminum foam cathode before (right) and after (left) loading with lithium cobalt oxide (LCO) active material. The LCO active material was first mixed with water, binder, and conductive material to form a slurry, which was then loaded into the pores of the aluminum foam.

[0021] Figure 9 shows a schematic comparison between a conventional cylindrical lithium-ion battery and an improved cylindrical lithium-ion battery based on metal foam. It is noteworthy that in this battery design, the high-capacity material filled into the pores of the anode and cathode of the metal foam can be better sustained, providing improved energy density and safety, as well as extended battery cycle life.

[0022] This patent describes the use of metal foams for electrodes of lithium ion secondary batteries, methods for preparing them, methods for coating and filling them with active material, and lithium ion secondary batteries including anodes and cathodes of the metal foams. In specific embodiments, the technology developed by this application relates to metal foams for use in electrodes of lithium ion secondary batteries, whose surfaces and inner pore walls are coated or filled or coated and filled with active material (particularly high-capacity active material), methods for producing such metal foams, methods for completely filling the pores of such metal foams with high-capacity active material, and lithium ion secondary batteries including the metal foams as both the anode and the cathode.

[0023] This patent describes a solution to overcome the limitations described above. One of the objectives is to provide a metal foam and its three-dimensional structure for newly designed anode and cathode electrodes of lithium-ion batteries that exhibit excellent capacity, safety, and cycling characteristics and significantly improved charge-discharge efficiency. Here, the assembly of the metal foam anode and cathode is not based on the conventional "sheet lamination" process of stacking thin layers of anode and cathode materials and their current collector foils, but on "thick" anode and cathode electrodes with three-dimensionally interconnected pores (see, for example, Figure 3). Here, the integrated thick anode and cathode electrodes are attached to each other, separated by a conventional separator, to form a standard coin cell ( Figure 4A ), pouch cell ( Figure 4B ), or cylindrical cell ( Figure 4C ). However, because anode active materials are typically available with significantly higher capacities than cathode active materials, one anode and two cathodes can also be assembled. It is also emphasized that there is no limitation to stacking additional anode and cathode electrodes on top of each other if necessary to increase the overall energy density of the cell. Furthermore, various methods and structures are described, including methods for preparing electrodes having such metal foam structures, methods for loading such metal foam electrodes with active materials to improve capacity and safety, and new designs for lithium-ion batteries that include metal foams as both the anode and cathode.

[0024] A useful feature of metal foams is their ability to coat, fill, or coat and fill the spaces between the anode and cathode metal foam materials. While traditional two-dimensional designs significantly limit the availability of high-capacity active materials, the aforementioned advantages of avoiding traditional sheet lamination processes can significantly simplify battery designs. Because metal foams can adequately accommodate stresses due to volume expansion, loss of active material due to delamination or degradation over multiple operating cycles can be minimized. While any manufacturing technique can be used for metal foam electrodes, tightly controlled pore size (preferably less than a few hundred microns) is important. Among many other open-cell metal foam processing techniques, spacer and freeze-casting techniques offer favorable results because they offer inexpensive and easy processing routes, large sample sizes, and excellent mass-production characteristics. The selection of a preferred processing method also depends on the amount and size of pores required for the active material filling process of the metal foam electrode, as well as the capacity and safety design of the electrode for the selected application.

[0025] This patent describes the use of metal foams as electrodes in lithium-ion secondary batteries, methods for manufacturing open-pore metal foams, methods for preparing them, methods for filling the precisely controlled pores with active materials, and methods for assembling lithium-ion secondary batteries containing metal foam anode and cathode electrodes. In one embodiment, the technology developed herein relates to a metal foam having a thickness suitable for use as an electrode in a lithium-ion secondary battery, fabricated using a spacer technique (e.g., Figures 5A, 5B, and 6) or freeze casting (e.g., Figure 7), with its pores completely filled with high-capacity active materials [e.g., Figure 8 (right: before filling, left: after filling)] (including such a metal foam and a method for assembling a lithium-ion secondary battery containing the metal foam as both the anode and cathode of a standard 18650 cylindrical cell (e.g., Figure 9)).

[0026] In one implementation, a metal foam for anode and cathode electrodes of a lithium-ion secondary battery is provided, which includes a regularly spaced pore structure capable of containing high-capacity active materials (e.g., silicon, tin, and transition metal oxides) on the surface and within the pores of the metal foam. The metal foam anode and cathode are then attached to each other while separated by a conventional separator, wetted with a conventional electrolyte, encased, and electrically connected (similar to conventional coin ( FIG. 4A ), pouch ( FIG. 4B ), and cylindrical battery cell designs ( FIGS. 4A and 9 )). Thus, this new battery design based on metal foam anodes and cathodes can accommodate the stresses and strains that occur during volumetric expansion of high-capacity active materials during lithium-ion charging, leading to improved safety, increased capacity, excellent cycling characteristics, and significantly improved charge and / or discharge efficiencies.

[0027] Because the significantly improved performance of lithium-ion secondary batteries generally stems from improvements in the microstructural design and physical and / or chemical characteristics of the cathode and anode, new concepts in electrode design are urgently needed. Conventional cathode and anode material designs are fabricated using the following "multilayer" process:

[0028] First, the active material, conductive material, binder, and possibly some other minor materials are mixed to prepare a slurry, which is then applied to a metal current collector in the form of a thin film, followed by drying and pressing at room temperature.

[0029] 1 is typically less than 100 microns thick. However, single-layer electrodes are rarely or never used in practical battery devices due to their insufficient capacity; instead, many layers are stacked together (multilayer design) to maximize capacity and energy density. This "two-dimensional" cathode and anode electrode design is a traditional core technology in the lithium-ion battery industry, which has imposed significant constraints on further significant improvement.

[0030] In this case, the current collector plays an important role as both an electron acceptor and donor and also as an electrode support. Therefore, to improve electrode performance by making electron donation as efficient as possible, it is highly desirable to use a new three-dimensional metal foam electrode design to increase the contact area between the metal current collector and the active material and minimize the contact resistance.

[0031] Several attempts have been reported regarding the use of three-dimensional metal foam electrode designs in the battery industry. However, to achieve adequate capacity, cycling stability, and power output in practical battery devices, it is important to use metal foam electrodes containing uniformly distributed micropores (pore sizes typically less than a few hundred microns, but ideally tens of microns).

[0032] In conventional electrode designs, the two-dimensional current collector film and active material coating can cause significant volume expansion during the charge-discharge cycling process, which can lead to problems with the coating materials (graphite anode active material and lithium oxide cathode active material) peeling off from the current collector, especially when high-capacity anode and cathode active materials are used.

[0033] In other words, during actual charge-discharge cycling, stresses caused by volume expansion (higher capacity leads to greater volume expansion, e.g., up to 300 percent for silicon) can cause degradation and delamination of two-dimensional sheet-based coating materials, resulting in premature cycle failure (e.g., Figure 2). The degradation and delamination of high-capacity anode and cathode active materials (e.g., graphite anodes containing tin or silicon) can lead to short circuits and safety issues. A solution to overcome these limitations is presented. Porous metal foams containing sufficiently small, uniformly distributed pores (tens of microns in size) based on a three-dimensional interconnected design are used as innovative electrodes filled with high-capacity materials such as tin and silicon, which can accommodate the stresses and strains generated during charge and / or discharge cycles, providing safer batteries.

[0034] Means to solve the problem The battery technology of this patent offers the following advantages: It provides innovative new battery designs with simpler manufacturing processes than traditional two-dimensional "sheet" lamination processes, improved safety, increased capacity, and longer cycle life; it uses three-dimensional "thick" metal foams with controlled open pores (rather than traditional "thin" foil electrodes) for the anode and cathode of lithium-ion secondary batteries, where high-capacity active materials in the form of powder slurries are coated on the surface and / or filled into the pores; it allows any processing method for producing porous metal foams with pore sizes ranging from tens of microns to a few hundred microns, taking into account typical slurry particle sizes and diffusion distances within the pores; and it is highly attractive to use space-retaining materials (e.g., Figure 5) and ice-templating (e.g., Figure 6) because of their superior mass-productivity and ability to control pore size at a microscale.

[0035] An innovative method for preparing a metal foam for use as an anode and cathode electrode in a lithium-ion secondary battery is described, where all of the surfaces and internal pores are coated, filled, or coated and filled with a high-capacity active material (e.g., graphite and silicon powder slurry for the anode electrode). One embodiment of the method includes a process of filling the metal foam with the active material.

[0036] Lithium-ion secondary batteries are described that include metal foams as electrodes (both anode and cathode). Examples of metal foams used herein include copper foam (e.g., FIG. 7) for the anode and aluminum (e.g., FIGS. 5A and 5B) or nickel (e.g., FIG. 5C) foam for the cathode. These foams have regularly spaced open pores on the order of several hundred microns, which can be fabricated by any open-cell metal foam fabrication process, including spacer and freeze casting.

[0037] The impact of new battery electrode design techniques A metal foam for use as an anode and cathode electrode in an innovative and simple lithium-ion secondary battery design is provided, which includes a porous structure capable of containing high-capacity active materials when the pores of the metal foam are filled. The three-dimensional structure of the metal foam, with its sufficiently small pore size (on the order of tens of microns), significantly increases the contact area between the current collector and the active material compared to the two-dimensionally coated metal foils traditionally used as current collectors. Furthermore, this three-dimensional metal foam current collector design can withstand the large volume expansion that occurs during the charge and / or discharge process of a lithium-ion battery, thereby leading to increased energy density, excellent cycling characteristics, and significantly improved charge and / or discharge efficiency.

[0038] Lithium-ion batteries with three-dimensional metal foam anode and cathode electrodes (on the order of hundreds to thousands of microns) are believed to have insufficiently small pore sizes. If the pore sizes were not small enough, the material would not be usable in high-performance lithium-ion batteries, where the diffusion distance from the pore center to the metal foam current collector would be too long. However, the three-dimensional metal foam anode and cathode electrodes obtained by the techniques described herein have small pores ranging in size from tens to a few hundred microns. With proper coating and filling, the capacity, power output, and cycling stability of lithium-ion batteries can be significantly improved.

[0039] In one implementation, metal foam cylinders (e.g., FIGS. 4A, 4C, and 5A), disks (e.g., FIG. 5B), and pouches (e.g., FIGS. 4B and 5C) with appropriate thicknesses (approximately 0.2 to 50 millimeters) for use as anode and cathode electrodes in lithium-ion secondary batteries have been successfully fabricated using spacers or freeze-casting techniques with appropriate ranges of porosity (70 to 90 percent) and filled with high-capacity active materials (e.g., silicon-doped graphite powder). It is noteworthy that even the 0.2 millimeter thickness of a "thick" metal foam electrode is significantly thicker than the typical thickness (approximately 0.05 millimeters) of conventional foil electrodes coated with active materials. By attaching the metal foam anodes and cathodes all together (but separated by a separator and wetted with electrolyte, as in conventional batteries), a lithium-ion secondary battery is formed that can offer high capacity, high power, improved safety, and extended cycle life, unlike conventional lithium-ion batteries with their two-dimensional sheet stack design that typically suffer premature failure due to the use of high-capacity active materials.

[0040] One implementation includes a method for loading an active material that can intercalate and deintercalate lithium ions, or store and separate lithium ions through alloying or conversion reactions. The active material can be a cathode or anode active material with a particle size of about 10 microns or less. The cathode active material should be a compound that can reversibly intercalate or deintercalate lithium. The cathode active material is not particularly limited as long as it can be used in the cathode of a lithium ion secondary battery. For example, the cathode active material can be LCO (LiCoO), LMO (LiMnO), LMO (LiMn 24 LiFeO4), LFP (LiFePO4), OLO (Li2MnO·LiMO2), and LiNi 1 / 3 Co 1 / 3 Mn 1 / 3The anode active material may be an NCM-based material, such as O2. Furthermore, the anode active material should include a material capable of reversibly intercalating or deintercalating lithium and be anode active material known in the art for use in lithium-ion secondary battery anodes. The anode active material is not particularly limited and can be selected from the following group of materials: low-crystalline carbon-based materials, including artificial graphite, natural graphite, soft carbon, and hard carbon; metal alloys, including metal (Sn, Si) or Si-Li-based alloys, In-Li-based alloys, Sb-Li-based alloys, Ge-Li-based alloys, Bi-Li-based alloys, and Ga-Li-based alloys; and oxide-based materials, including SnO2, Co3O4, CuO, NiO, and Fe3O4. For example, graphite slurry with added silicon or tin powder can be filled into the pores of a copper foam anode.

[0041] One implementation provides a new lithium-ion battery design based on anode and cathode electrodes made of metal foam filled with active materials (especially high-capacity active materials). When the metal foam structure serves as a current collector, it can provide electrons as a reaction medium or store electrons generated by an electrochemical reaction, thereby transporting the electrons to an external circuit. Materials that can be used to manufacture the metal foam include, but are not limited to, aluminum, nickel, nickel-copper alloys, copper, gold, titanium, stainless steel (SUS), or alloys thereof. It is desirable to fabricate the anode current collector from copper or nickel foam and the cathode current collector from aluminum or nickel foam primarily because of their high electrical conductivity, ease of fabrication, and suitable electrochemical potential.

[0042] The manufacturing process of porous metal foams is not limited to one method and can be carried out by various metal foam processing methods such as powder sintering, spacer method, freeze casting, dealloying, electroplating, electroless plating, or chemical vapor deposition, etc. However, in this invention, techniques including spacer method and freeze casting are emphasized because they can produce pores in a suitably small range (tens of microns to a few hundred microns) and are easy to mass-produce.

[0043] The space-maintaining material technique (see, for example, Figures 5A-5C) involves mixing a space-maintaining material with a metal powder and finally removing the space-maintaining material to obtain pore spaces. It is important that the space-maintaining material powder is in an appropriate size range, preferably from several tens of microns to a few hundred microns, for example, by ball milling and sieving. For example, a mixture of prepared salt powder (salt particles crushed to a uniformly small size) and metal powder, which has been subjected to ball milling or sieving and then pressed, is subjected to heat or chemical treatment, after which the salt powder simply serves as a space-maintaining material and can be washed and removed in a later stage. Before removing the salt powder, the pressed mixture of metal and salt powder is subjected to high-temperature sintering (see, for example, Figure 6). Additionally, polymer particles or low-melting-point metals such as tin, magnesium, or zinc can also be used as space-maintaining materials, as they can be melted and removed.

[0044] The freeze casting technique (e.g., Figure 7) involves the following steps: First, a metal powder is mixed with water and a binder (and optionally, a dispersant) to form a slurry. A copper rod is then immersed in liquid nitrogen to control the temperature at the rod. A mold is created on the copper rod by wrapping polytetrafluoroethene (PTFE) (e.g., Teflon®) or vinyl over the copper rod, and the slurry is then poured into it. Once the powder slurry freezes between the ice dendrites, a freeze-drying device can be used to dry the ice below its freezing point. A green foam structure can then be formed in the spaces previously filled by the ice dendrites. The use of liquid nitrogen in the cooling process using the metal rod increases the cooling rate, resulting in relatively small pores with diameters on the order of tens to several hundred microns. Several parameters that can affect the outcome of this process include the size of the metal powder, the type of binder, and the heat treatment temperature. By sintering the porous matrix at high temperatures, a three-dimensionally structured metal foam can be formed. One advantage of using freeze casting is that it can result in a directional porous structure where the filling of the active material slurry into the pores can be more effective.

[0045] Various aspects of the implementation of the space maintainer method. As an example of how to fabricate a lithium ion secondary battery having a metal foam as both the anode and cathode electrodes, the following spacer process can be used (eg, FIG. 6).

[0046] (a) Commercially available sodium chloride powder (e.g., salt) is hand-milled in a mold for approximately 20-30 minutes, and then sieved to a uniformly small particle size (on the order of several tens to several hundred microns) (preferably about 30 microns to 100 microns, taking into account the particle size of the active material and the diffusion distance within the pores of the metal foam).

[0047] (b) Mix and ball mill the aluminum with sieved sodium chloride powder for approximately 30 minutes.

[0048] (c) The mixture of Al powder and sodium chloride powder is pressed for approximately 30 minutes using a room temperature press.

[0049] (d) The pressed mixture of metal and sodium chloride powders is then sintered in a nitrogen atmosphere at about 600-650 degrees Celsius for several hours.

[0050] (e) Finally, sodium chloride powder is dissolved in water and removed using an ultrasonic device, creating regulated and controlled pores in the aluminum foam.

[0051] A method for preparing a metal foam having all of its internal pores filled with an active material for use as an electrode in a lithium-ion secondary battery is provided, the method comprising a process for coating and / or filling the pores of the metal foam with an active material.

[0052] The pores in the metal foam anode and cathode electrodes can be filled by a gravity-feed process, in which a slurry of active material powder (e.g., graphite slurry with added high-capacity silicon powder) is dropped onto the metal foam anode. The slurry is then slowly infiltrated into the pores of the metal foam by gravity and allowed to dry once completely filled. This process can be repeated until completely filled. It is important that the surface of the metal foam has open pores. Furthermore, prior to gravity-feeding the slurry, the metal foam electrode can be wetted with water or coated with an active material to reduce the surface tension of the metal foam. The gravity-feed process can be performed at a temperature higher than room temperature to reduce the viscosity of the slurry and allow the slurry to more easily penetrate the pores. A vacuum device can also be applied to the bottom of the metal foam electrode to better fill the pores with the active material slurry. During the vacuum process, the pores of the evacuated metal foam electrode are filled with the slurry. This process can be repeated until completely filled.

[0053] The lithium ion secondary battery includes a metal foam for use as both an anode electrode and a cathode electrode, with some or all of the internal pores of the metal foam coated or filled or coated and filled with an active material, as described above.

[0054] A lithium-ion secondary battery includes a cathode, an anode, a separator membrane, and an electrolyte. The cathode and anode electrodes are characterized by being composed of a metal foam electrode whose pores are partially or entirely coated, filled, or both coated and filled with an active material, and a current collector of the battery electrode system (see, for example, FIG. 3). Prior to filling the pores with the active material, some or all of the pores may be coated with a metal oxide or metal active material (e.g., tin) to further increase the energy density of the metal foam electrode, but the coating process is optional (see, for example, FIG. 3).

[0055] Furthermore, in one implementation, a lithium-ion secondary battery includes a metal foam cathode (e.g., aluminum or nickel foam), a metal foam anode (e.g., copper or nickel foam), an electrolyte, and a separator membrane. Here, the electrolyte and separator are not part of or made of the metal foam electrode, and can be manufactured by conventional methods and compositions known in the art without particular limitation. The polymer used in the separator membrane is a porous film based on polyolefin, including polyethylene and polypropylene. The organic solvent is selected from the group consisting of one or more of the following: propylene carbonate (PC), ethylene carbonate (EC), dimethyl carbonate (DMC), ethyl methyl carbonate (EMC), butylene carbonate, benzonitrile, acetonitrile, tetrahydrofuran, 2-methyltetrahydrofuran, dioxolane, 4-methyldioxolane, N-dimethylformamide, dimethylamidoacetonitrile, dimethyl sulfoxide, dioxane, 1,2-dimethoxyethane, sulfolane, dichloroethane, chlorobenzene, nitrobenzene, diethyl carbonate, methyl propyl carbonate, methyl isopropyl carbonate, ethyl butyl carbonate, dipropyl carbonate, diisopropyl carbonate, dibutyl carbonate, diethylene glycol, dimethyl ether.

[0056] Examples of lithium salts are LiPF, LiCFSO, Li(CFSO), LiBF, LiClO, and LiN(SOCF). Solid polymer electrolytes are composed of lithium salts dissolved in one or more of the solvents described above. Solid electrolytes are made of polymers with relatively high ionic conductivity for lithium ions, such as polyethylene oxide, polypropylene oxide, or polyethyleneimine, which are impregnated with an electrolyte solution to obtain a gel-like electrolyte. As with the two-dimensional electrodes and foil current collectors of conventional lithium-ion batteries, conventional materials can be used for the anode and cathode active materials, conductive materials, or binders of the present invention, along with the metal foam cathode and anode electrodes of the present invention.

[0057] Lithium-ion secondary batteries can have various shapes, such as cylinders, disks, squares, coins, and pouches, depending on the application of the present invention. It is emphasized that, regardless of shape, both the metal foam anode and cathode are preferably monolithic metal foam current collectors with appropriate thickness and internal pores filled with active material, unlike traditional sheet-laminate two-dimensional designs. However, if necessary, monolithic metal foam anodes and two-piece metal foam cathodes can also be used to balance the capacity of the anode and cathode. For example, two cathode metal foams can be attached to both sides of a monolithic anode metal foam to improve capacity balance and electrochemical reaction.

[0058] While example embodiments have been described in some detail, such descriptions and embodiments are not intended to limit the scope of the claimed invention. For example, the spacer technology described in FIG. Figure 7 The method can also be applied to the production of copper foam (or nickel foam) made using freeze casting.

[0059] Embodiment 1 Figures 5A and 5B show micrographs of an aluminum foam current collector (cathode), and Figure 5C shows a micrograph of a nickel foam current collector (cathode), both of which were fabricated using the spacer technique. As shown in Figure 6, commercially available salt powder was hand-milled in an alumina mold for approximately 20 minutes to obtain uniformly small sodium chloride powder (on the order of tens to hundreds of microns), which was then sieved to obtain a strictly controlled size range (preferably 30 to 100 microns). Next, the commercially available aluminum and the sieved sodium chloride powder were mixed and / or ball-milled in a Spex mill for approximately 30 minutes. The aluminum and sodium chloride powder mixture was then compressed for approximately 10 minutes using a room-temperature press. The compressed aluminum and sodium chloride powder mixture was then sintered at approximately 650 degrees Celsius for several hours under a nitrogen atmosphere. Finally, the sodium chloride powder was dissolved in water and removed using an ultrasonic device, resulting in a tailored pore structure in which pores of controlled size were three-dimensionally connected within the aluminum foam.

[0060] Embodiment 2 Figure 6 shows an optical micrograph of a copper foam current collector (anode) fabricated using a freeze-casting technique to create controlled pores on the order of a few microns to several tens of microns. It is noteworthy that this freeze-casting technique allows for the creation of smaller, elongated pores (a few microns to several tens of microns), which may increase the contact area with the electrolyte and improve electrochemical reactions. The pores can be easily filled with slurry active material using a gravity feed method (e.g., Figure 8). However, for smaller pore sizes, a vacuum device may be required to improve the pore filling process. U.S. Patent Application No. 13 / 930,887 describes the freeze-casting technique and is incorporated herein by reference. This process is a simple, low-cost fabrication method suitable for creating large-scale porous structures. However, the manufacturing process for porous metal foams is not limited to freeze-casting.

[0061] For example, a copper powder slurry consisting of approximately 13.7 volume percent copper oxide powder and approximately 2.5 weight percent polyvinyl alcohol (PVA) binder is prepared using 30 milliliters of deionized water. The slurry is dissolved into a solution using stirring and sonication. The slurry is then poured into a fluoropolymer resin or Teflon mold placed on a cooled copper rod. The temperature of the top of the copper rod is fixed at approximately -10 to -50 degrees Celsius using liquid nitrogen and maintained using a temperature controller. Teflon is a synthetic fluorine-containing resin or fluoropolymer resin. Teflon is a trademark of Chemours Company FC, LLC. After the slurry is completely frozen, it is sublimated in a vacuum freeze dryer at approximately -88 degrees Celsius for approximately 40 hours to remove the ice crystals, resulting in a green body with directional pores. The green foam is then reduced from copper oxide to pure copper in a hydrogen atmosphere, followed by sintering at a higher temperature. The reduction and sintering process involves pre-sintering at about 250 degrees Celsius for 4 hours, followed by actual sintering in a tube furnace at about 800 degrees Celsius for about 10-20 hours in a gas mixture containing 5 percent hydrogen.

[0062] Embodiment 3 Figure 8 shows an aluminum foam cathode successfully filled with lithium cobalt oxide (LCO) powder slurry. First, the LCO active material slurry is mixed with water and a binder (along with some carbon black, if necessary) to form a slurry of appropriate viscosity. This is then placed on top of the aluminum foam and gravity-fed into the pores of the aluminum foam over a period of 2-3 minutes; the process can then be repeated if necessary.

[0063] The resulting copper and aluminum foam electrodes can be used in lithium-ion batteries in cylinders, discs, pouches, coins, or other shapes or forms, and offer improved energy density, increased power output, improved safety, and superior cycling characteristics compared to conventionally fabricated copper and aluminum foil-based electrodes. This is especially true when these foam-structured electrodes are loaded with high-capacity active materials such as tin and silicon. In conventional lithium-ion battery designs, repeated charge-discharge cycles can cause repeated volume expansion and contraction of the high-capacity active materials, resulting in increased stress and strain in the electrode and premature failure. In this new lithium-ion battery design, the copper and aluminum (or nickel) foam current collector, containing the high-capacity active materials within its pores, can accommodate the volume change and associated stress to some extent. Furthermore, a high-capacity coating, such as a transition metal oxide or tin, can be applied to the metal foam electrode prior to loading with the active material. The use of metal foams as electrodes and current collectors can also minimize interfacial resistance between the foam and the active material due to the foam's inherent ability to accommodate stress and strain through its regularly spaced porous structure.

[0064] In one implementation, a lithium-ion secondary battery device includes at least one anode and cathode electrode of a cylindrical, pouch, or disk-shaped "thick" monolithic open-cell metal foam, the pores of which are filled at least partially or entirely with one or more active materials that react with lithium.

[0065] The coin cells may include a monolithic metal foam anode and a monolithic metal foam cathode separated by a conventional separator and wetted with a conventional liquid electrolyte. The coin cells may each include a monolithic metal foam anode (or cathode) and a conventional foil cathode (or anode).

[0066] The cylindrical or disc cells may include a monolithic metal foam anode and a monolithic metal foam cathode separated by a conventional separator and wetted with a conventional liquid electrolyte. The cylindrical or disc cells may include a monolithic metal foam anode (or cathode) and a conventional foil cathode (or anode), respectively.

[0067] The pouch cell may include a monolithic metal foam anode and a monolithic metal foam cathode separated by a conventional separator and wetted with a conventional liquid electrolyte. capacity A relatively large pouch cell may include a one-piece metal foam anode and a two-piece metal foam cathode attached to the one-piece metal foam anode on both sides. The pouch cell may include a one-piece metal foam anode (or cathode) and a conventional foil cathode (or anode), respectively.

[0068] The metal foam anode may be at least one of copper, titanium, iron, magnesium, tin, or nickel foam, and the metal foam cathode may be at least one of aluminum, stainless steel, or nickel foam. The active material may be a high-capacity anode active material including at least one or a combination of silicon, tin, or a mixture of graphite and silicon. The cathode active material is selected from the group consisting of LCO (LiCoO), LMO (LiMnO), LMO (LiMnO), LFP (LiFePO), NCM (Li(NiCoMn)O), NCA (Li(NiCoAl)O), and OLO (LiMnO.LiMO).

[0069] The anode active material may include graphite-based materials, metal-based materials, or oxide-based materials, or combinations, and is selected from the group consisting of artificial graphite, natural graphite, soft carbon, hard carbon, Sn, Si, and Si-Li-based alloys, In-Li-based alloys, Sb-Li-based alloys, Ge-Li-based alloys, Bi-Li-based alloys, Ga-Li-based alloys, and oxide-based materials including SnO2, Co3O4, CuO, NiO, and Fe3O4.

[0070] The manufacturing process for forming the porous metal foam electrode can include freeze casting with controlled pore size between about 10 microns and about 150 microns.

[0071] In one implementation, a manufacturing process for forming a porous metal foam electrode includes at least one of grinding or ball milling sodium chloride powder in a ceramic mold for about 5 minutes to about 60 minutes until it is uniformly small (on the order of hundreds of microns), sieving the ground sodium chloride powder to a powder size in the range of 40 microns to 100 microns, and mixing or ball milling the metal and the sieved sodium chloride powder for about 5 minutes to about 60 minutes. The space-retaining material method includes the steps of: pressing a mixture of thorium powder under a pressure of about 10 to 100 megapascals for about 1 minute to about 30 minutes using a room temperature press; sintering the pressed mixture of metal and sodium chloride powder at about 400 to 650 degrees Celsius for about 30 minutes to several hours in at least one of a nitrogen, vacuum, or argon atmosphere; and using an ultrasonic device to dissolve and remove the sodium chloride powder in water or any other salt dissolving solution for about 10 minutes to several hours, thereby obtaining tightly controlled pores in the metal foam.

[0072] The active material can include a slurry of graphite powder mixed with water, a binder, and a high-capacity active material powder, such as tin and silicon (the weight percent of the high-capacity material ranges from about 0 percent to about 100 percent). The composition and viscosity of the slurry can be adjusted to best suit a gravity-fed or vacuum-drawn process. The active material slurry can be placed on top of the metal foam electrode and slowly gravity-fed into the pores of the metal foam.

[0073] This gravity feed filling method may be assisted by a vacuum device from the bottom of the metal foam electrode, and this process may be repeated along with the drying process until filling is complete.

[0074] In one implementation, a lithium-ion secondary battery device is assembled using metal foam as both the anode and cathode electrodes, where the metal foam is fabricated by freeze casting or by using a spacer. The fabricated metal foam anode and cathode electrodes can be wetted with an electrolyte, combined into a cylindrical, disc, or coin shape, and separated by a separator. Conventional materials can be used for the electrolyte and separator, as previously described. The size of the metal foam anode and cathode electrodes can be appropriately varied depending on the specific application of the lithium-ion secondary battery and the relative capacities of the anode and cathode active materials used. For example, if graphite is used for the anode and lithium cobalt oxide is used for the cathode, the cathode active material should be used in approximately twice the amount of the anode active material because its capacity per weight is approximately half that of the anode active material. Therefore, the height of the cathode metal foam electrode container (e.g., a cylinder) should be twice the height of the anode metal foam electrode container. Of particular note is that the ability to achieve small pore sizes of 30 microns to 150 microns in the metal foam electrode is crucial for maintaining an effective diffusion distance of lithium ions within the metal foam pores to the metal foam current collector, thereby enabling high capacity and power to be sustained during cycling.

[0075] While the present invention has been described for purposes of illustration and description, it is not intended to be exhaustive or to limit the invention to the precise form set forth above, as many modifications and variations are possible in light of the above teachings. The embodiments have been selected and described in order to best explain the principles of the invention and its practical application. This description will enable those skilled in the art to best utilize and practice the invention in various embodiments or with various modifications suited to particular applications. The scope of the invention is defined by the following claims.

Claims

1. 1. A manufacturing process for forming a porous metal foam electrode for a battery, the method comprising: grinding and / or ball milling the sodium chloride powder in a ceramic mold for 5 to 60 minutes until it is uniformly small (on the order of hundreds of microns); sieving the ground sodium chloride powder to a powder size range of 40 microns to 100 microns; mixing and / or ball milling a metal and the sieved sodium chloride powder for 5 to 60 minutes; pressing the mixture of metal and sodium chloride powder under a pressure of 10 to 100 megapascals for 1 to 30 minutes using a room temperature press; sintering the pressed mixture of metal and sodium chloride powder at 400-650 degrees Celsius for 30 minutes to several hours in at least one of a nitrogen, vacuum, or argon atmosphere; dissolving the sodium chloride powder in water or any other salt dissolving solution using an ultrasonic device for 10 minutes to several hours to remove the powder, thereby obtaining tightly controlled pores in the metal foam; A space-maintaining material method comprising: the method further comprising filling at least some or all of the pores in the metal foam with one or more active materials that react with lithium; the active material comprises a slurry of graphite powder mixed with water, a binder, and a powder of at least one of tin and silicon; the slurry is placed on top of the metal foam and gravity fed into the pores of the metal foam; gravity feeding the slurry at a temperature above room temperature; The method further comprising reducing the surface tension of the metal foam prior to gravity feeding the slurry.

2. The method of claim 1 , further comprising adjusting the composition and viscosity of the slurry before it is gravity fed into the pores of a metal foam.

3. The method of claim 1 , wherein the gravity feed filling method is assisted by a vacuum device from the bottom of the metal foam.

4. 10. The method of claim 1, wherein the gravity feed filling process is repeated along with the drying process until filling is complete.

5. A method for manufacturing a lithium ion secondary battery device assembled using metal foam as both an anode electrode and a cathode electrode, the metal foam being fabricated by at least one of freeze casting or a spacer, the fabricated metal foam anode electrode and cathode electrode being wetted with an electrolyte, combined into a cylindrical, disc, or coin shape, and separated by a separator; the method further comprising filling at least some or all of the pores in the metal foam with one or more active materials that react with lithium; the active material comprises a slurry of graphite powder mixed with water, a binder, and a powder of at least one of tin and silicon; the slurry is placed on top of the metal foam and gravity fed into the pores of the metal foam; gravity feeding the slurry at a temperature above room temperature; The method for manufacturing a lithium ion secondary battery device further comprises a step of reducing the surface tension of the metal foam prior to gravity feeding of the slurry.

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