This application claims all benefits accruing under 35 U.S.C. §119 from China Patent Application No. 201510356571.3, filed on Jun. 25, 2015, in the China Intellectual Property Office. This application is related to a commonly-assigned application entitled, “CATHODE AND LITHIUM-AIR BATTERY USING THE SAME”, filed ______ (Atty. Docket No. US58745).
The present disclosure relates to cathodes and metal-air batteries using the same, and particularly to cathodes and metal-air batteries based on carbon nanotubes.
A metal-air battery is a chargeable/dischargeable battery that utilizes metal or metal compound in an active material of an anode electrode and oxygen gas as an active material in a cathode electrode. Oxygen gas, as the cathode electrode active material, can be obtained from air, and hence the cathode electrode active material need not be sealed in the battery. Therefore, metal-air battery realizes a capacity that is greater than that of secondary battery that utilizes solid cathode electrode active materials. By using different metals in the anode, the metal-air battery can be lithium-air battery, magnesium-air battery, zinc-air battery, aluminum-air battery, and so on.
During electrical discharging, the anode forms metal ions and electrons, wherein the metal ions transfer though the electrolyte and combine with the oxygen gas and the electrons at the cathode to produce a solid metal oxide. During electrical charging, the solid metal oxide decomposes to form the metal ions, oxygen gas, and electrons, wherein the metal ions go through the electrolyte and combine with the electrons at the anode to produce the metal. The reaction at the cathode can be expressed as 2M++O2+2e−⇄M2O2. The reaction at the anode complies with M⇄M++e−. The cathode comprises a porous carbon material as a conducting carrier and a catalyst carried by the porous carbon material. During the discharging, the insoluble metal oxide is formed at the cathode in the pores of the porous carbon material and blocks the passage of the oxygen gas and the metal ions, which decreases the redox reaction speed and the power density of the metal-air battery.
Implementations of the present technology will now be described, by way of example only, with reference to the attached figures.
It will be appreciated that for simplicity and clarity of illustration, where appropriate, reference numerals have been repeated among the different figures to indicate corresponding or analogous elements. In addition, numerous specific details are set forth in order to provide a thorough understanding of the embodiments described herein. However, it will be understood by those of ordinary skill in the art that the embodiments described herein can be practiced without these specific details. In other instances, methods, procedures, and components have not been described in detail so as not to obscure the related relevant feature being described. Also, the description is not to be considered as limiting the scope of the embodiments described herein. The drawings are not necessarily to scale and the proportions of certain parts may be exaggerated to better illustrate details and features of the present disclosure.
Several definitions that apply throughout this disclosure will now be presented.
The term “comprise” or “comprising” when utilized, means “include or including, but not necessarily limited to”; it specifically indicates open-ended inclusion or membership in the so-described combination, group, series, and the like. The term “contact” when utilized, means “direct contact” or “physical contact.”
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The term “free-standing” includes, but is not limited to, a carbon nanotube film 122 that does not need to be supported by a substrate. For example, a free-standing carbon nanotube film 122 can sustain the weight of itself when hoisted at one point without significant damage to its structural integrity. If the free-standing carbon nanotube film 122 is placed between two separate supporters, the portion of the free-standing carbon nanotube film 122 suspended between the two supporters maintains structural integrity. The free-standing ability of the carbon nanotube film 122 is realized by the successive carbon nanotubes being joined end to end by van der Waals attractive force.
In one embodiment of the cathode 10, the plurality of carbon nanotube films 122 is stacked along same direction as the majority of the carbon nanotubes in the cathode 10. In another embodiment of the cathode 10, the plurality of carbon nanotube films 122 are stacked along at least two directions where the carbon nanotubes in the cathode are substantially aligned along at least two directions. Referring to
The material of the catalyst 14 can be noble metal such as at least one of ruthenium, platinum, palladium, gold, rhodium, and silver. The catalyst 14 is in particle form, the particles having a size of about 1 nanometer to about 10 nanometers. The particles of the catalyst 14 are uniformly distributed in the carbon nanotube network structure 12 and adsorbed on the outer walls of the carbon nanotubes. A large number of pores defined between adjacent carbon nanotubes having the catalyst 14 adsorbed thereon form a porous cathode 10 which is capable of having the metal ions and oxygen gas infiltrated therein. A weight percentage of the catalyst 14 in the cathode 10 can be in a range from about 50% to about 90%, and from about 75% to about 85% in one embodiment. An amount of the catalyst 14 per unit area of the carbon nanotube network structure 12 can be in a range from 0.5 mg/cm2 to 2 mg/cm2.
The cathode 10 of the metal-air battery can only comprise the catalyst 14 and the carbon nanotubes. The carbon nanotubes are combined with each other by van der Waals attractive force to form the free-standing carbon nanotube films 122. The carbon nanotube films 122 are not only the carrier of the catalyst 14 but also the current collector of the cathode 10. No additional current collector is required for the cathode 10.
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The structure of the carbon nanotube film 122 of the carbon nanotube film paper can be the same as the structure of the carbon nanotube film 122 of the carbon nanotube network structure 12. The carbon nanotube film 122 of the carbon nanotube film paper can be a free-standing carbon nanotube film that is drawn from the carbon nanotube array. The carbon nanotube film 122 has a relatively large specific surface area, so the carbon nanotube film 122 is very adhesive. In the carbon nanotube paper, adjacent carbon nanotube films 122 can be combined together by van der Waals forces. Once the adjacent carbon nanotube films 122 are stacked, the carbon nanotube films 122 can form an integrated structure, and adjacent carbon nanotube films 122 cannot be separated from each other. Spaces can be defined between adjacent carbon nanotubes in the carbon nanotube films 122 to form a plurality of pores in the carbon nanotube paper, allowing oxygen gas to pass through.
In one embodiment, in the carbon nanotube paper, the carbon nanotube films 122 are aligned along the same direction as the in-line majority of the carbon nanotubes. The carbon nanotubes paper has an excellent electrical conductivity in this particular direction. The carbon nanotube paper is used as the cathode current collector 16 in the cathode 10 to collect and conduct the current from the carbon nanotube network structure 12 to the external circuit.
In one embodiment, the direction of the carbon nanotubes of at least one carbon nanotube film 122 in the carbon nanotube network structure 12 is the same as that of the carbon nanotubes in the carbon nanotube paper. At least a portion of the carbon nanotubes in the carbon nanotube network structure 12 are aligned along the same direction as the carbon nanotubes in the cathode current collector 16. Thus, the contact area of the carbon nanotubes increases when the current collector 16 is in contact with the carbon nanotube network structure 12, to enhance the combination therebetween.
The carbon nanotube network structure 12 and the carbon nanotube paper can be in direct contact with each other and combined by van der Waals attractive forces, without additional binder. That is to say, the carbon nanotubes of the carbon nanotube paper are in direct contact with the carbon nanotubes of the carbon nanotube network structure 12. The carbon nanotube films of the carbon nanotube paper and the carbon nanotube network structure 12 have relatively large specific surface areas. Once the carbon nanotube paper and the carbon nanotube network structure 12 are stacked and combined together by van der Waals forces, it will be difficult to separate them from each other. In one embodiment, the carbon nanotube network structure 12 is smaller than the carbon nanotube paper, and can be located on one end of carbon nanotube paper. The other end of the carbon nanotube paper can be used to connect to the external circuit.
In the cathode 10, the catalyst 14 is located not only on an outer surface of the carbon nanotube network structure 12 but is also infiltrated into the carbon nanotube network structure 12, and adsorbed on the outer walls of the carbon nanotubes, to efficiently adopt the carbon nanotubes as the carrier of the catalyst 14. The cathode 10 having the catalyst 14 carried by the carbon nanotube network structure 12 has a plurality of micropores defined by adjacent carbon nanotubes, to permit the passage of oxygen gas and metal ions through micropores of the cathode 10 and make contact with the catalyst 14 in the carbon nanotube network structure 12.
One embodiment of a method for making the cathode 10 of the metal-air battery comprises: providing a plurality of carbon nanotube films 122 drawn from a carbon nanotube array; depositing a plurality of particles made of the catalyst 14 on each of the carbon nanotube film 122 to form a plurality of carbon nanotube-catalyst composite films; stacking the plurality of carbon nanotube-catalyst composite films together to form the cathode 10.
In another embodiment, the cathode 10 comprises the carbon nanotube paper as the current collector. The plurality of carbon nanotube-catalyst composite films is stacked on the carbon nanotube paper to form the cathode 10. The particles of the catalyst can be deposited on the carbon nanotube film 122 by using the chemical depositing method or the physical depositing method, such as the vacuum evaporating method and the magnetron sputtering method. By controlling the depositing time of the catalyst 14, the weight percentage of the catalyst 14 in the cathode 10 can be controlled.
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The anode 20 comprises an anode active material layer 22, which can be metal or alloy, such as at least one of lithium, sodium, potassium, magnesium, calcium, aluminum, zirconium, iron, silver, and alloys thereof. In one embodiment, the metal-air battery 100 is a lithium-air battery, and the anode active material layer 22 is lithium metal or alloy, such as lithium aluminum alloy, lithium tin alloy, lithium lead alloy, or lithium silicon alloy. The anode 20 can further comprise an anode current collector 24 electrically connecting the anode active material layer 22 to the external circuit. The anode active material layer 22 is located on a surface of the anode current collector 24. The anode current collector 24 can be a free-standing sheet. In one embodiment, the anode current collector 24 can be a metal foil without holes or metal mesh with a plurality of through holes. The metal of the anode current collector 24 can be nickel, copper, or stainless steel. In another embodiment, the anode current collector 24 can be a structure formed of a carbon material such as carbon fiber textile sheet, carbon nanotube paper, porous graphene sheet, carbon nanotube-graphene composite sheet, or pyrolyzed carbon sheet.
The electrolyte 30 is located between the cathode 10 and the anode 20 to conduct metal ions. The electrolyte can be a solid electrolyte film or a liquid electrolyte solution including a metal salt dissolved in an organic solvent. The organic solvent can be at least one of ethylene carbonate (EC), propylene carbonate (PC), ethylmethyl carbonate (EMC), diethyl carbonate (DEC), dimethyl carbonate (DMC), butylenes carbonate, vinylene carbonate, methylethyl carbonate, methyl acetate, ethyl acetate, propyl acetate, methyl propionate, ethyl propionate, y-butyrolactone, 1,2dimethoxyethane, 1,2-diethoxyethane, tetrahydrofuran, 1,2-dioxane, 2-methyltetrahydrofuran, acetonitrile, tetra(ethylene glycol) dimethyl ether (TEGDME), and dimethylformamide. In the embodiment of the metal-air battery 100, the lithium salt can be at least one of LiCl, LiPF6, LiBF4, LiCH3SO3, LiCF3SO3, LiAsF6, LiSbF6, LiClO4, Li[BF2(C2O4)], Li[PF2(C2O4)2], Li[N(CF3SO2)2], Li[C(CF3SO2)3], LiBOB, and lithium bis(trifluoromethane sulfonyl) imide (LiTFSI). The liquid electrolyte solution infiltrates the cathode 10 and the anode 20.
The metal-air battery 100 can further comprise a porous membrane being a separator 40 located between the cathode 10 and the anode 20. The material of the separator can be polypropylene (PP) or polyethylene (PE).
The metal-air battery 100 can further comprise an air-diffusion membrane 50 arranged on the side adjacent to the cathode 10 of the metal-air battery 100. Oxygen gas can enter the cathode 10 through the air-diffusion membrane 50, and water and carbon dioxide gas in the air can be prevented from entering the cathode 10.
The metal-air battery 100 can further comprise a battery case 60 encapsulating the cathode 10, the anode 20, the electrolyte 30, and the separator 40. The air-diffusion membrane 50 can be located on an opening defined by the battery case 60 at the side adjacent to the cathode 10.
The carbon nanotube films are drawn from the carbon nanotube array and deposited with Ru metal particles through the sputtering method, to form the carbon nanotube-catalyst composite films. Referring to
The carbon nanotube films are drawn from the carbon nanotube array and Pd metal particles are deposited thereon through the sputtering method to form the carbon nanotube-catalyst composite films. Referring to
Depending on the embodiment, certain of the steps of methods described may be removed, others may be added, and the sequence of steps may be altered. It is also to be understood that the description and the claims drawn to a method may comprise some indication in reference to certain steps. However, the indication used is only to be viewed for identification purposes and not as a suggestion as to an order for the steps.
The embodiments shown and described above are only examples. Even though numerous characteristics and advantages of the present technology have been set forth in the foregoing description, together with details of the structure and function of the present disclosure, the disclosure is illustrative only, and changes may be made in the detail, especially in matters of shape, size, and arrangement of the parts within the principles of the present disclosure, up to and including the full extent established by the broad general meaning of the terms used in the claims. It will therefore be appreciated that the embodiments described above may be modified within the scope of the claims.
Number | Date | Country | Kind |
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201510356571.3 | Jun 2015 | CN | national |