Bipolar metal-air battery, air electrode manufacturing method, and collector manufacturing method

US12191504B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-12191504-B2
Application numberUS-201917312559-A
CountryUS
Kind codeB2
Filing dateDec 11, 2019
Priority dateDec 25, 2018
Publication dateJan 7, 2025
Grant dateJan 7, 2025

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  5. First independent claim

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Abstract

Official abstract text for this publication.

The performance of a bipolar type metal air battery is improved while a low environmental load is maintained. The bipolar type metal air battery includes a plurality of cells including air electrodes composed of a co-continuous component having a 3D network structure in which a plurality of nanostructures are integrated by non-covalent bonds, negative electrodes, and an electrolyte disposed between the air electrode and the negative electrode, and a current collector disposed between the plurality of cells, and the plurality of cells are electrically connected in series, and the current collector is in close contact with the negative electrode using a biodegradable material.

First claim

Opening claim text (preview).

The invention claimed is: 1. A bipolar type metal air battery, comprising: a plurality of cells including an air electrode composed of a co-continuous component having a 3D network structure in which a plurality of nanostructures are integrated by non-covalent bonds, a negative electrode, and an electrolyte disposed between the air electrode and the negative electrode; and a current collector disposed between the plurality of cells, wherein the plurality of cells are electrically connected in series, and wherein the current collector is in contact with the negative electrode using a biodegradable material. 2. The bipolar type metal air battery according to claim 1 , wherein the current collector is made of cloth, felt, a foil or a plate composed of at least one of carbon, copper, aluminum, zinc, iron, or calcium. 3. The bipolar type metal air battery according to claim 1 , wherein the nanostructure of the air electrode is a nanosheet composed of at least one of carbon, iron oxide, manganese oxide, zinc oxide, molybdenum oxide, or molybdenum sulfide or a nanofiber composed of at least one of carbon, iron oxide, manganese oxide, zinc oxide, molybdenum oxide, molybdenum sulfide, or cellulose. 4. The bipolar type metal air battery according to claim 1 , wherein the air electrode supports a catalyst composed of at least one metal of iron, manganese, zinc, copper, or molybdenum or an oxide of at least one metal of calcium, iron, manganese, zinc, copper, or molybdenum. 5. An air electrode production method which is a method of producing an air electrode of the bipolar type metal air battery according to claim 1 , the method comprising: a freezing process in which a sol or gel in which the nanostructure is dispersed is frozen to obtain a frozen component; and a drying process in which the frozen component is dried in a vacuum to obtain the co-continuous component. 6. An air electrode production method which is a method of producing an air electrode of the bipolar type metal air battery according to claim 1 , the method comprising: a gel production process in which a gel in which iron oxide or manganese oxide nanofibers are dispersed is produced by bacteria; a freezing process in which the gel is frozen; and a drying process in which the frozen gel component is dried. 7. An air electrode production method which is a method of producing an air electrode of the bipolar type metal air battery according to claim 1 , the method comprising: a gel production process in which a gel in which cellulose nanofibers are dispersed is produced by bacteria; a freezing process in which the gel is frozen; a drying process in which the frozen gel component is dried; and a carbonization process in which the co-continuous component obtained by drying is heated and carbonized in a gas atmosphere in which cellulose does not burn. 8. A current collector production method which is a method of producing a current collector of the bipolar type metal air battery according to claim 1 , the method comprising: a process in which a water-permeable material is made water impermeable using the biodegradable material; and a process in which the water impermeable material and the negative electrode are brought into contact with each other using the biodegradable material. 9. The bipolar type metal air battery according to claim 2 , wherein the nanostructure of the air electrode is a nanosheet composed of at least one of carbon, iron oxide, manganese oxide, zinc oxide, molybdenum oxide, or molybdenum sulfide or a nanofiber composed of at least one of carbon, iron oxide, manganese oxide, zinc oxide, molybdenum oxide, molybdenum sulfide, or cellulose. 10. The bipolar type metal air battery according to claim 2 , wherein the air electrode supports a catalyst composed of at least one metal of iron, manganese, zinc, copper, or molybdenum or an oxide of at least one metal of calcium, iron, manganese, zinc, copper, or molybdenum. 11. The bipolar type metal air battery according to claim 3 , wherein the air electrode supports a catalyst composed of at least one metal of iron, manganese, zinc, copper, or molybdenum or an oxide of at least one metal of calcium, iron, manganese, zinc, copper, or molybdenum. 12. An air electrode production method which is a method of producing an air electrode of the bipolar type metal air battery according to claim 2 , the method comprising: a freezing process in which a sol or gel in which the nanostructure is dispersed is frozen to obtain a frozen component; and a drying process in which the frozen component is dried in a vacuum to obtain the co-continuous component. 13. An air electrode production method which is a method of producing an air electrode of the bipolar type metal air battery according to claim 3 , the method comprising: a freezing process in which a sol or gel in which the nanostructure is dispersed is frozen to obtain a frozen component; and a drying process in which the frozen component is dried in a vacuum to obtain the co-continuous component. 14. An air electrode production method which is a method of producing an air electrode of the bipolar type metal air battery according to claim 4 , the method comprising: a freezing process in which a sol or gel in which the nanostructure is dispersed is frozen to obtain a frozen component; and a drying process in which the frozen component is dried in a vacuum to obtain the co-continuous component. 15. An air electrode production method which is a method of producing an air electrode of the bipolar type metal air battery according to claim 2 , the method comprising: a gel production process in which a gel in which iron oxide or manganese oxide nanofibers are dispersed is produced by bacteria; a freezing process in which the gel is frozen; and a drying process in which the frozen gel component is dried. 16. An air electrode production method which is a method of producing an air electrode of the bipolar type metal air battery according to claim 3 , the method comprising: a gel production process in which a gel in which iron oxide or manganese oxide nanofibers are dispersed is produced by bacteria; a freezing process in which the gel is frozen; and a drying process in which the frozen gel component is dried. 17. An air electrode production method which is a method of producing an air electrode of the bipolar type metal air battery according to claim 4 , the method comprising: a gel production process in which a gel in which iron oxide or manganese oxide nanofibers are dispersed is produced by bacteria; a freezing process in which the gel is frozen; and a drying process in which the frozen gel component is dried. 18. An air electrode production method which is a method of producing an air electrode of the bipolar type metal air battery according to claim 2 , the method comprising: a gel production process in which a gel in which cellulose nanofibers are dispersed is produced by bacteria; a freezing process in which the gel is frozen; a drying process in which the frozen gel component is dried; and a carbonization process in which the co-continuous component obtained by drying is heated and carbonized in a gas atmosphere in which cellulose does not burn. 19. An air electrode production method which is a method of producing an air electrode of the bipolar type metal air battery according to claim 3 , the method comprising: a gel production process in which a gel in which cellulose nanofibers are dispersed is produced by bacteria; a freezing process in which

Assignees

Inventors

Classifications

  • Bipolar electrodes · CPC title

  • Positive electrodes · CPC title

  • H01M12/06Primary

    with one metallic and one gaseous electrode · CPC title

  • Metals or alloys (H01M4/92 takes precedence) · CPC title

  • Oxides, hydroxides or oxygenated metallic salts · CPC title

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What does patent US12191504B2 cover?
The performance of a bipolar type metal air battery is improved while a low environmental load is maintained. The bipolar type metal air battery includes a plurality of cells including air electrodes composed of a co-continuous component having a 3D network structure in which a plurality of nanostructures are integrated by non-covalent bonds, negative electrodes, and an electrolyte disposed bet…
Who is the assignee on this patent?
Nippon Telegraph & Telephone
What technology area does this patent fall under?
Primary CPC classification H01M12/06. Mapped technology areas include Electricity.
When was this patent published?
Publication date Tue Jan 07 2025 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).