IP Library › Granted Patent US 12,738,518
Granted Patent B2
US 12,738,518 · App. 18/012,672 · Granted Sep 15, 2026

High-temperature anion-exchange membrane fuel cell

Inventor: Dario R. Dekel (Haifa, IL)
Assignee: Technion Research & Development Foundation Limited
H01M8/04701H01M8/04828H01M8/04873H01M8/04902H01M8/04932H01M8/1067H01M2008/1095
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Quick Facts
Patent No.
US 12,738,518
App. No.
18/012,672
Granted
Sep 15, 2026
Kind
B2
Abstract

Anion exchange membrane electrode assemblies, fuel cells and electrochemical cells comprising such assemblies, which comprise an anion exchange membrane sandwiched between an anode compartment and a cathode compartment, and which are operable at a temperature of at least 100° C., are provided. Systems, devices, articles and methods that utilize such assemblies at an operating temperature of at least 100° C. are also provided.

Claims (19)

1 . A method of operating an anion exchange membrane fuel cell comprising an anion exchange membrane sandwiched between an anode compartment and a cathode compartment, wherein said cathode compartment comprises a cathode electrode which comprises a cathode catalyst for promoting reduction of an oxidant to thereby generate anions and said anode compartment comprises an anode electrode which comprises an anode catalyst for promoting oxidation of a fuel, the method comprising contacting said cathode compartment with said oxidant, contacting said anode compartment with said fuel, and adjusting the operating temperature of the anion exchange membrane fuel cell to at least 100° C., wherein said anion exchange membrane conducts anions from said cathode compartment to said anode compartment and is a nanoporous or sub-nanoporous membrane featuring closed porosity and capable of applying capillary forces that liquefy at least a portion of the water therewithin.

2 . The method of claim 1 , wherein the fuel cell is operated under conditions in which at least a portion of the water that is generated and/or consumed is in a liquid state at said temperature.

3 . The method of claim 1 , wherein at least one, or both, of said anode catalyst and said cathode catalyst is a platinum group metal-free catalyst.

4 . The method of claim 1 , wherein at least one, or both, of said anode compartment and said cathode compartment is devoid of an ionomer and/or further comprise an ionomer, wherein an amount of said ionomer is lower than 20% by weight of the total weight of the catalyst and/or a conductivity of said ionomer is lower than 50 mS/cm.

5 . A fuel cell comprising an anion exchange membrane sandwiched between an anode compartment and a cathode compartment, wherein said cathode compartment comprises a cathode catalyst for promoting reduction of an oxidant to thereby generate anions and said anode compartment comprises an anode catalyst for promoting oxidation of a fuel, the fuel cell being operable at an operating temperature of at least 100° C., wherein said anion exchange membrane conducts anions from said cathode compartment to said anode compartment and is a nanoporous or sub-nanoporous membrane featuring closed porosity and capable of applying capillary forces that liquefy at least a portion of the water therewithin.

6 . The fuel cell of claim 5 , wherein at least one, or both, of said anode catalyst and said cathode catalyst is a platinum group metal-free catalyst.

7 . The fuel cell of claim 5 , wherein said anode catalyst features an exchange current density lower than 0.05 mA/cm 2 at 25° C.; and/or wherein said cathode catalyst features a kinetic current density lower than 0.50 mA/mg at 0.9 V and 25° C.

8 . The fuel cell of claim 5 , wherein at least one, or both, of said anode compartment and said cathode compartment is devoid of an ionomer and/or further comprise an ionomer, wherein an amount of said ionomer is lower than 20% by weight of the total weight of the catalyst and/or a conductivity of said ionomer is lower than 50 mS/cm.

9 . The fuel cell of claim 5 , wherein at least one, or both, of said anode and cathode electrodes exhibit closed porosity.

10 . The fuel cell of claim 5 , wherein said fuel is hydrogen.

11 . An anion exchange membrane electrode assembly comprising an anion exchange membrane sandwiched between an anode compartment and a cathode compartment, wherein said cathode compartment comprises a cathode electrode which comprises a cathode catalyst for promoting reduction of an oxidant to thereby generate anions and said anode compartment comprises an anode electrode and an anode catalyst for promoting an electrochemical reaction, wherein said anion exchange membrane conducts anions from said cathode compartment to said anode compartment and is a nanoporous or sub-nanoporous membrane featuring closed porosity and capable of applying capillary forces that liquefy at least a portion of the water therewithin.

12 . The anion exchange membrane electrode assembly of claim 11 , wherein at least one, or both, of said anode catalyst and said cathode catalyst is a platinum group metal-free catalyst.

13 . The anion exchange membrane electrode assembly of claim 11 , wherein said anode catalyst features an exchange current density lower than 0.05 mA/cm 2 at 25° C.; and/or wherein said cathode catalyst features a kinetic current density lower than 0.50 mA/mg at 0.9 V and 25° C.

14 . The anion exchange membrane electrode assembly of claim 11 , wherein at least one, or both, of said anode compartment and said cathode compartment is devoid of an ionomer and/or further comprise an ionomer, wherein an amount of said ionomer is lower than 20% by weight of the total weight of the catalyst and/or a conductivity of said ionomer is lower than 50 mS/cm.

15 . An electrochemical cell comprising the anion exchange membrane electrode assembly of claim 11 , the electrochemical cell is being operable at an operating temperature of at least 100° C.

16 . The electrochemical cell of claim 15 , wherein at least one, or both, of said anode catalyst and said cathode catalyst is a platinum group metal-free catalyst.

17 . The electrochemical cell of claim 15 , wherein said anode catalyst features an exchange current density lower than 0.05 mA/cm 2 at 25° C.; and/or wherein said cathode catalyst features a kinetic current density lower than 0.50 mA/mg at 0.9 V and 25° C.

18 . The electrochemical cell of claim 15 , wherein at least one, or both, of said anode compartment and said cathode compartment is devoid of an ionomer and/or further comprise an ionomer, wherein an amount of said ionomer is lower than 20% by weight of the total weight of the catalyst and/or a conductivity of said ionomer is lower than 50 mS/cm.

19 . The anion exchange membrane electrode assembly of claim 11 , wherein at least one, or both, of said anode and cathode electrodes exhibit closed porosity.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 26, 2023
From: DEKEL, DARIO R.
To: TECHNION RESEARCH & DEVELOPMENT FOUNDATION LIMITED
Reel/Frame 062490/0028 →
Continuity (2)
Provisional Application 63044374 · Jun 26, 2020
Related Publication 20230268531A1 · Aug 24, 2023
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