IP Library Granted Patent US 10,326,144
Granted Patent B2
US 10,326,144 · App. 13/553,269 · Granted Jun 18, 2019

Hygrophobic conductor layer for electrochemical cell

Inventors: Cody A. Friesen (Fort McDowell, AZ); Joel Hayes (Chandler, AZ)
Assignee: NANTENERGY, INC.
H01M4/8605H01M4/9016H01M4/9041H01M12/08H01M4/9025H01M4/92H01M2004/8689Y02E60/128
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Quick Facts
Patent No.
US 10,326,144
App. No.
13/553,269
Granted
Jun 18, 2019
Kind
B2
Abstract

The present application relates to a layer of an oxidant electrode having hygrophobic and current collecting properties, and electrochemical metal-air cell utilizing the same.

Claims (40)

1. An electrochemical cell, comprising:

a flexible fuel electrode for oxidizing a metal fuel;

a flexible oxidant electrode for absorbing a gaseous oxidant; and

a liquid ionically conductive medium contained in a space between the flexible fuel electrode and the flexible oxidant electrode for conducting ions for supporting the electrochemical reactions at the flexible fuel and oxidant electrodes;

wherein the flexible oxidant electrode comprises:

(a) a hygrophobic conductor layer comprising a sintered hygrophobic mixture of: (i) nickel particles and (ii) a hygrophobic binder, wherein the nickel particles in the sintered hygrophobic mixture are essentially continuous so as to conduct electricity throughout the hygrophobic conductor layer and serve as a current collector for the flexible oxidant electrode, and

(b) an active layer distinctly layered onto the hygrophobic conductor layer for electrical contact therewith, the active layer comprising one or more active materials for catalyzing electrochemical reactions at the flexible oxidant electrode for reducing the gaseous oxidant,

wherein the hygrophobic conductor layer both conducts current for the reduction of the gaseous oxidant and essentially prevents permeation of the liquid ionically conductive medium, and

wherein the active layer of the flexible oxidant electrode is provided on a proximal side of the flexible oxidant electrode and is in contact with the liquid ionically conductive medium in the space and wherein the hygrophobic conductor layer is provided on a distal side of the flexible oxidant electrode.

2. The electrochemical cell of claim 1 , wherein the sintered hygrophobic mixture comprises nickel powder bound by sintered hygrophobic binder particles.

3. The electrochemical cell of claim 2 , wherein the nickel powder comprises nickel flake, nickel filament, nickel platelet, or nickel sphere morphologies.

4. The electrochemical cell of claim 1 , wherein the sintered hygrophobic mixture contains approximately 25-75% nickel by volume.

5. The electrochemical cell of claim 1 , wherein the sintered hygrophobic mixture contains approximately 25-75% hygrophobic binder by volume.

6. The electrochemical cell of claim 2 , wherein the particles of hygrophobic binder comprises one or more of: fluorinated ethylene propylene, perfluoroalkoxy, and polyvinylidene fluoride.

7. The electrochemical cell of claim 1 , wherein the hygrophobic conductor layer is approximately 10-60 microns in thickness.

8. The electrochemical cell of claim 1 , wherein the flexible fuel electrode and the flexible oxidant electrode are arranged in a compacted non-linear configuration with an external surface of the oxidant electrode exposed for absorbing a gaseous oxidant.

9. The electrochemical cell of claim 1 , wherein, during discharge of the electrochemical cell, the one or more active materials are configured to catalyze reducing the oxidant at the flexible oxidant electrode, while the metal fuel is oxidized at the flexible fuel electrode.

10. The electrochemical cell of claim 1 , wherein the active materials comprise one or more of magnesium oxide, manganese oxide, nickel oxide, cobalt oxide, doped metal oxides, nickel, cobalt, manganese, silver, platinum, gold, palladium, carbon, perovskite and spinel powders, and organic porphyrins or pyrroles.

11. The electrochemical cell of claim 1 , wherein the one or more active materials are further configured for oxidizing an oxidizable oxygen species.

12. The electrochemical cell of claim 11 , wherein, during recharge of the electrochemical cell, the one or more active materials are configured to catalyze oxidizing the oxidizable oxygen species at the flexible oxidant electrode, while a reducible metal fuel species is reduced at the flexible fuel electrode.

13. An oxidant electrode for an electrochemical cell utilizing a fuel electrode and a liquid ionically conductive medium, wherein during discharge of the electrochemical cell, the fuel electrode oxidizes a metal fuel therein, the oxidant electrode absorbs and reduces the gaseous oxidant, and the ionically conductive medium separates the fuel electrode and the oxidant electrode to conduct ions therebetween for supporting the electrochemical reactions at the fuel and oxidant electrodes the oxidant electrode comprising:

an active layer comprising one or more active materials for catalyzing electrochemical reactions at the oxidant electrode for reducing a gaseous oxidant; and

a hygrophobic conductor layer comprising a sintered hygrophobic mixture of: (i) nickel particles and (ii) a hygrophobic binder, wherein the nickel particles in the sintered hygrophobic mixture are essentially continuous so as to conduct electricity throughout the hygrophobic conductor layer and serve as a current collector for the oxidant electrode,

wherein the hygrophobic conductor layer both conducts current for the reduction of the gaseous oxidant and essentially prevents permeation of the liquid ionically conductive medium, and

wherein the active layer is distinctly layered onto the hygrophobic conductor layer for electrical contact therewith, wherein the active layer of the oxidant electrode is provided on a proximal side of the oxidant electrode for contact with the liquid ionically conductive medium and wherein the hygrophobic conductor layer is provided on a distal side of the oxidant electrode.

14. The oxidant electrode of claim 13 , wherein the sintered hygrophobic mixture comprises nickel powder bound by sintered hygrophobic binder particles.

15. The oxidant electrode of claim 14 , wherein the nickel powder comprises nickel flake, nickel filament, nickel platelet, or nickel sphere morphologies.

16. The oxidant electrode of claim 13 , wherein the sintered hygrophobic mixture contains approximately 25-75% nickel by volume.

17. The oxidant electrode of claim 13 , wherein the sintered hygrophobic mixture contains approximately 25-75% hygrophobic binder by volume.

18. The oxidant electrode of claim 14 , wherein the particles of hygrophobic binder comprises one or more of:, fluorinated ethylene propylene, perfluoroalkoxy, and polyvinylidene fluoride.

19. The oxidant electrode of claim 13 , wherein the hygrophobic conductor layer is approximately 10-60 microns in thickness.

20. The oxidant electrode of claim 13 , wherein the oxidant electrode is flexible, and configured for use in the electrochemical cell whereby the fuel electrode is also flexible, such that the flexible fuel and oxidant electrodes are configured to be arranged in a compacted non-linear configuration, with an external surface of the flexible oxidant electrode exposed for absorbing the gaseous oxidant.

21. The oxidant electrode of claim 13 , wherein, during discharge of the electrochemical cell, the one or more active materials are configured to catalyze reducing the oxidant at the oxidant electrode, while the metal fuel is oxidized at the fuel electrode.

22. The oxidant electrode of claim 13 , wherein the active materials comprise one or more of magnesium oxide, manganese oxide, nickel oxide, cobalt oxide, doped metal oxides, nickel, cobalt, manganese, silver, platinum, gold, palladium, carbon, perovskite and spinel powders, and organic porphyrins or pyrroles.

23. The oxidant electrode of claim 13 , wherein the one or more active materials are further configured for oxidizing an oxidizable oxygen species.

24. The oxidant electrode of claim 23 , wherein, during recharge of the electrochemical cell, the one or more active materials are configured to catalyze oxidizing the oxidizable oxygen species at the oxidant electrode, while a reducible metal fuel species is reduced at the fuel electrode.

25. The electrochemical cell of claim 2 , wherein the particles of hygrophobic binder comprises polytetrafluoroethylene.

26. The oxidant electrode of claim 14 , wherein the particles of hygrophobic binder comprises polytetrafluoroethylene.

27. The electrochemical cell of claim 1 , wherein the hygrophobic conductor layer is provided in the form of a sheet.

28. The oxidant electrode of claim 13 , wherein the hygrophobic conductor layer is provided in the form of a sheet.

Assignments (8)
AFFIDAVIT OF ADDRESS CHANGE Recorded Jul 9, 2025
From: FORM ENERGY, INC.
To: FORM ENERGY, INC.
Reel/Frame 072357/0777 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 21, 2023
From: NANTENERGY, INC.; NANTENERGY, LLC; FLUIDIC, INC.,; NANT HOLDINGS IP, LLC
To: FORM ENERGY, INC.,
Reel/Frame 063264/0171 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 7, 2020
From: NANTENERGY, INC.; NANTENEGY, LLC; FLUIDIC, INC.; NANT HOLDINGS IP, LLC
To: FORM ENERGY, INC.
Reel/Frame 053430/0590 →
CORRECTIVE ASSIGNMENT TO CORRECT THE ASSIGNEE NAME PREVIOUSLY RECORDED ON REEL 046392 FRAME 0101. ASSIGNOR(S) HEREBY CONFIRMS THE RELEASE OF SECURITY INTEREST. Recorded Dec 18, 2018
From: NANT CAPITAL, LLC
To: FLUIDIC, INC. (NKA NANTENERGY, INC.)
Reel/Frame 049609/0442 →
CHANGE OF NAME Recorded Aug 21, 2018
From: FLUIDIC, INC.
To: NANTENERGY, INC.
Reel/Frame 046881/0818 →
RELEASE OF SECURITY INTEREST Recorded Jun 19, 2018
From: NANT CAPITAL, LLC
To: NANTENERGY, INC.
Reel/Frame 046392/0101 →
SECURITY INTEREST Recorded Jan 12, 2018
From: FLUIDIC, INC.
To: NANT CAPITAL, LLC
Reel/Frame 045060/0240 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 31, 2012
From: FRIESEN, CODY A; HAYES, JOEL
To: FLUIDIC, INC.
Reel/Frame 028888/0348 →
Continuity (2)
Provisional Application 61509390 · Jul 19, 2011
Related Publication 20130022881A1 · Jan 24, 2013