IP Library Granted Patent US 11,271,234
Granted Patent B2
US 11,271,234 · App. 16/327,793 · Granted Mar 8, 2022

Fuel cell with improved durability

Inventor: Manuel Schneiter (Braunschweig, DE)
Assignee: BALLARD POWER SYSTEMS INC.
H01M8/1018H01M4/8636H01M4/8663H01M8/0265H01M8/0271H01M8/0276H01M8/0284H01M8/1004H01M2008/1095
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Quick Facts
Patent No.
US 11,271,234
App. No.
16/327,793
Filed
Feb 22, 2019
Granted
Mar 8, 2022
Kind
B2
Art Unit
1759
USPC
429/492
Abstract

A solid polymer electrolyte fuel cell comprises a membrane electrode assembly comprising a polymer electrolyte disposed between an anode electrode and a cathode electrode, the anode and cathode electrodes each comprising a catalyst, a central region and a peripheral region, wherein the peripheral region of the cathode electrode comprises a cathode edge barrier layer; a fluid impermeable seal in contact with at least a portion of the anode and cathode peripheral regions and the cathode edge barrier layer; an anode flow field plate adjacent the anode electrode; and a cathode flow field plate adjacent the cathode electrode, wherein the cathode flow field separator plate comprises a cathode peripheral flow channel and at least one cathode central flow channel; wherein at least a portion of the cathode edge barrier layer traverses at least a portion of the cathode peripheral flow channel.

Claims (23)

1. A solid polymer electrolyte fuel cell, comprising:

a membrane electrode assembly comprising a polymer electrolyte disposed between an anode electrode and a cathode electrode, the anode and cathode electrodes each comprising a catalyst, a central region and a peripheral region, wherein the peripheral region and the central region of the cathode electrode comprise the catalyst and the peripheral region of the cathode electrode comprises a cathode edge barrier layer;

a fluid impermeable seal in contact with at least a portion of the anode and cathode peripheral regions and the cathode edge barrier layer;

an anode flow field plate adjacent the anode electrode; and

a cathode flow field plate adjacent the cathode electrode, wherein the cathode flow field plate comprises a cathode peripheral flow channel and at least one cathode central flow channel;

wherein at least a portion of the cathode edge barrier layer traverses at least a portion of the cathode peripheral flow channel and the portion of the cathode peripheral flow channel traverses at least a portion of the catalyst of the peripheral region of the cathode electrode.

2. The solid polymer electrolyte fuel cell of claim 1 wherein the cathode edge barrier layer renders the peripheral region of the cathode electrochemically inactive.

3. The solid polymer electrolyte fuel cell of claim 1 wherein the cathode edge barrier layer is in at least a portion of the cathode electrode.

4. The solid polymer electrolyte fuel cell of claim 1 wherein the cathode edge barrier layer is between the cathode electrode and the polymer electrolyte.

5. The solid polymer electrolyte fuel cell of claim 1 wherein the cathode edge barrier layer is fluid impermeable.

6. The solid polymer electrolyte fuel cell of claim 1 wherein the cathode edge barrier layer material is selected from the group consisting of polyvinylidene fluoride, polypropylene, polyethylene, polyolefins, polytetrafluoroethylene, polyaryl ethers, polyether ether ketones, polysulfone, polyimide, epoxy, polyurethane, nitrile, butyl, and thermoplastic elastomers.

7. The solid polymer electrolyte fuel cell of claim 1 wherein the peripheral region of the cathode comprises a lower amount of catalyst than the central region of the cathode.

8. The solid polymer electrolyte fuel cell of claim 1 wherein the peripheral region of at least one of the anode and cathode electrodes comprises at least one additive selected from the group consisting of a radical scavenger, a membrane cross-linker, a hydrogen peroxide decomposition catalyst and a hydrogen peroxide stabilizer.

9. The solid polymer electrolyte fuel cell of claim 1 wherein the peripheral region of at least one of the anode and cathode electrodes comprises at least one of manganese oxides, cerium oxides and titanium oxides.

10. The solid polymer electrolyte fuel cell claim 1 wherein the cathode peripheral flow channel and the cathode central flow channel each extend along a length of the membrane electrode assembly, and the cathode peripheral flow channel is different from the at least one cathode central flow channel in at least one of cross-sectional width and height.

11. The solid polymer electrolyte fuel cell claim 1 wherein the seal is a flow processable elastomer.

12. The solid polymer electrolyte fuel cell of claim 1 wherein the cathode electrode further comprises a cathode gas diffusion layer and a cathode catalyst layer and the cathode edge barrier layer is in at least a portion of at least one of a peripheral region of the cathode gas diffusion layer and a peripheral region of the cathode catalyst layer.

13. The solid polymer electrolyte fuel cell of claim 1 wherein the cathode electrode further comprises a cathode gas diffusion layer and a cathode catalyst layer and the cathode edge barrier layer is between a peripheral region of the cathode gas diffusion layer and a peripheral region of the cathode catalyst layer.

14. The solid polymer electrolyte fuel cell of claim 1 , wherein:

the anode flow field plate comprises an anode peripheral flow channel and at least one anode central flow channel;

the peripheral region of the anode electrode comprises an anode edge barrier layer; and

at least a portion of the anode edge barrier layer traverses at least a portion of the anode peripheral flow channel.

15. The solid polymer electrolyte fuel cell claim 14 wherein the anode peripheral flow channel is different from the at least one anode central flow channel in at least one of cross-sectional width and height.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 25, 2019
From: SCHNEITER, MANUEL
To: BALLARD POWER SYSTEMS INC.
Reel/Frame 048425/0645 →
Continuity (2)
Provisional Application 62380297 · Aug 26, 2016
Related Publication 20190237789A1 · Aug 1, 2019