Claims
- 1. An apparatus comprising an array of cells; each cell comprising:
(a) a membrane; (b) an anode comprising a conductive element; and (c) a cathode comprising a conductive element; wherein the cathode of one cell shares its conductive element with the anode of an adjacent cell; the sharing of conductive elements establishing an electrical connection between the cells in the array.
- 2. The apparatus of claim 1 wherein the cells are electrochemical cells suitable for the direct production of oxidized and/or reduced products through simultaneous electrochemical oxidation and reduction of a compound or a mixture of compounds by application of an electrical current.
- 3. The apparatus of claim 2 wherein the electrochemical cells are suitable for the production of hydrogen and oxygen by hydrolysis of water.
- 4. A method for producing hydrogen and oxygen by electrolysis of water in the apparatus of claim 3.
- 5. The apparatus of claim 1 wherein the cells are fuel cells suitable for the direct generation of electricity by oxidation of a fuel and reduction of an oxidizer.
- 6. The apparatus of claim 5 wherein the fuel is a gas.
- 7. The apparatus of claim 6 wherein the fuel is hydrogen gas.
- 8. The apparatus of claim 6 wherein the fuel is a gas mixture comprising hydrogen.
- 9. The apparatus of claim 5 wherein the fuel is a liquid.
- 10. The apparatus of claim 9 wherein the fuel is an alcohol, an ether or a mixture thereof; said mixture being either neat, or in aqueous solution.
- 11. The apparatus of claim 10 wherein the fuel is selected from methanol, dimethoxymethane, triethoxymethane, and mixtures thereof.
- 12. The apparatus of claim 5 wherein the oxidizer is air.
- 13. The apparatus of claim 12 wherein the air is provided by unassisted convection.
- 14. The apparatus of claim 12 further comprising an air mover for assisted convention.
- 15. The apparatus of claim 14 wherein the air is provided at a pressure less than 0.5 psi above ambient pressure.
- 16. The apparatus of claim 14 wherein the air mover is a fan.
- 17. A low pressure gas electrode comprising
(a) an electrically conducting supporting substrate; wherein said substrate comprises at least two opposite faces; a plurality of openings allowing passage from one face to an opposite face; said openings encompassing between 10% and 90% of the total area of the substrate; and (b) an electrically conductive porous material bound to the substrate comprised of a conductive component and a binding component; and (c) an electrocatalyst layer bound to the substrate.
- 18. The electrode of claim 17 wherein the binding component is electrically conductive.
- 19. The electrode of claim 17 wherein the binding component is electrically non conductive.
- 20. The electrode of claim 17 wherein the passage openings represent between 20% and 80% of the total area of the substrate.
- 21. The electrode of claim 17 wherein the passage openings represent between 30% and 75% of the total area of the substrate.
- 22. The electrode of claim 17 wherein the passage openings represent between 24% and 70% of the total area of the substrate.
- 23. The electrode of claim 17 wherein the electrically conductive porous material is a mixture comprising a powdered component and a fibrous component.
- 24. The electrode of claim 23 wherein the powdered component comprises carbon.
- 25. The electrode of claim 24 wherein the fibrous component comprises carbon.
- 26. The electrode of claim 23 wherein the fibrous component comprises carbon.
- 27. The electrode of claim 25 wherein the ratio of powdered carbon to fibrous carbon is between 1:1 and 5:1.
- 28. The electrode of claim 27 wherein the ratio is between 2:1 and 3:1.
- 29. The electrode of claim 23 wherein the powdered component is a metal.
- 30. The electrode of claim 19 wherein the binding component is a polymer.
- 31. The electrode of claim 30 wherein the polymer is at least partially fluorinated.
- 32. The electrode of claim 31 wherein the polymer is a fully fluorinated thermoplastic.
- 33. The electrode of claim 32 wherein the polymer is polytetrafluoroethylene.
- 34. The electrode of claim 17 wherein the ratio of the binding component to the conductive component is between 2:1 and 1:20; preferably between 1:1 and 1:8; and more preferably between 1:1 and 1:3.
- 35. The electrode of claim 17 wherein the electrically conductive supporting substrate comprises a metal.
- 36. The electrode of claim 35 wherein the substrate is a sheet of expanded metal.
- 37. The electrode of claim 35 wherein the substrate is a piece of woven wire fabric.
- 38. The electrode of claim 37 wherein the substrate is a screen.
- 39. The electrode of claim 35 wherein the electrically conductive supporting substrate is a perforated metal sheet.
- 40. The electrode of claim 17 wherein an electrocatalyst layer is deposited on one face of said substrate.
- 41. An electrochemical device having an electrochemical cell comprising the electrode of claim 17.
- 42. The electrochemical device of claim 41 wherein the electrochemical cell is an electrolytic cell.
- 43. The electrochemical device of claim 42 wherein the electrolytic cell is an electrolyzer for the generation of hydrogen and oxygen from water.
- 44. The electrochemical device of claim 41 wherein the electrochemical cell is a fuel cell for the generation of electricity.
- 45. The electrochemical device of claim 44 wherein the cells are connected in a series to form an assembly with increased electrical potential.
- 46. The electrochemical device of claim 45 wherein the electrochemical cells are arranged in a bipolar configuration.
- 47. The electrochemical device of claim 45 wherein the electrochemical cells are arranged in a monopolar configuration.
- 48. A dual electrode structure comprising a first electrode and a second electrode, wherein the electrodes comprise:
(a) an electrically conducting supporting substrate; wherein said substrate comprises at least two opposite faces; a plurality of openings allowing passage from one face to an opposite face; said openings encompassing between 10% and 90% of the total area of the substrate; (b) an electrically conductive porous material bound to the substrate comprised of a conductive component and a binding component; (c) an electrocatalyst layer bound to the substrate; and wherein the two electrodes share the same electrically conducting substrate.
- 49. The dual electrode structure of claim 48 further comprising a barrier to gas passage; wherein the barrier is formed between the two electrodes by sealing all of the open spaces of the conductive substrate; and wherein the electrodes having their electrocatalyst layers bound to opposite sides of the electrically conducting substrate.
- 50. A fuel cell stack comprising a plurality of dual electrode structures; each dual electrode structure comprising a first electrode and a second electrode, wherein the electrodes comprise:
(a) an electrically conducting supporting substrate; wherein said substrate comprises at least two opposite faces; a plurality of openings allowing passage from one face to an opposite face; said openings encompassing between 10% and 90% of the total area of the substrate; (b) an electrically conductive porous material bound to the state comprised of a conductive component and a binding component; (c) an electrocatalyst layer bound to the substrate; and wherein the two electrodes share the same electrically conducting substrate; and wherein the first electrode forms the anode of a first fuel cell and the second electrode forms the cathode of an adjacent fuel cell; the fuel cells being connected in series to produce a potential larger than the potential of each individual fuel cell.
- 51. An apparatus comprising
(a) a frame having two opposing faces; and (b) a set of first and second fuel cell stacks of claim 50; wherein the first fuel cell stack is attached to one face of the frame and the second fuel cell stack is attached to the opposite face of the frame; and wherein the set of stacks and the frame define a volume for internal storage of a reactant to be consumed by operation of the fuel cells; (c) means to supply said internally stored reactant; and (d) means to remove undesirable waste accumulated by operation of the fuel cell stacks.
- 52. An apparatus comprising:
(a) a frame having two opposing faces; (b) a barrier; and (c) a fuel cell stacks of claim 50; wherein the fuel cell stack is attached to one face of the frame and the barrier is attached to the opposite face of the frame; and wherein the stack, the barrier and the frame define a volume for internal storage of a reactant to be consumed by operation of the fuel cells; (d) means to supply said internally stored reactant; and (e) means to remove undesirable waste accumulated by operation of the fuel cell stacks.
- 53. The apparatus of claim 52 manufactured from flexible materials, and wherein the barrier has a surface with a curved shape; the apparatus being mounted on the surface of the barrier and adopting the shape of the surface.
- 54. The apparatus of claim 52 further comprising an enclosed channel for the flow of a coolant to dissipate heat generated by operating the apparatus; and wherein the barrier provides one surface of the channel.
- 55. The apparatus of claim 54 wherein the channel is surrounded by at least one set of electrochemical cells.
- 56. The apparatus of claim 54 further comprising a heat transfer element positioned within the channel.
- 57. The apparatus of claim 54 further comprising means for improving the flow of the coolant through the channel.
- 58. The apparatus of claim 52 wherein the barrier has a portion that extends beyond the cells; said portion allowing the dissipation of the heat generated while operating the apparatus.
- 59. The apparatus of claim 58 wherein the barrier's portion extending beyond the fuel cells is bent to extend perpendicularly to the plane of the cells and providing a protection to portions of the electrodes that are exposed to the atmosphere.
- 60. The apparatus of claim 59 wherein the barrier is perforated and further bent to form a cover shield to protect portions of the electrodes that are exposed to the atmosphere.
- 61. A method of making a porous electrode comprised of:
(a) mixing high surface area carbon powder with a polymer electrolyte suspension to form a mixture; (b) sonicating said mixture to reach complete dispersion and form a paste; and spreading said paste on a foil grid to form a gas diffusion electrode.
Parent Case Info
[0001] This application is a divisional application of co-pending U.S. patent application Ser. No. 09/523,910, filed on Mar. 13, 2000, which was a divisional of U.S. application Ser. No. 08/926,547, filed Sep. 10, 1997, now U.S. Pat. No. 6,054,228, which was a continuation-in-part of U.S. application Ser. No. 08/656,968, filed Jun. 6, 1996, now U.S. Pat. No. 5,709,961.
Continuations (3)
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Number |
Date |
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Parent |
10119380 |
Apr 2002 |
US |
Child |
10151692 |
May 2002 |
US |
Parent |
09523910 |
Mar 2000 |
US |
Child |
10119380 |
Apr 2002 |
US |
Parent |
08926547 |
Sep 1997 |
US |
Child |
09523910 |
Mar 2000 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
08656968 |
Jun 1996 |
US |
Child |
08926547 |
Sep 1997 |
US |