Claims
- 1. An apparatus comprising:
a plurality of polyimide layers wherein, at least one layer contains at least one resistive heater, at least one layer contains at least one microfluidic channel, at least one layer contains at least anode manifold having a flowing means for a fuel to flow to an anode, at least one layer contains a cathode manifold having removing means for removing reaction by-products from said cathode; an MEA layer, wherein said MEA comprises an electrolyte sandwiched between an anode and a cathode; an electrical feedthrough extending through all layers; and a fuel feedthrough extending through at least four of the layers to form a bonded polyimide microfluidic fuel cell system.
- 2. The apparatus recited in claim 1, wherein (1) said layer containing at least one microfluidic channel, (2) said layer containing at least one anode manifold, (3) said layer containing at least one cathode manifold and (4) said MEA layer communicate by a fuel feedthrough.
- 3. The apparatus recited in claim 1, further comprising additional layers comprising sheets of polyimide material.
- 4. The apparatus recited in claim 1, wherein said flowing means provide for a fuel to flow horizontally through a fuel inlet, then vertically to said anode, wherein whatever portion of fuel that does not flow vertically continues to flow horizontally through a fuel outlet.
- 5. The apparatus recited in claim 1, wherein said MEA operates at a temperature less than 200° C.
- 6. The apparatus recited in claim 1, wherein said flowing means comprise:
(a) a fuel inlet, (b) a porous membrane, and (c) a fuel outlet, wherein said fuel inlet and said fuel outlet are configured such that said fuel flows horizontally through said fuel inlet, then vertically through said porous membrane to said anode, wherein whatever portion of fuel that does not flow vertically continues to flow horizontally through said fuel outlet.
- 7. The apparatus recited in claim 1, wherein a polyimide sheet positioned between said porous membrane and said anode forms a seal between said porous membrane and said anode.
- 8. The apparatus recited in claim 1, wherein said removing means comprise:
at least one of microchannel communicating with said cathode, wherein an additional sheet of polyimide material forms a seal between said microchannel and said cathode.
- 9. The apparatus recited in claim 1, wherein said MEA comprises 3 Nafion™ layers, said first Nafion™ layer containing an anode and an anode catalyst material, said third Nafion™ layer containing a cathode and a cathode catalyst material.
- 10. The apparatus recited in claim 1, wherein said anode and said cathode comprise carbon cloth.
- 11. The apparatus recited in claim 9, wherein said catalyst material comprises Platinum-Ruthenium in a ratio range of about 50-100% Platinum to 0-50% Ruthinium.
- 12. The apparatus recited in claim 1, wherein said fuel is a methanol-water mixture.
- 13. The apparatus recited in claim 1, wherein said fuel is a methanol-water mixture comprising hydrogen, carbon dioxide and less than 1% carbon monoxide.
- 14. The apparatus recited in claim 6, wherein said porous membrane comprises a layer of polyimide having an array of 104 channels per square centimeter, wherein the width of the channels is less than 10 μm.
- 15. The apparatus recited in claim 6, wherein said porous membrane comprises a plastic material having pores with diameters less than 1 μm and a thickness ranging from 10-100 μm.
- 16. The apparatus recited in claim 1, further comprising two polyimide layers having at least one microfluidic connection device embedded between the two layers, wherein said microfluidic connection device communicates with said fuel feedthrough.
- 17. The apparatus recited in claim 16, wherein said microfluidic connection device is capillary tubing.
- 18. The apparatus recited in claim 1, further comprising at least two polyimide layers having at least one pump embedded between the two layers, wherein said pump communicates with said fuel feedthrough.
- 19. The apparatus recited in claim 1, further comprising at least two polyimide layers having at least one valve embedded between the two layers, wherein said valve communicates with said fuel feedthrough.
- 20. The apparatus recited in claim 1, wherein the thickness of each polyimide layer ranges from 25-200 μm.
- 21. The apparatus recited in claim 1, wherein said apparatus has a power output ranging from 0.1 to 20 Watts.
- 22. The apparatus recited in claim 1, wherein said fuel feedthrough of said bonded polyimide microfluidic fuel cell system communicates with a fuel feedthrough of another bonded polyimide microfluidic fuel cell system, said bonded polyimide microfluidic fuel cell systems being connected in series.
- 23. The apparatus recited in claim 22, wherein said apparatus has a power output ranging from 100 milliwatts to 20 Watts.
- 24. The apparatus recited in claim 1, wherein said fuel feedthrough of said bonded polyimide microfluidic fuel cell communicates with a fuel feedthrough of another bonded polyimide microfluidic fuel cell system, said bonded polyimide microfluidic fuel cell systems being connected in parallel.
- 25. The apparatus recited in claim 24, wherein said apparatus has a power output ranging from 100 milliwatts to 20 Watts.
- 26. An apparatus comprising:
a first polyimide layer containing a plurality of resistive heaters; a second polyimide layer for insulating said resistive heaters; a third polyimide layer containing a plurality of microfluidic channels communicating with a fuel source at one end and a fuel feedthrough at the other end; a fourth polyimide layer comprising an anode manifold containing (a) a fourth layer fuel inlet communicating with said fuel feedthrough, (b) a porous membrane, (c) a fourth layer fuel outlet, wherein said fourth layer fuel inlet and outlet are configured such that fuel flows horizontally through the fourth layer fuel inlet, then vertically up through the porous membrane, wherein whatever portion of fuel that does not flow vertically through the porous membrane continues to flow horizontally through the fourth layer fuel outlet; a fifth polyimide layer for supporting said anode manifold and containing a fifth layer fuel feedthrough communicating with said fourth layer fuel outlet; an MEA layer containing an MEA, wherein said MEA comprises an electrolyte sandwiched between an anode and a cathode, said MEA operating at a temperature less than 200° C., wherein said anode is positioned such that it is communicating with said porous membrane of said fourth layer, wherein said fifth layer forms a seal between said porous membrane and said anode; a sixth polyimide layer for supporting a cathode manifold, wherein said sixth polyimide layer contains a sixth layer fuel feedthrough communicating with said fifth layer fuel feedthrough; and a seventh polyimide layer containing (a) a cathode manifold comprising a plurality of microchannels communicating with said cathode, wherein said microchannels are used for removing reaction by-products from said cathode, wherein said sixth layer forms a seal between said cathode manifold and said cathode, and (b) a seventh layer fuel feedthrough communicating with said sixth layer fuel feedthrough; wherein an electrical feedthrough extends through all the layers of said apparatus to form a bonded polyimide microfluidic fuel cell system.
- 27. The apparatus recited in claim 26, wherein said first layer fuel feedthrough communicates with a fuel feedthrough of another bonded polyimide microfluidic fuel cell, said two bonded polyimide microfluidic fuel cells being connected in parallel.
- 28. The apparatus recited in claim 27, wherein said apparatus has a power output ranging from 100 milliwatts to 20 Watts.
- 29. The apparatus recited in claim 26, further comprising said seventh layer fuel feedthrough communicating with a fuel feedthrough of another bonded polyimide microfluidic fuel cell system, said two bonded polyimide microfluidic fuel cell systems being connected in series.
- 30. The apparatus recited in claim 29, wherein said apparatus has a power output ranging from 100 milliwatts to 20 Watts.
- 31. A process comprising:
patterning a plurality of polyimide preform layers; bonding a portion of said plurality of polyimide preform layers together; positioning an MEA layer containing an MEA onto said bonded portion of polyimide preform layers; positioning the remainder of said perform layers onto said MEA; and curing to form a bonded polyimide microfluidic fuel cell system, wherein said bonded polyimide microfluidic fuel cell system has a means to electrically connect all layers.
- 32. The process recited in claim 31, wherein at least one layer of said bonded polyimide microfluidic fuel cell system has a means for distributing a liquid or gaseous fuel to the anode of said MEA, at least one layer of said bonded polyimide microfluidic fuel cell system has a means for removing liquid or gaseous by-products away from the cathode of said MEA, and at least one layer of said bonded polyimide microfluidic fuel cell system has a means for heating said MEA.
- 33. The process recited in claim 31, wherein said bonding is accomplished in two steps, (1) ramping the oven to a temperature of 305° C. over 150 minutes at a rate of approximately 2° C./min.
- 34. The process recited in claim 31, wherein said curing of said bonded polyimide fuel cell system is accomplished by heating to a temperature of 120° C.
- 35. The process recited in claim 31, wherein said means to electrically connect all layers comprises vias in each layer that are filled with a conductive material.
- 36. The process recited in claim 35, wherein said conductive material is a silver epoxy.
- 37. A process comprising:
patterning a first plurality of polyimide preform layers, wherein at least one layer has means to heat an MEA, at least one layer has means to distribute fuel to the anode of said MEA; bonding a said first plurality of polyimide preform layers together; positioning an MEA layer containing an MEA onto said bonded polyimide preform layers; patterning a second plurality of polyimide perform layers, wherein at one layer has means to remove bi-products from the cathode of said MEA; positioning said second plurality of perform layers onto said MEA; and curing to form a bonded polyimide microfluidic fuel cell system, wherein said bonded polyimide microfluidic fuel cell system has a means to electrically connect all layers.
- 38. The process recited in claim 37, wherein said bonding is accomplished in two steps, (1) ramping the oven to a temperature of 305° C. over 150 minutes at a rate of approximately 2° C./min.
- 39. The process recited in claim 37, wherein said curing of said bonded polyimide fuel cell system is accomplished by heating to a temperature of 120° C.
- 40. The process recited in claim 37, wherein said means to electrically connect all layers comprises vias in each layer that are filled with a conductive material.
- 41. The process recited in claim 37, wherein said conductive material is a silver epoxy.
Government Interests
[0001] The United States Government has rights in this invention pursuant to Contract No. W-7405-ENG-48 between the United States Department of Energy and the University of California for the operation of Lawrence Livermore National Laboratory.