Claims
- 1. A microelectronic battery comprising:
a cathode; an anode; and an electrolyte tank for carrying an electrolyte disposed in communication with said cathode and said anode, wherein said cathode, anode and electrolyte tank form a microelectronic volumetric storage device having a volume<1 mm3.
- 2. The microelectronic battery as recited in claim 1, wherein said cathode is an air cathode and a said anode is formed with a Zn electrode forming a microelectronic Zn/Air battery.
- 3. The microelectronic battery as recited in claim 1, wherein said microelectronic battery is formed as a generally cubic device defining a footprint (length (L)×width (W)) and a height (H).
- 4. The microelectronic battery as recited in claim 3, wherein said L, W and H dimensions are approximately equal.
- 5. The microelectronic battery as recited in claim 2, wherein the cathode includes a first substrate and at least one cathode carried by said substrate.
- 6. The microelectronic battery as recited in claim 5, further including at least one first bond pad for connection to an external electrical circuit, said at least one first bond pad electrically coupled to said at least one cathode.
- 7 The microelectronic battery as recited in claim 5, wherein said first substrate is formed from silicon.
- 8. The microelectronic battery as recited in claim 6, wherein said at least one cathode is formed from a composite device.
- 9. The microelectronic battery as recited in claim 8, wherein said composite includes a Ni electrode with a carbon black/MnO2/PTFE composite disposed thereupon.
- 10. The microelectronic battery as recited in claim 5, further including a gas permeable membrane formed over said cathode.
- 11. The microelectronic battery as recited in claim 10, wherein said membrane is formed from a carbon black/PTFE composite.
- 12. The microelectronic battery as recited in claim 10, wherein said membrane is formed from a polymeric perfluoroalkylene oxide membrane.
- 13. The microelectronic battery as recited in claim 2, wherein said anode is formed on a second substrate.
- 14. The microelectronic battery as recited in claim 13, wherein said second substrate is glass.
- 15. The microelectronic battery as recited in claim 14, further including at least one second bond pad formed on said second substrate and electrically coupled to said zinc electrode.
- 16. The microelectronic battery as recited in claim 1, wherein said electrolyte tank is formed from a polymer material.
- 17. The microelectronic battery as recited in claim 16, wherein said polymer material is PE.
- 18. The microelectronic battery as recited in claim 16, wherein said polymer material is PTFE.
- 19. A process for forming a microelectronic battery, the process comprising the steps of:
(a) providing an air cathode; (b) providing a zinc oxide; (c) disposing an electrolyte tank over said zinc oxide; (d) disposing an electrolyte in said electrolyte tank; (e) assembling said air cathode, zinc oxide, said electrolyte tank with said electrolyte to form a microelectronic battery having a predetermined volume; and (f) scaling the said volume to provide a predetermined battery capacity.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present invention is related to commonly-owned co-pending patent application Ser. No.______, entitled “Micro Supercapacitors”, Attorney Docket No. 11-1185, filed on even date.