Claims
- 1. A method for constructing electrically conductive paths on the face of a solar cell, comprising the steps of:
using metallic materials in powdered form, using thermal spray techniques, and spraying said materials directly on the face of said solar cell in a predetermined frontside pattern of said conductive paths.
- 2. A method for constructing electrically conductive paths according to claim 1, said frontside pattern including bus bars.
- 3. A method for constructing electrically conductive paths according to claim 1, said frontside pattern including collection grid lines.
- 4. A method for constructing electrically conductive paths according to claim 1, said frontside pattern extending off the face of the solar cells and connecting to a backside electrode of another solar cell.
- 5. A method for constructing electrically conductive paths according to claim 1, said using thermal spray techniques comprising using a single spray nozzle having two axis traversing capability over the area of an assembly station.
- 6. A method for constructing electrically conductive paths according to claim 1, said using thermal spray techniques comprising using stationary spray nozzles over a moving assembly line.
- 7. A method for constructing electrically conductive paths according to claim 1, said metallic materials in powered form comprising silver.
- 8. A method for providing off-cell electrodes for a solar cell device comprising the steps of:
using metallic materials in powdered form, using thermal spray techniques, spraying the materials directly on the backing sheet of the solar device in a predetermined backside pattern of conductive paths, placing a solar cell on the backing sheet such that the metal back of the solar cell makes electrical contact with the conductive paths and a portion of the backside pattern conductive paths remain extending beyond the leading edge of the solar cell so as to be available as a first said off-cell electrode, spraying the materials directly on the face of the solar cell in a predetermined frontside pattern of conductive paths, said frontside pattern overlapping off the trailing edge of the solar cell onto the backing sheet so as to be available as a second said off-cell electrode.
- 9. A method for providing off-cell electrodes according to claim 8, said frontside pattern including bus bars.
- 10. A method for providing off-cell electrodes according to claim 8, said frontside pattern including collection grid lines.
- 11. A method for providing off-cell electrodes according to claim 8, said frontside pattern of said solar cell overlapping the backside pattern of an adjacent said solar cell.
- 12. A method for providing off-cell electrodes according to claim 8, said using thermal spray techniques comprising using a single spray nozzle having two axis traversing capability over the area of an assembly station.
- 13. A method for providing off-cell electrodes according to claim 8, said using thermal spray techniques comprising using stationary spray nozzles over a moving assembly line.
- 14. A method for providing off-cell electrodes according to claim 8, said metallic materials in powered form comprising silver.
- 15. A method for constructing a serially connected multi-cell solar device comprising the steps of:
using metallic materials in powdered form, using thermal spray techniques, spraying the materials directly on the backing sheet of the solar device in a predetermined backside pattern of conductive paths, placing a first solar cell on the backing sheet such that the metal back of the first solar cell contacts the backside pattern conductive paths and a portion of the backside conductive paths remain extending beyond the leading edge of the first solar cell for use as a connecting electrode, spraying the materials directly on the face of said first solar cell in a predetermined pattern of conductive paths, said frontside pattern overlapping off the trailing edge of said first solar cell onto the backing sheet so as to be available as a first of two device electrodes, repeating the above steps using additional solar cells until the desired number of cells have been used, said frontside pattern extending off the trailing edge of each additional said solar cell onto the connecting electrode of the previous solar cell, the last said connecting electrode being the second of said two device electrodes.
- 16. A method for constructing a serially connected multi-cell solar device according to claim 15, said frontside pattern including bus bars.
- 17. A method for constructing a serially connected multi-cell solar device according to claim 15, said frontside pattern including collection grid lines.
- 18. A method for constructing a serially connected multi-cell solar device according to claim 15, said using thermal spray techniques comprising using a single spray nozzle having two axis traversing capability over the area of an assembly station.
- 19. A method for constructing a serially connected multi-cell solar device according to claim 15, said using thermal spray techniques comprising using stationary spray nozzles over a moving assembly line.
- 20. A method for constructing a serially connected multi-cell solar device according to claim 15, further comprising the step of combining said multi-cell device with other said multi-cell devices into a multi-row solar device.
Parent Case Info
[0001] This application claims priority for all purposes to pending U.S. application Ser. Nos. 60/249,122 filed Nov. 16, 2000, and 09/802,072 filed Mar. 8, 2001.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60249122 |
Nov 2000 |
US |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09802072 |
Mar 2001 |
US |
Child |
09993587 |
Nov 2001 |
US |