Claims
- 1. A solar cell comprising:
a first planar electrode comprising a transparent material; a second electrode proximately positioned at a distance from the first electrode and comprising a metal foil portion extending in a direction that is different from the direction of the surface of the first planar electrode; and a porous dye sensitized semiconductor material electrically coupled to the second electrode.
- 2. The solar cell, as set forth in claim 1, wherein the second electrode comprises a planar portion parallel to the first electrode and wherein the metal foil portion of the second electrode comprises a plurality of nanowires coupled to the planar portion and extending therefrom.
- 3. The solar cell, as set forth in claim 2, wherein each of the plurality of nanowires comprises a width in the range of approximately 10-50 nm and wherein each of the plurality of nanowires is spaced in the range of approximately 10-400 nm from the closest adjacent one of the plurality of nanowires.
- 4. The solar cell, as set forth in claim 2, wherein each of the plurality of nanowires comprises a length in the range of approximately 1-50 microns.
- 5. The solar cell, as set forth in claim 1, wherein the metal foil portion of the second electrode comprises a conductive sheet having a thickness in the range of approximately 1-50 microns and comprising a plurality of cavities formed therethrough, wherein the dye sensitized semiconductor material is formed in each of the plurality of cavities.
- 6. The solar cell, as set forth in claim 5, wherein each of the plurality of cavities comprises a diameter in the range of approximately 10-400 nm.
- 7. The solar cell, as set forth in claim 5, wherein the thickness of the walls of each of the plurality of cavities is in the range of approximately 2-40 nm.
- 8. The solar cell, as set forth in claim 5, comprising an electrolyte solution disposed in each of the plurality of cavities.
- 9. A solar cell comprising:
a first electrode having a planar portion and a plurality of nanowires extending therefrom; a second electrode electrically isolated from the first electrode and positioned approximately parallel to the planar portion of the first electrode; a porous dye sensitized semiconductor layer formed on the surface of the planar portion and the nanowires of the first electrode; and an electrolyte solution disposed on the semiconductor layer.
- 10. The solar cell, as set forth in claim 9, wherein each of the plurality of nanowires comprises a width in the range of approximately 10-50 nm.
- 11. The solar cell, as set forth in claim 9, wherein each of the plurality of nanowires comprises a length in the range of approximately 1-50 microns.
- 12. The solar cell, as set forth in claim 9, wherein each of the plurality of nanowires is spaced in the range of approximately 10-800 nm from the closest adjacent one of the plurality of nanowires.
- 13. The solar cell, as set forth in claim 9, wherein the first electrode comprises titanium (Ti) and the semiconductor layer comprises titanium oxide (TiO2).
- 14. A solar cell comprising:
a first electrode comprising a porous dye sensitized semiconductor layer having a plurality of cavities therethrough, wherein each of the plurality of cavities is separated from each adjacent cavity by a wall; a second electrode electrically isolated from the first electrode and positioned approximately perpendicular to the plurality of cavities of the first electrode; and an electrolyte solution disposed in each of the plurality of cavities of the first electrode.
- 15. The solar cell, as set forth in claim 14, wherein the first electrode comprises a layer of titanium oxide having a thickness in the range of approximately 1-50 microns.
- 16. The solar cell, as set forth in claim 14, wherein each of the plurality of cavities comprises a diameter in the range of approximately 10-400 nm.
- 17. The solar cell, as set forth in claim 14, wherein the walls of each of the plurality of cavities comprises a thickness in the range of approximately 2-40 nm.
- 18. The solar cell, as set forth in claim 14, wherein the walls comprise a titanium (Ti) core having a titanium oxide (TiO2) layer thereon.
- 19. A method of forming a solar cell comprising the acts of:
disposing a conductive layer on a substrate; forming a plurality of nanowires, wherein the nanowires are electrically coupled to the conductive layer and extend from the conductive layer; forming a semiconductive layer on each of the plurality of nanowires and on the conductive layer; covering the semiconductive layer with a dye to form a dye-sensitized semiconductive layer; and disposing an electrolyte solution on the dye-sensitized semiconductive layer.
- 20. The method as set forth in claim 19, wherein the act of forming the plurality of nanowires comprises the acts of:
disposing a sheet of poly carbonate polymer on the conductive layer; forming a plurality of holes through the sheet of poly carbonate polymer; disposing a metal into the holes; and dissolving the sheet of poly carbonate polymer.
- 21. The method, as set forth in claim 20, wherein the act of forming a plurality of holes through the sheet of poly carbonate polymer comprises the act of exposing the sheet of poly carbonate polymer to neutrons.
- 22. The method, as set forth in claim 19, wherein the act of forming the semiconductive layer comprises the act of oxidizing each of the plurality of nanowires and the conductive layer.
- 23. The method, as set forth in claim 19, wherein the act of forming the semiconductive layer comprises the act of forming a plurality of nanocrystals, wherein the thickness of the semiconductive layer is less than or equal to twice the width of the nanocrystals.
- 24. A method of forming a solar cell comprising the acts of:
disposing a layer of conductive foil on a substrate; oxidizing the layer of conductive foil to form a semiconductive layer having a plurality of cavities therethrough; covering the semiconductive layer with a dye to form a dye-sensitized semiconductive layer; and disposing an electrolyte solution into each of the cavities of the dye-sensitized semiconductive layer.
- 25. The method, as set forth in claim 24, wherein the act of disposing a layer of conductive foil comprises the act of disposing a layer of titanium (Ti).
- 26. The method, as set forth in claim 24, wherein the act of oxidizing comprises the act of oxidizing the layer of conductive foil to form a semiconductive layer over the layer of conductive foil and having a plurality of cavities therethrough.
- 27. The method, as set forth in claim 24, wherein the act of oxidizing comprises the act of oxidizing the layer of conductive foil to form a semiconductive layer having a plurality of cylindrical cavities therethrough, wherein the cylindrical cavities form a hexagonal close packed array.
- 28. The method, as set forth in claim 24, comprising the act of oxidizing comprises the act of forming a plurality of cavities each having a diameter in the range of approximately 10-400 nm.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The following commonly owned applications and patents are hereby incorporated by reference for all purposes:
[0002] U.S. patent application Ser. No. ______, filed concurrently herewith, entitled “Structured Dye Sensitized Solar Cell” by James L. Spivack and Harish R. Acharya;
[0003] U.S. patent application Ser. No. ______, filed concurrently herewith, entitled “Structured Micro-Channel Semiconductor Electrode For Photovoltaic Cells” James L. Spivack and Donald F. Foust; and
[0004] U.S. patent application Ser. No. ______, filed concurrently herewith, entitled “Dye Sensitized Solar Cell Having Finger Electrodes” by James L. Spivack, Harish R. Acharya, and Donald F. Foust.