Claims
- 1. A photovoltaic cell comprising:
a first electrode; a mesh electrode; a photosensitized nanomatrix layer disposed between the first electrode and the mesh electrode; and a charge carrier media disposed between the first electrode and the mesh electrode.
- 2. The photovoltaic cell of claim 1, wherein the first electrode comprises a significantly light transmitting material.
- 3. The photovoltaic cell of claim 1, wherein the first electrode comprises indium tin oxide.
- 4. The photovoltaic cell of claim 1, wherein the first electrode comprises a metallic mesh electrode.
- 5. The photovoltaic cell of claim 1, wherein the first electrode comprises a metal foil.
- 6. The photovoltaic cell of claim 1, wherein the mesh electrode has a transmisivity in the range from about 60% to about 95%.
- 7. The photovoltaic cell of claim 1, wherein the mesh electrode comprises a metallic material.
- 8. The photovoltaic cell of claim 7, wherein the metallic material comprises at least one of palladium, platinum, titanium, stainless steel, and alloys thereof.
- 9. The photovoltaic cell of claim 7, wherein the mesh electrode comprises metallic wire having a diameter in the range from about 5 μm to about 200 μm and a mesh opening in the range from about 50% to about 95%.
- 10. The photovoltaic cell of claim 7, wherein the mesh electrode comprises metallic wire having a diameter in the range from about 25 μm to about 75 μm and a mesh opening in the range from about 80% to about 90%.
- 11. The photovoltaic cell of claim 10, wherein the mesh electrode further comprises indium tin oxide disposed between at least the metallic wire of the mesh electrode.
- 12. The photovoltaic cell of claim 1, wherein the mesh electrode has a resistivity less than about 3 ohm (Ω) per square.
- 13. The photovoltaic cell of claim 1, wherein the photosensitized nanomatrix layer comprises nanoparticles of materials selected from the group consisting of selenides, sulfides, tellurides, titanium oxides, tungsten oxides, zinc oxides, zirconium oxides, and one or more combinations thereof.
- 14. The photovoltaic cell of claim 1, wherein the photosensitized nanomatrix layer comprises dye-sensitized interconnected nanoparticles.
- 15. The photovoltaic cell of claim 14, wherein the photosensitized nanomatrix layer comprises dye-sensitized interconnected titanium dioxide nanoparticles.
- 16. The photovoltaic cell of claim 1, wherein the photosensitized nanomatrix layer comprises particles with an average size in the range from about 5 nm to about 300nm.
- 17. The photovoltaic cell of claim 1, wherein the photosensitized nanomatrix layer comprises particles with an average size in the range from about 10 nm to about 40 nm.
- 18. The photovoltaic cell of claim 1, wherein the photosensitized nanomatrix layer comprises a photosensitizing agent.
- 19. The photovoltaic material of claim 18, wherein the photosensitizing agent comprises a dye.
- 20. The photovoltaic cell of claim 18, wherein the photosensitizing agent comprises an organic molecule selected from the group consisting of cyanines, merocyanines, phthalocyanines, pyrroles and xanthines.
- 21. The photovoltaic cell of claim 18, wherein the photosensitizing agent comprises a metal ion selected from the group consisting of divalent and trivalent metals.
- 22. The photovoltaic cell of claim 21, wherein the photosensitizing agent comprises at least one of a ruthenium transition metal complex, an osmium transition metal complex, and an iron transition metal complex.
- 23. The photovoltaic cell of claim 1, wherein the charge carrier media comprises an eletrolyte redox system.
- 24. The photovoltaic cell of claim 1, wherein the charge carrier media comprises a polymeric electrolyte.
- 25. The photovoltaic cell of claim 1, wherein the charge carrier media comprises a conductive polymer.
- 26. The photovoltaic cell of claim 1, wherein the charge carrier media transmits at least about 60% of incident visible light.
- 27. The photovoltaic cell of claim 1, further comprising a catalytic media disposed between the first electrode and the mesh electrode.
- 28. The photovoltaic cell of claim 27, wherein the catalytic media comprises platinum.
- 29. The photovoltaic cell of claim 27, wherein the catalytic media comprises a conductive polymer.
- 30. The photovoltaic cell of claim 1, further comprising a first substrate and a second substrate wherein the first electrode and mesh electrode are disposed between the first and second substrates.
- 31. The photovoltaic cell of claim 30, wherein the first and second substrates have a flexural modulus in the range from about 1,500 MPa to about 5,000 Mpa.
- 32. The photovoltaic cell of claim 30, wherein the first and second substrates are flexible and significantly light transmitting.
- 33. The photovoltaic cell of claim 30, wherein at least one of the first and second substrates comprise a polyethylene naphthalate material.
- 34. The photovoltaic cell of claim 30, wherein the first and second substrates have a glass transition temperature of less than about 350° C.
- 35. The photovoltaic cell of claim 30, wherein the first and second substrates have a glass transition temperature in the range from about 10° C. to about 150° C.
- 36. The photovoltaic cell of claim 1, wherein the mesh electrode is disposed such that it functions as a cathode.
- 37. A photovoltaic module comprising a plurality of photovoltaic cells of claim 1 electrically connected in at least one of series and parallel.
- 38. A photovoltaic cell comprising:
a first electrode; a significantly light transmitting metallic mesh electrode; a dye-sensitized interconnected nanoparticle layer disposed between the first electrode and the significantly light transmitting metallic mesh electrode; and a charge carrier media disposed between the first electrode and the significantly light transmitting metallic mesh electrode.
- 39. The photovoltaic cell of claim 38, wherein the first flexible electrode comprises a metallic mesh electrode.
- 40. The photovoltaic cell of claim 38, wherein the first electrode comprises a metal foil.
- 41. The photovoltaic cell of claim 38, wherein the first electrode comprises a metal layer deposited on a flexible substrate.
- 42. The photovoltaic cell of claim 38, wherein the significantly light transmitting metallic mesh electrode has a transmisivity in the range from about 60% to about 95%.
- 43. The photovoltaic cell of claim 38, wherein the significantly light transmitting metallic mesh electrode comprises at least one of palladium, platinum, titanium, stainless steel, and alloys thereof.
- 44. The photovoltaic cell of claim 38, wherein the significantly light transmitting metallic mesh electrode comprises metallic wire having a diameter in the range from about 5 μm to about 200 μm and a mesh opening in the range from about 50% to about 95%.
- 45. The photovoltaic cell of claim 44, wherein the mesh electrode further comprises indium tin oxide disposed between at least the metallic wire of the mesh electrode.
- 46. The photovoltaic cell of claim 37, wherein the mesh electrode has a resistivity less than about 3 ohm (Ω) per square.
- 47. The photovoltaic cell of claim 38, wherein the dye-sensitized interconnected nanoparticle layer comprises nanoparticles of materials selected from the group consisting of selenides, sulfides, tellurides, titanium oxides, tungsten oxides, zinc oxides, zirconium oxides and one or more combinations thereof.
- 48. The photovoltaic cell of claim 38, wherein the dye-sensitized interconnected nanoparticle layer comprises dye-sensitized interconnected titanium dioxide nanoparticles.
- 49. The photovoltaic cell of claim 38, wherein the dye-sensitized interconnected nanoparticle layer comprises particles with an average size in the range from about 5 nm to about 300 nm.
- 50. The photovoltaic cell of claim 38, wherein the dye-sensitized interconnected nanoparticle layer comprises a dye containing at least one of a ruthenium transition metal complex, an osmium transition metal complex, and an iron transition metal complex
- 51. The photovoltaic cell of claim 38, wherein the charge carrier media comprises an electrolyte redox system.
- 52. The photovoltaic cell of claim 38, wherein the charge carrier media comprises a polymeric electrolyte.
- 53. The photovoltaic cell of claim 38, wherein the charge carrier media comprises a conductive polymer.
- 54. The photovoltaic cell of claim 38, further comprising a catalytic media disposed between the first electrode and the significantly light transmitting metallic mesh electrode.
- 55. The photovoltaic cell of claim 54, wherein the catalytic media comprises platinum.
- 56. The photovoltaic cell of claim 54, wherein the catalytic media comprises a conductive polymer.
- 57. A photovoltaic material comprising:
a first flexible substrate; a flexible mesh electrode; a first flexible electrode disposed between the first flexible substrate and the flexible mesh electrode; a photosensitized nanomatrix layer disposed between the first flexible electrode and the flexible mesh electrode; and charge carrier media disposed between the first flexible electrode and the flexible mesh electrode.
- 58. A flexible fabric comprising the photovoltaic material of claim 57.
- 59. The photovoltaic material of claim 57, wherein the flexible substrate comprises a woven material.
- 60. The photovoltaic material of claim 59, wherein the woven material comprises at least one of cotton, flax, and nylon.
- 61. The photovoltaic material of claim 57, wherein the first flexible electrode comprises a metallic mesh electrode.
- 62. The photovoltaic material of claim 57, wherein the first flexible electrode comprises a metal layer deposited on the first flexible substrate.
- 63. The photovoltaic material of claim 57, wherein the flexible mesh electrode has a transmisivity in the range from about 60% to about 95%.
- 64. The photovoltaic material of claim 57, wherein the flexible mesh electrode comprises a metallic material.
- 65. The photovoltaic material of claim 64, wherein the flexible mesh electrode comprises metallic wire having a diameter in the range from about 5 μm to about 200 μm and a mesh opening in the range from about 50% to about 95%.
- 66. The photovoltaic material of claim 57, wherein the photosensitized nanomatrix layer comprises nanoparticles of materials selected from the group consisting of selenides, sulfides, tellurides, titanium oxides, tungsten oxides, zinc oxides, zirconium oxides, and one or more combinations thereof.
- 67. The photovoltaic material of claim 66, wherein the photosensitized nanomatrix layer comprises dye-sensitized interconnected titanium dioxide nanoparticles.
- 68. The photovoltaic material of claim 57, wherein the photosensitized nanomatrix layer comprises particles with an average size in the range from about 10 nm to about 40 nm.
- 69. The photovoltaic material of claim 57, wherein the photosensitized nanomatrix layer comprises a photosensitizing agent.
- 70. The photovoltaic material of claim 69, wherein the photosensitizing agent comprises dye containing at least one of a ruthenium transition metal complex, an osmium transition metal complex, and an iron transition metal complex.
- 71. The photovoltaic material of claim 57, wherein the charge carrier media comprises an electrolyte.
- 72. The photovoltaic material of claim 57, further comprising a catalytic media disposed between the first electrode and the mesh electrode.
- 73. The photovoltaic material of claim 72, wherein the catalytic media comprises platinum.
- 74. The photovoltaic cell of claim 72, wherein the catalytic media comprises a conductive polymer.
- 75. A photovoltaic cell comprising:
a first substrate; a second substrate; a significantly light transmitting metallic mesh electrode partially embedded in the second substrate; a first electrode disposed between the significantly light transmitting metallic mesh electrode and the first substrate; a dye-sensitized interconnected nanoparticle layer disposed between the first electrode and the significantly light transmitting metallic mesh electrode; and charge carrier media disposed between the first electrode and the significantly light transmitting metallic mesh electrode.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of and priority to U.S. Provisional Patent Application No. 60/368,832 filed on Mar. 29, 2002, and U.S. Provisional Patent Application No. 60/400,289 filed on Jul. 31, 2002, both of which are incorporated herein by reference in their entireties.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60368832 |
Mar 2002 |
US |
|
60400289 |
Jul 2002 |
US |