Claims
- 1. A flexible organic electroluminescent fiber (“OLEF”) comprising:
a core that comprises a first electrically conducting material forming a first electrode; at least one layer of at least one organic electroluminescent (“EL”) material formed on said first electrically conducting material; a second electrode layer of a second electrically conducting material forming a second electrode that is formed on said at least one layer of said at least one organic EL material; and at least one barrier layer formed over said second electrode, said barrier layer surrounding said at least one organic EL material and said second electrode, said barrier layer comprising a plurality of sublayers of a polymeric material and an inorganic material.
- 2. The flexible OLEF according to claim 1, wherein said barrier layer comprises a plurality of alternating sublayers of at least one polymeric material and at least one inorganic material.
- 3. The flexible OLEF according to claim 1, wherein said barrier layer comprises a plurality of alternating sets of adjacent sublayers of polymeric materials and adjacent sublayers of inorganic materials.
- 4. The flexible OLEF according to claim 2, wherein said core has a structure selected from the group consisting of fiber, cable, and wire and comprises a core material selected from the group consisting of glass, polymers, metals, and composites thereof.
- 5. The flexible OLEF according to claim 4, wherein said core has a largest dimension of a cross section in a range from about 1 micrometer to about 10 mm.
- 6. The flexible OLEF according to claim 5, wherein said largest dimension is preferably in a range from about 10 micrometers to about 2 mm, and more preferably from about 100 micrometers to about 1 mm.
- 7. The flexible OLEF according to claim 6, wherein said core comprises said structure, a portion of an outer surface of which comprises said first electrically conducting material.
- 8. The flexible OLEF according to claim 7, wherein said first electrically conducting material is selected from the group consisting of K, Li, Na, Mg, La, Ce, Ca, Sr, Ba, Al, Ag, In, Sn, Zn, Zr, alloys thereof, and mixtures thereof.
- 9. The flexible OLEF according to claim 7, wherein said first electrically conducting material is formed in a layer having a thickness in a range from about 50 nm to about 500 nm.
- 10. The flexible OLEF according to claim 9, wherein said thickness is preferably in a range from about 50 nm to about 200 nm.
- 11. The flexible OLEF according to claim 2, wherein said at least one organic EL material is selected from the group consisting of poly(n-vinylcarbazole), poly(alkylfluorene), poly(paraphenylene), polysilanes, derivatives thereof, mixtures thereof, and copolymers thereof.
- 12. The flexible OLEF according to claim 2, wherein said at least one organic EL material is selected from the group consisting of 1,3,5-tris[n-(4-diphenylaminophenyl)phenylamino]benzene, phenylanthracene, tetraarylethene, coumarin, rubrene, tetraphenylbutadiene, anthracene, perylene, coronene, aluminum-(picolymethylketone)-bis[2,6-di9t-butyl)phenoxide, scandium-(4-methoxy-picolymethylketone)-bis(acetylacetonate), aluminum-acetylacetonate, gallium-acetylacetonate, indium-acetylacetonate, and tris(8-quinolinolato)-aluminum III.
- 13. The flexible OLEF according to claim 12, wherein said at least one organic EL material is carried in a substantially transparent polymer.
- 14. The flexible OLEF according to claim 2, wherein said at least one layer of at least one organic EL material has a thickness from about 100 nm to about 300 nm.
- 15. The flexible OLEF according to claim 2, wherein said at least one layer of at least one organic EL material further comprises a phosphor material dispersed therein.
- 16. The flexible OLEF according to claim 15, wherein said phosphor absorbs a portion of EM radiation emitted by said at least one organic EL material in a first wavelength range and emits EM radiation in a second wavelength range.
- 17. The flexible OLEF according to claim 15, wherein said phosphor is selected from the group consisting of (Y1-xCex)3Al15O12; (Y1-x-yGdxCey)3Al5O12; (Y1-xCex)3(Al1-yGay)O12; (Y1-x-yGdxCey)(Al5-zGaz)O12; (Gd1-xCex)Sc2Al3O12; Ca8Mg(SiO4)4Cl2:Eu2+,Mn2+; GdBO3:Ce3+, Tb3+; CeMgAl11O19:Tb3+; Y2SiO5:Ce3+,Tb2+; BaMg2Al16O27:Eu2+,Mn2+; Y2O3:Bi3+,EU3+; Sr2P2O7:Eu2+,Mn2+; SrMgP2O7:Eu2+,Mn2+; (Y,Gd)(V,B)O4:Eu3+; 3.5MgO·0.5MgF2.GeO2:Mn4+, BaMg2Al16O27:Eu2+; Sr5(PO4)10Cl2:Eu2+; and mixtures thereof; wherein 0≦x≦1, 0≦y≦1, 0≦z≦5 and x+y≦1.
- 18. The flexible OLEF according to claim 15, wherein said phosphor is selected from the group consisting of perylenes, benzopyrenes, coumarin dyes, polymethine dyes, xanthene dyes, oxobenzanthracene dyes, perylenebis(dicarboximide), pyrans, thiopyrans, and azo dyes.
- 19. The flexible OLEF according to claim 2 further comprising a wavelength-adjusting layer that comprises at least one phosphor dispersed in a polymer, said wavelength-adjusting layer being disposed around said at least one barrier layer, and said at least one phosphor being selected from the group consisting of inorganic phosphors and organic phosphors.
- 20. The flexible OLEF according to claim 19, wherein said inorganic phosphors are selected from the group consisting of (Y1-xCex)3Al5O12; (Y1-x-yGdxCey)3Al5O12; (Y1-xCex)3(Al1-yGay)O12; (Y1-x-yGdxCey)(Al5-zGaz)O12; (Gd1-xCex)Sc2Al3O12; Ca8Mg(SiO4)4Cl2:Eu2+,Mn2+; GdBO3:Ce3+, Tb3+; CeMgAl11O19:Tb3+; Y2SiO5:Ce3+,Tb3+; BaMg2Al16O27:Eu2+,Mn2+; Y2O3:Bi3+,Eu3+; Sr2P2O7:Eu2+,Mn2+; SrMgP2O7:Eu2+,Mn2+; (Y,Gd)(V,B)O4:Eu3+; 3.5MgO·0.5MgF2.GeO2:Mn4+; BaMg2Al16O27:Eu2+; Sr5(PO4)10Cl2:Eu2+; and mixtures thereof; wherein 0≦x≦1, 0≦y≦1, 0≦z≦5 and x+y<1.
- 21. The flexible OLEF according to claim 19, wherein said organic phosphors are selected from the group consisting of perylenes, benzopyrenes, coumarin dyes, polymethine dyes, xanthene dyes, oxobenzanthracene dyes, perylenebis(dicarboximide), pyrans, thiopyrans, and azo dyes.
- 22. The flexible OLEF according to claim 2 comprising a plurality of layers of organic EL materials, each layer being in contact with another layer, and each layer comprising a different organic EL material.
- 23. The flexible OLEF according to claim 2, wherein said second electrically conducting material is selected from the group consisting of ITO, tin oxide, indium oxide, zinc oxide, indium zinc oxide, and mixtures thereof.
- 24. The flexible OLEF according to claim 23 further comprising a layer of a metal disposed between said second electrically conducting material and said at least one layer of at least one organic EL material, said metal being selected from the group consisting of Pt, Pd, Ag, Au, mixtures thereof, and alloys thereof.
- 25. The flexible OLEF according to claim 23, wherein said second electrode layer has a thickness in a range from about 50 nm to about 500 nm.
- 26. The flexible OLEF according to claim 25, wherein said thickness is preferably in a range from about 50 nm to about 200 nm.
- 27. The flexible OLEF according to claim 2, wherein said at least one barrier layer comprising a plurality of alternating sublayers of at least a polymeric material and at least an inorganic material.
- 28. The flexible OLEF according to claim 27, wherein said polymeric material is selected from the group consisting of polyacrylates, polyepoxides, poly(vinyl fluoride), poly(vinylidene chloride), poly(vinyl alcohol), polyethyleneterephthalate, copolymer of vinyl alcohol and glyoxal, parylenes, polymers derived from cycloolefins and their derivatives, and mixtures thereof.
- 29. The flexible OLEF according to claim 27, wherein said inorganic material is selected from the group consisting of metals, metal oxides, and metal nitrides.
- 30. The flexible OLEF according to claim 29, wherein said metals are selected from the group consisting of aluminum, silver, copper, gold, platinum, palladium, and alloys thereof.
- 31. The flexible OLEF according to claim 29, wherein said metal oxides are selected from the group consisting of ITO, tin oxide, silicon oxides, cadmium oxide, indium oxide, zinc oxide, aluminum oxide, magnesium oxide, composites thereof, and solutions thereof.
- 32. The flexible OLEF according to claim 29, wherein said metal nitrides are selected from the group consisting of nitrides of Groups IVA, VA, VIA, IIIB, and IVB of the Periodic Table.
- 33. The flexible OLEF according to claim 32, wherein said metal nitrides are selected from the group consisting of silicon nitride and silicon oxynitride.
- 34. The flexible OLEF according to claim 2 further comprising an encapsulating layer covering an entire surface of said barrier layer.
- 35. The flexible OLEF according to claim 34 further comprising a wavelength-adjusting layer surrounding said encapsulating layer, wherein said wavelength-adjusting layer comprises at least one phosphor dispersed in a polymer.
- 36. The flexible OLEF according to claim 34, wherein said encapsulating layer comprises a material selected from the group consisting of silicone and epoxy.
- 37. A flexible organic electroluminescent fiber (“OLEF”) comprising:
a core that comprises a first electrically conducting material forming a first electrode; at least one layer of at least one organic electroluminescent (“EL”) material formed on said first electrically conducting material; a second electrode layer of a second electrically conducting material forming a second electrode that is formed on said at least one layer of said at least one organic EL material; at least one barrier layer formed over said second electrode, said barrier layer completely surrounding said at least one organic EL material and said second electrode, said barrier layer comprising a plurality of alternating sublayers of a polymeric material and an inorganic material; an encapsulating layer formed over said at least one barrier and covering an entirety of said fiber; and a wavelength-adjusting layer that comprises at least one phosphor dispersed in a polymer, said wavelength-adjusting layer being disposed on a surface selected from the group consisting of surface of said at least one barrier layer and surface of said encapsulating layer; wherein said core comprises a core material selected from the group consisting of glass, polymers, metals, and composites thereof; said core has a largest dimension in a range from about 1 micrometer to about 10 mm; said first electrically conducting material is selected from the group consisting of K, Li, Na, Mg, La, Ce, Ca, Sr, Ba, Al, Ag, In, Sn, Zn, Zr, alloys thereof, and mixtures thereof, forms said first electrode over said core, and has a thickness in a range from about 50 nm to about 500 nm; said at least one organic EL material is selected from the group consisting of poly(n-vinylcarbazole), poly(alkylfluorene), poly(paraphenylene), polysilanes, derivatives thereof, mixtures thereof, copolymers thereof, 1,3,5-tris[n-(4-diphenylaminophenyl)phenylamino] benzene, phenylanthracene, tetraarylethene, coumarin, rubrene, tetraphenylbutadiene, anthracene, perylene, coronene, aluminum-(picolymethylketone)-bis[2,6-di9t-butyl)phenoxide, scandium-(4-methoxy-picolymethylketone)-bis(acetylacetonate), aluminum-acetylacetonate, gallium-acetylacetonate, and indium-acetylacetonate; said at least one layer of said organic EL material has a thickness in a range from about 100 nm to about 300 nm; said phosphor is selected from the group consisting of inorganic and organic phosphors and absorbs EM radiation emitted by said organic EL material in a first wavelength range and emits EM radiation in a second wavelength range; said second electrically conducting material is selected from the group consisting of ITO, tin oxide, indium oxide, zinc oxide, indium zinc oxide, and mixtures thereof; said second electrode layer has a thickness in a range from about 50 nm to about 200 nm; said at least one barrier layer comprising a plurality of alternating sublayers of at least a polymeric material that is selected from the group consisting of polyacrylates, poly(vinyl fluoride), poly(vinylidene chloride), poly(vinyl alcohol), polyethyleneterephthalate, copolymer of vinyl alcohol and glypxal, and mixtures thereof and sublayers of at least an inorganic material that is selected from the group consisting of metals, metal oxides, and metal nitrides; and said encapsulating layer comprises a material selected from the group consisting of silicone and epoxy.
- 38. A method for making a flexible OLEF, said method comprising the steps of:
(1) providing an elongated fiber core of a core material that comprises a first electrically conducting material that forms a first electrode; (2) depositing at least one layer of at least one organic EL material on said first electrode; (3) depositing a layer of a second electrically conducting material on at least a portion of said at least one layer of said at least one organic EL material to form a second electrode; and (4) depositing a barrier layer over said second electrode such that said barrier layer surrounds said second electrode and said organic EL material, said barrier layer comprising a plurality of sublayers of a polymeric material and an inorganic material.
- 39. The method according claim 38, wherein said barrier layer is formed by depositing alternating sublayers of said polymeric material and said inorganic material.
- 40. The method according claim 38 further comprising the step of depositing an encapsulating layer around said barrier layer.
- 41. The method according claim 40, wherein said encapsulating layer comprises a material selected from the group consisting of silicone and epoxy.
- 42. The method according claim 38, wherein said elongated fiber core has a structure selected from the group consisting of fiber, cable, and wire and comprises a core material selected from the group consisting of glass, polymers, metals, and composites thereof.
- 43. The method according to claim 42, wherein said core has a largest dimension of a cross section in a range from about 1 micrometer to about 10 mm.
- 44. The method according to claim 43, wherein said largest dimension is preferably in a range from about 10 micrometers to about 2 mm, more preferably from about 100 micrometers to about 1 mm.
- 45. The method according to claim 42, wherein said elongated fiber core comprises said structure on which said first electrically conducting material is deposited.
- 46. The method according to claim 45, wherein said first electrically conducting material is selected from the group consisting of K, Li, Na, Mg, La, Ce, Ca, Sr, Ba, Al, Ag, In, Sn, Zn, Zr, alloys thereof, and mixtures thereof.
- 47. The method according to claim 45, wherein said first electrically conducting material is formed in a layer having a thickness in a range from about 50 nm to about 500 nm.
- 48. The method according to claim 47, wherein said thickness is preferably in a range from about 50 nm to about 200 nm.
- 49. The method according to claim 38, wherein said at least one organic EL material is selected from the group consisting of poly(n-vinylcarbazole), poly(alkylfluorene), poly(paraphenylene), polysilanes, derivatives thereof, mixtures thereof, and copolymers thereof.
- 50. The method according to claim 38, wherein said at least one organic EL material is selected from the group consisting of 1,3,5-tris[n-(4-diphenylaminophenyl)phenylamino] benzene, phenylanthracene, tetraarylethene, coumarin, rubrene, tetraphenylbutadiene, anthracene, perylene, coronene, aluminum-(picolymethylketone)-bis[2,6-di9t-butyl)phenoxide, scandium-(4-methoxy-picolymethylketone)-bis(acetylacetonate), aluminum-acetylacetonate, gallium-acetylacetonate, indium-acetylacetonate, and tris(8-quinolinolato)-aluminum III.
- 51. The method according to claim 50, wherein said at least one organic EL material is carried in a substantially transparent polymer.
- 52. The method according to claim 38, wherein said at least one layer of at least one organic EL material has a thickness from about 100 nm to about 300 nm.
- 53. The method according to claim 38, wherein said at least one layer of at least one organic EL material further comprises a phosphor material dispersed therein.
- 54. The method according to claim 53, wherein said phosphor absorbs a portion of EM radiation emitted by said at least one organic EL material in a first wavelength range and emits EM radiation in a second wavelength range.
- 55. The method according to claim 54, wherein said phosphor is selected from the group consisting of (Y1-x-yCex)3Al5O12; (Y1-x-yGdxCey)3Al5O12; (Y1-xCex)3(Al1-yGay)O12; (Y1-x-yGdxCey)(Al5-zGaz)O12; (Gd1-xCex)Sc2Al3O12; Ca8Mg(SiO4)4Cl2:Eu2+,Mn2+; GdBO3:Ce3+, Tb3+; CeMgAl11O19:Tb3+; Y2SiO5:Ce3+,Tb3+; BaMg2Al16O27:Eu2+,Mn2+; Y2O3:Bi3+,Eu3+; Sr2P2O7:Eu2+,Mn2+; SrMgP2O7:Eu2+,Mn2+; (Y,Gd)(V,B)O4:Eu3+; 3.5MgO·0.5MgF2.GeO2:Mn4+; BaMg2Al16O27:Eu2+; Sr5(PO4)10Cl2:Eu2+; and mixtures thereof; wherein 0≦x≦1, 0≦y≦1, 0≦z≦5 and x+y<1.
- 56. The method according to claim 54, wherein said phosphor is selected from the group consisting of perylenes, benzopyrenes, coumarin dyes, polymethine dyes, xanthene dyes, oxobenzanthracene dyes, perylenebis(dicarboximide), pyrans, thiopyrans, and azo dyes.
- 57. The method according to claim 38 further comprising the step of disposing a wavelength-adjusting layer over said barrier layer, wherein said wavelength-adjusting layer comprises at least one phosphor dispersed in a polymeric material, and said at least one phosphor is selected from the group consisting of inorganic phosphors and organic phosphors.
- 58. The method according to claim 57, wherein said inorganic phosphors are selected from the group consisting of (Y1-xCex)3Al5O12; (Y1-x-yGdxCey)3Al5O12; (Y1-xCex)3(Al1-yGay)O12; (Y1-x-yGdxCey)(Al5-zGaz)O12; (Gd1-xCex)Sc2Al3O12; Ca8Mg(SiO4)4Cl2:Eu2+,Mn2+; GdBO3:Ce3+, Tb3+; CeMgAl11O19:Tb3+; Y2SiO5:Ce3+,Tb3+; BaMg2Al16O27:EU2+,Mn2+; Y2O3:Bi3+,Eu3+; Sr2P2O7:Eu2+,Mn2+; SrMgP2O7:Eu2+,Mn2+; (Y,Gd)(V,B)O4:Eu3+; 3.5MgO·0.5MgF2.GeO2:Mn4+; BaMg2Al16O27:Eu2+; Sr5(PO4)10Cl2:Eu2+; and mixtures thereof; wherein 0≦x≦1, 0≦y≦1, 0≦z≦5 and x+y<1.
- 59. The method according to claim 57, wherein said organic phosphors are selected from the group consisting of perylenes, benzopyrenes, coumarin dyes, polymethine dyes, xanthene dyes, oxobenzanthracene dyes, perylenebis(dicarboximide), pyrans, thiopyrans, and azo dyes.
- 60. The method according to claim 38, wherein the step of depositing at least one layer of at least one organic EL material comprises depositing a plurality of layers of organic EL materials, each layer being in contact with another layer, and each layer comprising a different organic EL material.
- 61. The method according to claim 38, wherein said second electrically conducting material is selected from the group consisting of ITO, tin oxide, indium oxide, zinc oxide, indium zinc oxide, and mixtures thereof.
- 62. The method according to claim 61 further comprising the step of disposing a layer of a metal between said second electrically conducting material and said at least one layer of at least one organic EL material, said metal being selected from the group consisting of Pt, Pd, Ag, Au, mixtures thereof, and alloys thereof.
- 63. The method according to claim 61, wherein said second electrode layer has a thickness in a range from about 50 nm to about 500 nm.
- 64. The method according to claim 63, wherein said thickness is preferably in a range from about 50 nm to about 200 nm.
- 65. The method according to claim 38, wherein said step of depositing at least one barrier layer comprises depositing a plurality of alternating sublayers of at least a polymeric material and at least an inorganic material.
- 66. The method according to claim 38, wherein said step of depositing at least one barrier layer comprises depositing a plurality of alternating sets of adjacent sublayers of polymeric materials and adjacent sublayers of inorganic materials.
- 67. The method according to claim 65, wherein said polymeric material is selected from the group consisting of polyacrylates, polyepoxides, poly(vinyl fluoride), poly(vinylidene chloride), poly(vinyl alcohol), polyethyleneterephthalate, copolymer of vinyl alcohol and glyoxal, parylenes, polymers derived from cycloolefins and their derivatives, and mixtures thereof.
- 68. The method according to claim 65, wherein said inorganic material is selected from the group consisting of metals, metal oxides, and metal nitrides.
- 69. The method according to claim 68, wherein said metals are selected from the group consisting of aluminum, silver, copper, gold, platinum, palladium, and alloys thereof.
- 70. The method according to claim 68, wherein said metal oxides are selected from the group consisting of ITO, tin oxide, silicon oxides, cadmium oxide, indium oxide, zinc oxide, aluminum oxide, magnesium oxide, composites thereof, and solutions thereof.
- 71. The method according to claim 68, wherein said metal nitrides are selected from the group consisting of nitrides of Groups IVA, VA, VIA, IIIB, and IVB of the Periodic Table.
- 72. The method according to claim 71, wherein said metal nitrides are selected from the group consisting of silicon nitride and silicon oxynitride.
- 73. A continuous process for making a flexible OLEF, said process comprising the steps of:
(1) winding from a first spool to a second spool a flexible fiber core comprising a first electrically conducting material that forms a first electrode; (2) depositing at least one layer of at least one organic EL material over said first electrode while said fiber core travels from said first spool to said second spool, thereby forming a fiber of a first stage; (3) depositing a second electrically conducting material on at least a portion of a surface of said at least one layer of said at least one organic EL material while said fiber core travels from said first spool to said second spool, thereby forming a fiber of a second stage; and (4) depositing a barrier layer comprising a plurality of sublayers of at least one polymeric material and at least one inorganic material over an entire surface of said fiber of the second stage.
- 74. The process according to claim 73, wherein said step of depositing said barrier layer comprises depositing alternating sublayers of said polymeric material and said inorganic material.
- 75. The process according to claim 73, wherein said step of depositing said barrier layer comprises depositing alternating sets of adjacent sublayers of polymeric materials and adjacent sublayers of inorganic materials.
- 76. An apparatus for a continuous fabrication of a flexible OLEF, said apparatus comprising:
(1) means for winding a flexible fiber core member from a first spool to a second spool, said fiber core comprising a first electrically conducting material; (2) first means for depositing at least one layer of at least one organic EL material over said fiber core member to form a fiber of a first stage while said fiber core member travels from said first spool to said second spool; (3) second means for depositing a second electrically conducting material on at least a portion of said at least one layer of said at least one organic EL material to form a fiber of a second stage while said fiber of the first stage travels from said first spool to said second spool; and (4) third means for depositing a barrier layer comprising a plurality of sublayers of a polymeric material and an inorganic material over said fiber of the second stage while said fiber of the second stage travels from said first spool to said second spool.
- 77. The apparatus according to claim 76, wherein said barrier layer comprises alternating sublayers of said polymeric material and said inorganic material.
- 78. The apparatus according to claim 76, wherein said barrier layer comprises alternating sets of adjacent sublayers of polymeric materials and adjacent sublayers of inorganic materials.
- 79. The apparatus according to claim 76, wherein said first, second, and third means for depositing comprise deposition zones and associated equipment for supplying materials for deposition on said fiber.
- 80. A display comprising at least one OLEF according to claim 1.
- 81. A display comprising at least one OLEF according to claim 2.
- 82. A display comprising at least one OLEF according to claim 19.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This patent application is related to patent application Ser. No. 09/640,950 (Attorney docket number RD-28253), entitled “An OLED Fiber Light Source,” filed on Aug. 17, 2000.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09683139 |
Nov 2001 |
US |
Child |
10846878 |
May 2004 |
US |