Claims
- 1. A method for forming a layer of polymeric electroluminescent material having a controlled thickness and surface uniformity comprising the steps of:
(a) delivering a polymeric electroluminescent material to a vessel; (b) delivering a fluid to the vessel; (c) compressing and heating the fluid and the polymeric electroluminescent material in the vessel to form a thermodynamically stable or metastable mixture; (d) spraying the thermodynamically stable or metastable mixture at a surface, the fluid vaporizing; and (e) depositing the polymeric electroluminescent material as a light emitting layer on the surface.
- 2. A method as recited in claim 1 further comprising the step of:
mixing the polymeric electroluminescent material and the fluid in the vessel.
- 3. A method as recited in claim 1 wherein:
the thermodynamically stable or metastable mixture is a molecular aggregate of the polymeric electroluminescent material and the fluid or a solution of the polymeric electroluminescent material and the fluid.
- 4. A method as recited in claim 1 further comprising the step of:
delivering at least one additional functional material to the vessel.
- 5. A method as recited in claim 1 wherein:
the fluid in the vessel after the compressing and heating step is supercritical.
- 6. A method as recited in claim 1 further comprising the step of:
(a) applying a first electrode to the surface prior to the spraying step; and (b) applying a hole transporting layer to the first electrode prior to the spraying step.
- 7. A method as recited in claim 6 further comprising the step of:
applying a hole injecting layer to the first electrode prior to the spraying step, the hole injecting layer residing between the first electrode and the hole transporting layer.
- 8. A method as recited in claim 6 further comprising the step of:
(a) applying an electron-transporting layer to the light emitting layer; and (b) applying a second electrode on top of the electron-transporting layer to yield a solid state lighting device.
- 9. A method as recited in claim 8 further comprising the step of:
applying a hole injecting layer to the first electrode prior to the spraying step, the hole injecting layer residing between the first electrode and the hole transporting layer.
- 10. A method as recited in claim 8 further comprising the step of:
encapsulating the solid state lighting device.
- 11. A method for forming on a substrate a light emitting layer having a controlled thickness and surface uniformity comprising the steps of:
(a) delivering an polymeric electroluminescent material to a vessel; (b) delivering a fluid to the vessel: (c) compressing the fluid to a predetermined pressure either in the vessel or prior to the delivering step; (d) heating the fluid and the polymeric electroluminescent material in the vessel to a predetermined temperature; (e) directing a spray of the fluid and the polymeric electroluminescent material at a surface of the substrate; (f) vaporizing the fluid; and (g) depositing the polymeric electroluminescent material as a layer on the surface of the substrate thereby forming the light emitting layer thereon.
- 12. A method as recited in claim 11 further comprising the step of:
mixing the polymeric electroluminescent material and the fluid in the vessel.
- 13. A method as recited in claim 11 wherein:
the thermodynamically stable or metastable mixture is a molecular aggregate of the polymeric electroluminescent material and the fluid or a solution of the polymeric electroluminescent material and the fluid.
- 14. A method as recited in claim 11 further comprising the step of:
delivering at least one additional functional material to the vessel.
- 15. A method as recited in claim 11 wherein:
the fluid in the vessel after the compressing and heating step is supercritical.
- 16. A method as recited in claim 11 further comprising the step of:
(a) applying a first electrode to the surface prior to the spraying step; and (b) applying a hole transporting layer to the first electrode prior to the spraying step.
- 17. A method as recited in claim 16 further comprising the step of:
applying a hole injecting layer to the first electrode prior to the spraying step, the hole injecting layer residing between the first electrode and the hole transporting layer.
- 18. A method as recited in claim 16 further comprising the step of:
(a) applying an electron-transporting layer to the light emitting layer; and (b) applying a second electrode on top of the electron-transporting layer to yield a solid state lighting device.
- 19. A method as recited in claim 18 further comprising the step of:
applying a hole injecting layer to the first electrode prior to the spraying step, the hole injecting layer residing between the first electrode and the hole transporting layer.
- 20. A method as recited in claim 18 further comprising the step of:
encapsulating the solid state lighting device.
- 21. A method as recited in claim 1 further comprising the steps of:
(a) depositing the polymeric electroluminescent material as at least two stacked light emitting organic units of nanoparticulates on the surface; and (b) providing a doped organic conductor disposed between adjacent light emitting organic units.
- 22. A method as recited in claim 11 further comprising the steps of:
(a) depositing the polymeric electroluminescent material as at least two stacked light emitting organic units of nanoparticulates on the surface; and (b) providing a doped organic conductor disposed between adjacent light emitting organic units.
- 23. A solid state lighting device comprising:
at least one light emitting layer formed by the method of claim 11.
- 24. A solid state lighting device comprising:
at least one light emitting layer formed by the method of claim 1.
- 25. A method as recited in claim 11 wherein:
the surface of the substrate is planar.
- 26. A method as recited in claim 11 wherein:
the surface of the substrate is non-planar.
- 27. A method as recited in claim 11 wherein:
the substrate is flexible.
- 28. A method as recited in claim 1, wherein the polymeric electroluminescent materials are substituted and unsubstituted poly(p-phenylenevinylene) derivatives, substituted and unsubstituted poly(p-phenylene) derivatives, substituted and unsubstituted polyfluorene derivatives, substituted and unsubstituted poly(p-pyridine), substituted and unsubstituted poly(p-pyridalvinylene) derivatives, substituted and unsubstituted poly(p-phenylene) ladder and step-ladder polymers, substituted and unsubstituted poly(arylamines).
- 29. A method as recited in claim 1, wherein the polymeric electroluminescent materials is a combination of more than one small molecule and polymeric material.
- 30. A method as recited in claim 1, wherein the polymeric electroluminescent materials is a blend of two or more polymeric materials.
- 31. A method as recited in claim 1, wherein the polymeric electroluminescent materials is a doped polymeric material or doped polymer blend.
- 32. A method for forming a layer of polymeric electroluminescent material having a controlled thickness and surface uniformity comprising the steps of:
(a) delivering a polymeric electroluminescent material to a vessel; (b) delivering a fluid to the vessel; (c) compressing and heating the fluid and the polymeric electroluminescent material in the vessel to form a thermodynamically stable or metastable mixture; (d) spraying the thermodynamically stable or metastable mixture at a surface, the fluid vaporizing; and (e) depositing the polymeric electroluminescent material as a light emitting layer of nanoparticulates on the surface.
- 33. A method for forming a layer of polymeric electroluminescent material having a controlled thickness and surface uniformity comprising the steps of:
(a) delivering a polymeric electroluminescent material to a vessel; (b) delivering a fluid to the vessel; (c) compressing and heating the fluid and the polymeric electroluminescent material in the vessel to form a thermodynamically stable or metastable mixture; (d) spraying the thermodynamically stable or metastable mixture at a surface, the fluid vaporizing; and (e) depositing the polymeric electroluminescent material as a light emitting film on the surface.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This is a continuation-in-part of U.S. patent application Ser. No. 10/244,783, filed Aug. 21, 2002 and entitled SOLID STATE LIGHTING USING COMPRESSED FLUID COATINGS by Jagannathan, et al.
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
10224783 |
Aug 2002 |
US |
Child |
10300099 |
Nov 2002 |
US |