Claims
- 1. An electroluminescent article for generating light upon application of an electrical potential across two electrodes, said article comprising:
an anode; a plurality of molecular conductive layers, one of said layers coupled to said anode with silicon-oxygen bonds and said conductive layers coupled one to another with silicon-oxygen bonds; a cathode in electrical contact with said conductive layers; and a molecular charge control layer coupled with silicon-oxygen bonds to one of said electrodes or said conductive layers, said control layer having a predetermined spatial distribution of molecular components.
- 2. The article of claim 1 wherein said charge control layer has a pattern of molecular components, said pattern defining at least one opening through said charge control layer.
- 3. The article of claim 2 having a pixel array.
- 4. The article of claim 2 wherein said patterned charge control layer is coupled to said anode.
- 5. The article of claim 4 wherein said patterned charge control layer is coupled to one of said conductive layers, said layers selected from the group consisting of hole transport, electron transport and emissive layers.
- 6. The article of claim 1 wherein each of said control layer molecular components has a silicon moiety.
- 7. The article of claim 6 wherein said silicon moiety is a halogenated silane, and each said silicon-oxygen bond is obtained from the condensation reaction of said silane with a hydroxy functionality.
- 8. The article of claim 6 wherein each of said control layer molecular components has a hydrophobic terminus.
- 9. The article of claim 1 wherein said anode comprises a substrate having a hydroxylated surface portion.
- 10. An organic electroluminescent article for controlled light emission upon application of an electrical potential across two electrodes, said article comprising a conductive layer, an electrode having a surface portion in electrical contact with said conductive layer, and a patterned molecular layer having a spatial distribution of molecular components coupled to one of said electrodes or said conductive layer.
- 11. The article of claim 10 wherein said patterned layer defines at least one opening to said electrode.
- 12. The article of claim 11 having a pixel array.
- 13. The article of claim 10 wherein each of said patterned layer molecular components has a silicon moiety.
- 14. The article of claim 13 wherein said silicon moiety is a halogenated silane, and each said silicon-oxygen bond is obtained from the condensation reaction of said silane with a hydroxy functionality.
- 15. The article of claim 13 wherein each of said patterned layer molecular components has a hydrophobic terminus.
- 16. The article of claim 10 wherein said conductive layer is coupled to said electrode with silicon-oxygen bonds, said conductive layer comprising molecular components and each said component having at least two silicon moieties.
- 17. The article of claim 16 wherein said conductive layer comprises a plurality of sublayers of molecular components, each said molecular component having at least two silicon moieties, and said sublayers coupled one to another with silicon-oxygen bonds.
- 18. A method of using the silicon molecular components of a luminescent medium to control charge migration and light emission within an electroluminescent device, said method comprising:
coupling an organic luminescent medium adjacent to an anode, said medium having a plurality of silicon molecular components and a predetermined spatial distribution of said components therein, said medium coupled to said anode with silicon-oxygen bonds; providing said medium adjacent said anode at least one of a hole injection zone and a hole transport zone; and migrating positive charge carriers through said medium for emissive interaction with negative charge carriers generated by said device.
- 19. The method of claim 18 wherein said hole transport zone includes a plurality of molecular components, each said component having at least two silicon moieties reactive with said anode to form silicon-oxygen bonds between said anode and said hole transport zone.
- 20. The method of claim 18 wherein said luminescent medium is modified by a pattern of silane molecular components on said anode.
- 21. The method of claim 20 wherein said pattern defines exposed surface areas of said anode.
- 22. The method of claim 21 wherein said pattern provides a pixel array.
- 23. A method of using molecular distribution to control the turn-on voltages and light emission of an electroluminescent device, said method comprising:
providing a first electrode; coupling a conductive layer to said electrode, said conductive layer comprising molecular components distributed on said electrode; providing a second electrode in electrical contact with said conductive layer; and contacting a control layer on one of said electrodes or said conductive layer in a predetermined pattern of molecular components, said pattern defining at least one opening through said control layer.
- 24. The method of claim 23 wherein said patterned control layer is printed with a stamp having a relief structure in a contacting surface of said stamp.
- 25. The method of claim 24 wherein said pattern of molecular components has a plurality of openings defining a pixel array.
- 26. The method of claim 25 wherein said conductive molecular components are distributed in said openings of said control layer for charge migration through said pixel array.
- 27. The method of claim 23 wherein each of said control layer molecular components has a reactive silicon moiety and a hydrophobic terminus.
- 28. The method of claim 27 wherein said control layer contact provides silicon-oxygen bonds.
- 29. The method of claim 28 wherein said control layer contacts said conductive layer, said layer selected from the group consisting of hole transport, election transport and emissive layers.
- 30. The method of claim 23 further including adjustment of voltage to increase light emission through said control layer opening.
- 31. The method of claim 30 wherein higher voltage increases hole injection.
- 32. The method of claim 31 wherein increasing voltage injects holes through said control layer to provide light emission throughout said conductive layer.
Government Interests
[0001] This invention was conceived under grant from the Office of Naval Research through the Center for Advanced Multi-Functional Nonlinear Optical Polymers and Molecular Assemblies (“CAMP”), grant no. MURI N00014-95-1-1319, and from the National Science Foundation, grant no. DMR-9632472. The U.S. Government retains certain rights in this invention pursuant to such finding.
Continuation in Parts (2)
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Number |
Date |
Country |
Parent |
08673600 |
Jun 1996 |
US |
Child |
09360249 |
Jul 1999 |
US |
Parent |
09187891 |
Nov 1998 |
US |
Child |
08673600 |
Jun 1996 |
US |