Claims
- 1. A field emissive display, comprising:
a) at least one electron emission electrode controlled by at least one orthogonal extraction electrode; b) at least one fiber containing at least one high voltage electrode and at least one phosphor emissive layer; and c) at least one spacer fiber used to support the structure of said field emissive display under high vacuum.
- 2. A field emissive display of claim 1, wherein at least one extraction electrode is used to control emission of electrons from said at least one electron emission electrode and is contained within or composed on a surface of said at least one spacer fiber.
- 3. A field emissive display of claim 1, wherein said spacer fiber and said at least one fiber containing said high voltage electrode and phosphor emissive layer is combined and comprises at least one extraction electrode used to control emission of electrons from said at least on electron emission electrode.
- 4. A field emissive display of claim 1, wherein said at least one electron emission electrode is coated with an electron emissive layer.
- 5. A field emissive display of claim 4, wherein said at least one electron emission electrode is comprised of a metal wire electrode coated with said emissive layer.
- 6. A field emissive display of claim 4, wherein said emissive layer is composed of carbon nanotubes.
- 7. A field emissive display of claim 4, wherein said emissive layer is composed of a diamond like carbon coating.
- 8. A field emissive display of claim 4, further comprising adding a resistive layer between said electrode and said electron emissive layer.
- 9. A field emissive display of claim 4, further comprising separating at least two electron emission electrodes with a non-conductive fiber.
- 10. A field emissive display of claim 1, further comprising a getter material to maintain a low vacuum within said field emissive display.
- 11. A field emissive display of claim 10, further comprising coating said getter material on a conductive wire.
- 12. A field emissive display of claim 10, wherein said getter material is combined with a spacer material separating said electron emission electrodes.
- 13. A field emissive display of claim 10, wherein said getter material is combined with said high voltage electrodes.
- 14. A field emissive display of claim 10, wherein said getter material can be heated to cause at least one of the following:
a) evaporate at least part of said getter material; or b) desorb molecules from said getter material.
- 15. A field emissive display of claim 10, wherein said getter material is evaporated and covers said phosphor layer to cause at least one of the following:
a) creates a conductive path back to said high voltage electrodes; or b) reduced the amount of ion damage to said phosphor region; or c) reflects light at the phosphor getter interface.
- 16. A field emissive display of claim 1, wherein at least part of said at least one fiber containing said high voltage electrode and phosphor emissive layer is colored by one of the following:
a) adding the color directly to the composition of said fiber; or b) adding a color coating to the surface of said fiber.
- 17. A field emissive display of claim 1, wherein a black matrix material is added to at least part of said at least one fiber containing said high voltage electrode and phosphor emissive layer by using an absorbing material applied by on of the following:
a) adding the absorbing material directly to the composition of said fiber; or b) adding an absorbent coating to the surface of said fiber.
- 18. A field emissive display of claim 1, further comprising at least one focusing electrode contained within or on a surface of said spacer fiber.
- 19. A field emissive display of claim 1, further comprising at least one electron multiplier electrode.
- 20. A field emissive display of claim 1, further comprising adding structure to the surface of at least one region of said spacer fiber to reduce any secondary emitted electrons.
- 21. A field emissive display of claim 20, wherein said structure are protrusions from said surface with at least one surface of said protrusions being relatively normal to any impinging high-voltage electrons.
- 22. A field emissive display of claim 20, wherein said structure are protrusions that shadow the non-protruded surface of said spacer fiber from said high-voltage electrons.
- 23. A field emissive display of claim 20, wherein said structure is coated with a material having low secondary electron emission characteristics.
- 24. A field emissive display of claim 20, wherein said structure is coated with a conductive material to remove the charge from impinging electrons.
- 25. A field emissive display of claim 1, wherein the red, green and blue phosphor layer are sequentially illuminated by sequentially applying a high voltage to each corresponding said high voltage electrodes.
- 26. A field emissive display of claim 1, wherein said electron emission electrode contains a metal-insulator-metal cathode.
- 27. A field emissive display of claim 26, wherein said emission electrode is coated with a dielectric layer to form said metal-insulator-metal cathode.
- 28. A field emissive display of claim 26, wherein said emission electrode is coated with a thin metal layer form said metal-insulator-metal cathode.
- 29. A field emissive display of claim 28, wherein said thin metal layer is composed of small conductive regions that form a non-connected film.
- 30. A field emissive display of claim 26, wherein said at least on extraction electrode is contained within or composed on the surface of said at least one spacer fiber and is connected to the surface of the metal-insulating-metal cathode.
- 31. A method of creating a uniform specific gap between fibers in an electronic display comprising;
a) adding a material between said fibers to maintain a specific gap between said fiber; b) holding said fibers rigidly in place; and c) removing said material between said fibers.
- 32. A method of creating a uniform gap of claim 31, wherein removing said material is selected from a group consisting of:
a) mechanically pulling said material out from between said fibers; b) chemically removing said material from between said fibers; and c) thermally removing said material from between said fibers.
- 33. A method of fabricating fiber for an electronic display comprising:
a) drawing fiber from a preform; b) placing shape holding tool into the draw region to hold the shape of said preform/fiber during the draw process.
- 34. A method of fabricating fiber for field emission display where a sacrificial part of the fiber is used to hold the shape of the fiber during the fiber draw process an is subsequently removed using one of the follow processes:
a) chemically removed using a lost glass process; b) mechanically removed using a reaming tool; c) mechanically removed using a sacrificial wire and tearing said wire from said fiber.
REFERENCE TO RELATED APPLICATIONS
[0001] This application claims an invention which was disclosed in Provisional Application No. 60/186,024, filed Mar. 1, 2000, entitled “FIBER-BASED FIELD EMISSION DISPLAY”. The benefit under 35 USC §119(e) of the U.S. provisional application is hereby claimed, and the aforementioned application is hereby incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60186024 |
Mar 2000 |
US |