Claims
- 1. An electron collector having an anode constituted by a substrate on which are deposited conductive strips each of which can be raised to a variable potential to bring them into a collecting or non-collecting state, each of the strips having a central portion defined by edges, wherein a dielectric material layer is deposited on at least one edge of each conductive strip, the dielectric material having a thickness of less than about 5 micrometers and a dielectric constant permitting, compared to a conductive strip on which no dielectric material is deposited, a reduction of an electric field at the at least one edge, the dielectric material layer also having visible light-absorbing properties.
- 2. The electron collector according to claim 1, wherein a dielectric material layer is deposited on each edge of each conductive strip, the dielectric material having a dielectric constant permitting, compared to a conductive strip on which no dielectric layer is deposited, a reduction of an electric field at each edge, the dielectric material layers also having visible light-absorbing properties.
- 3. The electron collector according to claim 1, wherein the dielectric material layer extends beyond the edge of the conductive strip on which it is deposited and encroaching on the central portion of the conductive strip.
- 4. The electron collector according to claim 1, the dielectric layer also extending from the edge of the conductive strip with which it is in contact to the edge of an adjacent conductive strip.
- 5. The electron collector according to claim 1, the dielectric material layer being of silica.
- 6. The electron collector according to claim 2, the dielectric material layer extending beyond the edge of the conductive strip on which it is deposited and encroaching on the central portion of said strip.
- 7. The electron collector according to claim 2, the dielectric material layer also extending from the edge of the strip with which it is in contact to the edge of the adjacent strip.
- 8. The electron collector of claim 1, wherein adjacent conductive strips are separated by a distance of approximately 50 .mu.m.
- 9. The electron collector of claim 1, wherein the dielectric being deposited by chemical vapour deposition (CVD).
- 10. The electron collector of claim 1, wherein the dielectric material has a thickness of approximately 1 .mu.m.
- 11. A microtip fluorescent screen assembly for a matrix display device, the screen assembly including an electron emitting cathode and an electron collector having an anode constituted by a substrate on which are deposited conductive strips each of which can be raised to a variable potential to bring them into a collecting or non-collecting state, each of the said strips having a central portion defined by edges, wherein a dielectric material layer is deposited on at least one edge of each conductive strip, the dielectric material having a thickness of less than about 5 micrometers and a dielectric constant permitting, compared to a conductive strip on which no dielectric material is deposited, a reduction of an electric field at the at least one edge, the dielectric material layers also having visible light-absorbing properties.
- 12. The microtip fluorescent screen of claim 11, wherein adjacent conductive strips are separated by a distance of approximately 50 .mu.m.
- 13. The microtip fluorescent screen of claim 11, wherein the dielectric material layer extends beyond the edge of the conductive strip on which it is deposited and encroaching on the central portion of the conductive strip.
- 14. The microtip fluorescent screen of claim 11, wherein the dielectric layer also extending from the edge of the conductive strip with which it is in contact to the edge of an adjacent conductive strip.
- 15. The microtip fluorescent screen of claim 11, wherein the dielectric material layer being of silica.
- 16. The microtip fluorescent screen assembly of claim 11, wherein the dielectric material is deposited by chemical vapour deposition (CVD).
- 17. The microtip fluorescent screen assembly of claim 11, wherein the dielectric material has a thickness of approximately 1 .mu.m.
- 18. A microtip fluorescent screen assembly for a matrix display device, the screen having an electron cathode and an electron collector having an anode constituted by a substrate on which are deposited conductive strips each of which can be raised to a variable potential to bring them into a collecting or non-collecting state, each of the strips having a central portion defined by edges, wherein a dielectric material layer is deposited on each edge of each conductive strip, the dielectric material having a thickness of less than about 5 micrometers and a dielectric constant permitting, compared to a conductive strip on which no dielectric material is deposited, a reduction of an electric field at the at least one edge, the dielectric material layers also having visible light-absorbing properties.
- 19. The microtip fluorescent screen of claim 18, wherein the dielectric material layer extends beyond the edge of the conductive strip on which it is deposited and encroaches on the central portion of said strip.
- 20. The microtip fluorescent screen of claim 18, wherein the dielectric material layer extends from the edge of the strip with which it is in contact to the edge of an adjacent strip.
- 21. An electron collector, comprising:
- an anode constituted by a substrate on which are deposited conductive strips, defining interstrip spaces between them, each of which can be raised to a variable potential to bring it into a collecting or non-collecting state, each of the strips having a central portion defined by edges,
- wherein a dielectric material layer is deposited on at least one edge of each conductive strip, the dielectric material having a thickness of less than about 5 micrometers and a dielectric constant permitting, compared to the case where no dielectric material is deposited, a reduction of an electric field at the at least one edge, a free surface of said dielectric material opposite to the substrate having a reduced area compared to an area of the interstrip space.
- 22. The electron collector of claim 21, wherein the dielectric material does not extend into the interstrip space.
- 23. The electron collector of claim 21, wherein the dielectric material is partly covered by a visible light absorbing material.
- 24. The electron collector of claim 23, said visible light absorbing material being black chromium oxide.
- 25. The electron collector of claim 21, wherein the dielectric material is totally covered by a visible light absorbing material.
- 26. The electron collector of claim 21, wherein the dielectric material extends beyond the edge of the conductive strip on which it is deposited and encroaches on the central portion of the strip.
- 27. The electron collector of claim 21, wherein said dielectric material is deposited on each edge of each conductive strip, the dielectric material having a dielectric constant permitting, compared to a conductive strip on which no dielectric layer is deposited, a reduction of an electric field at each edge.
- 28. The electron collector of claim 21, wherein the dielectric material is of silica.
- 29. A microtip fluorescent screen assembly for a matrix display device, comprising:
- an electron emitting cathode; and
- an electron collector having an anode constituted by a substrate on which are deposited conductive strips, defining interstrip spaces between them, each of which can be raised to a variable potential to bring them into a collecting or non-collecting state, each of the strips having a central portion defined by edges, wherein
- a dielectric material layer is deposited on at least one edge of each conductive strip, the dielectric material having a thickness of less than about 5 micrometers and a dielectric constant permitting, compared to a conductive strip on which no dielectric material is deposited, a reduction of an electric field at the at least one edge, a free surface of said dielectric material opposite to the substrate having a reduced area compared to an area of the interstrip space.
- 30. The microtip fluorescent screen assembly of claim 29, wherein the dielectric material does not extend into the interstrip space.
- 31. The microtip fluorescent screen assembly of claim 30, wherein the dielectric material is of silica.
- 32. The microtip fluorescent screen assembly of claim 29, wherein the dielectric material is partly covered by a visible light-absorbing material.
- 33. The microtip fluorescent screen assembly of claim 32, wherein the visible light absorbing material is black chromium oxide.
- 34. The microtip fluorescent screen assembly of claim 29, wherein the dielectric material is completely covered by a visible light-absorbent material.
- 35. The microtip fluorescent screen assembly of claim 29, wherein the dielectric material extends beyond the edge of the conductive strip on which it is deposited and encroaches on the central portion of the strip.
- 36. The microtip fluorescent screen assembly of claim 29, wherein the dielectric material is deposited on each edge of each conductive strip.
- 37. An electron collector, comprising:
- an anode constituted by a substrate on which are deposited conductive strips each of which can be raised to a variable potential to bring it into a collecting or non-collecting state, each strip having a central portion defined by edges, wherein
- a dielectric material layer is deposited on at least one edge of each conductive strip, the dielectric material having a thickness of less than about 5 micrometers and a dielectric constant permitting, compared to the case where no dielectric material is deposited, a reduction of an electric field at the at least one edge.
- 38. The electron collector of claim 37, wherein a dielectric material layer is deposited on each edge of each conductive strip, each dielectric material layer having a dielectric constant permitting, compared to a conductive strip on which no dielectric layer is deposited, a reduction of an electric field at each edge.
- 39. The electron collector of claim 37, wherein the dielectric material layer extends beyond the edge of the conductive strip on which it is deposited and encroaches on the central portion of the conductive strip.
- 40. The electron collector of claim 37, wherein the dielectric layer also extends from the edge of the conductive strip with which it is in contact to the edge of an adjacent conductive strip.
- 41. The electron collector of claim 37, wherein the dielectric material is of silica.
- 42. The electron collector of claim 38, wherein the dielectric material layer extends beyond the edge of the conductive strip on which it is deposited and encroaches on the central portion of said strip.
- 43. The electron collector of claim 38, wherein the dielectric material layer also extends from the edge of the strip with which it is in contact to the edge of the adjacent strip.
- 44. The electron collector as in claim 37, wherein adjacent conductive strips are separated by a distance of approximately 50 .mu.m.
- 45. The electron collector of claim 37, wherein the dielectric material layer has light-absorbing properties.
- 46. The electron collector of claim 37, wherein a visible light-absorbing material is deposited on the dielectric material layer.
- 47. The electron collector of claim 46, wherein the visible light-absorbing material being black chromium oxide.
- 48. The electron collector of claim 37, wherein the dielectric material layer is deposited by chemical vapour deposition (CVD).
- 49. A microtip fluorescent screen assembly for a matrix display device, comprising:
- an electron emitting cathode; and
- an electron collector having an anode constituted by a substrate on which are deposited conductive strips each of which can be raised to a variable potential to bring them into a collecting or non-collecting state, each of the strips having a central portion defined by edges,
- wherein a dielectric material layer is deposited on at least one edge of each conductive strip, the dielectric material having a thickness of less than about 5 micrometers and having a dielectric constant permitting, compared to a conductive strip on which no dielectric material is deposited, a reduction of an electric field at the at least one edge.
- 50. The microtip fluorescent screen assembly of claim 49, wherein a dielectric material layer is deposited on each edge of each conductive strip, each dielectric material layer having a dielectric constant permitting, compared to conductive strip on which no dielectric material is deposited, a reduction of an electric field at the at least one edge.
- 51. The microtip fluorescent screen assembly of claim 50, wherein the dielectric material layer extends beyond the edge of the conductive strip on which it is deposited and encroaches on the central portion of said strip.
- 52. The microtip fluorescent screen assembly of claim 50, wherein the dielectric material layer also extends from the edge of the strip with which it is in contact to the edge of the adjacent strip.
- 53. The microtip fluorescent screen assembly of claim 49, wherein adjacent conductive strips are separated by a distance of approximately 50 .mu.m.
- 54. The microtip fluorescent screen assembly of claim 49, wherein the dielectric material layer extends beyond the edge of the conductive strip on which it is deposited and encroaches on the central portion of the conductive strip.
- 55. The microtip fluorescent screen assembly of claim 49, wherein the dielectric layer also extending from the edge of the conductive strip with which it is in contact to the edge of an adjacent conductive strip.
- 56. The microtip fluorescent screen assembly of claim 49, wherein the dielectric material layer is of silica.
- 57. The microtip fluorescent screen assembly of claim 49, wherein the dielectric material layer has light-absorbing properties.
- 58. The microtip fluorescent screen assembly of claim 49, wherein a visible light-absorbing material is deposited on the dielectric material layer.
- 59. The microtip fluorescent screen assembly of claim 58, wherein the visible light-absorbing material is black chromium oxide.
- 60. The microtip fluorescent screen assembly of claim 49, wherein the dielectric material is deposited by chemical vapour deposition (CVD).
Parent Case Info
This application is a continuation of application Ser. No. 08/352,812, filed Dec. 1, 1994 now abandoned.
US Referenced Citations (12)
Foreign Referenced Citations (1)
Number |
Date |
Country |
0635865A1 |
Jan 1995 |
EPX |
Non-Patent Literature Citations (1)
Entry |
Morimoto et al, "320x200-Pixel Color Graphic FLVFD", Japan Display '86, pp. 516-519 No month. |
Continuations (1)
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Number |
Date |
Country |
Parent |
352812 |
Dec 1994 |
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