Claims
- 1. A method of achieving a variable resolution on a field emission display comprising:addressing a cathode half-pixel region of an emitter line of the field emission display, wherein the emitter line is segmented into a fixed number of cathode sub-pixel regions, each cathode sub-pixel region being defined as a portion of the emitter line between two adjacent gate wires of a plurality of gate wires of a gate frame that pass above the emitter line, wherein the cathode half-pixel region is defined as a portion of the emitter line occupying portions of two adjacent cathode sub-pixel regions, wherein providing the appearance of more than the fixed number of cathode sub-pixel regions.
- 2. The method of claim 1 wherein the addressing further comprises varying an intensity of the cathode half-pixel region of the field emission display.
- 3. The method of claim 1 wherein the addressing comprises:applying a positive voltage to a respective gate wire with respect to the emitter line; and applying a negative voltage to two gate wires adjacent to the respective gate wire with respect to the emitter line, wherein releasing electrons from the cathode half-pixel region of the emitter line.
- 4. The method of claim 3 further comprising applying a negative voltage to two emitter lines that are adjacent to the emitter line with respect to the emitter line, wherein biasing the electron release from the cathode half-pixel region.
- 5. The method of claim 1 further comprising:illuminating an anode half-pixel region of a phosphor line of the field emission display corresponding to the cathode half-pixel region of the emitter line, wherein the phosphor line is segmented into a fixed number of anode sub-pixel regions, each anode sub-pixel region being defined as a portion of the phosphor line corresponding to the portion of the emitter line between the two adjacent gate wires of the gate frame, wherein the anode half-pixel region is defined as a portion of the phosphor line occupying portions of two adjacent anode sub-pixel regions, wherein providing the appearance of more than the fixed number of anode sub-pixel regions.
- 6. A method of achieving a variable resolution on a field emission display comprising:addressing at least one cathode half-pixel region of a plurality of emitter lines of the field emission display, wherein each emitter line is segmented into a fixed number of cathode sub-pixel regions, each cathode sub-pixel region being defined as a portion of the emitter line between two adjacent gate wires of a plurality of gate wires of a gate frame that pass above the plurality of emitter lines, wherein each of the at least one cathode half-pixel region is defined as a portion of the emitter line occupying portions of two adjacent cathode sub-pixel regions, wherein providing the appearance of more than the fixed number of cathode sub-pixel regions.
- 7. The method of claim 6 wherein the addressing further comprises varying an intensity of the at least one cathode half-pixel region of the plurality of emitter lines of the field emission display.
- 8. The method of claim 6 wherein the addressing comprises:applying a respective positive voltage to respective gate wires with respect to corresponding ones of the plurality of emitter lines; and applying a respective negative voltage to respective adjacent gate wires that are adjacent to the respective gate wires with respect to the corresponding ones of the plurality of emitter lines, wherein releasing electrons from respective cathode half-pixel regions of the plurality of emitter lines.
- 9. The method of claim 8 further comprising applying a respective negative voltage to two emitter lines that are adjacent to the corresponding ones of the plurality of the emitter line with respect to the corresponding ones of the plurality of emitter lines, wherein biasing the electron release from the respective cathode half-pixel regions.
- 10. The method of claim 6 further comprising:illuminating at least one anode half-pixel region of a plurality of phosphor lines of the field emission display corresponding to the at least one cathode half-pixel region of the plurality of emitter lines, wherein each of the plurality of phosphor line is segmented into a fixed number of anode sub-pixel regions, each anode sub-pixel region being defined as a portion of the phosphor line corresponding to the portion of the emitter line between the two adjacent gate wires of the gate frame, wherein the anode half-pixel region is defined as a portion of the phosphor line occupying portions of two adjacent anode sub-pixel regions, wherein providing the appearance of more than the fixed number of anode sub-pixel regions.
- 11. A variable resolution field emission display comprising:means for addressing a cathode half-pixel region of an emitter line of the field emission display, wherein the emitter line is segmented into a fixed number of cathode sub-pixel regions, each cathode sub-pixel region being defined as a portion of the emitter line between two adjacent gate wires of a plurality of gate wires of a gate frame that pass above the emitter line, wherein the cathode half-pixel region is defined as a portion of the emitter line occupying portions of two adjacent cathode sub-pixel regions, wherein providing the appearance of more than the fixed number of cathode sub-pixel regions.
- 12. The display of claim 11 further comprising means for varying an intensity of the cathode half-pixel region of the field emission display.
- 13. The display of claim 11 wherein the means for addressing comprise:means for applying a positive voltage to a respective gate wire with respect to the emitter line; and means for applying a negative voltage to two gate wires adjacent to the respective gate wire with respect to the emitter line, wherein releasing electrons from the cathode half-pixel region of the emitter line.
- 14. The display of claim 13 further comprising means for applying a negative voltage to two emitter lines that are adjacent to the emitter line with respect to the emitter line, wherein biasing the electron release from the cathode half-pixel region.
- 15. The display of claim 11 further comprising:means for illuminating an anode half-pixel region of a phosphor line of the field emission display corresponding to the cathode half-pixel region of the emitter line, wherein the phosphor line is segmented into a fixed number of anode sub-pixel regions, each anode sub-pixel region being defined as a portion of the phosphor line corresponding to the portion of the emitter line between the two adjacent gate wires of the gate frame, wherein the anode half-pixel region is defined as a portion of the phosphor line occupying portions of two adjacent anode sub-pixel regions, wherein providing the appearance of more than the fixed number of anode sub-pixel regions.
- 16. A variable resolution field emission display comprising:means for addressing at least one cathode half-pixel region of a plurality of emitter lines of the field emission display, wherein each emitter line is segmented into a fixed number of cathode sub-pixel regions, each cathode sub-pixel region being defined as a portion of the emitter line between two adjacent gate wires of a plurality of gate wires of a gate frame that pass above the plurality of emitter lines, wherein each of the at least one cathode half-pixel region is defined as a portion of the emitter line occupying portions of two adjacent cathode sub-pixel regions, wherein providing the appearance of more than the fixed number of cathode sub-pixel regions.
- 17. A method of achieving a variable resolution on a field emission display comprising:addressing a cathode half-pixel region of an emitter line of the field emission display, the addressing comprising: applying a positive voltage to a respective gate wire of a plurality of gate wires of a gate frame with respect to the emitter line; and applying a negative voltage to two gate wires adjacent to the respective gate wire with respect to the emitter line, wherein releasing electrons from the cathode half-pixel region of the emitter line; wherein the emitter line is segmented into a fixed number of cathode sub-pixel regions, each cathode sub-pixel region being defined as a portion of the emitter line between two adjacent gate wires of a plurality of gate wires of a gate frame that pass above the emitter line, wherein the cathode half-pixel region is defined as a portion of the emitter line occupying portions of two adjacent cathode sub-pixel regions, wherein providing the appearance of more than the fixed number of cathode sub-pixel regions; and illuminating an anode half-pixel region of a phosphor line of the field emission display corresponding to the cathode half-pixel region of the emitter line, wherein the phosphor line is segmented into a fixed number of anode sub-pixel regions, each anode sub-pixel region being defined as a portion of the phosphor line corresponding to a respective cathode sub-pixel region, wherein the anode half-pixel region is defined as a portion of the phosphor line occupying portions of two adjacent anode sub-pixel regions, wherein providing the appearance of an additional anode sub-pixel region in between the two adjacent anode sub-pixel regions.
- 18. The method of claim 17 further comprising accelerating the electron release from the cathode half-pixel region to vary the intensity of the illuminating of the anode half-pixel region.
- 19. The method of claim 17 wherein the addressing further comprises applying a negative voltage to two emitter lines that are adjacent to the emitter line with respect to the emitter line, wherein biasing the electron release from the cathode half-pixel region.
- 20. A method of achieving a variable resolution on a field emission display comprising:defining a first resolution of the field emission display based upon a fixed number of cathode sub-pixel regions of a fixed number of emitter lines of a cathode substrate of the field emission display; defining a respective cathode sub-pixel region as a portion of a respective emitter line below and in between two adjacent gate wires passing over the respective emitter line; defining a second resolution of the field emission display based upon the fixed number of the cathode sub-pixel regions and a plurality of cathode half-pixel regions of the fixed number of the emitter lines of the cathode substrate of the field emission display; and defining a respective cathode half-pixel region as a portion of the respective emitter line occupying a portion of two adjacent cathode sub-pixel regions and appearing as being in between the two adjacent cathode sub-pixel regions.
- 21. The method of claim 20 wherein the defining the first resolution comprises defining the first resolution based upon a fixed number of anode sub-pixel regions of a fixed number of phosphor lines of an anode plate of the field emission display, wherein the fixed number of the anode sub-pixel regions correspond to the fixed number of the cathode sub-pixel regions of the fixed number of emitter lines.
- 22. The method of claim 21 wherein the defining the second resolution comprises defining the second resolution based upon the fixed number of the anode sub-pixel regions and a plurality of anode half-pixel regions of the fixed number of the phosphor lines of the anode plate, wherein the plurality of anode half-pixel regions correspond to the plurality of cathode half-pixel regions, wherein each of the plurality of anode half-pixel regions appears to be an additional anode sub-pixel region in between adjacent anode sub-pixel regions.
- 23. The method of claim 20 further comprising selecting the first resolution by addressing only respective ones of the fixed number of the cathode sub-pixel regions of the fixed number of emitter lines of the cathode substrate.
- 24. The method of claim 20 further comprising selecting the second resolution by addressing respective ones of the fixed number of the cathode sub-pixel regions and respective ones of the plurality of cathode half-pixel regions of the fixed number of the emitter lines of the cathode substrate.
- 25. A method of achieving a variable resolution on a field emission display comprising:addressing one or more of a plurality of cathode sub-pixel regions of an emitter line of the field emission display, wherein the emitter line is segmented into the plurality of cathode sub-pixel regions; causing an electron emission from the one or more of the plurality of cathode sub-pixel regions; illuminating one or more of a plurality of anode sub-pixel regions of a phosphor line of the field emission display, wherein the phosphor line is segmented into the plurality of anode sub-pixel regions, wherein a first resolution is defined based upon the plurality of anode sub-pixel regions; addressing one or more of a plurality of cathode half-pixel regions of the emitter line of the field emission display, wherein respective ones of the plurality of cathode half-pixel regions occupy portions of respective pairs of the plurality of cathode sub-pixel regions and appear to be in between the respective pairs of the plurality of cathode sub-pixel regions; causing an electron emission from the one or more of the plurality of cathode half-pixel regions; and illuminating one or more of a plurality of anode half-pixel regions of the phosphor line of the field emission display, wherein respective ones of the plurality of anode half-pixel regions occupy portions of respective pairs of the plurality of anode sub-pixel regions and appear to be in between the respective pairs of the plurality of anode sub-pixel regions, wherein a second resolution is defined based upon the plurality of anode sub-pixel regions and the plurality of anode half-pixel regions.
Parent Case Info
This patent document relates to field emission display (FED) devices described in the following patent documents filed concurrently herewith. The related patent documents, all of which are incorporated herein by reference, are:
U.S. patent application Ser. No. 09/877,443, of Russ, et al.; entitled FIELD EMISSION DISPLAY UTILIZING A CATHODE FRAME-TYPE GATE AND ANODE WITH ALIGNMENT METHOD;
U.S. patent application Ser. No. 09/877,512, of Russ, et al.; entitled METHOD FOR CONTROLLING THE ELECTRIC FIELD AT A FED CATHODE SUB-PIXEL;
U.S. patent application Ser. No. 09/877,379, of Russ, et al.; entitled METHOD FOR MAKING WIRES WITH A SPECIFIC CROSS SECTION FOR A FIELD EMISSION DISPLAY;
U.S. patent application Ser. No. 09/877,496, of Russ, et al.; entitled METHOD FOR ALIGNING FIELD EMISSION DISPLAY COMPONENTS;
U.S. patent application Ser. No. 09/877,509, of Russ, et al.; entitled CARBON CATHODE OF A FIELD EMISSION DISPLAY WITH IN-LAID ISOLATION BARRIER AND SUPPORT;
U.S. patent application Ser. No. 09/877,510, of Russ, et al.; entitled and METHOD FOR DRIVING A FIELD EMISSION DISPLAY;
U.S. patent application Ser. No. 09/877,371, of Russ, et al.; entitled CARBON CATHODE OF A FIELD EMISSION DISPLAY WITH INTEGRATED ISOLATION BARRIER AND SUPPORT ON SUBSTRATE;
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