Claims
- 1. A multicolor thermal imaging method comprising(a) addressing at least partially independently a first image-forming layer of a thermal imaging member, which includes at least two different image-forming layers, from a surface of said imaging member with a thermal printhead or printheads configured to form an image in said first image-forming layer by controlling the temperature of said thermal printhead or printheads configured to form an image in said first image-forming layer and the time interval during which thermal energy is applied to said first image-forming layer; (b) addressing at least partially independently a second image-forming layer of said imaging member from the same surface of said imaging member with a thermal printhead or printheads configured to form an image in said second image-forming layer by controlling the temperature of said thermal printhead or printheads configured to form an image in said second image-forming layer and the time interval during which thermal energy is applied to said second image-forming layer wherein said temperature of said thermal printhead or printheads in step (b) is higher than said temperature of said thermal printhead or printheads in step (a) and said time interval in step (b) is shorter than said time interval in step (a).
- 2. The multicolor thermal imaging method as defined in claim 1 wherein said first and second image-forming layers are addressed by the same thermal printhead.
- 3. The multicolor thermal imaging method as defined in claim 1 wherein said first and second image-forming layers are addressed by different thermal printheads.
- 4. The multicolor thermal imaging method as defined in claim 1 wherein said first and second image-forming layers are addressed substantially independently.
- 5. The multicolor thermal imaging method as defined in claim 1 wherein said first and second image-forming layers are addressed independently.
- 6. The multicolor thermal imaging method as defined in claim 1 wherein said first and second image-forming layers are addressed by the same thermal printhead in a single pass of the printhead.
- 7. The multicolor thermal imaging method as defined in claim 1 wherein said thermal imaging member further includes a substrate having first and second opposed surfaces and said first and second image-forming layers are carried by the same surface of said substrate.
- 8. The multicolor thermal imaging method as defined in claim 1 wherein said thermal imaging member further includes a substrate having first and second opposed surfaces and at least one of said image-forming layers is carried by said first surface of said substrate and at least another of said image-forming layers is carried by said second surface of said substrate.
- 9. The multicolor thermal imaging method as defined in claim 1 wherein said thermal imaging member includes a third different image-forming layer and further including the step of(c) addressing at least partially independently said third image-forming layer with a thermal printhead or printheads configured to form an image in said third image-forming layer by controlling the temperature of said thermal printhead or printheads configured to form an image in said third image-forming layer and the time interval during which thermal energy is applied to said third image-forming layer.
- 10. The multicolor thermal imaging method as defined in claim 9 wherein said imaging member further includes a substrate having first and second opposed surfaces and said first and second image-forming layers are carried by said first surface of said substrate and said third image-forming layer is carried by said second surface of said substrate.
- 11. The multicolor thermal imaging method as defined in claim 10 wherein said first and second image-forming layers are addressed by at least a first thermal printhead from the same surface of said imaging member and said third image-forming layer is addressed by at least a second thermal printhead from the opposing surface of said imaging member.
- 12. The multicolor thermal imaging method as defined in claim 9 wherein said imaging member further includes a substrate and said first, second and third image-forming layers are carried by the same surface of said substrate.
- 13. The multicolor thermal imaging method as defined in claim 12 wherein said first, second and third image-forming layers are addressed by the same thermal printhead in a single pass of the printhead.
- 14. The multicolor thermal imaging method as defined in claim 13 wherein the activation temperature of said third image-forming layer is higher than the activation temperature of said second image-forming layer and the activation temperature of said second image-forming layer is higher than the activation temperature of said first image-forming layer.
- 15. The multicolor thermal imaging method as defined in claim 1 wherein at least one of said first and second image-forming layers comprises a leuco dye in combination with a developer.
- 16. The multicolor thermal imaging method as defined in claim 1 wherein at least one of said image-forming layers comprises a compound which forms color intramolecularly.
- 17. The multicolor thermal imaging method as defined in claim 1 wherein thermal energy is applied to said image-forming layers at a temperature of from about 50° C. to about 450° C. for a period of from about 0.01 to about 100 milliseconds.
- 18. The multicolor thermal imaging method as defined in claim 1 wherein at least one of said image-forming layers further includes a thermal solvent.
- 19. The multicolor thermal imaging method as defined in claim 18 wherein a plurality of said image-forming layers each include a thermal solvent and each thermal solvent has a different melting point.
- 20. The multicolor thermal imaging method as defined in claim 1 wherein at least one of said image-forming layers is initially substantially colorless and a colored image is formed therein.
- 21. The multicolor thermal imaging method as defined in claim 1 wherein at least one of said image-forming layers is initially colored and a less colored image is formed therein.
- 22. The multicolor thermal imaging method as defined in claim 1 wherein at least one of said image-forming layers is initially a first color and an image of a second color is formed therein.
- 23. The multicolor thermal imaging method as defined in claim 1 wherein the thermal energy applied to each said image-forming layer is controlled by supplying one or more pulses of electrical current to at least one heating element of said printhead or printheads configured to form an image in said image-forming layer during the time interval for forming a pixel of an image in the area of said image-forming layer in thermal contact with said heating element.
- 24. A multicolor thermal imaging method comprising(a) addressing at least partially independently a first image-forming layer of a thermal imaging member, which includes at least two different image-forming layers, from a surface of said imaging member with a thermal printhead or printheads configured to form an image in said first image-forming layer by controlling the temperature of said thermal printhead or printheads configured to form an image in said first image-forming layer and the time interval during which thermal energy is applied to said first image-forming layer; (b) addressing at least partially independently a second image-forming layer of said imaging member from the same surface of said imaging member with a thermal printhead or printheads configured to form an image in said second image-forming layer by controlling the temperature of said thermal printhead or printheads configured to form an image in said second image-forming layer and the time interval during which thermal energy is applied to said second image-forming layer; wherein the thermal energy applied to said first image-forming layer by at least one of said printhead or printheads configured to form an image in said first image-forming layer is controlled by a first voltage applied to at least one of said printhead or printheads when forming an image in said first image-forming layer and the thermal energy applied to said second image-forming layer by at least one of said printhead or printheads configured to form an image in said second image-forming layer is controlled by a second voltage applied to at least one of said printhead or printheads when forming an image in said second image-forming layer, said first and second voltages being different.
- 25. The multicolor thermal imaging method as defined in claim 1 wherein the thermal energy applied to said first image-forming layer by at least one of said printhead or printheads configured to form an image in said first image-forming layer is controlled by a first voltage applied to at least one of said printhead or printheads when forming an image in said first image-forming layer and the thermal energy applied to said second image-forming layer by at least one of said printhead or printheads configured to form an image in said second image-forming layer is controlled by a second voltage applied to at least one of said printhead or printheads when forming an image in said second image-forming layer, said first and second voltages being substantially the same.
- 26. A multicolor thermal imaging method comprising:(a) addressing at least partially independently a first image-forming layer of a thermal imaging member, which includes at least two different image-forming layers, from a surface of said imaging member with a thermal printhead or printheads configured to form an image in said first image-forming layer by controlling the temperature of said thermal printhead or printheads configured to form an image in said first image-forming layer and the time interval during which thermal energy is applied to said first image-forming layer; (b) addressing at least partially independently a second image-forming layer of said imaging member from the same surface of said imaging member with a thermal printhead or printheads configured to form an image in said second image-forming layer by controlling the temperature of said thermal printhead or printheads configured to form an image in said second image-forming layer and the time interval during which thermal energy is applied to said second image-forming layer; wherein the thermal energy applied to at least one of said image-forming layers is controlled by separating the time interval for forming a single pixel of an image in an area of said image-forming layer in thermal contact with a heating element of said thermal printhead or printheads configured to form an image in said image-forming layer into a plurality of temporal subintervals; and activating said heating element by applying a single pulse of current during each of a group temporal sub-intervals selected from said plurality of temporal sub-intervals, wherein the proportion of the duration of said temporal sub-intervals during which said pulse of current is applied is a value between about 1% and 100%.
- 27. The multicolor thermal imaging method as defined in claim 26 further comprising the steps:separating the time interval for forming a single pixel of an image in an area of said image forming layer in thermal contact with a heating element of said thermal printhead or printheads into first and second time intervals, said first time interval being shorter than said second time interval; wherein said proportion of the duration of said temporal subintervals during which said pulse of current is applied is fixed at a substantially constant value, p1, during said first time interval and a substantially constant value, p2, during said second time interval, where p1>p2.
- 28. The multicolor thermal imaging method as defined in claim 27 wherein said second time interval is at least two times as long as said first time interval.
- 29. The multicolor thermal imaging method as defined in claim 27 wherein p1 is at least two times greater than p2.
- 30. The multicolor thermal imaging method as defined in claim 26 further comprising the steps:separating the time interval for forming a single pixel of an image in an area of said image forming layer in thermal contact with a heating element of said thermal printhead or printheads into first, second and third time intervals, said first time interval being shorter than said second time interval and said second time interval being shorter than said third time interval; wherein said proportion of the duration of said temporal subintervals during which said pulse of current is fixed at a substantially constant value, p1, during said first time interval, a substantially constant value, p2, during said second time interval and a substantially constant value, p3 during said third time interval, where p1>p2>p3.
- 31. The multicolor thermal imaging method as defined in any one of claims 26-30 wherein the voltage applied to said printhead or printheads is maintained at a substantially constant value.
- 32. The multicolor thermal imaging method as defined in any one of claims 26-30 wherein each temporal subinterval of said plurality of subintervals is of substantially equal duration.
- 33. The multicolor thermal imaging method as defined in any one claims 26-30 wherein each temporal subinterval of said plurality of subintervals is of substantially equal duration and the voltage applied to said printhead or printheads is maintained at a substantially constant value.
- 34. The multicolor thermal imaging method as defined in claim 1 wherein said thermal imaging member further includes a substrate having first and second opposed surfaces, said first and second image-forming layers are carried by the same surface of said substrate and said second image-forming layer overlies said first image-forming layer.
REFERENCE TO RELATED APPLICATIONS
This application claims the benefit of prior provisional patent application serial No. 60/294,486, filed May 30, 2001 and prior provisional patent application serial No. 60/364,198, filed Mar. 13, 2002.
US Referenced Citations (24)
Foreign Referenced Citations (2)
Number |
Date |
Country |
56002920 |
Jul 1982 |
JP |
05-008424 |
Jan 1993 |
JP |
Provisional Applications (2)
|
Number |
Date |
Country |
|
60/294486 |
May 2001 |
US |
|
60/364198 |
Mar 2002 |
US |