Claims
- 1. A positive-working thermal imaging element comprising;A. a substrate; and B. a thermally sensitive composite layer structure having an inner surface contiguous to the substrate and an outer surface, the composite layer structure comprising: (a) a first layer having the inner surface, the first layer comprising a first polymeric material, wherein the first polymeric material is soluble or dispersible in an aqueous solution; and (b) a second layer having the outer surface, the second layer comprising a second polymeric material, wherein the second layer is insoluble in the aqueous solution, and wherein when the first layer is free of photothermal conversion material, the second layer is free of photothermal conversion material; wherein, upon heating the composite layer structure, the heated composite layer structure has an increased rate of removal in the aqueous solution.
- 2. The imaging element of claim 1 wherein the aqueous solution has a pH of about 6 or greater.
- 3. The imaging element of claim 1 wherein the first layer contains photothermal conversion material.
- 4. The imaging element of claim 3, wherein the second layer contains photothermal conversion material.
- 5. The imaging element of claim 4 wherein photothermal conversion material in the first layer and photothermal conversion material in the second layer are the same material.
- 6. The imaging element of claim 3, wherein the second layer is free of photothermal conversion material.
- 7. The imaging element of claim 1 wherein the imaging element is insensitive to infrared radiation when the first layer is free of photothermal conversion material.
- 8. The imaging element of claim 1 wherein upon heating the composite layer structure, the first layer has an increased rate of dissolution or dispersibility in the aqueous solution.
- 9. The imaging element of claim 1 wherein upon heating the composite layer structure, the second layer has enhanced permeability to the aqueous solution.
- 10. A positive-working, lithographic printing plate precursor comprising;A. a hydrophilic substrate; and B. a thermally sensitive composite layer structure having an inner surface contiguous to the hydrophilic substrate and an outer oleophilic, ink-receptive surface, the composite layer structure comprising: (a) a first layer having the inner surface, the first layer comprising a first polymeric material and photothermal conversion material, wherein the first polymeric material is soluble or dispersible in an aqueous solution; and (b) a second layer having the outer oleophilic, ink-receptive surface, the second layer comprising a second polymeric material, wherein the second layer is insoluble in the aqueous solution; wherein, upon heating the composite layer structure, the heated composite layer structure has an increased rate of removal in the aqueous solution.
- 11. The precursor of claim 10 wherein the second layer is free of photothermal conversion material.
- 12. The precursor of claim 10 wherein the aqueous solution has a pH of about 6 or greater.
- 13. The precursor of claim 10 wherein the first polymeric material is insoluble in an organic solvent, and the second polymeric material is soluble in the organic solvent.
- 14. The precursor of claim 10 wherein the photothermal conversion material is an infrared absorbing compound.
- 15. The precursor of claim 14 wherein the infrared absorbing compound is an infrared absorbing dye or pigment.
- 16. The precursor of claim 10 wherein the first layer contains a photohardenable material activatable by actinic radiation.
- 17. The precursor of claim 16 wherein the first layer contains a photoinitiating system, a photosensitizing system or a combination thereof.
- 18. The precursor of claim 10 wherein the second polymeric material is selected from the group consisting of acrylic polymers and copolymers; polystyrene; styrene-acrylic copolymers; polyesters, polyamides; polyureas; polyurethanes; nitrocellulosics; epoxy resins; and combinations thereof.
- 19. The precursor of claim 10 wherein the second polymeric material is polymethylmethacrylate.
- 20. The precursor of claim 10 wherein the second layer contains a dye or pigment.
- 21. The precursor of claim 10 wherein the second layer contains polymeric particles which are incompatible with the second polymeric material.
- 22. The precursor of claim 20 wherein the polymeric particles are poly tetrafluoroethylene particles.
- 23. The precursor of claim 10 wherein the aqueous solution has a pH between about 8 and about 13.5.
- 24. The precursor of claim 10 wherein the first polymeric material contains acid functionality.
- 25. The precursor of claim 24, wherein the acid functionality is derived from carboxylic acid groups, phenolic groups, sulfonamide groups or a combination thereof.
- 26. The precursor of claim 10 wherein the first polymeric material is taken from the group consisting of carboxy functional acrylics, acrylics which contain phenol groups, acrylics which contain sulfonamido groups, cellulosic based polymers and copolymers, vinyl acetate/crotonate/vinyl neodecanoate copolymers, styrene maleic anhydride copolymers, polyvinyl acetals, phenolic resins, maleated wood rosin, and combinations thereof.
- 27. The precursor of claim 10 wherein the hydrophilic substrate is an aluminum substrate.
- 28. The precursor of claim 27 wherein the aluminum substrate has a grained oxidized surface and wherein the first layer is applied to the a grained oxidized surface.
- 29. The precursor of claim 10 wherein the hydrophilic substrate is a polymeric sheet material.
- 30. The precursor of claim 29 wherein the polymeric sheet material is comprised of polyethylene terephthalate.
- 31. A method for forming a planographic printing plate comprising the steps, in the order given:I) providing a lithographic printing plate precursor comprising; A. a hydrophilic substrate; and B. a thermally sensitive composite layer structure having an inner surface contiguous to the hydrophilic substrate and an outer oleophilic surface, the composite layer structure comprising: (a) a first layer having the inner surface, the first layer comprising a first polymeric material, wherein the first polymeric material is soluble or dispersible in an aqueous solution; and (b) a second layer having the outer oleophilic surface, the second layer comprising a second polymeric material, wherein the second layer is insoluble in the aqueous solution, and wherein when the first layer is free of photothermal conversion material the second layer is free of photothermal conversion material; II) imagewise exposing the composite layer structure to thermal energy to provide exposed portions and complimentary unexposed portions in the composite layer structure, wherein the exposed portions are selectively removable by the aqueous solution; and III) applying the aqueous solution to the outer oleophilic surface to remove the exposed portions to produce an imaged lithographic printing plate having uncovered hydrophilic areas of the hydrophilic substrate and complimentary ink receptive areas of the outer oleophilic surface.
- 32. The method of claim 31 wherein exposed portions of the first layer in the composite layer structure have an increased rate of solubility or dispersibility in the aqueous solution.
- 33. The method of claim 31 wherein exposed portions of the second layer in the composite layer structure have enhanced permeability to the aqueous solution.
- 34. The method of claim 31 wherein the aqueous solution has a pH of about 6 or greater.
- 35. The method of claim 31 wherein the aqueous solution has a pH between about 8 and about 13.5.
- 36. The method of claim 31 wherein the first layer contains photothermal conversion material.
- 37. The method of claim 36 wherein imagewise exposing is carried out with an infrared emitting laser and photothermal conversion material is an infrared absorbing compound.
- 38. The method of claim 36 wherein imagewise exposing is carried out with a thermal printing head.
- 39. The method of claim 36 wherein the first layer contains a photohardenable material activatable by actinic radiation.
- 40. The method of claim 39 wherein after step III, the imaged lithographic printing plate is uniformly exposed to actinic radiation.
- 41. The method of claim 31 wherein imagewise exposing is carried out with a thermal printing head.
- 42. The method of claim 31 wherein, after step III, the imaged lithographic printing plate is uniformly exposed to thermal energy.
CROSS REFERENCES TO RELATED APPLICATIONS
This application claims priority from Provisional Application U.S. Serial No. 60/090,300 filed Jun. 23, 1998.
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