Claims
- 1. An image transfer sheet comprising a release base sheet having a thermal transfer image-receiving layer formed thereon and which is capable of releasing the thermal transfer image-receiving layer therefrom, said receiving layer including a dispersion of a resin binder and a dye-fixing amount of a layer compound capable of fixing cationic dyes through ion exchange reaction therewith, said layer compound being selected from the group consisting of: montmorillonite, magnesium montmorillonite, iron montmorillonite, iron magnesium montmorillonite, heidellite, aluminum heidellite, nontronite, aluminum nontronite, saponite, aluminum saponite, hectorite, sauconite, halogen-substituted compounds of any of the foregoing, sodium silicic mica, sodium taeniolite and lithium taeniolite, cation exchangeable alkali metal cations and alkaline earth metal cations in said layer compound having been replaced by organic cations selected from the group consisting of alkyl-substituted-quarternary ammonium ions and alkyl-substituted phosphonium ions, wherein said alkyl group substituents have not less than 8 carbon atoms.
- 2. The sheet according to claim 1, wherein said resin binder is a thermoplastic resin which exhibits adhesiveness on hot pressing.
- 3. The sheet according to claim 1, further comprising an adhesive layer on said receiving layer.
- 4. The sheet according to claim 1, wherein said layer compound is present in an amount of 10 to 90 wt % of said receiving layer.
- 5. A method for transferring a thermal transfer image-receiving layer from an image transfer sheet to a substrate comprising the steps of:
- providing a transfer sheet of the type including a release base sheet and a thermal transfer image-receiving layer formed on the release base sheet, said image-receiving layer being a dispersion including a resin binder and a dye-fixing amount of a layer compound capable of fixing cationic dyes through ion exchange reaction therewith, said layer compound being selected from the group consisting of: montmorillonite, magnesium montmorillonite, iron montmorillonite, iron magnesium montmorillonite, heidellite, aluminum heidellite, nontronite, aluminum nontronite, saponite, aluminum saponite, hectorite, sauconite, halogen-substituted compounds of any of the foregoing, sodium silicic mica, sodium taeniolite and lithium taeniolite, cation exchangeable alkali metal cations and alkaline earth metal cations in said layer compound having been replaced by organic cations selected from the group consisting of alkyl-substituted quarternary ammonium ions and alkyl-substituted phosphonium ions, wherein said alkyl group substituents have not less than 8 carbon atoms;
- superposing the image transfer sheet on a substrate, on which a thermal transfer image is to be formed in such a way that said image-receiving layer is in face-to-face relation with the substrate; and
- peeling off the release base sheet from the image transfer sheet.
- 6. The method according to claim 5, further comprising superposing said image-receiving layer formed on said substrate on an ink layer of a transfer material containing at least one cationic dye, selectively heating the transfer material according to image signals thereby causing the cationic dye in the transfer material to said image-receiving layer in an imagewise pattern whereby the cationic dye is fixed in said image-receiving layer through ion exchange reaction with the layer compound contained in said image-receiving layer.
- 7. The method according to claim 5, further comprising superposing an image-receiving layer of a printing sheet, on which a thermal transfer image made of a cationic dye has been formed, on said thermal transfer image-receiving layer, and hot pressing the superposed layers to re-transfer the cationic dye image on said thermal transfer image-receiving layer thereby causing the cationic dye image to fix through ion exchange reaction with the layer compound in said thermal transfer image-receiving layer.
- 8. A method for forming a thermal transfer image on a substrate comprising the steps of:
- providing a release base sheet having a thermal transfer image-receiving layer thereon, said thermal transfer image-receiving layer including a dispersion of a resin binder and a dye-fixing amount of a layer compound capable of fixing a cationic dye through ion exchange reaction therewith, said layer compound being selected from the group consisting of: montmorillonite, magnesium montmorillonite, iron montmorillonite, iron magnesium montmorillonite, heidellite, aluminum heidellite, nontronite, aluminum nontronite, saponite, aluminum saponite, hectorite, sauconite, halogen-substituted compounds of any of the foregoing, sodium silicic mica, sodium taeniolite and lithium taeniolite, cation exchangeable alkali metal cations and alkaline earth metal cations in said layer compound having been replaced by organic cations selected from the group consisting of alkyl-substituted quarternary ammonium ions and alkyl-substituted phosphonium ions, wherein said alkyl group substituents have not less than 8 carbon atoms;
- superposing said thermal transfer image-receiving layer with an ink layer of a transfer material which contains a cationic dye therein;
- selectively heating the transfer material according to image signals thereby causing the cationic dye in the ink layer to be transferred to said thermal transfer image-receiving layer in an imagewise pattern and fixing the resultant cationic dye image through ion exchange reaction with the layer compound in said thermal transfer image-receiving layer; and
- transferring the fixed dye image-bearing layer to a substrate.
- 9. The method according to claim 8, wherein said fixed dye image-bearing layer is bonded to said substrate by hot pressing.
- 10. A method for forming a thermal transfer image on a substrate, the method comprising the steps of:
- providing a transfer sheet including a release base sheet having a thermal transfer image-receiving layer thereon, the thermal transfer image-receiving layer including a dispersion of a resin binder and a dye-fixing amount of a layer compound capable of fixing a cationic dye through ion exchange reaction therewith, said layer compound being selected from the group consisting of: montmorillonite, magnesium montmorillonite, iron montmorillonite, iron magnesium montmorillonite, heidellite, aluminum heidellite, nontronite, aluminum nontronite, saponite, aluminum saponite, hectorite, sauconite, halogen-substituted compounds of any of the foregoing, sodium silicic mica, sodium taeniolite and lithium taeniolite, cation exchangeable alkali metal cations and alkaline earth metal cations in said layer compound having been replaced by organic cations selected from the group consisting of alkyl-substituted quarternary ammonium ions and alkyl-substituted phosphonium ions, wherein said alkyl group substituents have not less than 8 carbon atoms;
- superposing said thermal transfer image-receiving layer on an image-receiving layer of a printing sheet, on which a thermal transfer image made of a cationic dye has been formed;
- selectively hot pressing the superposed layers to re-transfer the cationic dye thermal transfer image to the thermal transfer image-receiving layer wherein the cationic dye thermal transfer image is fixed through ion exchange reaction with the layer compound in said thermal transfer image-receiving layer; and
- transferring the image-bearing layer to a substrate on which the image is to be formed.
Priority Claims (1)
Number |
Date |
Country |
Kind |
5-141585 |
May 1993 |
JPX |
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Parent Case Info
This is a continuation, of application Ser. No. 08/242,418, filed May 13, 1994, now U.S. Pat. No. 5,446,012.
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Foreign Referenced Citations (1)
Number |
Date |
Country |
0506034A1 |
Jul 1992 |
EPX |
Continuations (1)
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Number |
Date |
Country |
Parent |
242418 |
May 1994 |
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