Claims
- 1. A thermal imaging device having a print surface for providing localized heating to a layer comprising a thermally activatable component of an image forming system, the device comprising the following sequential layers:
- (a) a transparent or semi-transparent electrically conductive layer,
- (b) a photoconductive layer which when illuminated by radiation of 633 nm wavelength and intensity of 4.0.times.10.sup.6 W/m.sup.2 has a conductivity of at least 0.01 S/cm and a photosensitive ratio of at least 1.times.10.sup.3, layer (b) being in contact with layer (a) and layer (c),
- (c) an electrically conductive layer in electrical contact with the photoconductive layer (b) and in contact with:
- (d) said layer comprising said thermally activatable component of said image forming system;
- wherein the layers are constructed and arranged such that when a voltage potential is applied across layers (a) and (c) and the device is exposed through layer (a) to form exposed areas of layer (b), the exposed areas of layer (b) become conductive, enhancing current flow and generating heat in layer (b) at points corresponding to the exposed areas of layer (b) and causing localized heating at areas at the print surface adjacent exposed areas of layer (b) sufficient to thermally activate said thermally activatable component of said image forming system, the device not containing ferromagnetic garnet materials.
- 2. A device as claimed in claim 1 in which all layers of said device are coated onto a transparent support substrate such that layer (a) is proximal to the substrate and layer (d) is distal to said substrate and in which the support substrate and coated layers form a substantially rectangular prism or substantially a hollow cylinder or drum.
- 3. A device as claimed in claim 2 further comprising a transparent, thermally resistive layer interposed between said support substrate and conductive layer (a).
- 4. A device as claimed in claim 1 in which at least one of conductive layers (a) and (c) is formed as a plurality of discrete electrodes.
- 5. A device as claimed in claim 4 in which the discrete electrodes are formed as a series of lines extending a length of the print surface.
- 6. A device as claimed in claim 1 in combination with means to apply said layer (d) comprising said thermally activatable component of said image forming system to the print surface.
- 7. A device as claimed in claim 6 in combination with an image receptor substrate, optionally having a receptor layer, to receive said thermally activatable component.
- 8. A device as claimed in claim 1 in combination with a donor ribbon or sheet coated or impregnated with said thermally activatable component of an image forming system.
- 9. A thermal imaging device having at least one thermal imaging device as claimed in claim 1 comprising means for exposure of said at least one thermal image device means for applying a voltage across layers (a) to (c) of each of said at least one thermal imaging device.
- 10. A thermal imaging device as claimed in claim 9 in which the means to expose said at least one thermal imaging device(s) comprises a scanning laser or a light source modulated by a liquid crystal display.
- 11. A thermal imaging device as claimed in claim 9 or claim 10 comprising a plurality of thermal imaging devices, each of said devices being associated with a separate medium comprising a thermally activatable component of different colour.
- 12. A method of recording a visual image which comprises the steps of providing a thermal imaging device having a print surface for providing localized heating to an imageable medium comprising a thermally activatable component of an image forming system, the device comprising the following sequential layers:
- (a) a transparent or semi-transparent electrically conductive layer,
- (b) a photoconductive layer which when illuminated by radiation of 633 nm wavelength and intensity of 4.0.times.10.sup.6 W/m.sup.2 has a conductivity of at least 0.01 S/cm and a photosensitive ratio of at least 1.times.10.sup.5, layer (b) being in contact with layer (c),
- (c) an electrically conductive layer in electrical contact with the photoconductive layer (b) and in contact with:
- (d) a layer of said medium comprising said thermally activatable component of said image forming system,
- applying an electrical potential across layers (a) and (c), exposing the device through layer (a) to form exposed areas on layer (b) such that the exposed areas of layer (b) become conductive thereby enhancing current flow and generating heat in layer (b) at points corresponding to the exposed areas of layer (b) and causing localized heating at the print surface sufficient to generate a visual image in said medium.
- 13. A method according to claim 12 in which at least one of the conductive layers (a) and (c) of the thermal imaging device is formed as a plurality of discrete electrodes and a voltage potential is independently applied across said discrete electrodes and a corresponding electrode of the other conductive layer during exposure of regions of the device containing said discrete electrodes.
- 14. A method as claimed in claim 13 in which the discrete electrodes are formed as a plurality of lines and comprises a linear exposure source arranged perpendicular to the plurality of lines, said source simultaneously exposing the plurality of said lines and being scanned along said lines while independently modulating a voltage potential between each of said lines in said plurality of lines forming said discrete electrodes and a corresponding electrode in the other conductive layer.
- 15. A thermal imaging device having a print surface for providing localized heating to a layer comprising a thermally activatable component of an image forming system, the device consisting of the following sequential layers:
- (a) a transparent or semi-transparent electrically conductive layer,
- (b) a photoconductive layer which when illuminated by radiation of 633 nm wavelength and intensity of 4.0.times.10.sup.6 W/m.sup.2 has a conductivity of at least 0.01 S/cm and a photosensitive ratio of at least 1.times.10.sup.3, layer (b) being in contact with layer (a),
- (c) an electrically conductive layer in electrical contact with the photoconductive layer (b) and in contact with:
- (d) a layer comprising said thermally activatable component of an image forming system;
- wherein the layers are constructed and arranged such that when a voltage potential is applied across layers (a) and (c) and the device is exposed through layer (a) to form exposed areas of layer (b), the exposed areas of layer (b) become conductive, enhancing current flow and generating heat in layer (b) at points corresponding to the exposed areas of layer (b) and causing localized heating at areas at the print surface adjacent exposed areas of layer (b) sufficient to thermally activate said component of an image forming system, the device not containing ferromagnetic garnet materials.
Priority Claims (1)
Number |
Date |
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Kind |
8918622 |
Aug 1989 |
GBX |
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CROSS-REFERENCE TO RELATED CASES
This is a continuation of application Ser. No. 07/720,118 filed Jun. 24, 1991, now abandoned, which is a continuation-in-part of U.S. patent application Ser. No. 07/563,288 filed on Aug. 6, 1990.
US Referenced Citations (5)
Foreign Referenced Citations (6)
Number |
Date |
Country |
2904793 |
Aug 1979 |
DEX |
3737449 |
Nov 1987 |
DEX |
0244563 |
Oct 1986 |
JPX |
61-244563 |
Oct 1986 |
JPX |
61-295555 |
Dec 1986 |
JPX |
0159063 |
Jul 1988 |
JPX |
Non-Patent Literature Citations (3)
Entry |
Applied Physics Letters, vol. 42, p. 484 (1983). |
Lemons et al., "Electrically Amplified Optical Recording" IEEE p. 254 (1982). |
Journal of Applied Physics, vol. 48 p. 366 (1977). |
Continuations (1)
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Number |
Date |
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Parent |
720118 |
Jun 1991 |
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Continuation in Parts (1)
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Number |
Date |
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563288 |
Aug 1990 |
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