Claims
- 1. A method for forming an image, the method comprising the steps of:charging, by corona discharge, a coloring material layer surface of a transfer material, which has at least a light-transmissive support, a light-transmissive electroconductive layer, a light-heat exchange layer and a coloring material layer; thereafter superposing an image-receiving layer surface of an image-receiving material, which has at least a support and an image-receiving layer, with the coloring material layers surface; and irradiating laser light imagewisely onto the transfer material, thereby transferring an irradiated portion of the coloring material layer of the transfer material to the image-receiving layer surface, for forming the image on the image-receiving layer surface of the image-receiving material.
- 2. The method for forming an image according to claim 1, wherein the image-receiving material has at least the support, an electroconductive layer and the image-receiving layer.
- 3. The method for forming an image according to claim 1, wherein surface resistivity of the light-transmissive electroconductive layer of the transfer material is at most 1011 Ω/□, and surface resistivity of a side of the transfer material, which side touches the image-receiving material, is at least 1011 Ω/□.
- 4. The method for forming an image according to claim 2, wherein surface resistivity of the electroconductive layer of the image-receiving material is at most 1011 Ω/□.
- 5. The method for forming an image according to claim 2, wherein a thickness distance from the coloring material layer surface to the light-transmissive electroconductive layer of the transfer material is at least equal to a thickness distance from the image-receiving layer surface to the electroconductive layer of the image-receiving material.
- 6. The method for forming an image according to claim 1, wherein the step of charging by corona discharge is a corotron charging process.
- 7. The method for forming an image according to claim 2, wherein surface resistivity of the light-transmissive electroconductive layer of the transfer material is at most 1011 Ω/□, and surface resistivity of a side of the transfer material, which side touches the image-receiving material, is at least 1011 Ω/□.
- 8. The method for forming an image according to claim 7, wherein surface resistivity of the electroconductive layer of the image-receiving material is at most 1011 Ω/□.
- 9. The method for forming an image according to claim 7, wherein a thickness distance from the coloring material layer surface to the light-transmissive electroconductive layer of the transfer material is at least equal to a thickness distance from the image-receiving layer surface to the electroconductive layer of the image-receiving material.
- 10. The method for forming an image according to claim 2, wherein the step of charging by corona discharge is a corotron charging process.
Priority Claims (2)
Number |
Date |
Country |
Kind |
2000-129445 |
Apr 2000 |
JP |
|
2000-150875 |
May 2000 |
JP |
|
Parent Case Info
This is a divisional of application Ser. No. 09/842,629 filed Apr. 27, 2001; now U.S. Pat. No. 6,458,504 the disclosure of which is incorporated herein by reference.
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