Claims
- 1. A scintillator panel comprising a plurality of optical members having a flat plate shape, each optical member comprising a plurality of integrally formed optical fibers arranged substantially parallel to each other and each optical member having an entrance end face and an exit end face substantially parallel to each other,wherein said optical members are arranged so that said entrance end faces are positioned in a substantially identical plane, wherein mutually adjoining side faces of said optical members are bonded to each other with an adhesive, wherein a scintillator to emit light upon incidence of radiation is deposited on a unified surface composed of said entrance end faces integrated by bonding said side faces and adhesive parts formed in spacing regions between said optical members adjacent to each other.
- 2. A scintillator panel according to claim 1, wherein said scintillator is grown by vapor phase growth.
- 3. A scintillator panel according to claim 2, wherein said scintillator is comprised of an array of prismatic structures grown in a prismatic shape.
- 4. A scintillator panel according to claim 1, wherein said scintillator is a scintillator to emit visible light with incidence of an X-ray.
- 5. A scintillator panel according to claim 4, wherein said scintillator comprises CsI.
- 6. A scintillator panel according to claim 1, wherein said scintillator is a scintillator to emit ultraviolet light with incidence of an X-ray.
- 7. A scintillator panel according to claim 1, wherein said adhesive is an adhesive to absorb light generated in said scintillator upon incidence of a radiation and then entering the adhesive.
- 8. A scintillator panel according to claim 7, wherein said adhesive is an adhesive to absorb 50% or more of the light generated in said scintillator upon incidence of the radiation and then entering the adhesive.
- 9. A scintillator panel according to claim 1, wherein a light shield member is formed on mutually nonadjoining side faces of said optical members.
- 10. A scintillator panel according to claim 9, wherein said light shield member is a light shield member having an optical transmittance of not more than 50%.
- 11. A scintillator panel according to claim 1, wherein the spacing between said optical members adjacent to each other is not more than 50 μm.
- 12. A scintillator panel according to claim 1, wherein the spacing between said optical members adjacent to each other is not more than 20 μm.
- 13. A scintillator panel according to claim 1, wherein a protective film is formed on said scintillator.
- 14. A scintillator panel according to claim 13, wherein said protective film comprises a moisture-resistant protective layer of polyparaxylylene formed in contact with said scintillator.
- 15. A scintillator panel according to claim 13, wherein said protective film comprises a moisture-resistant protective layer of polyparachloroxylylene formed in contact with said scintillator.
- 16. A radiation detector comprising the scintillator panel as set forth in claim 1, and an image pickup device for picking up an optical image outputted from said exit end faces of said optical members.
- 17. A radiation detector according to claim 16, further comprising a lightguide optical member for guiding the optical image outputted from said exit end faces of said optical members, to said image pickup device.
- 18. A method of making a scintillator panel; said method comprising:an arranging step of arranging a plurality of optical members, each having entrance and exit end faces substantially parallel to each other and being composed of a plurality of optical fibers arranged substantially parallel to each other, such that said entrance end faces are disposed in substantially the same plane; a bonding step of bonding with an adhesive said optical members adjacent to each other; and a depositing step of depositing a scintillator on a unified surface composed of said entrance end faces integrated by bonding said optical members adjacent to each other and adhesive parts formed in spacing regions between said optical members adjacent to each other.
- 19. A method of making a scintillator panel according to claim 18, wherein said scintillator is formed by vapor phase growth.
- 20. A method of making a scintillator panel according to claim 19, wherein said scintillator is comprised of an array of prismatic structures grown in a prismatic shape.
- 21. A method of making a scintillator panel according to claim 18, wherein said scintillator is a scintillator to emit visible light with incidence of an x-ray.
- 22. A method of making a scintillator panel according to claim 21, wherein said scintillator comprises CsI.
- 23. A method of making a scintillator panel according to claim 18, wherein said scintillator is a scintillator to emit ultraviolet light with incidence of an x-ray.
- 24. A method of making a scintillator panel according to claim 18, wherein said adhesive is an adhesive to absorb light generated in said scintillator upon incidence of a radiation and then entering the adhesive.
- 25. A method of making a scintillator panel according to claim 24, wherein said adhesive is an adhesive to absorb 50% or more of light generated in said scintillator upon incidence of a radiation and then entering the adhesive.
- 26. A method of making a scintillator panel according to claim 18, further comprising a forming step of forming a light shield member on the mutually nonadjoining side faces of said optical members.
- 27. A method of making a scintillator panel according to claim 26, wherein said light shield member is a light shield member having an optical transmittance of not more than 50%.
- 28. A method of making a scintillator panel according to claim 18, wherein the spacing between said optical members adjacent to each other is not more than 50 μm.
- 29. A method of making a scintillator panel according to claim 18, wherein the spacing between said optical members adjacent to each other is not more than 20 μm.
- 30. A method of making a scintillator panel according to claim 18, further comprising a forming step of forming a protective film on said scintillator.
- 31. A method of making a scintillator panel according to claim 30, wherein said protective film comprises a moisture-resistant protective layer of polyparaxylylene formed in contact with said scintillator.
- 32. A method of making a scintillator panel according to claim 30, wherein said protective film comprises a moisture-resistant protective layer of polyparachloroxylylene formed in contact with said scintillator.
RELATED APPLICATION
The present application is a continuation-in-part application of PCT application No. PCT/JP98/05645 filed on Dec. 14, 1998, designating U.S.A. and now pending.
US Referenced Citations (11)
Foreign Referenced Citations (12)
Number |
Date |
Country |
58-210582 |
Dec 1983 |
JP |
60-6889 |
Jan 1985 |
JP |
61-185844 |
Aug 1986 |
JP |
63-215987 |
Sep 1988 |
JP |
4-80507 |
Jul 1992 |
JP |
5-11060 |
Jan 1993 |
JP |
6-277213 |
Oct 1994 |
JP |
7-211877 |
Aug 1995 |
JP |
7-270537 |
Oct 1995 |
JP |
8-215190 |
Aug 1996 |
JP |
9-197051 |
Jul 1997 |
JP |
WO 9641212 |
Dec 1996 |
WO |
Non-Patent Literature Citations (1)
Entry |
A New, General Synthetic Method for the Preparation of Linear Poly-p-xylylenes; William F. Gorham, Journal of Polymer Science: Part A-1, vol. 4, 3027-3039 (1966). |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
PCT/JP98/05645 |
Dec 1998 |
US |
Child |
09/879062 |
|
US |