Claims
- 1. A radiation imaging system comprising:a scintillator; an imager array; and a lamination layer disposed between said scintillator and said imager array to provide bonding and optical coupling, said lamination layer comprising a lamination material, wherein said lamination material is selected from a group consisting of plasticized polyetherimide thermoplastic polymers having a glass transition temperature (Tg) of less than about 180 degrees C. (i.e. a blend of said polyetherimide and a pentarythrytol terrabenzoate), thermoset polymer epoxies with latent heat catalysts, thermoplastic polyester polymers and thermoplastic acrylic polymers, and wherein said plasticized polyetherimide thermoplastic polymers further comprise mixtures of polyetherimide and pentarythrytol tetrabenzoate, and mixtures having a range of between about 60% and about 95% by weight of said polyetherimide and a range of about 5% to about 40% by weight of said pentarythrytol tetrabenzoate.
- 2. The radiation imaging system in accordance with claim 1 wherein:said lamination layer further comprises at least about 90% of said lamination material.
- 3. The radiation imaging system in accordance with claim 1 further comprising a hermetic seal disposed to provide ambient moisture protection for said scintillator, said lamination layer and said imager array.
- 4. The radiation imaging system in accordance with claim 1 wherein said scintillator has a scintillator second surface that is substantially optically reflective.
- 5. The radiation imaging system in accordance with claim 1 wherein said lamination layer has a thickness in a range between about 5 microns and about 25 microns.
- 6. A radiation imaging system comprising:a scintillator; an imager array; and a lamination layer disposed between said scintillator and said imager array to provide bonding and optical coupling, wherein said lamination layer comprises an optical absorbing material which comprises an anthraquinone-based dye selected from a group consisting of diaminoanthraquinone (DAA) and 1-methylamino4-dihydroxyanthraquinone (DHA).
- 7. The radiation imaging system in accordance with claim 6 wherein said lamination layer has a thickness in a range between about 5 microns and about 12.5 microns.
- 8. The radiation imaging system in accordance with claim 6 wherein said lamination layer comprises between about 0.5 and about 5 weight percent of said anthraquinone-based dye in said lamination material.
- 9. A radiation imaging system comprising:a scintillator; an imager array; and a lamination layer disposed between said scintillator and said imager array to provide bonding and optical coupling, wherein said lamination layer comprises an optical absorbing material that is selected from a group consisting of sub-micron carbon powders and azo-based dyes.
- 10. The radiation imaging system in accordance with claim 9 wherein:said lamination layer further comprises at least about 95% of said lamination material.
- 11. The radiation imaging system in accordance with claim 10 wherein:said lamination layer further comprises at least about 99% of said lamination material.
- 12. The radiation imaging system in accordance with claim 9 wherein said scintillator has a thickness in a range between about 500 microns and about 25000 microns.
- 13. The radiation imaging system in accordance with claim 9 wherein said scintillator has a substantially columnar structure.
- 14. The radiation imaging system in accordance with claim 9 wherein said lamination layer has a thickness in a range between about 5 microns and about 12.5 microns.
- 15. The radiation imaging system in accordance with claim 9 wherein said scintillator is a fiber optic type scintillator (FOS).
- 16. A radiation imaging system comprising:a scintillator; an imager array; and a lamination layer disposed between said scintllator and said imager array to provide bonding and optical coupling, said lamination layer comprising at least about 90% of a lamination material, wherein said lamination layer has a thickness in a range between about 5 microns and about 25 microns, wherein said lamination material is selected from a group consisting of plasticized polyetherimide thermoplastic polymers having a glass transition temperature Tg of less than about 180 degrees C. (i.e. a blend of said polyetherimide and a pentarythryrol tetrabenzoate), thermoset polymer epoxies with latent heat catalysts, thermoplastic polyester polymers and thermoplastic acrylic polymers, and wherein said plasticized polyetherimide thermoplastic polymers further comprise mixtures of polyetherimide and pentarythrytol tetrabenzoate, said mixtures having a range of between about 60% and about 95% by weight of said polyetherimide and a range of between about 5% to about 40% by weight of said pentarythrytol tetrabenzoate.
- 17. The radiation imaging system in accordance with claim 16, further comprising a hermetic seal disposed to provide ambient moisture protection for said scintillator, said lamination layer and said imager array.
FEDERAL RESEARCH STATEMENT
The United States Government may have certain rights in this invention pursuant to contract number 70NANB5H1148 awarded by the United States Department of National Institute of Standards and Technology.
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