Multilayer pixelated scintillator with enlarged fill factor

US11209556B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-11209556-B2
Application numberUS-201816770974-A
CountryUS
Kind codeB2
Filing dateAug 22, 2018
Priority dateDec 11, 2017
Publication dateDec 28, 2021
Grant dateDec 28, 2021

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  2. Abstract

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

A radiation detector with first and second scintillator structures is disclosed. The first scintillator structure comprises a plurality of first scintillator pixels. The first scintillator pixels are separated by gaps, which may be filled with a reflective material to achieve an optical separation of the first scintillator pixels. The second scintillator structure is adapted to increase the absorption of radiation and the output of light. Thereto, the second scintillator structure overlaps at least partially the gaps between first scintillator pixels. The second scintillator structure is optically coupled to the first scintillator structure, so that light emitted by the second scintillator structure is fed into first scintillator pixels. The second scintillator structure may be mounted onto the first scintillator structure using additive manufacturing.

First claim

Opening claim text (preview).

The invention claimed is: 1. A radiation detector, comprising: a read-out sensor array, a first scintillator structure, a second scintillator structure and a coating, wherein the read-out sensor array comprises a plurality of light-sensitive sensor pixels; wherein the first scintillator structure comprises a plurality of first scintillator pixels separated by gaps; wherein the second scintillator structure is optically coupled to the first scintillator structure; wherein the first scintillator structure and the second scintillator structure are arranged between the coating and the read-out sensor array; wherein the second scintillator structure at least partially overlaps the gaps between the first scintillator pixels of the first scintillator structure; wherein the second scintillator structure comprises a plurality of second scintillator pixels separated by gaps; wherein at least one second scintillator pixel at least partially overlaps a gap between the first scintillator pixels; wherein the at least one second scintillator pixel comprises at least one slanted surface section formed by a particle-in-binder scintillator material; and wherein the at least one slanted surface section that is formed by the particle-in-binder scintillator material is inclined relative to a layer formed by the scintillator structure. 2. The radiation detector according to claim 1 , wherein the at least one second scintillator pixel is optically coupled to exactly one first scintillator pixel. 3. The radiation detector according to claim 1 , wherein the at least one second scintillator pixel is optically coupled to exactly two first scintillator pixels. 4. The radiation detector according to claim 3 , wherein the at least one second scintillator pixel does not extend into the gap between the exactly two first scintillator pixels, which are optically coupled to the at least one second scintillator pixel. 5. The radiation detector according to claim 1 , wherein one slanted surface section of the at least one slanted surface section reflects light from inside the at least one second scintillator pixel towards a first scintillator pixel, which is optically coupled to the at least one second scintillator pixel. 6. The radiation detector according to claim 1 , wherein the at least one second scintillator pixel is tilted relative to the layer formed by the first scintillator structure to increase another gap between the at least one second scintillator pixel and a first scintillator pixel, which is not optically coupled to the at least one second scintillator pixel, and wherein the other gap between the at least one scintillator pixel and the first scintillator pixel is formed at least by one slanted surface section of the at least one slanted surface section and by the first scintillator pixel. 7. The radiation detector according to claim 1 , wherein the first scintillator structure comprises ceramic scintillator material. 8. The radiation detector according to claim 1 , wherein the coating is a light-reflective layer. 9. The radiation detector according to claim 1 , further comprising a substrate made of thin flexible polymer foil or glass. 10. The radiation detector according to claim 1 , wherein the radiation detector has a non-planar shape. 11. An imaging system, comprising: a radiation source; and a radiation detector comprising a read-out sensor array, a first scintillator structure, a second scintillator structure and a coating, wherein the read-out sensor array comprises a plurality of light-sensitive sensor pixels; wherein the first scintillator structure comprises a plurality of first scintillator pixels separated by gaps; wherein the second scintillator structure is optically coupled to the first scintillator structure; wherein the first scintillator structure and the second scintillator structure are arranged between the coating and the read-out sensor array; wherein the second scintillator structure at least partially overlaps the gaps between the first scintillator pixels of the first scintillator structure; wherein the second scintillator structure comprises a plurality of second scintillator pixels separated by gaps; wherein at least one second scintillator pixel at least partially overlaps a gap between the first scintillator pixel; wherein the at least one second scinitillator pixel comprises at least on slanted surface section formed a particle-in-bind scintillator material; and wherein the at least one slanted surface section that is formed by the particle-in-binder scintillator material is inclined relative to a layer formed by the first scintillator structure. 12. The imaging system according to claim 11 , wherein the read-out sensor array of the radiation detector is directed towards the radiation source. 13. A method for manufacturing a radiation detector, the method comprising: assembling a read-out sensor array, a first scintillator structure, a second scintillator structure and a coating, wherein the read-out sensor array comprises a plurality of light-sensitive sensor pixels; wherein the first scintillator structure comprises a plurality of first scintillator pixels separated by gaps; wherein the second scintillator structure is optically coupled to the first scintillator structure; wherein the first scintillator structure and the second scintillator structure are arranged between the coating and the read-out sensor array; and wherein the second scintillator structure at least partially overlaps the gaps between the first scintillator pixels of the first scintillator structure; wherein the second scintillator structure comprises a plurality of second scintillator pixels separated by gaps; wherein at least one second scintillator pixel at least partially overlaps a gap between the first scintillator pixels; wherein the at least one second scintillator pixel comprises at least one slanted surface section formed by a particle-in-binder scintillator material; and wherein the at least one slanted surface section that is formed by the article-in-binder scintillator material is inclined relative to a layer formed by the first scintillator structure. 14. The method according to claim 13 , further comprising: mounting the second scintillator structure on the first scintillator structure by additive manufacturing, wherein the second scintillator structure comprises particle-in-binder scintillator material. 15. The radiation detector of claim 1 , wherein the plurality of first scintillator pixels includes an incident surface section that faces a side of one slanted surface section of the at least one slanted surface section formed by the particle-in-binder scintillator material, and wherein the slanted surface section formed by the particle-in-binder scintillator material overlaps the incident surface section as viewed in a direction from the slanted surface section toward the incident surface section. 16. The radiation detector of claim 15 , wherein the incident surface section of the plurality of first scintillator pixels directly contacts with the particle-in-binder scintillator material of the at least one second scintillator pixel. 17. The radiation detector of claim 1 , further comprising a surface section formed by an optical reflector material inside one of the gaps, wherein the surface section formed by the optical reflector material and one slanted surface section of the at least one slanted surface section form another gap in which a part of the coating is disposed.

Assignees

Inventors

Classifications

  • Position of the scintillator with respect to the photodiode, e.g. photodiode surrounding the crystal, the crystal surrounding the photodiode, shape or size of the scintillator · CPC title

  • Arrangements for preventing or correcting crosstalk, e.g. optical or electrical arrangements for correcting crosstalk · CPC title

  • Processing methods of scan data, e.g. involving contrast enhancement, background reduction, smoothing, motion correction, dual radio-isotope scanning, computer processing (for measuring spatial distribution of radiation G01T1/2992; general purpose image data processing G06T1/00; computerized tomography G06T12/00); Ancillary equipment · CPC title

  • G01T1/2018Primary

    Scintillation-photodiode combinations · CPC title

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What does patent US11209556B2 cover?
A radiation detector with first and second scintillator structures is disclosed. The first scintillator structure comprises a plurality of first scintillator pixels. The first scintillator pixels are separated by gaps, which may be filled with a reflective material to achieve an optical separation of the first scintillator pixels. The second scintillator structure is adapted to increase the abs…
Who is the assignee on this patent?
Koninklijke Philips Nv
What technology area does this patent fall under?
Primary CPC classification G01T1/20183. Mapped technology areas include Physics.
When was this patent published?
Publication date Tue Dec 28 2021 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 3 related publications on this page (citations in our corpus or others sharing the same primary CPC).