RADIATION POSITION DETECTOR
20220357467 · 2022-11-10
Assignee
Inventors
Cpc classification
G01T1/1642
PHYSICS
G01T1/2985
PHYSICS
International classification
Abstract
A radiation position detector includes: a photodetector array constituted of unit-sized unit photodetectors; a scintillator array constituted of a plurality of tetragonal scintillator elements optically connected to the photodetector array, wherein scintillator units are each constituted of a pair of unit scintillators whose individual cross-sectional size of plane facing to right receiving surface is ¼ of the size of the unit photodetector, where at least part of which is optically connected on a surface side opposite to the right receiving surface, the scintillator units being each arranged so as to be positioned over two of the unit photodetectors; and a position evaluation unit configured to identify the scintillator unit by the presence or absence of a signal and furthermore identify one of the unit scintillators of the scintillator unit on the basis of a strength of the signal, to obtain a two-dimensional radiation detection position.
Claims
1. A radiation position detector, where a scintillator is optically connected to a light receiving surface of a photodetector, in which a response of a scintillator element detecting radiation is identified on the light receiving surface to obtain a radiation detection position, the radiation position detector comprising: a photodetector array constituted of unit-sized unit photodetectors arranged on a two-dimensional plane; a scintillator array constituted of a plurality of tetragonal scintillator elements optically connected to the photodetector array, wherein scintillator units are each constituted of a pair of unit scintillators whose individual cross-sectional size of plane facing to right receiving surface is ¼ of the size of the unit photodetector, where at least part of which is optically connected on a surface side opposite to the right receiving surface and the rest is isolated with a reflective material, the scintillator units being each arranged so as to be positioned over two of the unit photodetectors in the scintillator array; and a position evaluation unit configured to identify the scintillator unit by presence or absence of a signal at each of the photodetectors and furthermore identify one of the unit scintillators of the scintillator unit on a basis of a strength of the signal, in a case in which the signal is present, to obtain a two-dimensional radiation detection position.
2. The radiation position detector according to claim 1, wherein the scintillator units are arranged so as to be positioned over the unit photodetector and one of four adjacent photodetectors thereto.
3. The radiation position detector according to claim 1, wherein the radiation position detector is configured to identify a detection depth from an output ratio of the photodetectors corresponding to the scintillator unit.
4. The radiation position detector according to claim 1, wherein the radiation position detector is configured to identify the unit scintillator two dimensionally using anger calculations.
5. The radiation position detector according to claim 1, wherein the unit scintillator is pixelated also in a detection depth direction.
6. The radiation position detector according to claim 5, wherein a plurality of stages of two-dimensional scintillator arrays are provided in the detection depth direction, and the number of scintillator units constituting the two-dimensional scintillator array on a radiation incident side is made smaller than the number of scintillator units constituting the two-dimensional scintillator array on a photodetector array side.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0027]
[0028]
[0029]
[0030] .
[0031] according to the embodiment of the present invention.
[0032]
[0033]
[0034] and (B) 5
according to the embodiment of the present invention.
[0035]
[0036]
[0037]
[0038]
[0039]
[0040]
[0041]
[0042]
DESCRIPTION OF EMBODIMENTS
[0043] The present invention will hereinafter be described in detail with reference to the drawings. It should be noted that the present invention is not limited by contents described in the following embodiment and examples. In addition, components in the embodiment and examples described below include those that can be easily assumed by a person skilled in the art, those that are substantially the same, and those that are within a so-called equivalent range. Further, the components disclosed in the embodiment and examples described below may be combined, or selectively used, as appropriate.
[0044] As illustrated in (A) the top view and (B) the side view of
[0045] The scintillator can be composed of, for example, GAGG, LFS, LYSO, or the like, and the photodetector array 12 can be composed of, for example, semi conduct or photodetectors such as MPPC, Si PM, or the like.
[0046] Since a scintillator that has a size of ¼ the size of the photodetector 12A can be identified. Thus, for example, in the case of using a 4 mm square Si PM, a 2 mm square unit scintillator is used. In the case in which the Si PM array is 8, a scintillator array is 14
at maximum.
[0047] .
[0048] Here, as illustrated in
[0049] As illustrated as a first step in
[0050] The ratio of output between unit scintillators A and B in each of the scintillator units 38A to 38D varies depending on the incident position on the unit scintillators A and B, as illustrated as a second step in
[0051] In a case in which radiation is incident on the peripheral photodetectors 12D to 12K, for which scintillator units are not illustrated in
[0052] In other words, in a case in which radiation is incident on the left or upper photodetector 12D or 12K (12D in the drawing), as illustrated in (a), the upper left scintillator unit 38E emits light. In a case in which radiation is incident on the left or lower left photodetector 12E or 12F (12E in the drawing), as illustrated in (b), the lower left scintillator unit 38F emits light. In a case in which radiation is incident on the lower or lower right photodetector 12G or 12H (12H in the drawing), as illustrated in (c), the lower right scintillator unit 38G emits light. Also, in a case in which radiation is incident on the right or upper right photodetector 12I or 12J (12I in the drawing), as illustrated in (d), the upper right scintillator unit 38H emits light. Therefore, as in
[0053] The arrangements of the scintillators relative to the central photodetector 12C are not limited to
[0054] In addition, the number of photodetectors of the photodetector array 12 is not limited to 3 as illustrated in
as illustrated in
as illustrated in
[0055] Signal processing used in the present invention may be an independent signal readout (also ref erred to as a digital readout) in which the ADC 22 is directly connected to each photodetector 12A as illustrated in
[0056]
[0057] In addition, in the above-described embodiments, the scintillator array 30 has one or three stages and the optical adhesive 32 is positioned on the radiation incident side (upper side of the drawing) thereof. However as seen in modified examples illustrated in
[0058] In addition, in the above-described embodiments, the scintillator array is formed in the shape of a rectangular parallelepiped as illustrated in
[0059] . 1
mm LFS unit scintillator 36. In the drawing, reference numeral 36A indicates an optically discontinuous plane provided in the unit scintillator 36 by a laser, for example.
[0060] It can be identified that, across the center, radiation is incident on the side of a unit scintillator 1 in the 1-2 scintillator unit example, on the side of 2 in the 2-5 example, on the side of 3 in the 3-6 example, on the side of 5 in the 4-5 example, on the side of 5 in the 5-6 example, on the side of 8 in the 5-8 example, on the side of 4 in the 4-7 example, and on the side of 9 in the 8-9 example.
[0061] . 45
. 5 mm GAGG unit scintillator and a 3
mm MPPC photodetector array. As seen enlarged in
[0062]
[0063] In a human brain PET system such as a helmet-type PET system or a PET system for small animals proposed by the applicant, a higher resolution is required compared to a whole-body screening examination for cancer. However, according to the present invention, an existing resolution of, for example, 4 mm can be improved to 2 mm, which is half of the existing resolution, without incurring a large cost, while furthermore enabling depth detection.
[0064] In the above-described embodiment, the present invention is applied to a three-dimensional digital PET detector, but the application of the present invention is not limited thereto, and it is obvious that the present invention can also be applied to radiation detectors other than PET.
INDUSTRIAL APPLICABILITY
[0065] The present invention is useful for a PET system, especially a brain PET system such as a helmet-type PET system, which requires a higher resolution than a whole body screening examination for cancer.
REFERENCE SIGNS LIST
[0066] 10 PET detector
[0067] 12 photodetector array
[0068] 12A, 12C to 12K photodetector
[0069] 14, 30, 30A to 30D scintillator array
[0070] 16, 34 reflective material
[0071] 18 light guide
[0072] 20 resistive chain
[0073] 22, 22A analog-to-digital converter (ADC)
[0074] 24, 24B, 24C two-dimensional position histogram
[0075] 32 optical adhesive
[0076] 36 unit scintillator
[0077] 38, 38A to 38H scintillator unit
[0078] 40 position evaluation unit