DocumentCode :
14188
Title :
A Method for Fabricating High Spatial Resolution Scintillator Arrays
Author :
Sabet, Hamid ; Bhandari, Harish B. ; Kudrolli, Haris ; Miller, Stuart R. ; Nagarkar, Vivek V.
Author_Institution :
Radiat. Monitoring Devices Inc., Watertown, MA, USA
Volume :
60
Issue :
2
fYear :
2013
fDate :
Apr-13
Firstpage :
1000
Lastpage :
1005
Abstract :
Scintillators like thallium doped cesium iodide (CsI:Tl) can be fabricated in microcolumnar form using physical vapor deposition (PVD). The microcolumns channel the scintillation light to the photodetector which results in an improved spatial resolution. This has lead to widespread use of microcolumnar CsI:Tl in digital X-ray radiography. We present here a PVD-based method to aggregate microcolumns into structures called macrocolumns to form scintillator arrays suitable for use in nuclear imaging. In this novel approach, patterned substrates with shallow grooves 20 μm wide, 50 μm deep, with pitch ranging 100 - 500 μm were fabricated and adopted. CsI:Tl scintillator was vapor deposited onto these substrates. The optimal deposition parameters resulted in microcolumnar CsI:Tl, which displayed a macrocolumnar structure dictated by the underlying pattern of the substrate. Scanning electron micrographs (SEM) show that the microcolumns within the macrocolumns are highly oriented and perpendicular to the surface of the substrates. Energy resolution approaching that of a single crystal CsI:Tl was achieved. Since the microcolumns are densely packed with minimal gap, they behave as a macrocolumn or a single pixel. Our technique for fabricating scintillator arrays is a cost-effective alternative to mechanical pixelation of scintillators. This technique results in a high fill factor scintillation detector with minimized inter-macrocolumn gap, and high-yield detector arrays without issues related to material loss in mechanical pixelation. Coupling these structured scintillators to silicon photomultipliers (SiPMs) and applying Anger logic, we resolved scintillator pixels that were almost 1/10th the size of the SiPM macro-pixels. Combining this structured CsI:Tl scintillator with SiPMs results in a compact detector that is ideal for X-ray, gamma-ray, and charged particle detection, such as beta and gamma imaging probes and hand held cameras.
Keywords :
X-ray detection; caesium compounds; gamma-ray detection; photodetectors; photomultipliers; radiography; scanning electron microscopy; silicon; solid scintillation detectors; thallium; vapour deposition; Anger logic; CsI:Tl; CsI:Tl scintillator; PVD-based method; SEM; SiPM macro-pixel results; X-ray detection; beta imaging probe; charged particle detection; compact detector; cost-effective alternative; densely packed microcolumns; digital X-ray radiography; energy resolution; gamma imaging probe; gamma-ray detection; hand held cameras; high fill factor scintillation detector; high spatial resolution scintillator array fabrication method; high-yield detector arrays; improved spatial resolution; macrocolumn structures; mechanical pixelation material loss; microcolumn aggregation; microcolumn channel; microcolumnar form fabrication; minimized inter-macrocolumn gap; nuclear imaging; optimal deposition parameters; patterned substrates; photodetector; physical vapor deposition; pitch range; resolved scintillator pixels; scanning electron micrographs; scintillation light; scintillator array fabrication technique results; scintillator mechanical pixelation; shallow grooves; silicon photomultipliers; single crystal thallium doped cesium iodide; single pixel; structured CsI:Tl scintillator; structured scintillator coupling; substrate surface; Detectors; Histograms; Image quality; Positrons; Spatial resolution; Substrates; CsI:Tl; SiPM; high-resolution; macrocolumnar scintillators; microcolumnar scintillators; physical vapor deposition;
fLanguage :
English
Journal_Title :
Nuclear Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9499
Type :
jour
DOI :
10.1109/TNS.2012.2236574
Filename :
6413258
Link To Document :
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