High-energy micrometre-scale pixel direct conversion X-ray detector

被引:11
|
作者
Scott, Christopher C. [1 ]
Farrier, Michael [2 ]
Li, Yunzhe [1 ]
Laxer, Sam [1 ]
Ravi, Parmesh [3 ]
Kenesei, Peter [4 ]
Wojcik, Michael J. [4 ]
Miceli, Antonino [4 ]
Karim, Karim S. [1 ,3 ]
机构
[1] KA Imaging Inc, 560 Parkside Dr,Unit 3, Waterloo, ON N2L 5Z4, Canada
[2] Farrier Microengn LLC, 616 Petoskey St,Unit 004, Petoskey, MI 49770 USA
[3] Univ Waterloo, 200 Univ Ave West, Waterloo, ON N2L 3G1, Canada
[4] Argonne Natl Lab, Xray Sci Div Adv Photon Source, 9700 South Cass Ave, Lemont, IL 60439 USA
关键词
high-energy X-ray detector; micrometre-scale spatial resolution; amorphous selenium; AMORPHOUS SELENIUM;
D O I
10.1107/S1600577521004835
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
The objective of this work was to fabricate and characterize a new X-ray imaging detector with micrometre-scale pixel dimensions (7.8 mu m) and high detection efficiency for hard X-ray energies above 20 keV. A key technology component consists of a monolithic hybrid detector built by direct deposition of an amorphous selenium film on a custom designed CMOS readout integrated circuit. Characterization was carried out at the synchrotron beamline 1-BM-B at the Advanced Photon Source of Argonne National Laboratory. The direct conversion detector demonstrated micrometre-scale spatial resolution with a 63 keV modulation transfer function of 10% at Nyquist frequency. In addition, spatial resolving power down to 8 mu m was determined by imaging a transmission bar target at 21 keV. X-ray signal linearity, responsivity and lag were also characterized in the same energy range. Finally, phase contrast edge enhancement was observed in a phase object placed in the beam path. This amorphous selenium/CMOS detector technology can address gaps in commercially available X-ray detectors which limit their usefulness for existing synchrotron applications at energies greater than 50 keV; for example, phase contrast tomography and high-resolution imaging of nanoscale lattice distortions in bulk crystalline materials using Bragg coherent diffraction imaging. The technology will also facilitate the creation of novel synchrotron imaging applications for X-ray energies at or above 20 keV.
引用
收藏
页码:1081 / 1089
页数:9
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