DocumentCode
5307
Title
Charge Summing in Spectroscopic X-Ray Detectors With High-Z Sensors
Author
Koenig, Thomas ; Hamann, E. ; Procz, S. ; Ballabriga, Rafael ; Cecilia, A. ; Zuber, Marcus ; Llopart, X. ; Campbell, Malachy ; Fauler, A. ; Baumbach, Tilo ; Fiederle, M.
Author_Institution
Inst. for Photon Sci. & Synchrotron Radiat. (IPS), Karlsruhe Inst. of Technol., Karlsruhe, Germany
Volume
60
Issue
6
fYear
2013
fDate
Dec. 2013
Firstpage
4713
Lastpage
4718
Abstract
The spectroscopic performance of photon counting detectors is limited by the effects of charge sharing between neighboring pixels and the emission of characteristic X-rays. For these reasons, an event can be either missed or counted more than once. These effects become more and more of a concern when pixel pitches are reduced, and for the technology available so far, this meant that there would always be a trade-off between a high spatial and a high spectral resolution. In this work, we present first measurements obtained with the new Medipix3RX ASIC, which features a network of charge summing circuits establishing a communication between pixels which helps to mitigate these effects. Combined with cadmium telluride sensors, we show that this new technology is successful at improving a detector´s spectroscopic capabilities even at pixel pitches as small as 55 μm. At this pitch, we measure an energy response function similar to that observed for a pixel pitch of 165 μm in the absence of a charge summing circuitry. This amounts to an effective reduction of the pixel area by at least one order of magnitude at a comparable energy response. Additionally, we present synchrotron measurements at high X-ray fluxes, where significant pulse pile-up occurs, and provide first experimental evidence for a net benefit when balancing spectroscopic performance and high flux tolerance in charge summing mode.
Keywords
X-ray detection; application specific integrated circuits; cadmium compounds; photon counting; semiconductor counters; spectroscopy; summing circuits; Medipix3RX ASIC; cadmium telluride sensors; characteristic X-ray emission; charge sharing effects; charge summing circuit network; charge summing mode; comparable energy response magnitude; detector spectroscopic capabilities; effect mitigation; energy response function measurement; experimental evidence; high X-ray fluxes; high flux tolerance; high spatial resolution trade-off; high spectral resolution trade-off; high-Z sensors; neighboring pixels; net benefit; photon counting detectors; pixel area reduction; pixel communication; pixel pitches; pulse pile-up; spectroscopic X-ray detectors; spectroscopic performance; spectroscopic performance balancing; synchrotron measurements; Biomedical imaging; Detectors; Ionizing radiation sensors; Medical diagnostic imaging; Semiconductor detectors; Sensor systems and applications; X-ray detectors; Biomedical imaging; X-ray detectors; X-ray spectroscopy; detectors; hybrid pixel detectors; imaging; ionizing radiation sensors; medical diagnostic imaging; room temperature semiconductors; semiconductor detectors; sensor systems and applications; sensors;
fLanguage
English
Journal_Title
Nuclear Science, IEEE Transactions on
Publisher
ieee
ISSN
0018-9499
Type
jour
DOI
10.1109/TNS.2013.2286672
Filename
6678092
Link To Document