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
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;
Journal_Title :
Nuclear Science, IEEE Transactions on
DOI :
10.1109/TNS.2013.2286672