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Five CMOS shaper topologies are designed using OTAs and compared in terms of noise performance, total harmonic distortion, dynamic range and power consumption in order to examine which is the most preferable in readout applications.
The shaper was designed and fabricated in a 0.35 μm process by Austria Mikro Systeme and provides continuous variable operating bandwidth in a relatively low-frequency region, capability that indicates it as an optimum selection for a variety of readout applications.
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A wide measuring range from 0.5 to 1.0×105 MIPs can be achieved using the VA32 readout Application Specific Integrated Circuit (ASIC).
A 16-channel front-end readout application-specific integrated circuit (ASIC) with linearity enhancement design for cadmium zinc telluride (CdZnTe) detectors is presented in this paper.
In this paper, we present the development and performances of a radiation-hardened front-end readout application-specific integrated circuit (ASIC) dedicated to CZT detectors for a hard X-ray imager in space applications.
In this paper, we present the design and characteristics of a novel low-noise front-end readout application-specific integrated circuit dedicated to CdZnTe (CZT) detectors for a small animal PET imaging system.
Because of the charge-coupling limitation of the readout Application Specific Integrated Circuit (ASIC) that was originally designed for Si detectors, the detector is biased to collect holes from the input.
This paper presents the design and the performance of a low-noise front-end readout application specific integrated circuit (ASIC) dedicated to CZT detectors for a hard X-ray imager.
We have built the second version of a Large Area Detector (LAD) with a 500 μm thick pixellated silicon detector that is bump-bonded to seven readout application-specific integrated-circuits, (ASICs) each with 64×64 pixels.
The graphical user interface is kept simple in design so that the rower is not distracted due to the readout of the application data during the rowing.
For these distinct applications, the readout electronics of the radiation detector were identical except for a change in the gain of the current-to-voltage amplifier stage (see "Radiation detection technique" section).
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