Analog Peak Detector and Derandomizer for High-Rate Spectroscopy
نویسندگان
چکیده
A compact and accurate readout system has been developed for high-rate spectroscopy with multi-element detectors. The fully self-triggered system multiplexes the signals from 32 detectors into a novel peak detector, which also serves as a derandomizer. The captured pulse heights are stored as analog samples before being presented to the ADC along with the corresponding channel addresses. The peak detector incorporates a new two-phase configuration that cancels offsets and other errors found in conventional designs. Offset cancellation gives the peak detector rail-to-rail sensing and driving capability and permits two or more peak detectors to be operated in parallel to serve as a data-driven analog memory. First experimental results on the new peak detector and derandomizer (PDD) circuit, fabricated in 0.35 m CMOS technology, include a 0.2% absolute accuracy for pulses with 500-ns peaking time, 2.7-V linear-input range, 3.5-mW power dissipation, 250-mV/s droop rate, and negligible dead time. We have tested the system with 32 CZT detectors and a Am source. The spectra collected from the 32-channel system show that the noise performance of the preamp/shaper is not degraded by the multiplexing, peak detecting, and derandomizing operations.
منابع مشابه
Analog CMOS peak detect and hold circuits. Part 2. The two-phase offset-free and derandomizing configuration
An analog CMOS peak detect and hold (PDH) circuit, which combines high speed and accuracy, rail-to-rail sensing and driving, low power, and buffering is presented. It is based on a configuration that cancels the major error sources of the classical CMOS PDH, including offset and common mode gain, by re-using the same amplifier for tracking, peak sensing, and output buffering. By virtue of its h...
متن کاملOn the Analog CMOS Peak Detect and Hold Circuit Part 2. Offset-Free Rail-to-Rail and Derandomizing Configuration1
An analog CMOS peak detect and hold (PDH) circuit which combines high speed and accuracy, rail-to-rail sensing and driving, low power, and buffering is presented. It is based on a configuration that cancels the major error sources of the classical CMOS PDH, including offset and common mode gain, by re-using the same amplifier for tracking, peak sensing, and output buffering. By virtue of its hi...
متن کاملEffects, determination, and correction of count rate nonlinearity in multi-channel analog electron detectors.
Detector counting rate nonlinearity, though a known problem, is commonly ignored in the analysis of angle resolved photoemission spectroscopy where modern multichannel electron detection schemes using analog intensity scales are used. We focus on a nearly ubiquitous "inverse saturation" nonlinearity that makes the spectra falsely sharp and beautiful. These artificially enhanced spectra limit ac...
متن کاملDesign of High Speed, Low Power and Wide range Ripple Detector for On-Chip testing in CMOS Technology
On chip testing is an attractive solution for testing of analog integrated circuits. In this paper a low power , built in CMOS Ripple Detector is presented for the purpose of detecting the ripples in the supply rails and specifies its application for On chip testing. The detector works on the principle of RMS detection. The circuit outputs a DC signal that is proportional to the peak to peak am...
متن کاملMonte Carlo Determination of Full Energy Peak Efficiency for HPGe Detector and Self-Absorption Correction of Environmental Samples
The Monte Carlo method was used to determine full energy efficiency of a high-purity germanium (HPGe) coaxial detector within an energy range of 53.2-2614 keV. Also, measurement was carried out for a standard Marinelli beaker of 600cm3, which was placed into the reference material of mixed gamma. The plot of the experimentally derived effic...
متن کامل