학술논문

Corrections for Fluorescence and Charge-Sharing Effects to Bremsstrahlung Spectra for a Hyperspectral Pixelated CZT X-Ray Detector
Document Type
Periodical
Source
IEEE Transactions on Nuclear Science IEEE Trans. Nucl. Sci. Nuclear Science, IEEE Transactions on. 70(6):1202-1209 Jun, 2023
Subject
Nuclear Engineering
Bioengineering
Fluorescence
Photonics
Cloud computing
Detectors
Crystals
Image quality
Anodes
CdZnTe (CZT)
charge-sharing correction
escape peaks
fluorescence
high energy X-ray imaging technology (HEXITEC)
spectral
spectroscopic
X-ray
Language
ISSN
0018-9499
1558-1578
Abstract
A Monte Carlo model was developed to simulate the response of a pixelated hyperspectral CdZnTe (CZT) X-ray detector. The first part of the simulation was carried out using Geant4 to obtain a list of energy depositions inside the CZT crystal. The second part of the simulation used charge transport equations to calculate the size of the electron charge cloud, as it drifts under the influence of an electric field to be read out. Experimentally acquired data from an Am-241 source with the high energy X-ray imaging technology (HEXITEC) detector were compared to simulated data, and good agreement was found. The model was used to investigate the energy dependence of fluorescence and charge-sharing effects. The probability of producing an escaped fluorescence photon was quantified as a function of primary photon energy. As expected, at primary photon energies just above the K-edge of Cd, there was a greater chance of producing an escaped fluorescence photon, and this probability decreased as the primary photon energy increased. The probability of an event being shared across multiple pixels as a function of primary photon energy was quantified. It was found that as the primary photon energy was increased, there was a greater chance of producing an event shared across multiple pixels. The detector response to a Bremsstrahlung spectrum was simulated. Using previous results, fluorescence and charge-sharing effects were corrected for, giving a corrected spectrum in good agreement with the input spectrum.