Title :
Analytic Model of Energy-Absorption Response Functions in Compound X-ray Detector Materials
Author :
Seungman Yun ; Ho Kyung Kim ; Hanbean Youn ; Tanguay, Jesse ; Cunningham, Ian A.
Author_Institution :
Mech. Eng. Dept., Pusan Nat. Univ., Busan, South Korea
Abstract :
The absorbed energy distribution (AED) in X-ray imaging detectors is an important factor that affects both energy resolution and image quality through the Swank factor and detective quantum efficiency. In the diagnostic energy range (20-140 keV), escape of characteristic photons following photoelectric absorption and Compton scatter photons are primary sources of absorbed-energy dispersion in X-ray detectors. In this paper, we describe the development of an analytic model of the AED in compound X-ray detector materials, based on the cascaded-systems approach, that includes the effects of escape and reabsorption of characteristic and Compton-scatter photons. We derive analytic expressions for both semi-infinite slab and pixel geometries and validate our approach by Monte Carlo simulations. The analytic model provides the energy-dependent X-ray response function of arbitrary compound materials without time-consuming Monte Carlo simulations. We believe this model will be useful for correcting spectral distortion artifacts commonly observed in photon-counting applications and optimal design and development of novel X-ray detectors.
Keywords :
Compton effect; Monte Carlo methods; X-ray detection; X-ray scattering; biomedical equipment; diagnostic radiography; photoelectricity; photon counting; AED analytic model; Compton scatter photon; Compton-scatter photon; Monte Carlo simulation; Swank factor; X-ray detector development; X-ray detector optimal design; X-ray imaging detector; absorbed energy distribution; absorbed-energy dispersion; cascaded-system approach; characteristic photon escape; compound X-ray detector material; detective quantum efficiency; diagnostic energy range; electron volt energy 20 keV to 140 keV; energy resolution; energy-absorption response function; energy-dependent X-ray response function; image quality; photoelectric absorption; photon escape effect; photon reabsorption effect; photon-counting application; pixel geometry; semiinfinite slab; spectral distortion artifact correction; Converters; Detectors; Geometry; Materials; Photonics; X-ray detectors; X-ray imaging; Absorbed energy distribution (AED); Compton scattering; X-ray convertor; compound semiconductor; detector response function; digital radiography; fluorescence; photoelectric absorption; photon-counting imaging; Absorption; Models, Theoretical; Monte Carlo Method; Photons; Radiography; Reproducibility of Results; Scattering, Radiation; X-Rays;
Journal_Title :
Medical Imaging, IEEE Transactions on
DOI :
10.1109/TMI.2013.2265806