Comparison of the x-ray tube spectrum measurement using BGO, NaI, LYSO, and HPGe detectors in a preclinical mini-CT scanner: Monte Carlo simulation and practical experiment
Vahid Lohrabian, Alireza Kamali-Asl, Hossein Ghadiri Harvani, Seyed, Rashid Hosseini Aghdam, Hossein Arabi

TL;DR
This study compares the performance of BGO, NaI, LYSO, and HPGe detectors in measuring x-ray spectra in a mini-CT scanner, using both Monte Carlo simulations and practical experiments to evaluate their efficiency and resolution.
Contribution
It introduces a comprehensive comparison of solid-state gamma-ray detectors for dual-energy x-ray spectrum generation in preclinical CT using combined simulation and experimental validation.
Findings
HPGe detector achieved 9.16% energy resolution.
Maximum 6% difference between experimental and simulated spectra.
Dual-energy spectrum with minimal overlap was successfully generated.
Abstract
The aim of this study is to estimate the intrinsic efficiency and energy resolution of different types of solid-state gamma-ray detectors in order to generate a precise dual-energy x-ray beam from the conventional x-ray tube using external x-ray filters. The x-ray spectrum of a clinical x-ray tube was experimentally measured using a high purity Germanium detector (HPGe) and the obtained spectrum validated by Monte Carlo (MC) simulations. The obtained x-ray spectrum from the experiment was employed to assess the energy resolution and detection efficiency of different inorganic scintillators and semiconductor-based solid-state detectors, namely HPGe, BGO, NaI, and LYSO, using MC simulations. The best performing detector was employed to experimentally create and measure a dual-energy x-ray spectrum through applying attenuating filters to the original x-ray beam. The simulation results…
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