Abstract
X-ray fluorescence computed tomography (XFCT) has shown great potential in molecular biomedical imaging. However, conventional XFCT has some limitations, including sensitivity and a trade-off between spatial resolution and dose. X-ray fluorescence ghost imaging (XRF-GI) makes it possible to realize high-resolution imaging with low doses. However, the efficient implantation of XRF-GI requires a quasi-monochromatic x-ray source. The inverse Compton scattering (ICS) source could meet the requirement well. In this study, we developed a Monte Carlo simulation model of an XRF-GI system based on the Geant4 toolkit. The simulation model was composed of an ICS source, a series of Hadamard pattern-based masks as a modulating system, a single-pixel energy-resolving detector, and a phantom embedded with gold nanoparticles (GNPs) of different concentrations as the contrast agent. The image reconstructed by the total variation-regularized least squares ( L 2 -TV) algorithm was evaluated by four criteria, including the mean square error, the contrast-to-noise ratio, the coefficient of determination ( R 2 ), and the limit of detection. Compared to XFCT, the reconstructed image of XRF-GI has better performance in all four criteria, and the dose of XRF-GI was halved without a decrease in resolution. It was validated that the beam properties of the ICS source fitted well with the implantation of XRF-GI for different conditions. In conclusion, the XRF-GI by an ICS source has great potential for biomedical imaging.
| Original language | English |
|---|---|
| Article number | 123106 |
| Journal | Journal of Applied Physics |
| Volume | 138 |
| Issue number | 12 |
| DOIs | |
| State | Published - 28 Sep 2025 |
| Externally published | Yes |
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