Accurate dosimetry in radiopharmaceutical therapy (RPT) is only possible with proper equipment and calibration of systems used for quantitative SPECT (qSPECT). With the Graves Phantom, system sensitivity can be measured for each radionuclide, supporting the accurate conversion of counts to radioactivity. This allows for streamlined qSPECT calibration workflows that can be practically implemented in clinics, or within RPT trials.
Enabling Realistic Scatter
Developed in collaboration with Stephen Graves, Ph.D., of the University of Iowa, the Graves Phantom is a simple-to-use, water-equivalent phantom that includes a range of standard lab bottles.
The Graves Phantom design provides significant advantages over basic methods such as point source for planar or SPECT sensitivity calibration. In addition, compared to more complex methods like a 3D-printed organ within an anthropomorphic water phantom, the Graves Phantom delivers similar benefits with less complexity. The key advantage over point or line source methods is that the phantom and bottle provide realistic
scatter, which is not fully corrected for using conventional SPECT imaging reconstruction techniques like dual- or triple-energy window (TEW) scatter correction.
1 Stephen Graves et al. Evaluation of a scalable qSPECT calibration method for radiopharmaceutical dosimetry. J Nucl Med 2021;62:1433