Positronium Imaging: History, Current Status, and Future Perspectives
arXiv:2503.14120 · doi:10.1109/TRPMS.2025.3583554
Abstract
Positronium imaging was recently proposed to image the properties of positronium atoms in the patient body. Positronium properties depend on the size of intramolecular voids and oxygen concentration; therefore, they deliver information different and complementary to the anatomic, morphological, and metabolic images. Thus far, the mean ortho-positronium lifetime imaging has been at the center of research interest. The first ex vivo and in vivo positronium lifetime images of humans have been demonstrated with the dedicated J-PET scanner enabling simultaneous registration of annihilation photons and prompt gamma from emitters. Annihilation photons are used to reconstruct the annihilation place and time while prompt gamma is used to reconstruct the time of positronium formation. This review describes recent achievements in the translation of positronium imaging into clinics. The first measurements of positronium lifetime in humans with commercial PET scanners modernized to register triple coincidences are reported. The in vivo observations of differences in ortho-positronium lifetime between tumor and healthy tissues and between different oxygen concentrations are discussed. So far, the positronium lifetime measurements in humans were completed with clinically available , , and radionuclides. Status and challenges in developing positronium imaging on a way to a clinically useful procedure are presented and discussed.
This manuscript has been approved for publication and is available in Early Access in IEEE Transactions on Radiation and Plasma Medical Sciences
Cited by in corpus (5)
- First Positronium Lifetime Imaging using Mn and Co with a plastic-based PET scanner
- Quantum Entanglement Degree, Mean Positronium Lifetime, and the / Annihilation-Rate Ratio as Novel PET Biomarkers for Hypoxia -- Concept, Challenges, and Predictions
- Many-body theory predictions of positron binding energies in five-membered heterocycles involving N, O, S and NH substituents
- Ultrafast laser-driven quantum dynamics in positronium chloride
- Coupled cluster theory for positron binding in anions and polyatomic molecules