Positron range estimations with PeneloPET
Creators
- 1. Grupo de Física Nuclear, Departamento de Física Atómica, Molecular y Nuclear, Universidad Complutense de Madrid, CEI Moncloa (Spain)
- 2. Madrid-MIT M-Vision Consortium, Research Lab of Electronics, MIT, Cambridge, MA (United States)
- 3. Medical Image and Signal Processing Group, Department of Electronics and Information Systems, Ghent University Hospital (Belgium)
- 4. Departamento de Bioingeniería e Ingeniería Aeroespacial, Universidad Carlos III de Madrid (Spain)
Description
Technical advances towards high resolution PET imaging try to overcome the inherent physical limitations to spatial resolution. Positrons travel in tissue until they annihilate into the two gamma photons detected. This range is the main detector-independent contribution to PET imaging blurring. To a large extent, it can be remedied during image reconstruction if accurate estimates of positron range are available. However, the existing estimates differ, and the comparison with the scarce experimental data available is not conclusive. In this work we present positron annihilation distributions obtained from Monte Carlo simulations with the PeneloPET simulation toolkit, for several common PET isotopes (18F, 11C, 13N, 15O, 68Ga and 82Rb) in different biological media (cortical bone, soft bone, skin, muscle striated, brain, water, adipose tissue and lung). We compare PeneloPET simulations against experimental data and other simulation results available in the literature. To this end the different positron range representations employed in the literature are related to each other by means of a new parameterization for positron range profiles. Our results are generally consistent with experiments and with most simulations previously reported with differences of less than 20% in the mean and maximum range values. From these results, we conclude that better experimental measurements are needed, especially to disentangle the effect of positronium formation in positron range. Finally, with the aid of PeneloPET, we confirm that scaling approaches can be used to obtain universal, material and isotope independent, positron range profiles, which would considerably simplify range correction. (paper)
Availability note (English)
Available from http://dx.doi.org/10.1088/0031-9155/58/15/5127Additional details
Identifiers
Publishing Information
- Journal Title
- Physics in Medicine and Biology
- Journal Volume
- 58
- Journal Issue
- 15
- Journal Page Range
- p. 5127-5152
- ISSN
- 0031-9155
- CODEN
- PHMBA7
INIS
- Country of Publication
- United Kingdom
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 44076651
- Subject category
- S62: RADIOLOGY AND NUCLEAR MEDICINE;
- Descriptors DEI
- ADIPOSE TISSUE; ANNIHILATION; BRAIN; CARBON 11; COMPARATIVE EVALUATIONS; COMPUTERIZED SIMULATION; FLUORINE 18; GALLIUM 68; IMAGE PROCESSING; LUNGS; MONTE CARLO METHOD; MUSCLES; NITROGEN 13; OXYGEN 15; PHOTONS; POSITRONS; RUBIDIUM 82; SKELETON; SKIN
- Descriptors DEC
- ANIMAL TISSUES; ANTILEPTONS; ANTIMATTER; ANTIPARTICLES; BETA DECAY RADIOISOTOPES; BETA-PLUS DECAY RADIOISOTOPES; BODY; BOSONS; CALCULATION METHODS; CARBON ISOTOPES; CENTRAL NERVOUS SYSTEM; CONNECTIVE TISSUE; ELECTRON CAPTURE RADIOISOTOPES; ELEMENTARY PARTICLES; EVALUATION; EVEN-ODD NUCLEI; FERMIONS; FLUORINE ISOTOPES; GALLIUM ISOTOPES; HOURS LIVING RADIOISOTOPES; INTERACTIONS; INTERMEDIATE MASS NUCLEI; ISOMERIC TRANSITION ISOTOPES; ISOTOPES; LEPTONS; LIGHT NUCLEI; MASSLESS PARTICLES; MATTER; MINUTES LIVING RADIOISOTOPES; NANOSECONDS LIVING RADIOISOTOPES; NERVOUS SYSTEM; NITROGEN ISOTOPES; NUCLEI; ODD-EVEN NUCLEI; ODD-ODD NUCLEI; ORGANS; OXYGEN ISOTOPES; PARTICLE INTERACTIONS; PROCESSING; RADIOISOTOPES; RESPIRATORY SYSTEM; RUBIDIUM ISOTOPES; SIMULATION