PET monitoring of cancer therapy with He-3 and C-12 beams: a study with the GEANT4 toolkit
Igor Pshenichnov (Frankfurt U., FIAS, INR, Moscow), Alexei Larionov, (Frankfurt U., FIAS, Kurchatov Inst., Moscow), Igor Mishustin (Frankfurt, U., FIAS, Kurchatov Inst., Moscow), Walter Greiner (Frankfurt U., FIAS)

TL;DR
This study uses GEANT4 simulations to analyze the spatial and temporal distribution of positron-emitting nuclei produced by $^3$He and $^{12}$C beams in tissue-like materials, highlighting implications for PET monitoring in cancer therapy.
Contribution
It provides detailed Monte Carlo modeling of $eta^+$-activity profiles for $^3$He and $^{12}$C beams, including new insights into low-energy $^3$He beam advantages for PET monitoring.
Findings
$^{12}$C produces a peak near the Bragg peak in $eta^+$-activity.
$^3$He results in a more evenly distributed $eta^+$-activity during irradiation.
$^{18}$F production allows for post-irradiation activity peak detection.
Abstract
We study the spatial distributions of -activity produced by therapeutic beams of He and C ions in various tissue-like materials. The calculations were performed within a Monte Carlo model for Heavy-Ion Therapy (MCHIT) based on the GEANT4 toolkit. The contributions from C, N, O, F and P positron-emitting nuclei were calculated and compared with experimental data obtained during and after irradiation. Positron emitting nuclei are created by C beam in fragmentation reactions of projectile and target nuclei. This leads to a -activity profile characterised by a noticeable peak located close to the Bragg peak in the corresponding depth-dose distribution. On the contrary, as the most of positron-emitting nuclei are produced by He beam in target fragmentation reactions, the calculated total -activity…
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