Literature DB >> 28294362

Systematic out-of-field secondary neutron spectrometry and dosimetry in pencil beam scanning proton therapy.

Sebastian Trinkl1,2, Vladimir Mares1, Franz Siegfried Englbrecht3, Jan Jakob Wilkens2,4, Marek Wielunski1, Katia Parodi3, Werner Rühm1, Martin Hillbrand5.   

Abstract

BACKGROUND AND
PURPOSE: Systematic investigation of the energy and angular dependence of secondary neutron fluence energy distributions and ambient dose equivalents values (H*(10)) inside a pencil beam scanning proton therapy treatment room using a gantry.
MATERIALS AND METHODS: Neutron fluence energy distributions were measured with an extended-range Bonner sphere spectrometer featuring ³He proportional counters, at four positions at 0°, 45°, 90°, and 135° with respect to beam direction and at a distance of 2 m from the isocenter. The energy distribution of secondary neutrons was investigated for initial proton beam energies of 75 MeV, 140 MeV, and 200 MeV, respectively, using a 2D scanned irradiation field of 11 × 11 cm² delivered to a 30 × 30 × 30 cm³ PMMA phantom. Additional measurements were performed at a proton energy of 118 MeV including a 5 cm range-shifter (PMMA), yielding a Bragg peak position similar to that of 75 MeV protons.
RESULTS: Ambient dose equivalent values from 0.3 μSv/Gy (75 MeV; 90°) to 24 μSv/Gy (200 MeV; 0°) were measured inside the treatment room at a distance of 2 m from the isocenter. H*(10) values were lower (by factors of up to 7.2 (at 45°)) at 75 MeV compared to those at 118 MeV with the 5 cm range-shifter. At 0° and 45°, an evaporation peak was found in the measured neutron fluence energy distributions, at neutron energies around MeV, which contributes about 50% to total H*(10) values, for all investigated proton beam energies.
CONCLUSIONS: This study showed a pronounced increase of secondary neutron H*(10) values inside the proton treatment room with increasing proton energy without beam modifiers. For example, in beam direction this increase was about a factor of 50 when protons of 75 MeV and 200 MeV were compared. The existence of a peak of secondary neutrons in the MeV region was demonstrated in beam direction (0°). This peak is due to evaporation neutrons produced in the existing surrounding materials such as those used for the gantry. Therefore, any simulation of the secondary neutrons within a proton treatment room must take these materials into account. In addition, the results obtained here show that the use of a range-shifter increases the production of secondary neutrons inside the treatment room. Using a range-shifter, the higher neutron doses observed mainly result from the higher incident proton energy (118 MeV instead of 75 MeV when no range-shifter was used), due to higher neutron production cross-sections.
© 2017 American Association of Physicists in Medicine.

Entities:  

Keywords:  Geant4; extended-range Bonner sphere spectrometer; neutron dosimetry; neutron spectrometry; pencil beam scanning; proton radiotherapy

Mesh:

Substances:

Year:  2017        PMID: 28294362     DOI: 10.1002/mp.12206

Source DB:  PubMed          Journal:  Med Phys        ISSN: 0094-2405            Impact factor:   4.071


  5 in total

Review 1.  Neutron dose and its measurement in proton therapy-current State of Knowledge.

Authors:  Roger Antoine Hälg; Uwe Schneider
Journal:  Br J Radiol       Date:  2020-01-21       Impact factor: 3.039

2.  Validation of a Monte Carlo Framework for Out-of-Field Dose Calculations in Proton Therapy.

Authors:  Marijke De Saint-Hubert; Nico Verbeek; Christian Bäumer; Johannes Esser; Jörg Wulff; Racell Nabha; Olivier Van Hoey; Jérémie Dabin; Florian Stuckmann; Fabiano Vasi; Stephan Radonic; Guillaume Boissonnat; Uwe Schneider; Miguel Rodriguez; Beate Timmermann; Isabelle Thierry-Chef; Lorenzo Brualla
Journal:  Front Oncol       Date:  2022-06-08       Impact factor: 5.738

3.  Range-shifter effects on the stray field in proton therapy measured with the variance-covariance method.

Authors:  Linda Eliasson; Jan Lillhök; Torbjörn Bäck; Robert Billnert-Maróti; Alexandru Dasu; Malgorzata Liszka
Journal:  Front Oncol       Date:  2022-08-02       Impact factor: 5.738

4.  Simulation and experimental verification of ambient neutron doses in a pencil beam scanning proton therapy room as a function of treatment plan parameters.

Authors:  Olivier Van Hoey; Liliana Stolarczyk; Jan Lillhök; Linda Eliasson; Natalia Mojzeszek; Malgorzata Liszka; Ali Alkhiat; Vladimir Mares; François Trompier; Sebastian Trinkl; Immaculada Martínez-Rovira; Maite Romero-Expósito; Carles Domingo; Ondrej Ploc; Roger Harrison; Pawel Olko
Journal:  Front Oncol       Date:  2022-09-08       Impact factor: 5.738

5.  Geant4 Monte Carlo simulation study of the secondary radiation fields at the laser-driven ion source LION.

Authors:  M Tisi; V Mares; J Schreiber; F S Englbrecht; W Rühm
Journal:  Sci Rep       Date:  2021-12-24       Impact factor: 4.379

  5 in total

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