Published May 1, 2017 | Version v1
Journal article

Low-energy electron dose-point kernel simulations using new physics models implemented in Geant4-DNA

  • 1. UMR 1037, CRCT, Université Toulouse III-Paul Sabatier, F-31037 (France)
  • 2. CRCT, UMR 1037 INSERM, Université Paul Sabatier, F-31037 Toulouse (France)
  • 3. CNRS, IN2P3, CENBG, UMR 5797, F-33170 Gradignan (France)
  • 4. Université de Bordeaux, CENBG, UMR 5797, F-33170 Gradignan (France)

Description

When low-energy electrons, such as Auger electrons, interact with liquid water, they induce highly localized ionizing energy depositions over ranges comparable to cell diameters. Monte Carlo track structure (MCTS) codes are suitable tools for performing dosimetry at this level. One of the main MCTS codes, Geant4-DNA, is equipped with only two sets of cross section models for low-energy electron interactions in liquid water ("option 2" and its improved version, "option 4"). To provide Geant4-DNA users with new alternative physics models, a set of cross sections, extracted from CPA100 MCTS code, have been added to Geant4-DNA. This new version is hereafter referred to as "Geant4-DNA-CPA100". In this study, "Geant4-DNA-CPA100" was used to calculate low-energy electron dose-point kernels (DPKs) between 1 keV and 200 keV. Such kernels represent the radial energy deposited by an isotropic point source, a parameter that is useful for dosimetry calculations in nuclear medicine. In order to assess the influence of different physics models on DPK calculations, DPKs were calculated using the existing Geant4-DNA models ("option 2" and "option 4"), newly integrated CPA100 models, and the PENELOPE Monte Carlo code used in step-by-step mode for monoenergetic electrons. Additionally, a comparison was performed of two sets of DPKs that were simulated with "Geant4-DNA-CPA100" – the first set using Geant4′s default settings, and the second using CPA100′s original code default settings. A maximum difference of 9.4% was found between the Geant4-DNA-CPA100 and PENELOPE DPKs. Between the two Geant4-DNA existing models, slight differences, between 1 keV and 10 keV were observed. It was highlighted that the DPKs simulated with the two Geant4-DNA's existing models were always broader than those generated with "Geant4-DNA-CPA100". The discrepancies observed between the DPKs generated using Geant4-DNA's existing models and "Geant4-DNA-CPA100" were caused solely by their different cross sections. The different scoring and interpolation methods used in CPA100 and Geant4 to calculate DPKs showed differences close to 3.0% near the source.

Availability note (English)

Available from http://dx.doi.org/10.1016/j.nimb.2017.02.044

Additional details

Identifiers

DOI
10.1016/j.nimb.2017.02.044;
PII
S0168-583X(17)30163-5;

Publishing Information

Journal Title
Nuclear Instruments and Methods in Physics Research. Section B, Beam Interactions with Materials and Atoms
Journal Volume
398
Journal Page Range
p. 13-20
ISSN
0168-583X
CODEN
NIMBEU

Optional Information

Copyright
Copyright (c) 2017 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.