Medical Physics Laboratory, University of Ioannina Medical School, Ioannina, Greece.
Geant4 Associates International Ltd, Hebden Bridge, United Kingdom; Tomsk State University, Tomsk, Russia.
Phys Med. 2019 Feb;58:149-154. doi: 10.1016/j.ejmp.2019.01.001. Epub 2019 Jan 12.
The Geant4 toolkit offers a range of electromagnetic (EM) models for simulating the transport of charged particles down to sub-keV energies. They can be divided to condensed-history (CH) models (like the Livermore and Penelope models) and the track-structure (TS) models included in the Geant4-DNA low-energy extension of Geant4. Although TS models are considered the state-of-the-art for nanoscale electron transport, they are difficult to develop, computationally intensive, and commonly tailored to a single medium (e.g., water) which prohibits their use in a wide range of applications. Thus, the use of CH models down to sub-keV energies is particularly intriguing in the context of general-purpose Monte Carlo codes. The aim of the present work is to compare the performance of the CH models of Geant4 against the recently implemented TS models of Geant4-DNA for nanoscale electron transport. Calculations are presented for two fundamental quantities, the dose-point-kernel and the microdosimetric lineal energy. The influence of user-defined simulation parameters (tracking and production cuts, and maximum step size) on the above calculations is also examined. It is shown that Livermore offers the best performance among the CH models of Geant4 for nanoscale electron transport. However, even under optimally-chosen simulation parameters, the differences between the CH and TS models examined may be sizeable for low energy electrons (<1 keV) and/or nanometer size targets (<100 nm).
Geant4 工具包提供了一系列用于模拟带电粒子在亚千电子伏特能量下传输的电磁(EM)模型。它们可以分为凝聚历史(CH)模型(如 Livermore 和 Penelope 模型)和包含在 Geant4-DNA 低能扩展中的轨迹结构(TS)模型。虽然 TS 模型被认为是纳米尺度电子输运的最新技术,但它们开发难度大、计算密集,并且通常针对单一介质(例如水)进行定制,这限制了它们在广泛应用中的使用。因此,在通用蒙特卡罗代码的背景下,使用 CH 模型直到亚千电子伏特能量特别有趣。本工作的目的是比较 Geant4 的 CH 模型与 Geant4-DNA 最近实现的 TS 模型在纳米尺度电子输运中的性能。针对两个基本量,剂量点核和微剂量线性能量,给出了计算结果。还研究了用户定义的模拟参数(跟踪和产生截止以及最大步长)对上述计算的影响。结果表明,在纳米尺度电子输运中,Livermore 是 Geant4 的 CH 模型中性能最好的。然而,即使在最优选择的模拟参数下,所研究的 CH 和 TS 模型之间的差异对于低能电子(<1keV)和/或纳米尺寸靶标(<100nm)可能仍然相当大。