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使用新型模型介电响应函数对液态水中的蒙特卡罗电子轨迹结构进行计算。

Monte Carlo Electron Track Structure Calculations in Liquid Water Using a New Model Dielectric Response Function.

作者信息

Emfietzoglou Dimitris, Papamichael George, Nikjoo Hooshang

机构信息

a   Medical Physics Laboratory, University of Ioannina Medical School, Ioannina 45110, Greece.

b   Division of Applied Statistics, Institute of Labor (GSEE), Athens 10681, Greece.

出版信息

Radiat Res. 2017 Sep;188(3):355-368. doi: 10.1667/RR14705.1. Epub 2017 Jun 26.

Abstract

Monte Carlo track structure codes provide valuable information for understanding radiation effects down to the DNA level, where experimental measurements are most difficult or unavailable. It is well recognized that the performance of such codes, especially at low energies and/or subcellular level, critically depends on the reliability of the interaction cross sections that are used as input in the simulation. For biological media such as liquid water, one of the most challenging issues is the role of condensed-phase effects. For inelastic scattering, such effects can be conveniently accounted for through the complex dielectric response function of the media. However, for this function to be useful it must fulfill some important sum rules and have a simple analytic form for arbitrary energy- and momentum-transfer. The Emfietzoglou-Cucinotta-Nikjoo (ECN) model offers a practical, self-consistent and fully analytic parameterization of the dielectric function of liquid water based on the best available experimental data. An important feature of the ECN model is that it includes, in a phenomenological manner, exchange and correlation effects among the screening electrons, thus, going beyond the random-phase approximation implicit in earlier models. In this work, inelastic cross sections beyond the plane wave Born approximation are calculated for low-energy electrons (10 eV-10 keV) based on the ECN model, and used for Monte Carlo track structure simulations of physical quantities relevant to the microdosimetry of low-energy electrons in liquid water. Important new developments in the physics of inelastic scattering are discussed and their effect on electron track structure is investigated by a comparison against simulations (under otherwise identical conditions) using the Born approximation and a simpler form of the dielectric function based on the Oak Ridge National Laboratory model. The results reveal that both the dielectric function and the corrections to the Born approximation may have a sizeable effect on track structure calculations at the nanometer scale (DNA level), where the details of inelastic scattering and the role of low-energy electrons are most critical.

摘要

蒙特卡罗径迹结构代码为理解直至DNA水平的辐射效应提供了有价值的信息,而在DNA水平上进行实验测量最为困难或无法实现。众所周知,此类代码的性能,尤其是在低能和/或亚细胞水平下,关键取决于用作模拟输入的相互作用截面的可靠性。对于诸如液态水这样的生物介质,最具挑战性的问题之一是凝聚相效应的作用。对于非弹性散射,此类效应可通过介质的复介电响应函数方便地予以考虑。然而,要使该函数有用,它必须满足一些重要的求和规则,并且对于任意的能量和动量转移都具有简单的解析形式。Emfietzoglou-Cucinotta-Nikjoo(ECN)模型基于现有最佳实验数据,对液态水的介电函数提供了一种实用、自洽且完全解析的参数化。ECN模型的一个重要特征是,它以唯象的方式包含了屏蔽电子之间的交换和关联效应,因此超越了早期模型中隐含的随机相位近似。在这项工作中,基于ECN模型计算了低能电子(10 eV - 10 keV)超出平面波玻恩近似的非弹性截面,并将其用于与液态水中低能电子微剂量学相关的物理量的蒙特卡罗径迹结构模拟。讨论了非弹性散射物理学中的重要新进展,并通过与使用玻恩近似以及基于橡树岭国家实验室模型的更简单介电函数形式(在其他相同条件下)的模拟进行比较,研究了它们对电子径迹结构的影响。结果表明,介电函数以及对玻恩近似的修正可能会对纳米尺度(DNA水平)的径迹结构计算产生相当大的影响,在该尺度下非弹性散射的细节和低能电子的作用最为关键。

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