Electronic Stopping Power of Ions in Cold Targets and Warm Plasmas

M. Gu, T. Mehlhorn, I. Golovkin
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引用次数: 1

Abstract

We report on a new wide range electronic stopping power model that builds on the random phase approximation (RPA) dielectric response formalism of Wang, et al [1] and the local density approximation (LDA) with electronic density distributions calculated in an average atom model using the Flexible Atomic Code (FAC) [2] . The accuracy of this model has been greatly improved by implementing several extensions to RPA theory including a strong collision correction based on the binary collision theory of Zwicknagel for k>kmax [3] , a static local field correction [4] , an electron binding energy correction, and the Barkas effect [5] . The combined corrections bring our RPA-LDA proton stopping power results in cold targets into close agreement with experiments across the periodic table (PSTAR database). We will also show results for the stopping of ions in warm dense plasmas as compared with the published data. We will describe our plans to implement this accurate ion stopping power model into an efficient and robust framework for computing ion energy deposition in HED plasmas spanning a wide range of temperatures and densities and to incorporate them into the HELIOS-CR hydro code (Prism) and Chicago (Voss), as well as an open source standalone code.
离子在冷靶和热等离子体中的电子停止能力
我们报道了一种新的宽范围电子停止功率模型,该模型建立在Wang等人[1]的随机相位近似(RPA)介电响应形式和局部密度近似(LDA)的基础上,该模型使用柔性原子代码(FAC)[2]在平均原子模型中计算电子密度分布。通过对RPA理论进行若干扩展,包括基于Zwicknagel二元碰撞理论对k>kmax的强碰撞校正[3]、静态局部场校正[4]、电子结合能校正和Barkas效应[5],该模型的精度得到了极大的提高。综合校正使我们的RPA-LDA在冷靶中的质子停止功率结果与整个元素周期表(PSTAR数据库)的实验结果非常一致。我们还将展示在温暖致密等离子体中离子停止的结果,并与已发表的数据进行比较。我们将描述我们的计划,将这种精确的离子停止功率模型实现到一个高效和强大的框架中,用于计算跨越广泛温度和密度的HED等离子体中的离子能量沉积,并将它们合并到HELIOS-CR hydro代码(Prism)和Chicago (Voss)中,以及一个开源的独立代码。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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