Improved Ionization Potential Depression Model Incorporating Dynamical Structure Factors and Electron Degeneracy for Non-Ideal Plasma Composition.

IF 2.1 3区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY
Entropy Pub Date : 2025-02-27 DOI:10.3390/e27030253
Yeldos Seitkozhanov, Karlygash Dzhumagulova, Erik Shalenov
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Abstract

In this work, we present an improved model for ionization potential depression (IPD) in dense plasmas that builds upon the approach introduced by Lin et al., which utilizes a dynamical structure factor (SF) to account for ionic microfield fluctuations. The main refinements include the following: (1) replacing the Wigner-Seitz radius with an ion-sphere radius, thereby treating individual ionization events as dynamically independent; (2) incorporating electron degeneracy through a tailored interpolation between Debye-Hückel and Thomas-Fermi screening lengths. Additionally, we solve the Saha equation iteratively, ensuring self-consistent determination of the ionization balance and IPD corrections. These modifications yield significantly improved agreement with recent high-density and high-temperature experimental data on warm dense aluminum, especially in regimes where strong coupling and partial degeneracy are crucial. The model remains robust over a broad parameter space, spanning temperatures from 1 eV up to 1 keV and pressures beyond the Mbar range, thus making it suitable for applications in high-energy-density physics, inertial confinement fusion, and astrophysical plasma research. Our findings underscore the importance of accurately capturing ion microfield fluctuations and electron quantum effects to properly describe ionization processes in extreme environments.

非理想等离子体组成中包含动力学结构因素和电子简并的改进电离势抑制模型。
在这项工作中,我们提出了一种改进的致密等离子体电离势抑(IPD)模型,该模型以 Lin 等人提出的方法为基础,利用动态结构因子(SF)来解释离子微场波动。主要改进如下(1) 用离子球半径取代维格纳-塞茨半径,从而将单个电离事件视为动态独立的;(2) 通过在德拜-胡克尔和托马斯-费米屏蔽长度之间进行有针对性的插值,将电子变性纳入其中。此外,我们对萨哈方程进行了迭代求解,以确保自洽地确定电离平衡和 IPD 修正。这些修改大大提高了与最近关于暖致密铝的高密度和高温实验数据的一致性,特别是在强耦合和部分变性至关重要的情况下。该模型在广泛的参数空间内保持稳健,温度范围从 1 eV 到 1 keV,压力超过 Mbar 范围,因此适合应用于高能量密度物理、惯性约束聚变和天体物理等离子体研究。我们的发现强调了准确捕捉离子微场波动和电子量子效应对于正确描述极端环境中电离过程的重要性。
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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来源期刊
Entropy
Entropy PHYSICS, MULTIDISCIPLINARY-
CiteScore
4.90
自引率
11.10%
发文量
1580
审稿时长
21.05 days
期刊介绍: Entropy (ISSN 1099-4300), an international and interdisciplinary journal of entropy and information studies, publishes reviews, regular research papers and short notes. Our aim is to encourage scientists to publish as much as possible their theoretical and experimental details. There is no restriction on the length of the papers. If there are computation and the experiment, the details must be provided so that the results can be reproduced.
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