相对论Thomas-Fermi模型的深入研究:改进与数值模拟

IF 2.3 3区 化学 Q3 CHEMISTRY, PHYSICAL
Luca Nanni
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引用次数: 0

摘要

在魏茨泽克动能泛函的框架下,重新审视了相对论的托马斯-费米模型。该模型已被其他作者研究过,在应用于具有复杂电子结构的系统时,通过将数值参数赋予von Weizsacker泛函的权重并在势能泛函中引入延迟项来提高其预测能力,从而对该模型进行了优化。这些修正分别避免了高估总动能和低估库仑势的稳定作用。将该模型应用于原子序数不断增加的中性原子和电离原子,以检验相对论效应的定性和定量预测效果。由于用数值方法求解相对论性方程的简单性,所提出的模型可以作为研究含重原子化合物的物理化学性质的其他计算方法的替代或辅助工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

An In-Depth Study on the Relativistic Thomas–Fermi Model: Improvements and Numerical Simulations

An In-Depth Study on the Relativistic Thomas–Fermi Model: Improvements and Numerical Simulations

The relativistic Thomas–Fermi model is revisited in the framework of von Weizsacker's kinetic energy functional. This model, already studied by other authors, is optimized by weighting the von Weizsacker functional with a numerical parameter and introducing a retardation term in the potential energy functional to improve its predictivity when applied to systems with a complex electronic structure. These corrections avoid overestimating the total kinetic energy and underestimating the stabilizing effect of the Coulomb potential, respectively. The model is applied to neutral and ionized atoms with increasing atomic numbers to test the qualitative and quantitative predictivity goodness of the relativistic effects. Due to the simplicity of solving the relativistic equation by numerical methods, the proposed model could be an alternative or a supportive tool to other computational methods for studying the physicochemical properties of compounds containing heavy atoms.

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来源期刊
International Journal of Quantum Chemistry
International Journal of Quantum Chemistry 化学-数学跨学科应用
CiteScore
4.70
自引率
4.50%
发文量
185
审稿时长
2 months
期刊介绍: Since its first formulation quantum chemistry has provided the conceptual and terminological framework necessary to understand atoms, molecules and the condensed matter. Over the past decades synergistic advances in the methodological developments, software and hardware have transformed quantum chemistry in a truly interdisciplinary science that has expanded beyond its traditional core of molecular sciences to fields as diverse as chemistry and catalysis, biophysics, nanotechnology and material science.
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