Predicting Excitation Energies in Warm Dense Matter

Fuente: arXiv
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Main Authors: Thelen, T. Q., Rehn, D. A., Fontes, C. J., Starrett, C. E.
Format: Preprint
Published: 2024
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author Thelen, T. Q.
Rehn, D. A.
Fontes, C. J.
Starrett, C. E.
author_facet Thelen, T. Q.
Rehn, D. A.
Fontes, C. J.
Starrett, C. E.
contents In a dense plasma environment, the energy levels of an ion shift relative to the isolated ion values. This shift is reflected in the optical spectrum of the plasma and can be measured in, for example, emission experiments. In this work, we use a recently developed method of modeling electronic states in warm dense matter to predict these level energies. In this model, excited state energies are calculated directly by enforcing constrained one-electron occupation factors, thus allowing the calculation of specific transition and ionization energies. This model includes plasma effects self-consistently, so the effect of continuum lowering is included in an ab-initio sense. We use the model to calculate the K-edge and K-alpha energies of solid density magnesium, aluminum, and silicon over a range of temperatures, finding close agreement with experimental results. We also calculate the ionization potential depression (IPD) to compare to widely used models, and investigate the effects of temperature on the lowering of the continuum.
format Preprint
id arxiv_https___arxiv_org_abs_2403_19420
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Predicting Excitation Energies in Warm Dense Matter
Thelen, T. Q.
Rehn, D. A.
Fontes, C. J.
Starrett, C. E.
Plasma Physics
In a dense plasma environment, the energy levels of an ion shift relative to the isolated ion values. This shift is reflected in the optical spectrum of the plasma and can be measured in, for example, emission experiments. In this work, we use a recently developed method of modeling electronic states in warm dense matter to predict these level energies. In this model, excited state energies are calculated directly by enforcing constrained one-electron occupation factors, thus allowing the calculation of specific transition and ionization energies. This model includes plasma effects self-consistently, so the effect of continuum lowering is included in an ab-initio sense. We use the model to calculate the K-edge and K-alpha energies of solid density magnesium, aluminum, and silicon over a range of temperatures, finding close agreement with experimental results. We also calculate the ionization potential depression (IPD) to compare to widely used models, and investigate the effects of temperature on the lowering of the continuum.
title Predicting Excitation Energies in Warm Dense Matter
topic Plasma Physics
url https://arxiv.org/abs/2403.19420