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Impact of neutrals on the plasma screening length

Published online by Cambridge University Press:  08 September 2023

A.E. Davletov*
Affiliation:
Department of Physics and Technology, Al-Farabi Kazakh National University, Al-Farabi av. 71, 050040 Almaty, Kazakhstan
L.T. Yerimbetova
Affiliation:
Department of Physics and Technology, Al-Farabi Kazakh National University, Al-Farabi av. 71, 050040 Almaty, Kazakhstan
Ye.S. Mukhametkarimov
Affiliation:
Department of Physics and Technology, Al-Farabi Kazakh National University, Al-Farabi av. 71, 050040 Almaty, Kazakhstan
A. Kissan
Affiliation:
Department of Physics and Technology, Al-Farabi Kazakh National University, Al-Farabi av. 71, 050040 Almaty, Kazakhstan
*
Email address for correspondence: askar@physics.kz
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Abstract

In the classical treatment the screening phenomenon of electric fields in a plasma is solely caused by charged particles, i.e. electrons and ions. In contrast, the present consideration focuses on the role of neutrals in a situation when the correlations between the charged and neutral components of the plasma medium turn rather significant. The consideration is entirely based on the renormalization procedure for interparticle interactions, which takes into account collective events in the generalized Poisson–Boltzmann equation relating the true microscopic potentials with their effective macroscopic counterparts. A meaningful approach is proposed to analytically derive the screening length from an appropriate assumption on the asymptotic behaviour of the macroscopic potential at large interparticle separations. It is clearly demonstrated that the neutral component really affects the screening length when the plasma reaches states corresponding to warm dense matter conditions. It is also shown that, at certain critical values of the plasma parameters, the character of the screening changes from exponential to oscillatory decay.

Information

Type
Research Article
Creative Commons
Creative Common License - CCCreative Common License - BY
This is an Open Access article, distributed under the terms of the Creative Commons Attribution licence (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted re-use, distribution and reproduction, provided the original article is properly cited.
Copyright
Copyright © The Author(s), 2023. Published by Cambridge University Press
Figure 0

Figure 1. The asymptotic behaviour of the linearized part $\ln (R\varPhi (R)/\varGamma k_BT)$ of the macroscopic potential of external charges as a function of the dimensionless distance $R=r/a$ in a semiclassical hydrogen plasma at $r_s=10$. Green line: $\varGamma =0.1$; blue line: $\varGamma =0.5$; red line: $\varGamma =1.0$.

Figure 1

Figure 2. The macroscopic potential $\varPhi (R)/k_BT$ of external charges as a function of the dimensionless distance $R=r/a$ in a semiclassical hydrogen plasma at $\varGamma =1.0$. Green line: $r_s=10$; blue line: $r_s=5$; red line: $r_s=1$.

Figure 2

Figure 3. The asymptotic behaviour of the linearized part $\ln (R\varPhi (R)/\varGamma k_BT)$ of the macroscopic potential of external charges as a function of the dimensionless distance $R=r/a$ in a partially ionized hydrogen plasma at $r_s=10$. Green line: $\varGamma =0.1$ with $\alpha =0.9939$; blue line: $\varGamma =0.5$ with $\alpha =0.7279$; red line: $\varGamma =1.0$ with $\alpha =0.2106$. The ionization degree $\alpha$ is evaluated as in Kumar et al. (2021) to ensure the absence of hydrogen molecules.

Figure 3

Figure 4. The macroscopic potential $\varPhi (R)/k_BT$ of external charges as a function of the dimensionless distance $R=r/a$ in a partially ionized hydrogen plasma at $\varGamma =1.0$. Green line: $r_s=10$ with $\alpha =0.2106$; blue line: $r_s=5$ with $\alpha =0.3824$; red line: $r_s=0.5$ with $\alpha =0.2087$. The ionization degree $\alpha$ is evaluated as in Kumar et al. (2021) to ensure the absence of hydrogen molecules.

Figure 4

Figure 5. The asymptotic behaviour of the linearized part $\ln (R\varPhi (R)/\varGamma k_BT)$ of the macroscopic potential of external charges as a function of the dimensionless distance $R=r/a$ in a semiclassical partially ionized hydrogen plasma at $r_s=10$. Green line: $\varGamma =0.1$ with $\alpha =0.9939$; blue line: $\varGamma =0.5$ with $\alpha =0.7279$; red line: $\varGamma =1.0$ with $\alpha =0.2106$. The ionization degree $\alpha$ is evaluated as in Kumar et al. (2021) to ensure the absence of hydrogen molecules.

Figure 5

Figure 6. The macroscopic potential $\varPhi (R)/k_BT$ of external charges as a function of the dimensionless distance $R=r/a$ in a semiclassical partially ionized hydrogen plasma at $\varGamma =1.0$. Green line: $r_s=10$ with $\alpha =0.2106$; blue line: $r_s=5$ with $\alpha =0.3824$; red line: $r_s=0.5$ with $\alpha =0.2087$. The ionization degree $\alpha$ is evaluated as in Kumar et al. (2021) to ensure the absence of hydrogen molecules.