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Main Authors: Willert, Felix, Hoyer, Clemens, Grubert, Gordon K., Bronold, Franz X.
Format: Preprint
Published: 2025
Subjects:
Online Access:https://arxiv.org/abs/2511.20346
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author Willert, Felix
Hoyer, Clemens
Grubert, Gordon K.
Bronold, Franz X.
author_facet Willert, Felix
Hoyer, Clemens
Grubert, Gordon K.
Bronold, Franz X.
contents We derive and implement a suitable boundary condition for the kinetic description of the electrons inside a plasma, which takes into account microphysical processes inside the wall. It is based on the surface scattering kernel, which describes the scattering cascade of the electron in the solid and the excitation of secondary electrons. The resulting boundary condition is inelastic, angle- and energy-dependent. The implementation for a Boltzmann equation solved by a Legendre polynomial expansion method is presented, elucidating the modest additional computational cost of the new boundary condition. Results, indicating the influence of the inelasticity, are shown for the example of a silicon wall facing argon, helium and oxygen plasmas, but the described construction is also valid for other materials. An effective reflection coefficient is defined to compare the results with previously used boundary conditions.
format Preprint
id arxiv_https___arxiv_org_abs_2511_20346
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Microphysical boundary condition for the electron kinetics of a plasma
Willert, Felix
Hoyer, Clemens
Grubert, Gordon K.
Bronold, Franz X.
Plasma Physics
We derive and implement a suitable boundary condition for the kinetic description of the electrons inside a plasma, which takes into account microphysical processes inside the wall. It is based on the surface scattering kernel, which describes the scattering cascade of the electron in the solid and the excitation of secondary electrons. The resulting boundary condition is inelastic, angle- and energy-dependent. The implementation for a Boltzmann equation solved by a Legendre polynomial expansion method is presented, elucidating the modest additional computational cost of the new boundary condition. Results, indicating the influence of the inelasticity, are shown for the example of a silicon wall facing argon, helium and oxygen plasmas, but the described construction is also valid for other materials. An effective reflection coefficient is defined to compare the results with previously used boundary conditions.
title Microphysical boundary condition for the electron kinetics of a plasma
topic Plasma Physics
url https://arxiv.org/abs/2511.20346