Modeling anisotropic energy dissipation of light ions at the atomistic scale

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Ponomareva, Evgeniia, Tamm, Artur, Sand, Andrea E.
Format: Preprint
Published: 2026
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866915854159970304
author Ponomareva, Evgeniia
Tamm, Artur
Sand, Andrea E.
author_facet Ponomareva, Evgeniia
Tamm, Artur
Sand, Andrea E.
contents Understanding ion-matter interactions at the atomistic level is key to advancing materials for the semiconductor industry, space systems, and nuclear fusion technologies. However, most atomistic frameworks still rely on simplified descriptions of how ions transfer energy to the electronic subsystem, overlooking the sensitivity of this process to the actual ion path. Existing electron-ion interaction models, such as the tensorial unified two-temperature model, were developed to study self-irradiation scenarios, but their suitability for light-ion irradiation remains unexplored. Here, we propose that for light projectiles, stepping back from the tensorial formulation toward a simpler, local model of electronic stopping provides a more efficient and physically transparent trajectory-dependent description. We parameterize and validate both models for hydrogen and helium in tungsten using ab initio electronic stopping data and large-scale ion range simulations, benchmarked against existing experimental data. This provides a consistent framework for including nonadiabatic electronic stopping in atomistic simulations of light-ion energy dissipation.
format Preprint
id arxiv_https___arxiv_org_abs_2603_10838
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Modeling anisotropic energy dissipation of light ions at the atomistic scale
Ponomareva, Evgeniia
Tamm, Artur
Sand, Andrea E.
Materials Science
Computational Physics
Understanding ion-matter interactions at the atomistic level is key to advancing materials for the semiconductor industry, space systems, and nuclear fusion technologies. However, most atomistic frameworks still rely on simplified descriptions of how ions transfer energy to the electronic subsystem, overlooking the sensitivity of this process to the actual ion path. Existing electron-ion interaction models, such as the tensorial unified two-temperature model, were developed to study self-irradiation scenarios, but their suitability for light-ion irradiation remains unexplored. Here, we propose that for light projectiles, stepping back from the tensorial formulation toward a simpler, local model of electronic stopping provides a more efficient and physically transparent trajectory-dependent description. We parameterize and validate both models for hydrogen and helium in tungsten using ab initio electronic stopping data and large-scale ion range simulations, benchmarked against existing experimental data. This provides a consistent framework for including nonadiabatic electronic stopping in atomistic simulations of light-ion energy dissipation.
title Modeling anisotropic energy dissipation of light ions at the atomistic scale
topic Materials Science
Computational Physics
url https://arxiv.org/abs/2603.10838