Suitability of ReaxFF potential for MD modelling of lithium across low and high temperatures

Fuente: arXiv
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Autores principales: Krstic, Predrag S., Dwivedi, Swarit, van Duin, Adri C. T., Koel, Bruce E.
Formato: Preprint
Publicado: 2025
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author Krstic, Predrag S.
Dwivedi, Swarit
van Duin, Adri C. T.
Koel, Bruce E.
author_facet Krstic, Predrag S.
Dwivedi, Swarit
van Duin, Adri C. T.
Koel, Bruce E.
contents Modeling lithium's atomic-scale behavior is critical for its roles in plasma-facing fusion components and lithium-ion batteries, yet it remains challenging across phase regimes. This study benchmarks ReaxFF, 2NN-MEAM, and SNAP potentials from 100 to 1000 K using molecular dynamics, with ensemble and cooling protocols carefully controlled. Compared to reliable experimental data, ReaxFF diverges above 800 K, underestimating density by ~10% at 1000 K and overestimating diffusivity, yielding anomalously low-density liquid behavior. Radial distribution functions and coordination profiles further reveal possible excessive disorder above 800 K. While ReaxFF offers qualitative insight into disordered lithium, its quantitative reliability diminishes at high temperatures, requiring validation against ab initio or experimental benchmarks. These findings inform potential selections for fusion- and battery-relevant simulations, underscoring the sensitivity of glassy phase modeling to potential choices and thermal histories.
format Preprint
id arxiv_https___arxiv_org_abs_2509_00807
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Suitability of ReaxFF potential for MD modelling of lithium across low and high temperatures
Krstic, Predrag S.
Dwivedi, Swarit
van Duin, Adri C. T.
Koel, Bruce E.
Chemical Physics
Modeling lithium's atomic-scale behavior is critical for its roles in plasma-facing fusion components and lithium-ion batteries, yet it remains challenging across phase regimes. This study benchmarks ReaxFF, 2NN-MEAM, and SNAP potentials from 100 to 1000 K using molecular dynamics, with ensemble and cooling protocols carefully controlled. Compared to reliable experimental data, ReaxFF diverges above 800 K, underestimating density by ~10% at 1000 K and overestimating diffusivity, yielding anomalously low-density liquid behavior. Radial distribution functions and coordination profiles further reveal possible excessive disorder above 800 K. While ReaxFF offers qualitative insight into disordered lithium, its quantitative reliability diminishes at high temperatures, requiring validation against ab initio or experimental benchmarks. These findings inform potential selections for fusion- and battery-relevant simulations, underscoring the sensitivity of glassy phase modeling to potential choices and thermal histories.
title Suitability of ReaxFF potential for MD modelling of lithium across low and high temperatures
topic Chemical Physics
url https://arxiv.org/abs/2509.00807