Dynasor 2: From Simulation to Experiment Through Correlation Functions
Preprint, 2025
By having access to the full dynamics from atomistic simulations, they serve as valuable tools for understanding material behavior. Experimentally, material properties are commonly probed through scattering measurements, which also provide access to static and dynamic structure factors. However, it is not trivial to decode these due to complex interactions between atomic motion and the probe. Atomistic simulations can help bridge this gap, allowing for detailed understanding of the underlying dynamics. In this paper, we illustrate how correlation functions provide structural and dynamical insights from simulation and showcase the strong agreement with experiment. To compute the correlation functions, we have updated the Python package DYNASOR with a new interface and, importantly, added support for weighting the computed quantities with form factors or cross sections, facilitating direct comparison with probe-specific structure factors. Additionally, we have incorporated the spectral energy density method, which offers an alternative view of the dispersion for crystalline systems, as well as functionality to project atomic dynamics onto phonon modes, enabling detailed analysis of specific phonon modes from atomistic simulation. We illustrate the capabilities of DYNASOR with diverse examples, ranging from liquid Ni3Al to perovskites, and compare computed results with X-ray, electron and neutron scattering experiments. This highlights how computed correlation functions can not only agree well with experimental observations, but also provide deeper insight into the atomic-scale structure and dynamics of a material.
Molecular dynamics
Atomic-scale dynamics
Correlation functions
Scattering
Phonon mode analysis
Dynamic structure factor
Author
Esmée Berger
Chalmers, Physics, Condensed Matter and Materials Theory
Erik Fransson
Chalmers, Physics, Condensed Matter and Materials Theory
Fredrik Eriksson
Chalmers, Physics, Condensed Matter and Materials Theory
Eric Lindgren
Chalmers, Physics, Condensed Matter and Materials Theory
Göran Wahnström
Chalmers, Physics, Condensed Matter and Materials Theory
Thomas H. Rod
Data Management and Software Center of the European Spallation Source
Paul Erhart
Chalmers, Physics, Condensed Matter and Materials Theory
Phase behavior and electronic properties of mixed halide perovskites from atomic scale simulations
Swedish Research Council (VR) (2020-04935), 2020-12-01 -- 2024-11-30.
Hydrogen trapping by carbides in steel
Swedish Research Council (VR) (2021-05072), 2021-12-01 -- 2025-11-30.
SwedNESS
Swedish Foundation for Strategic Research (SSF) (GSn15-0008), 2016-07-01 -- 2021-06-30.
Swedish Foundation for Strategic Research (SSF) (GSn15-0008), 2017-01-01 -- 2020-12-31.
Areas of Advance
Nanoscience and Nanotechnology
Materials Science
Subject Categories (SSIF 2025)
Condensed Matter Physics
Roots
Basic sciences
Infrastructure
Chalmers e-Commons (incl. C3SE, 2020-)
DOI
10.48550/arXiv.2503.21957