arXiv · 2301.09700
Improving dynamic collision frequencies: impacts on dynamic structure factors and stopping powers in warm dense matter
Abstract
Simulations and diagnostics of high-energy-density plasmas and warm dense matter rely on models of material response properties, both static and dynamic (frequency-dependent). Here, we systematically investigate variations in dynamic electron-ion collision frequencies $ν(ω)$ in warm dense matter using data from a self-consistent-field average-atom model. We show that including the full quantum density of states, strong collisions, and inelastic collisions lead to significant changes in $ν(ω)$. These changes result in red shifts and broadening of the plasmon peak in the dynamic structure factor, an effect observable in x-ray Thomson scattering spectra, and modify stopping powers around the Bragg peak. These changes improve the agreement of computationally efficient average-atom models with first-principles time-dependent density functional theory in warm dense aluminum, carbon, and deuterium.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Thomas W. Hentschel, Alina Kononov, Alexandra Olmstead, Attila Cangi, Andrew D. Baczewski, Stephanie B. Hansen. 2023-01-23. Improving dynamic collision frequencies: impacts on dynamic structure factors and stopping powers in warm dense matter. https://doi.org/10.1063/5.0143738
Cite the original work for its findings. Save a collection to share your selection of sources.