Infrared absorption of dense helium and its importance in the atmospheres of cool white dwarfs
Piotr M. Kowalski (Institute of Energy, Climate Research,, Forschungszentrum Juelich,,Germany)

TL;DR
This study uses advanced quantum simulations to identify a new infrared absorption mechanism in dense helium atmospheres of cool white dwarfs, which significantly impacts their spectral modeling.
Contribution
It introduces a novel IR absorption mechanism caused by multi-body helium collisions, previously unaccounted for in white dwarf atmosphere models.
Findings
Identified a new IR absorption due to three- and more-body helium collisions.
Found the absorption scales with helium density cubed.
Suggests this mechanism dominates other collision-induced absorptions in dense helium atmospheres.
Abstract
Aims: Hydrogen deficient white dwarfs are characterized by very dense, fluid-like atmospheres of complex physics and chemistry that are still poorly understood. The incomplete description of these atmospheres by the models results in serious problems with the description of spectra of these stars and subsequent difficulties in derivation of their surface parameters. Here, we address the problem of infrared (IR) opacities in the atmospheres of cool white dwarfs by direct simulations of IR absorption of dense helium. Methods: We applied state-of-the-art density functional theory-based quantum molecular dynamics simulations to obtain the time evolution of the induced dipole moment. The IR absorption coefficients were obtained by the Fourier transform of the dipole moment time autocorrelation function. Results: We found that a dipole moment is induced due to three- and…
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