Ab initio simulations and measurements of the free-free opacity in aluminum
Patrick Hollebon, O. Ciricosta, M. P. Desjarlais, Céphise Cacho, C. Spindloe, Emma Springate, I. C. E. Turcu, J. S. Wark, S. M. Vinko
Abstract
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Patrick Hollebon, O. Ciricosta, M. P. Desjarlais, Céphise Cacho, C. Spindloe, Emma Springate, I. C. E. Turcu, J. S. Wark, S. M. Vinko
Abstract
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The free-free opacity in dense systems is a property that both tests our fundamental understanding of correlated many-body systems, and is needed to understand the radiative properties of high energy-density plasmas. Despite its importance, predictive calculations of the free-free opacity remain challenging even in the condensed matter phase for simple metals. Here we show how the free-free opacity can be modelled at finite-temperatures via time-dependent density functional theory, and illustrate the importance of including local field corrections, core polarization, and self-energy corrections. Our calculations for ground-state Al are shown to agree well with experimental opacity measurements performed on the Artemis laser facility across a wide range of extreme ultraviolet wavelengths. We extend our calculations across the melt to the warm-dense matter regime, finding good agreement with advanced plasma models based on inverse bremsstrahlung at temperatures above 10 eV.
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The free-free opacity in dense systems is a property that both tests our fundamental understanding of correlated many-body systems, and is needed to understand the radiative properties of high energy-density plasmas. Despite its importance, predictive calculations of the free-free opacity remain challenging even in the condensed matter phase for simple metals. Here we show how the free-free opacity can be modelled at finite-temperatures via time-dependent density functional theory, and illustrate the importance of including local field corrections, core polarization, and self-energy corrections. Our calculations for ground-state Al are shown to agree well with experimental opacity measurements performed on the Artemis laser facility across a wide range of extreme ultraviolet wavelengths. We extend our calculations across the melt to the warm-dense matter regime, finding good agreement with advanced plasma models based on inverse bremsstrahlung at temperatures above 10 eV.
Key concepts: Opacity, Warm dense matter, Bremsstrahlung, Physics, Radiative transfer, Free electron model, Plasma, Computational physics