xDAVE is a new code implementing the Chihara decomposition for rapid DSF calculation and XRTS spectrum analysis, validated on OMEGA beryllium data and coupled to ray-tracing for predictions while highlighting energy-dependent instrument functions.
Evidence of free-bound transitions in warm dense matter and their impact on equation-of-state measure- ments
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physics.plasm-ph 4years
2026 4verdicts
UNVERDICTED 4roles
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The paper reviews the use of the imaginary-time correlation function to extract temperature, normalization, and Rayleigh weight from XRTS spectra without model dependence.
XRTS has become a leading diagnostic for extreme states of matter, and this review compiles prior experiments, analysis methods, and future directions.
Quantum effects govern behavior in warm dense matter and inertial fusion plasmas and are best modeled by combining quantum methods through downfolding from first-principles simulations.
citing papers explorer
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X-Ray Diagnostics Analysis Verification and Exploration (xDAVE) Code for the Prediction and Interpretation of X-Ray Thomson Scattering Experiments
xDAVE is a new code implementing the Chihara decomposition for rapid DSF calculation and XRTS spectrum analysis, validated on OMEGA beryllium data and coupled to ray-tracing for predictions while highlighting energy-dependent instrument functions.
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Model-free interpretation of X-ray Thomson scattering measurements
The paper reviews the use of the imaginary-time correlation function to extract temperature, normalization, and Rayleigh weight from XRTS spectra without model dependence.
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Overview of X-ray Thomson scattering measurements of extreme states of matter
XRTS has become a leading diagnostic for extreme states of matter, and this review compiles prior experiments, analysis methods, and future directions.
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Quantum effects in plasmas
Quantum effects govern behavior in warm dense matter and inertial fusion plasmas and are best modeled by combining quantum methods through downfolding from first-principles simulations.