collaborators

9 papers

physics.plasm-ph2026

Modeling partially-ionized dense plasma using wavepacket molecular dynamics

Daniel Plummer, Pontus Svensson, Wiktor Jasniak +3

We develop a wave packet molecular dynamics framework for modeling the structural properties of partially-ionized dense plasmas, based on a chemical model that explicitly includes…

cond-mat.mtrl-sci2026

Volume Collapse Without a Structural Transition in Shock-Compressed FeO

C. Crépisson, T. Stevens, M. Fitzgerald +121

We report x-ray diffraction and emission spectroscopy of FeO under laser-driven shock compression between 31-199 GPa. FeO retains the B1 (rocksalt) structure along the Hugoniot to…

physics.plasm-ph2026

Resolution-Independent Machine Learning Heat Flux Closure for ICF Plasmas

M. Luo, A. R. Bell, F. Miniati +2

Accurate modeling of heat flux in inertial confinement fusion plasmas requires closures that remain predictive far from local equilibrium and across disparate spatial and temporal…

physics.plasm-ph2026

Roadmap for warm dense matter physics

Jan Vorberger, Frank Graziani, David Riley +71

This roadmap presents the state-of-the-art, current challenges and near future developments anticipated in the thriving field of warm dense matter physics. Originating from strongl…

physics.plasm-ph2026

A statistical theory of electronic degrees of freedom in wave packet molecular dynamics

Daniel Plummer, Pontus Svensson, Wiktor Jasniak +3

We derive statistical distributions for the degrees of freedom in wave packet molecular dynamics models. Specifically, a theory is developed for the width distributions of Gaussian…

physics.plasm-ph2025

Time-Embedded Convolutional Neural Networks for Modeling Plasma Heat Transport

Mufei Luo, Charles Heaton, Yizhen Wang +5

We introduce a time-embedded convolutional neural network (TCNN) for modeling spatiotemporal heat transport in plasmas, particularly under strongly nonlocal conditions. In our earl…