Modeling partially-ionized dense plasma using wavepacket molecular dynamics
arXiv:2510.27446 · doi:10.1103/x4j6-9d29
Abstract
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 bound state wavefunctions. Using hydrogen as a representative system, we compute self-consistent charge state distributions through free energy minimization, following the approach of Plummer et al. [Phys. Rev. E 111, 015204 (2025)]. This enables a direct comparison of static equilibrium properties with path integral Monte Carlo data, facilitating an evaluation of the model's underlying approximations and its ability to capture the complex interplay between ionization and structure in dense plasma environments.
16 pages, 8 figures
References in corpus (11)
- Ab initio simulation of warm dense matter
- Temperature-dependent quantum pair potentials and their application to dense partially ionized hydrogen plasmas
- First principles simulations of dense hydrogen
- The equation of state of partially ionized hydrogen and deuterium plasma revisited
- Screening of a test charge in a free-electron gas at warm dense matter and dense non-ideal plasma conditions
- Ion Modes in Dense Ionized Plasmas through Non-Adiabatic Molecular Dynamics
- Ionization potential depression and Fermi barrier in warm dense matter--a first--principles approach
- Reduced Ionic Diffusion by the Dynamic Electron-Ion Collisions in Warm Dense Hydrogen
- Development of a new quantum trajectory molecular dynamics framework
- Ionisation Calculations using Classical Molecular Dynamics
- Modelling of warm dense hydrogen via explicit real time electron dynamics: Dynamic structure factors