plasma physics

Observation of stopping power reduction at strong ion-plasma coupling

arXiv:2606.23109

summary

The paper reports the first experimental measurement of ion stopping power reduction in a strongly coupled dense plasma using laser‑accelerated carbon ions, showing lower stopping than predicted by linear models and agreement with hybrid molecular dynamics simulations with quantum corrections.

Abstract

Ion stopping in dense plasma is crucial for stellar evolution and fusion ignition. However, its behavior in the strong ion-plasma coupling regime beyond the linear limit has long remained elusive, due to formidable experimental challenges. Here we report the first experimental investigation of ion stopping at an unprecedented coupling parameter exceeding unity, achieved by sending laser-accelerated short-pulse and intense quasi-monoenergetic carbon ions (583 keV/u, C) into a uniform, long-lived, well-characterized dense plasma target ( 17 eV, 410 cm). By simultaneously measuring ion energy loss and charge-state evolution, we eliminated key experimental ambiguities arising from charge-state determination. Our results clearly show a reduction in stopping power compared with predictions from standard linear dielectric response or binary collision models, and they agree well with the hybrid calculation of molecular dynamics with quantum corrections. The importance of nonlinear screening effects arising from many-body interactions and quantum effects due to the wave nature of electrons was demonstrated at strong coupling. This work establishes a definitive high-fidelity experimental benchmark for collisional dynamics in the strong-coupling regime. It offers critical insight for accurate modeling of energy transport in inertial confinement fusion and astrophysical plasmas.

Topics & keywords

#ion stopping#strong coupling#dense plasma#laser‑accelerated ions#inertial confinement fusionstopping powercoupling parameterquasi‑monoenergetic carbon ionsmolecular dynamicsquantum correctionslinear dielectric response