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April 5, 2026Nature Communications0 citationsOpen Access

Probing ultrafast heating and ionization dynamics in solid density plasmas with time-resolved resonant X-ray absorption and emission

LHLingen HuangMMMikhail MishchenkoMŠMichal Šmíd

Key Points

  • The research aims to understand the heating and ionization dynamics in solid density plasmas during high-intensity laser interactions.
  • Leveraged high-intensity laser interactions with wire targets.
  • Utilized time-resolved resonant X-ray emission spectroscopy and absorption imaging.
  • Compared experimental results with simulations using atomic collisional-radiative models and particle-in-cell codes.
  • Revealed extreme sensitivity of plasma parameters like temperature and ionization depth.
  • Showed how detailed accounting of laser profiles and pre-plasma conditions can improve models.
  • Provided insights into high-energy-density conditions relevant for inertial fusion energy.

Abstract

Abstract Heating and ionization are among the most fundamental processes in relativistic laser–solid interactions; however, their spatiotemporal evolution remains challenging to capture experimentally. Here we present detailed diagnosis of high-intensity laser interactions with wire targets, leveraging the extreme spectral brightness of an X-ray free-electron laser in sub-picosecond time-resolved resonant X-ray emission spectroscopy and absorption imaging. Experimental results are compared with comprehensive simulations using atomic collisional-radiative models, particle-in-cell, and magnetohydrodynamics codes to elucidate the underlying physics. These multi-scale simulations reveal extreme sensitivity of basic plasma parameters with widely used models, such as temperature and ionization depth, which are able to be constrained by incorporating a detailed accounting of laser spatial profiles, pre-plasma conditions, and collisional processes. These results provide new insights into heating and ionization dynamics in the high-energy-density regime relevant to inertial fusion energy research, both as an experimental platform for accessing theoretically challenging conditions and as a benchmark for improving models of high-power laser–plasma interactions.

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Cite This Study

Huang et al. (2026) studied this question.

synapsesocial.com/papers/69d1fca7a79560c99a0a2552https://doi.org/10.1038/s41467-026-71429-5
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