FDTD-Based Simulation of Submicron Laser-Plasma Interaction
POSTER
Abstract
However, standard radiation hydrodynamics models become inadequate in this regime, as ray-tracing methods lose accuracy and conventional absorption models break down. To address this limitation, we have developed a specialized code that couples a Finite Difference Time Domain (FDTD) electromagnetic solver with plasma evolution equations. This code enables accurate modeling of early-stage plasma dynamics in sub-wavelength targets, offering new insights into laser-matter interactions and informing the development of more reliable predictive models.
*This work is supported by the EPIC initiative at TIFR Hyderabad. The authors also acknowledge the support from UKRI. Computing resources provided by STFC Scientific Computing Department's SCARF cluster.
Publication: Published
1. Rakesh Y Kumar et al. (2024). "Tailored mesoscopic plasma accelerates electrons exploiting parametric instability"New Journal of Physics, 26, 033027
2. Mondal, A., Sabui, R., Tata, S. et al. (2024). "Shaped liquid drops generate MeV temperature electron beams with millijoule class laser." Communications Physics, 7, 85
Planned
1. Haritha Nair et al. – Hybrid FDTD–Plasma Simulations for Early Laser–Target Interaction. (Planned submission: Journal of Computational Physics, 2025)
2. Ratul Sabui et al. – Micron-Sized Targets Generate MeV Temperature Electrons with Millijoule-Class Laser. (Planned)
Presenters
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Haritha Nair
- Indian Institute of Technology, Hyderabad