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Hydrodynamic simulation of subpicosecond laser interaction with solid-density matter
Eidmann1, Meyer-Ter-Vehn, Schlegel
1Max-Planck-Institut fur Quantenoptik, Hans Kopfermannstrasse 1, D-85748 Garching, Germany.
Summary
This study simulates ultrashort laser pulse interactions with solids using the MULTI-FS code. Results show electron heat wave depth determines heated matter volume, crucial for understanding laser-matter dynamics.
Area of Science:
- Plasma Physics
- Laser-Matter Interaction
- Computational Physics
Background:
- Investigating ultrashort laser pulse interactions with solid matter is crucial for applications in materials science and inertial confinement fusion.
- Existing models often struggle to accurately capture the complex physics of subpicosecond laser-matter interactions.
Purpose of the Study:
- To investigate the interaction of ultrashort subpicosecond laser pulses with cold, solid matter across a wide intensity range.
- To develop and validate a computational model capable of simulating these interactions accurately.
Main Methods:
- Utilized the hydrodynamic code MULTI-FS, an extension of the MULTI code, to simulate laser-matter interactions.
- Incorporated modifications to handle steep gradient plasmas, electron-ion non-equilibrium, and wide-range conductivity.
- Validated simulations against experimental absorption measurements on aluminum targets.
Main Results:
- Achieved good agreement between simulations and experimental data by adjusting the electron-ion energy exchange time.
- Analyzed the intensity scaling of temperature, pressure, and density in the expanding plasma.
- Determined that electron heat wave depth dictates the volume of isochorically heated matter at solid density for pulse durations >= 150 fs.
Conclusions:
- The MULTI-FS code provides a reliable tool for simulating ultrashort laser pulse interactions with solids.
- Electron heat wave propagation is a key factor in determining energy deposition and heated material volume.
- Understanding these dynamics is essential for optimizing laser-driven processes.
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