Evolution of elastic x-ray scattering in laser-shocked warm dense lithium

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Abstract

We have studied the dynamics of warm dense Li with near-elastic x-ray scattering. Li foils were heated and compressed using shock waves driven by 4-ns-long laser pulses. Separate 1-ns-long laser pulses were used to generate a bright source of 2.96 keV Cl Ly- α photons for x-ray scattering, and the spectrum of scattered photons was recorded at a scattering angle of 120° using a highly oriented pyrolytic graphite crystal operated in the von Hamos geometry. A variable delay between the heater and backlighter laser beams measured the scattering time evolution. Comparison with radiation-hydrodynamics simulations shows that the plasma is highly coupled during the first several nanoseconds, then relaxes to a moderate coupling state at later times. Near-elastic scattering amplitudes have been successfully simulated using the screened one-component plasma model. Our main finding is that the near-elastic scattering amplitudes are quite sensitive to the mean ionization state Z̄ and by extension to the choice of ionization model in the radiation- hydrodynamics simulations used to predict plasma properties within the shocked Li. © 2009 The American Physical Society.

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Kugland, N. L., Gregori, G., Bandyopadhyay, S., Brenner, C. M., Brown, C. R. D., Constantin, C., … Riley, D. (2009). Evolution of elastic x-ray scattering in laser-shocked warm dense lithium. Physical Review E - Statistical, Nonlinear, and Soft Matter Physics, 80(6). https://doi.org/10.1103/PhysRevE.80.066406

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