Intensity-dependent resonant transmission of x-rays in solid-density aluminum plasma

Author:

Cho M. S.12,Chung H.-K.2,Cho B. I.12

Affiliation:

1. Center for Relativistic Laser Science, Institute for Basic Science (IBS) 1 , Gwangju 61005, South Korea

2. Department of Physics and Photon Science, Gwangju Institute of Science and Technology (GIST) 2 , Gwangju 61005, South Korea

Abstract

X-ray free-electron lasers (XFELs) provide unique opportunities to generate and investigate dense plasmas. The absorption and transmission properties of x-ray photons in dense plasmas are important in characterizing the state of the plasmas. Experimental evidence shows that the transmission of x-ray photons through dense plasmas depends greatly on the incident XFEL intensity. Here, we present a detailed analysis of intensity-dependent x-ray transmission in solid-density aluminum using collisional-radiative population kinetics calculations. Reverse saturable absorption (RSA), i.e., an increase in x-ray absorption with intensity has been observed for photon energies below the K-absorption edge and in the intensity range of 1016–1017 W/cm2 for XFEL photons with 1487 eV. At higher intensities, a transition from RSA to saturable absorption (SA) is predicted; thus, the x-ray absorption decreases with intensity above a threshold value. For XFEL photon energies of 1501 eV and 1515 eV, the transition from RSA to SA occurs at XFEL intensities between 1017–1018 W/cm2. Electron temperatures are predicted to be in the range of 30–50 eV for the given experimental conditions. Detailed population kinetics of the charge states explains the intensity-dependent absorption of x-ray photons and the fast modulation of XFEL pulses for both RSA and SA.

Funder

National Research Foundation of Korea

Publisher

AIP Publishing

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