Title :
Simulations of Dynamic Laser/Plasma X-Ray Production
Author :
Miller, Craig L. ; Welch, Dale R. ; Rose, David V. ; Campbell, Robert B. ; Oliver, Bryan V. ; Webb, Timothy J. ; Flicker, Dawn G.
Author_Institution :
Voss Sci., LLC, Albuquerque, NM, USA
Abstract :
Intense laser beams focused onto thin high-atomic-number targets can generate short intense bursts of MeV X-rays from a small area of the target. Such systems are being developed as short-pulse point-projection X-ray sources for imaging high-density objects. Here, large-scale (400-million macroparticles and 15-million grid cells) 3-D particle-in-cell simulations are described that model the dynamic interaction between the laser beam, a blowoff plasma layer, and the solid-density target. The simulations self-consistently treat the nonlinear interaction between the incident laser pulse and the blowoff plasma layer where a relativistic electron beam is generated. This beam propagates into the solid-density high-atomic-number target where MeV bremsstrahlung is generated. The model tracks the generation, propagation, and self-absorption of radiation in the blowoff plasma, target, and beyond. Radiation production (fluence and energy spectrum) is characterized in the simulations as a function transverse target size, laser-injection angle, and laser energy. The simulated X-ray fluence for the case of a 45 °-angle-of-incidence 100-J 0.5-ps laser pulse with a 6- μm FWHM focus produces a peak dose in excess of 0.2 rad from a 10-μm-thick square gold target, consistent with experimental measurements.
Keywords :
plasma X-ray sources; plasma light propagation; plasma nonlinear processes; plasma simulation; plasma transport processes; relativistic plasmas; 3D particle-in-cell simulations; FWHM; MeV X-rays; MeV bremsstrahlung; X-ray fluence; blowoff plasma layer; dynamic laser-plasma X-ray production; energy 100 J; incident laser pulse; laser beams; laser energy; laser-injection angle; nonlinear interaction; radiation production; relativistic electron beam; short-pulse point-projection X-ray sources; size 10 mum; solid-density target; square gold target; thin high-atomic number targets; time 0.5 ps; Geometry; Gold; Laser modes; Plasmas; Production; Solid modeling; X-ray lasers; Bremsstrahlung; pulsed-power systems; simulation;
Journal_Title :
Plasma Science, IEEE Transactions on
DOI :
10.1109/TPS.2012.2195204