| Literature DB >> 31575932 |
Sophia Malko1,2, Xavier Vaisseau3, Frederic Perez4, Dimitri Batani5, Alessandro Curcio6, Michael Ehret5,7, Javier Honrubia8, Katarzyna Jakubowska9, Alessio Morace10, João Jorge Santos5, Luca Volpe3,11.
Abstract
The double laser pulse approach to relativistic electron beam (REB) collimation in solid targets has been investigated at the LULI-ELFIE facility. In this scheme two collinear laser pulses are focused onto a solid target with a given intensity ratio and time delay to generate REBs. The magnetic field generated by the first laser-driven REB is used to guide the REB generated by a second delayed laser pulse. We show how electron beam collimation can be controlled by properly adjusting the ratio of focus size and the delay time between the two pulses. We found that the maximum of electron beam collimation is clearly dependent on the laser focal spot size ratio and related to the magnetic field dynamics. Cu-Kα and CTR imaging diagnostics were implemented to evaluate the collimation effects on the respectively low energy (≤100 keV) and high energy (≥MeV) components of the REB.Entities:
Year: 2019 PMID: 31575932 PMCID: PMC6773764 DOI: 10.1038/s41598-019-50401-y
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Evolution of the diameter of the emission area on target rear side of (a) Cu-K fluorescence and (b) CTR, as a function of the delay between the two laser pulses for different focal spot ratios: (red circles), (green triangles), (black squares). The dashed curves are guides for the eyes. Different vertical scales are used in (a) and (b).
Figure 2Data obtained for a focal spot ratio . (a) Set of typical Cu-K (top) and CTR (bottom) images obtained at different delays Δt = 0 ps (left), 3 ps (middle) and 5 ps (right). (b) Comparison of Cu-K (red circles) and of CTR (blue circles) emission spot sizes. The red crosses show the results of the simulated Cu-K emission, reproducing the delay at which optimal collimation occurs.
Figure 4Evolution of the Cu-K peak intensity (black circles), Cu-K emission spot size (grey circles) and compression factor C (red triangles), normalized to the values at Δt = 0 ps for the run with the focal spot ratio (a), (b), (c).
Figure 3Results of fast electron transport simulations for the focal spot ratio and and for a delay time between the two laser pulses Δt = 3 ps. (a) Evolution of the azimuthal magnetic field Y component and (b) of the fast electron density extracted at t = 0.6 ps, 3 ps (before main pulse injection) and at t = 3.6 ps, 5.8 ps (after main pulse injection).
Figure 5Experimental setup.