Laser-driven strong magnetostatic fields with applications to charged beam transport and magnetized high energy-density physics

Powerful laser-plasma processes are explored to generate discharge currents of a few 100 kA in coil targets, yielding magnetostatic fields (B-fields) in excess of 0.5 kT. The quasi-static currents are provided from hot electron ejection from the laser-irradiated surface. According to our model, whic...

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Bibliographic Details
Main Authors: Santos, J, Bailly-Grandvaux, M, Ehret, M, Arefiev, A, Batani, D, Beg, F, Calisti, A, Ferri, S, Florido, R, Forestier-Colleoni, P, Fujioka, S, Gigosos, M, Giuffrida, L, Gremillet, L, Honrubia, J, Kojima, S, Korneev, P, Law, K, Marques, J, Morace, A, Mosse, C, Peyrusse, O, Rose, S, Roth, M, Sakata, S, Suzuki-Vidal, F, Tikhonchuk, V, Toncian, T, Woolsey, N, Zhang, Z
Format: Journal article
Published: AIP Publishing 2018
Description
Summary:Powerful laser-plasma processes are explored to generate discharge currents of a few 100 kA in coil targets, yielding magnetostatic fields (B-fields) in excess of 0.5 kT. The quasi-static currents are provided from hot electron ejection from the laser-irradiated surface. According to our model, which describes the evolution of the discharge current, the major control parameter is the laser irradiance Ilasλ 2 las. The space-time evolution of the B-fields is experimentally characterized by high-frequency bandwidth B-dot probes and by protondeflectometry measurements. The magnetic pulses, of ns-scale, are long enough to magnetize secondary targets through resistive diffusion. We applied it in experiments of laser-generated relativistic electron transport through solid dielectric targets, yielding an unprecedented 5-fold enhancement of the energy-density flux at 60 µm depth, compared to unmagnetized transport conditions. These studies pave the ground for magnetized high-energy density physics investigations, related to laser-generated secondary sources of radiation and/or high-energy particles and their transport, to high-gain fusion energy schemes and to laboratory astrophysics.