Channeling of relativistic laser pulses in underdense plasmas and subsequent electron acceleration

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Abstract

This contribution is concerned with the nonlinear behavior of a relativistic laser pulse focused in an underdense plasma and with the subsequent generation of fast electrons. Specifically, we study the interaction of laser pulses having their intensity Iλ2 in the range [10 19, 1020] W/cm2 μm2, focused in a plasma of electron density n0 such that the ratio n 0/nc lies in the interval [10-3, 2 × 10-2], nc denoting the critical density; the laser pulse power PL exceeds the critical power for laser channeling P ch. The laser-plasma interaction in such conditions is investigated by means of 3D Particle in Cell (PIC) simulations. It is observed that the laser front gives rise to the excitation of a surface wave which propagates along the sharp boundaries of the electron free channel created by the laser pulse. The mechanism responsible for the generation of the fast electrons observed in the PIC simulations is then analyzed by means of a test particles code. It is thus found that the fast electrons are generated by the combination of the betatron process and of the acceleration by the surface wave. The maximum electron energy observed in the simulations with Iλ2 = 1020 W/cm2 μm2 and n0/nc = 2 × 10-2 is 350 MeV. © Owned by the authors, published by EDP Sciences, 2013.

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Naseri, N., Pesme, D., Rozmus, W., Bychenkov, V. Y., & Popov, K. (2013). Channeling of relativistic laser pulses in underdense plasmas and subsequent electron acceleration. In EPJ Web of Conferences (Vol. 59). https://doi.org/10.1051/epjconf/20135917001

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