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Updated: Jun 18, 2026

Investigation of Early Plasma Evolution Induced by Ultrashort Laser Pulses
Published on: July 2, 2012
Two-stage linear filamentation growth of laser-produced proton beams in dense plasmas
Wang-Wen Xu1, Zhang-Hu Hu1, Hao-Yuan Li1
1Dalian University of Technology, School of Physics, Dalian 116024, People's Republic of China.
Abstract:
We report in this work the current filamentation instability of laser-produced proton beams in a regime where the plasma collision frequency is much smaller than the plasma oscillation frequency but larger than the growth rate of the instability. In this regime, the plasma electron temperature increases significantly due to collisional Ohmic heating during the linear phase of the instability, which leads to a two-stage linear filamentation growth shown in this work. Compared to the collisionless plasma case, a reduced instability growth rate due to plasma collisions is found in the first stage, followed by a second stage with a comparable growth rate. Furthermore, an enhanced magnitude of magnetic fields and wavelength of beam filamentation are observed after instability saturation. The two-stage linear filamentation growth shows agreement with the dispersion relation of the instability and supported by detailed particle-in-cell simulations.
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