arXiv · 1802.06999
Proton acceleration by a pair of successive ultraintense femtosecond laser pulses
Abstract
We investigate the target normal sheath acceleration of protons in thin aluminum targets irradiated at relativistic intensity by two time-separated ultrashort (35 fs) laser pulses. For identical laser pulses and target thicknesses of 3 and 6 $μ$m, we observe experimentally that the second pulse boosts the maximum energy and charge of the proton beam produced by the first pulse for time delays below $\sim0.6-1$ ps. By using two-dimensional particle-in-cell simulations we examine the variation of the proton energy spectra with respect to the time-delay between the two pulses. We demonstrate that the expansion of the target front surface caused by the first pulse significantly enhances the hot-electron generation by the second pulse arriving after a few hundreds of fs time delay. This enhancement, however, does not suffice to further accelerate the fastest protons driven by the first pulse once three-dimensional quenching effects have set in. This implies a limit to the maximum time delay that leads to proton energy enhancement, which we theoretically determine.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Julien Ferri, Lovisa Senje, Malay Dalui, Kristoffer Svensson, Bastian Aurand, Martin Hansson, Anders Persson, Olle Lundh, Claes-Göran Wahlström, Laurent Gremillet, Evangelos Siminos, Timothy DuBois, Longqing Yi, Joana Martins, Tünde Fülöp. 2018-02-20. Proton acceleration by a pair of successive ultraintense femtosecond laser pulses. https://doi.org/10.1063/1.5026391
Cite the original work for its findings. Save a collection to share your selection of sources.