corner
corner

Phys. Rev. E 67, 026416 (2003) [7 pages]

Electron acceleration by few-cycle laser pulses with single-wavelength spot size

Download: PDF (149 kB) Buy this article Export: BibTeX or EndNote (RIS)

G. I. Dudnikova1, V. Yu. Bychenkov2, A. Maksimchuk3, G. Mourou3, J. Nees3, S. G. Bochkarev2, and V. A. Vshivkov1
1Institute of Computational Technologies, Novosibirsk, Russia
2P.N. Lebedev Physics Institute, Moscow, Russia
3Center for Ultrafast Optical Science, University of Michigan, Ann Arbor, Michigan 48109

Received 18 September 2002; published 27 February 2003

Generation of relativistic electrons from the interaction of a laser pulse with a high density plasma foil, accompanied by an underdense preplasma in front of it, has been studied with two-dimensional particle-in-cell (PIC) simulations for pulse durations comparable to a single cycle and for single-wavelength spot size. The electrons are accelerated predominantly in forward direction for a preplasma longer than the pulse length. Otherwise, both forward and backward electron accelerations occur. The primary mechanism responsible for electron acceleration is identified. Simulations show that the energy of the accelerated electrons has a maximum versus the pulse duration for relativistic laser intensities. The most effective electron acceleration takes place when the preplasma scale length is comparable to the pulse duration. Electron distribution functions have been found from PIC simulations. Their tails are well approximated by Maxwellian distributions with a hot temperature in the MeV range.

© 2003 The American Physical Society

URL:
http://link.aps.org/doi/10.1103/PhysRevE.67.026416
DOI:
10.1103/PhysRevE.67.026416
PACS:
52.38.Kd, 52.35.Mw, 52.75.Di