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S. ChampeauxCommissariat à l'Energie Atomique, Centre DAM-Ile de France, Département de Physique Théorique et Appliquée, Bruyères-le-Châtel, Arpajon Cedex, France. [email protected]Luc BergéCommissariat à l’Énergie Atomique, Centre DAM-Ile de France, Département de Physique Théorique et Appliquée, Bruyères-le-Châtel, 91297 Arpajon Cedex, FranceD. GordonCommissariat à l’Énergie Atomique, Centre DAM-Ile de France, Département de Physique Théorique et Appliquée, Bruyères-le-Châtel, 91297 Arpajon Cedex, FranceA. TingCommissariat à l’Énergie Atomique, Centre DAM-Ile de France, Département de Physique Théorique et Appliquée, Bruyères-le-Châtel, 91297 Arpajon Cedex, FranceJ. R. PeñanoCommissariat à l’Énergie Atomique, Centre DAM-Ile de France, Département de Physique Théorique et Appliquée, Bruyères-le-Châtel, 91297 Arpajon Cedex, FranceP. SprangleCommissariat à l’Énergie Atomique, Centre DAM-Ile de France, Département de Physique Théorique et Appliquée, Bruyères-le-Châtel, 91297 Arpajon Cedex, France
2008lv
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Annotatsiya

Three-dimensional numerical simulations and direct experimental measurements of the multifilamentation of femtosecond laser pulses propagating in air are quantitatively compared. Agreement is obtained in terms of the evolution of the filamentation pattern and in terms of the size and energy of the individual filaments through 12 m of propagation. These results are made possible by the combination of a massively parallel propagation code along with a nondestructive experimental diagnostic technique. Influence of the pulse duration is moreover addressed. The numerical calculations also show that single and multiple filaments exhibit almost identical spectral signature.

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