RUS  ENG
Full version
JOURNALS // Kvantovaya Elektronika // Archive

Kvantovaya Elektronika, 2022 Volume 52, Number 4, Pages 322–327 (Mi qe18028)

This article is cited in 2 papers

Nonlinear optics

Femtosecond multiple filamentation of an optical vortex in the mid-IR wavelength range in fused silica and fluorides

S. A. Shlenovab, V. O. Kompanetsb, A. A. Dergacheva, V. P. Kandidovab, S. V. Chekalinb, F. I. Soiferab

a Faculty of Physics, Lomonosov Moscow State University
b Institute of Spectroscopy, Russian Academy of Sciences, Troitsk, Moscow

Abstract: The results of experimental and theoretical study of the self-action of femtosecond optical vortices in the region of anomalous group velocity dispersion in fused silica and fluorides are presented. Multiple filamentation of an axially asymmetric annular beam with a phase dislocation of topological charge m = 1 at a wavelength of 1800 nm in a LiF crystal is investigated. It is found that for the experimentally recorded intensity profile of a vortex beam with two maxima on the diameter, the critical self-focusing power is approximately two times larger than the critical power of a unimodal Gaussian beam. In pulses with supercritical power in the vicinity of the intensity maxima, two coupled filaments, separated by a phase dislocation, are formed on the annular profile of the optical vortex, which prevents energy exchange during their formation. The length of vortex-beam plasma channels in a single pulse is found to be about 300 μm at a diameter of about 2 μm, which is close to the characteristics of plasma channels in a Gaussian beam.

Keywords: femtosecond pulses, optical vortex, phase dislocation, critical power, multiple filamentation, fused silica, LiF crystal, filament plasma channels.

Received: 12.11.2021
Accepted: 12.11.2021


 English version:
Quantum Electronics, 2022, 52:4, 322–327

Bibliographic databases:


© Steklov Math. Inst. of RAS, 2024