Mechanical analogies for nonlinear light beams in nonlocal nematic liquid crystals

Author:

Assanto Gaetano1,Panayotaros Panayotis2,Smyth Noel F.3

Affiliation:

1. University of Rome “Roma Tre”, NooEL — Nonlinear Optics and OptoElectronics Lab, Rome 00146, Italy

2. IIMAS, Universidad Nacional Autónoma de México, Apdo. Postal 20-726, 01000 Cd. México, México

3. School of Mathematics, University of Edinburgh, Edinburgh, Scotland, EH9 3FD, UK

Abstract

The equations governing nonlinear light beam propagation in nematic liquid crystals form a [Formula: see text]-dimensional system consisting of a nonlinear Schrödinger-type equation for the electric field of the wavepacket and an elliptic equation for the reorientational response of the medium. The latter is “nonlocal” in the sense that it is much wider than the size of the beam. Due to these nonlocal, nonlinear features, there are no known general solutions of the nematic equations; hence, approximate methods have been found convenient to analyze nonlinear beam propagation in such media, particularly the approximation of solitary waves as mechanical particles moving in a potential. We review the use of dynamical equations to analyze solitary wave propagation in nematic liquid crystals through a number of examples involving their trajectory control, including comparisons with experimental results from the literature. Finally, we make a few general remarks on the existence and stability of optically self-localized solutions of the nematic equations.

Publisher

World Scientific Pub Co Pte Lt

Subject

Physics and Astronomy (miscellaneous),Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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