Nonlinear continuous-wave optical propagation in nematic liquid crystals: interplay between reorientational and thermal effects
arXiv:1703.02299 · doi:10.1103/PhysRevE.96.012703
Abstract
Thanks to their unique properties, nematic liquid crystals feature a variety of mechanisms for light-matter interactions. For continuous-wave optical excitations, the two dominant contributions stem from reorientational and thermal nonlinearities. We thoroughly analyze the competing roles of these two nonlinear responses with reference to self-focusing/defocusing and, eventually, the formation of nonlinear diffraction-free wavepackets, the so-called spatial optical solitons. To this extent we refer to dye-doped nematic liquid crystals in planar cells and continuous-wave beams at two distinct wavelengths in order to adjust the relative weights of the two responses. The theoretical analysis is complemented by numerical simulations in the highly nonlocal approximation and compared to experimental results.
13 pages, 12 figures, submitted to PRE
References in corpus (4)
- Pancharatnam-Berry phase optical elements for wavefront shaping in the visible domain: switchable helical modes generation
- Self-organization of light in optical media with competing nonlinearities
- Super-mode spatial optical solitons in liquid crystals with competing nonlinearities
- Breather solitons in highly nonlocal media