Dissipative structures induced by photoisomerization in a dye-doped nematic liquid crystal layer

Author:

Andrade-Silva I.1,Bortolozzo U.2,Castillo-Pinto C.1,Clerc M. G.1,González-Cortés G.1,Residori S.2ORCID,Wilson M.3

Affiliation:

1. Department of Physics, Facultad de Ciencias Físicas y Matemáticas, Millennium Institute for Research in Optics, Universidad de Chile, Casilla 487-3, Santiago, Chile

2. UMR7010, CNRS, Université de Nice-Sophia Antipolis, Institut de Physique de Nice, 1361 Route des Lucioles, 06560 Valbonne, France

3. CONACYT – CICESE, Carretera Ensenada-Tijuana 3918, Zona Playitas, C.P. 22860 Ensenada, Mexico

Abstract

Order–disorder phase transitions driven by temperature or light in soft matter materials exhibit complex dissipative structures. Here, we investigate the spatio-temporal phenomena induced by light in a dye-doped nematic liquid crystal layer. Experimentally, for planar anchoring of the nematic layer and high enough input power, photoisomerization processes induce a nematic–isotropic phase transition mediated by interface propagation between the two phases. In the case of a twisted nematic layer and for intermediate input power, the light induces a spatially modulated phase, which exhibits stripe patterns. The pattern originates as an instability mediated by interface propagation between the modulated and the homogeneous nematic states. Theoretically, the phase transition, emergence of stripe patterns and front dynamics are described on the basis of a proposed model for the dopant concentration coupled with the nematic order parameter. Numerical simulations show quite a fair agreement with the experimental observations. This article is part of the theme issue ‘Dissipative structures in matter out of equilibrium: from chemistry, photonics and biology (part 2)’.

Funder

This article was funded by Fondo Nacional de Ciencia y Tecnologia

CONICYT-PFCHA/Doctorado Nacional

Publisher

The Royal Society

Subject

General Physics and Astronomy,General Engineering,General Mathematics

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