Affiliation:
1. Institute of Molecular Physics, Polish Academy of Sciences, 60-179 Poznań, Poland
Abstract
Viscosity, elasticity, and viscoelastic properties are one of the most fundamental properties of liquid crystalline materials; the main problem in determining these properties is the multitude of physical parameters needed to determine the values of elasticity and viscosity constants. In this paper, a number of different measurement methods for the complete characterization of viscoelastic properties for smectic liquid crystalline materials and their mixtures are analyzed, both theoretically and experimentally. The way in which viscoelastic material constants are determined depends mainly on the application/purpose of the materials under study. The subject of this work was to review the methods used to determine viscoelastic effects in ferroelectric and antiferroelectric chiral liquid crystals, their mixtures, composite materials, and even in dielectric systems, which would bear the hallmark of a universal method allowing the application of sufficiently low electric fields. In the case of chiral liquid crystals with ferroelectric and antiferroelectric phases and their subphases, the following assumption applies: fulfilment of Hooke’s law (in the case of elastic coefficients) and preservation of laminar flow (in the case of viscosity coefficients).
Funder
Polish National Science Center
Reference82 articles.
1. Kuczyński, W. (2005). Chirality, Symmetry and Physical Effects. Chiral Liquid Crystals, IFM PAN.
2. Kitzerow, H., and Bahr, C. (2001). Chirality in Liquid Crystals, Springer Science & Business Media.
3. Sluckin, T.J., Dunmur, D.A., and Stegemeyer, H. (2004). Crystals That Flow: Classic Papers from the History of Liquid Crystals, Taylor & Francis.
4. Ferroelectric liquid crystals: Excellent tool for modern displays and photonics;Srivastava;J. Soc. Inf. Disp.,2015
5. Optic, electrooptic and dielectric properties of novel antiferroelectric liquid crystal compounds;Pontus;Ferroelectrics,2000