Literature DB >> 31225565

Isotropic-isotropic phase separation and spinodal decomposition in liquid crystal-solvent mixtures.

Catherine G Reyes1, Jörg Baller1, Takeaki Araki2, Jan P F Lagerwall1.   

Abstract

Phase separation in mixtures forming liquid crystal (LC) phases is an important yet under-appreciated phenomenon that can drastically influence the behaviour of a multi-component LC. Here we demonstrate, using polarising microscopy with active cooling as well as differential scanning calorimetry, that the phase diagram for mixtures of the LC-forming compound 4'-n-pentylbiphenyl-4-carbonitrile (5CB) with ethanol is surprisingly complex. Binary mixtures reveal a broad miscibility gap that leads to phase separation between two distinct isotropic phases via spinodal decomposition or nucleation and growth. On further cooling the nematic phase enters on the 5CB-rich side, adding to the complexity. Significantly, water contamination dramatically raises the temperature range of the miscibility gap, bringing up the critical temperature for spinodal decomposition from ∼ 2 °C for the anhydrous case to >50 °C if just 3 vol% water is added to the ethanol. We support the experiments with a theoretical treatment that qualitatively reproduces the phase diagrams as well as the transition dynamics, with and without water. Our study highlights the impact of phase separation in LC-forming mixtures, spanning from equilibrium coexistence of multiple liquid phases to non-equilibrium effects due to persistent spatial concentration gradients.

Entities:  

Year:  2019        PMID: 31225565     DOI: 10.1039/c9sm00921c

Source DB:  PubMed          Journal:  Soft Matter        ISSN: 1744-683X            Impact factor:   3.679


  2 in total

1.  Effect of elastic constants on electrically induced transition in twisted radial cholesteric droplets.

Authors:  Vladimir Yu Rudyak; Mikhail N Krakhalev; Anna P Gardymova; Abylgazy S Abdullaev; Andrey A Alekseev; Victor Ya Zyryanov
Journal:  Sci Rep       Date:  2022-06-10       Impact factor: 4.996

2.  Quantitative volatile organic compound sensing with liquid crystal core fibers.

Authors:  Katrin Schelski; Catherine G Reyes; Lukas Pschyklenk; Peter-Michael Kaul; Jan P F Lagerwall
Journal:  Cell Rep Phys Sci       Date:  2021-12-22
  2 in total

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