Nematic droplets in aqueous dispersions of carbon nanotubes
arXiv:1306.5436 · doi:10.1103/PhysRevE.82.020702
Abstract
Aqueous dispersions of exfoliated, bile-salt stabilized single-wall carbon nanotubes exhibit a first order transition to a nematic liquid-crystalline phase. The nematic phase presents itself in the form of micron-sized nematic droplets also known as tactoids, freely floating in the isotropic host dispersion. The nematic droplets are spindle shaped and have an aspect ratio of about four, irrespective of their size. We attribute this to a director field that is uniform rather than bipolar, which is confirmed by polarization microscopy. It follows that the ratio of the anchoring strength and the surface tension must be about four, which is quite larger than predicted theoretically but in line with earlier observations of bipolar tactoids. From the scatter in the data we deduce that the surface tension of the coexisting isotropic and nematic phases must be extremely low, that is, of the order of nN/m.
4 pages, 5 figures
Cited by in corpus (12)
- Morphogenesis of defects and tactoids during isotropic-nematic phase transition in self-assembled lyotropic chromonic liquid crystals
- Flow-induced order-order transitions in amyloid fibril liquid crystalline tactoids
- Electric-field induced shape transition of nematic tactoids
- A Landau-de Gennes theory for hard colloidal rods: defects and tactoids
- Crowder and Surface Effects on Self-organization of Microtubules
- Nematic Tactoid Population
- Effect of Electric Fields on the Director Field and Shape of Nematic Tactoids
- Shape Bistability in Squeezed Chromonic Droplets
- Nucleation and shape dynamics of model nematic tactoids around adhesive colloids
- Twisted loxodromes in spindle-shaped polymer nematics
- Anisotropic viscoelastic phase separation in polydisperse hard rods: non-sticky gelation
- Charge-Driven Liquid-Crystalline Behavior of Ligand-Functionalized Nanorods in Apolar Solvent