Density-functional study of defects in two-dimensional circular nematic nanocavities
arXiv:0911.3497 · doi:10.1080/02678290903362840
Abstract
We use density--functional theory to study the structure of two-dimensional defects inside a circular nematic nanocavity. The density, nematic order parameter, and director fields, as well as the defect core energy and core radius, are obtained in a thermodynamically consistent way for defects with topological charge (with radial and tangential symmetries) and . An independent calculation of the fluid elastic constants, within the same theory, allows us to connect with the local free--energy density predicted by elastic theory, which in turn provides a criterion to define a defect core boundary and a defect core free energy for the two types of defects. The radial and tangential defects turn out to have very different properties, a feature that a previous Maier--Saupe theory could not account for due to the simplified nature of the interactions --which caused all elastic constants to be equal. In the case with two defects in the cavity, the elastic régime cannot be reached due to the small radii of the cavities considered, but some trends can already be obtained.
9 figures. Accepted for publication in liquid crystals
References in corpus (1)
Cited by in corpus (9)
- Hard-body models of bulk liquid crystals
- Confinement of two-dimensional rods in slit pores and square cavities
- Domain walls in two-dimensional nematics confined in a small circular cavity
- Liquid-crystal patterns of rectangular particles in a square nanocavity
- Viral nematics in confined geometries
- Two-dimensional nematics in bulk and confined geometries
- Defects in vertically vibrated monolayers of cylinders
- Confinement effects on the random sequential adsorption packings of elongated particles in a slit
- Highly confined mixtures of parallel hard squares: A Density Functional Theory study