Dynamic Motions of Topological Defects in Nematic Liquid Crystals under Spatial Confinement

Author:

Pawale Tejal1,Swain Justin2,Hashemi Mohammad Reza1,Tierra Giordano2,Li Xiao1ORCID

Affiliation:

1. Materials Science and Engineering Department University of North Texas 3940 North Elm Street Denton TX 76209 USA

2. Department of Mathematics University of North Texas 1155 Union Circle Denton TX 76203 USA

Abstract

AbstractTopological defects (TDs) have become a sensational topic due to their significant influence on the unusual optical and physiochemical characteristics of the material. To facilitate their application across a wide range of disciplines it is desirable to analyze and gain fundamental understanding of TDs in both equilibrium and nonequilibrium systems. Liquid crystals (LCs) are considered an ideal system for study given the direct visualization of TDs and a straightforward analyzation process. In addition to the equilibrium morphology of LC TDs, it is also of great interest to track and control the formation and annihilation of defects during thermodynamic processes. However, controlling the dynamic behavior of formed defects remains a challenge. Here, nematic LCs confined in a cell exhibiting surfaces with periodic anchoring conditions containing surface topography are relied on. The effects of patterned surface characteristics such as width, periodicity, and degree of curvature on defects dynamic motion, stabilization, and annihilation are explored. The computational experiments recapitulate the TDs transition path and provide free energy‐based predictions of critical distances for defect annihilation. Taken together, this simple approach offers a promising opportunity to control the dynamics of TDs in LCs through chemical patterned surfaces with topography.

Funder

American Chemical Society Petroleum Research Fund

University of North Texas

U.S. Department of Energy

Office of Science

Argonne National Laboratory

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials

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