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Colloidal nanoparticles trapped by liquid-crystal defect lines: a lattice Monte Carlo simulation
Regina Jose1, Gregor Skačej2, V S S Sastry3
1Faculty of Mathematics and Physics, University of Ljubljana, Jadranska 19, SI-1000 Ljubljana, Slovenia and School of Physics, University of Hyderabad, Hyderabad 500046, Telangana, India.
Physical Review. E, Statistical, Nonlinear, and Soft Matter Physics
|October 15, 2014
Summary
We simulated liquid crystals with colloidal nanoparticles to measure the force on disclination lines. The line tension was found to be around 50 pN and decreased with rising temperature.
Area of Science:
- Soft Matter Physics
- Materials Science
- Colloid Science
Background:
- Confined liquid crystals exhibit complex topological defects.
- Colloidal nanoparticles can interact with and manipulate these defects.
Purpose of the Study:
- To investigate the behavior of a topological disclination line in a confined liquid crystal system entangled with a colloidal nanoparticle.
- To quantify the disclination line tension using microscopic simulations.
Main Methods:
- Lattice-based Monte Carlo simulations were employed.
- Simulations mimicked laser tweezing experiments by stretching the disclination line via colloid movement.
- Constant-force simulations were used to extract the line tension.
Main Results:
- A restoring force on the disclination line was observed when the colloid was moved.
- The disclination line tension was estimated to be approximately 50 pN.
- The line tension was found to decrease as the temperature increased.
Conclusions:
- The study provides quantitative insights into the interaction between colloidal particles and topological defects in liquid crystals.
- The findings contribute to understanding the mechanical properties of confined liquid crystal systems.
- The temperature dependence of disclination line tension was experimentally validated through simulation.
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