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Surface alignment disorder and thermal Casimir forces in smectic-A liquid crystalline films.

Journal of physics. Condensed matter : an Institute of Physics journal·2020
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Related Experiment Video

Updated: Jun 17, 2025

Forming, Confining, and Observing Microtubule-Based Active Nematics
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The Casimir-like effect induced by active nematics.

Fahimeh Karimi Pour Haddadan1

  • 1Faculty of Physics, Kharazmi University, Tehran 15815-3587, Iran.

Journal of Physics. Condensed Matter : an Institute of Physics Journal
|August 12, 2024
PubMed
Summary

We investigated active nematic phases and found that particle activity influences Casimir-like forces between boundaries. Extensile activity can enhance attraction, while contractile activity stabilizes the system, altering forces based on film thickness and alignment.

Keywords:
Casimir-like effectactive nematicsliquid crystalsnematics

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Area of Science:

  • Soft Matter Physics
  • Active Matter Systems
  • Hydrodynamics

Background:

  • Active nematic phases exhibit complex behaviors driven by internal stresses.
  • Confined geometries can lead to unique boundary interactions and forces.
  • The Casimir effect describes forces arising from quantum or thermal fluctuations in confined systems.

Purpose of the Study:

  • To model the activity in an active nematic phase as an internal field.
  • To investigate the Casimir-like force induced between boundaries in a confined active nematic film.
  • To analyze how geometrical shape, particle dynamics, and anchoring conditions affect this force.

Main Methods:

  • Utilizing hydrodynamical equations to model the active nematic phase.
  • Incorporating activity as an internal field interacting with the nematic director.
  • Employing a field theoretical approach based on a model Hamiltonian.
  • Analyzing the system's behavior under different particle alignments (homeotropic and planar) and activities (extensile and contractile).

Main Results:

  • Extensile activity enhances attraction in homeotropically aligned films, with force decreasing as thickness increases.
  • A critical thickness can lead to flow instability, with forces diverging at the threshold.
  • Contractile rods in homeotropic alignment lead to exponentially diminishing forces with thickness.
  • Planar alignment with contractile rods induces splay distortion and shows universal pretransitional force behavior.
  • Extensile rods in planar alignment lead to massive director fluctuations and exponentially diminishing forces.

Conclusions:

  • The Casimir-like force in active nematic films is highly sensitive to particle activity, geometry, and boundary conditions.
  • Activity can induce instabilities and alter inter-boundary forces in predictable ways.
  • Further investigation is needed to obtain closed-form results for the effect of activity on thermal fluctuations.