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Area of Science:

  • Physics
  • Soft Matter Physics
  • Complex Systems

Background:

  • Active matter systems, such as self-propelled rods, exhibit collective behaviors driven by self-propulsion and alignment interactions.
  • Nematic alignment rules govern the orientational order in many active matter systems.
  • Frustration in interactions can lead to novel emergent phenomena in physical systems.

Purpose of the Study:

  • To develop and investigate an aligning active matter model with tunable alignment angles.
  • To explore the effects of frustration introduced by nonvanishing alignment angles on collective behavior.
  • To compare the phenomenology of this new model with the standard self-propelled rods model.

Main Methods:

  • Agent-based microscopic simulations of cone-shaped particles with tunable collision angles.
  • Linear stability analysis of a continuum description derived from the Boltzmann approach.
  • Analysis of collective behaviors including band formation and orientational order.

Main Results:

  • The model exhibits distinct phenomenology compared to standard self-propelled rods.
  • Antiparallel bands are observed in an intermediate parameter range, indicating novel collective motion.
  • Frustration introduced by many-body interactions destabilizes homogeneous nematic order across a wide range of alignment angles.

Conclusions:

  • Tunable alignment angles in active matter models lead to significantly different collective behaviors.
  • The presence of frustration is a key factor in destabilizing nematic order and promoting new patterns.
  • The developed model provides a framework for studying complex interactions and emergent phenomena in active matter.