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Swirlonic state of active matter
Nikolai V Brilliantov1,2, Hajar Abutuqayqah2, Ivan Yu Tyukin2,3
1Skolkovo Institute of Science and Technology, Moscow, Russia.
Scientific Reports
|October 9, 2020
Summary
Researchers discovered a new active matter state called the swirlonic state, where particles form orbiting groups called swirlons. These swirlons move predictably under force and merge slowly, unlike typical matter states.
Area of Science:
- Physics
- Soft Matter Physics
- Active Matter Physics
Background:
- Active matter systems exhibit diverse collective behaviors.
- Understanding emergent states in active matter is crucial for material science.
Purpose of the Study:
- To report the discovery of a novel swirlonic state in active matter.
- To investigate the properties and dynamics of swirlons and their interactions.
Main Methods:
- Extensive numerical simulations were performed.
- Theoretical analysis was conducted to model swirion behavior.
- Comparison of simulation results with theoretical predictions.
Main Results:
- A novel swirlonic state, composed of orbiting active particles (swirlons), was identified.
- Swirlons exhibit viscous-like motion under external load and slow coalescence.
- Gaseous, liquid, and solid states were observed, with unique non-coexistence of liquid and gaseous phases.
Conclusions:
- The swirlonic state represents a new paradigm in active matter physics.
- The unique phase behavior, particularly the non-coexistence of liquid and gaseous states, is attributed to the absence of fast particles.
- Theoretical models accurately predict the observed simulation results, validating the findings.
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