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Aggregation and sedimentation of active Brownian particles at constant affinity
Andreas Fischer1, Arkya Chatterjee2, Thomas Speck1
1Institut für Physik, Johannes Gutenberg-Universität Mainz, Staudingerweg 7-9, 55128 Mainz, Germany.
The Journal of Chemical Physics
|February 17, 2019
Summary
Motility-induced phase separation in active particles is influenced by non-constant propulsion speeds. This effect is significant for soft particles, impacting collective behavior and sedimentation profiles.
Area of Science:
- Soft Matter Physics
- Chemical Physics
- Statistical Mechanics
Background:
- Active particles exhibit motility-induced phase separation (MIPS).
- Particle propulsion speed is often assumed constant, but can vary with local environment.
- Interplay between particle interactions and propulsion dynamics is crucial for MIPS.
Purpose of the Study:
- Investigate the impact of non-constant propulsion speed on MIPS.
- Analyze how propulsion speed variations, linked to inter-particle forces, affect collective behavior.
- Examine the influence of non-constant propulsion on sedimentation profiles.
Main Methods:
- Theoretical modeling of active particle systems.
- Utilizing ideal reservoirs (chemostats) to control chemical species interconversion.
- Simulations and analytical calculations for hard and soft disc models.
Main Results:
- Non-constant propulsion, driven by inter-particle forces, enhances MIPS feedback.
- For hard discs, MIPS is primarily governed by average propulsion speed.
- Soft particles at high propulsion speeds show significant deviations in collective behavior due to variable propulsion.
Conclusions:
- Variable propulsion speed is a key factor in MIPS, especially for soft active matter.
- The study highlights the importance of considering dynamic propulsion in active matter theories.
- Non-constant propulsion influences both phase separation and sedimentation phenomena.
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