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The Forced Swim Test as a Model of Depressive-like Behavior
Published on: March 2, 2015
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Self-avoidant memory effects on enhanced diffusion in a stochastic model of environmentally responsive swimming
Katherine Daftari1, Katherine A Newhall1
1Mathematics Department, University of North Carolina at Chapel Hill, Chapel Hill, North Carolina 27599, USA.
Physical Review. E
|March 16, 2022
Summary
Self-avoidant memory in swimming droplets paradoxically suppresses enhanced diffusion, contrary to expectations. This phenomenon, termed self-caging, offers new insights into microswimmer behavior and collective dynamics.
Area of Science:
- Physics
- Chemical Engineering
- Materials Science
Background:
- Enhanced diffusion is common in microswimmer systems, driven by ballistic motion and reorientations.
- Autophoretic droplet swimmers exhibit self-avoidance or attraction via chemical gradients.
- Understanding these interactions is key to controlling microswimmer behavior.
Purpose of the Study:
- To model and numerically study the impact of self-avoidant memory on enhanced diffusion in swimming droplets.
- To differentiate the effects of self-avoidance from random reorientations.
- To investigate novel mechanisms influencing microswimmer collective dynamics.
Main Methods:
- Developed a mathematical model incorporating experimentally observed self-avoidant memory.
- Utilized numerical simulations to analyze droplet behavior.
- Compared results to the active Brownian model to isolate memory effects.
Main Results:
- Self-avoidant memory significantly suppresses enhanced diffusion compared to models with only reorientation persistence.
- Introduced the concept of 'self-caging' as a novel mechanism for this suppression.
- Identified a parameter domain where enhanced diffusion is observable despite memory effects.
Conclusions:
- Self-avoidant memory in microswimmers can lead to counterintuitive reductions in diffusion.
- Self-caging is a critical factor in understanding the dynamics of interacting swimming droplets.
- The findings provide a framework for designing and controlling microswimmer systems with specific collective behaviors.
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