Abstract
We show that active, self-propelled particles that are connected together to form a single chain that is anchored at one end can produce the graceful beating motions of flagella. Changing the boundary condition from a clamp to a pivot at the anchor leads to steadily rotating tight coils. Strong noise in the system disrupts the regularity of the oscillations. We use a combination of detailed numerical simulations, mean-field scaling analysis and first passage time theory to characterize the phase diagram as a function of the filament length, passive elasticity, propulsion force and noise. Our study suggests minimal experimental tests for the onset of oscillations in an active polar chain. © 2013 The Author(s) Published by the Royal Society. All rights reserved.
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Chelakkot, R., Gopinath, A., Mahadevan, L., & Hagan, M. F. (2014). Flagellar dynamics of a connected chain of active, polar, Brownian particles. Journal of the Royal Society Interface, 11(92). https://doi.org/10.1098/rsif.2013.0884
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