Diffusion of chiral active particles in a Poiseuille flow
arXiv:2202.00233 · doi:10.1103/PhysRevE.105.024604
Abstract
We study the diffusive behavior of chiral active (self-propelled) Brownian particles in a two-dimensional microchannel with a Poiseuille flow. Using numerical simulations, we show that the behavior of the transport coefficients of particles, for example, the average velocity and the effective diffusion coefficient , strongly depends on flow strength , translational diffusion constant , rotational diffusion rate , and chirality of the active particles . It is demonstrated that the particles can exhibit upstream drift, resulting in a negative , for the optimal parameter values of , , and . Interestingly, the direction of can be controlled by tuning these parameters. We observe that for some optimal values of and , the chiral particles aggregate near a channel wall, and the corresponding is enhanced. However, for the nonchiral particles (), the is suppressed by the presence of Poiseuille flow. It is expected that these findings have a great potential for developing microfluidic and lab-on-a-chip devices for separating the active particles.
16 Pages, 8 Figures; Manuscript to be appear in Physical Review E
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