Mass separation in an asymmetric channel
arXiv:2107.09643 · doi:10.1103/PhysRevE.104.044109
Abstract
We present a mechanism to sort out particles of different masses in an asymmetric channel, where the entropic barriers arise naturally and control the diffusion of these particles. When particles are subjected to an oscillatory force, with the scaled amplitude and frequency , the mean particle velocity exhibits a bell-shaped behavior as a function of the particle mass, indicating that particles with an optimal mass drift faster than other particles. By tuning and , we get an empirical relation to estimate . An additional static bias, applied in the opposite direction of the rectified velocity, would push the particles of lighter mass to move in its direction while the others drift opposite to it. This study is useful to design lab-on-a-chip devices for separating particles of different masses.
13 pages, 6 figures, 1 table
References in corpus (5)
- Artificial Brownian motors: Controlling transport on the nanoscale
- Entropic transport: Kinetics, scaling and control mechanisms
- Entropic electrokinetics: recirculation, particle separation and negative mobility
- Tunable mass separation via negative mobility
- Confined diffusion in a random Lorentz gas environment