Nanoscale simulations of directional locking
arXiv:0911.4623 · doi:10.1063/1.3429297
Abstract
When particles suspended in a fluid are driven through a regular lattice of cylindrical obstacles, the particle motion is usually not simply in the direction of the force, and in the high Peclet number limit particle trajectories tend to lock along certain lattice directions. By means of molecular dynamics simulations we show that this effect persists in the presence of molecular diffusion for nanoparticle flows, provided the Peclet number is not too small. We examine the effects of varying particle and obstacle size, the method of forcing, solid roughness, and particle concentration. While we observe trajectory locking in all cases, the degree of locking varies with particle size and these flows may have application as a separation technique.
References in corpus (2)
Cited by in corpus (15)
- Dynamical Ordering and Directional Locking For Particles Moving Over Quasicrystalline Substrates
- Driven Brownian transport through arrays of symmetric obstacles
- Collective Directional Locking of Colloidal Monolayers on a Periodic Substrate
- Inertia and scaling in deterministic lateral displacement
- Directional locking in deterministic lateral displacement microfluidic separation systems
- Directional Locking Effects for Active Matter Particles Coupled to a Periodic Substrate
- Fractionation by shape in deterministic lateral displacement microfluidic devices
- Structural Transitions and Dynamical Regimes for Directional Locking of Particles Driven over Periodic Substrates
- Clogging, Dynamics and Reentrant Fluid for Active Matter on Periodic Substrates
- Individual Vortex Manipulation and Stick-Slip Motion in Periodic Pinning Arrays
- Directional Locking in a 2D Yukawa Solid Modulated by a 2D Periodic Substrate
- Transport of Brownian particles in a narrow, slowly-varying serpentine channel
- One-dimensional linear array of cylindrical posts for size-based deterministic separation of binary suspensions
- Collective Effects and Pattern Formation for Directional Locking of Disks Moving Through Obstacle Arrays
- Active Rheology and Anti-Commensuration Effects For Driven Probe Particles on Two Dimensional Periodic Pinning Substrates