Wamsler Karolina, Head Louise C, Shendruk Tyler N
School of Physics and Astronomy, The University of Edinburgh, Peter Guthrie Tait Road, Edinburgh, EH9 3FD, UK.
Soft Matter. 2024 May 15;20(19):3954-3970. doi: 10.1039/d3sm01536j.
Liquid crystalline media mediate interactions between suspended particles and confining geometries, which not only has potential to guide patterning and bottom-up colloidal assembly, but can also control colloidal migration in microfluidic devices. However, simulating such dynamics is challenging because nemato-elasticity, diffusivity and hydrodynamic interactions must all be accounted for within complex boundaries. We model the advection of colloids dispersed in flowing and fluctuating nematic fluids confined within 2D wavy channels. A lock-key mechanism between homeotropic colloids and troughs is found to be stronger for planar anchoring on the wavy walls compared to homeotropic anchoring on the wavy walls due to the relative location of the colloid-associated defects. Sufficiently large amplitudes result in stick-slip trajectories and even permanent locking of colloids in place. These results demonstrate that wavy walls not only have potential to direct colloids to specific docking sites but also to control site-specific resting duration and intermittent elution.
液晶介质介导悬浮颗粒与受限几何形状之间的相互作用,这不仅具有引导图案化和自下而上的胶体组装的潜力,还能控制微流控装置中的胶体迁移。然而,模拟这种动力学具有挑战性,因为向列弹性、扩散性和流体动力学相互作用都必须在复杂边界内加以考虑。我们对分散在二维波浪形通道内流动且波动的向列型流体中的胶体平流进行建模。由于胶体相关缺陷的相对位置,与波浪形壁上的垂直取向锚定相比,发现垂直取向的胶体与波谷之间的锁钥机制在波浪形壁上的平面锚定情况下更强。足够大的振幅会导致胶体出现粘滑轨迹,甚至永久锁定在某个位置。这些结果表明,波浪形壁不仅有潜力将胶体引导至特定的对接位点,还能控制位点特异性的停留时间和间歇性洗脱。