Mechanical and Aerospace Engineering Department, Rutgers, The State University of New Jersey, Piscataway, NJ, USA.
Soft Matter. 2017 Oct 25;13(41):7649-7656. doi: 10.1039/c7sm01510k.
Deterministic lateral displacement (DLD) is a promising separation scheme in microfluidic systems. In traditional DLD, a periodic array of solid posts induces the separative migration of suspended particles moving through the system. Here, we present a radical departure from traditional DLD systems and use an array of anchored liquid-bridges as the stationary phase in the DLD device. The liquid-bridges are created between two parallel plates and anchored to the bottom one by cylindrical wells. We show that the non-linear particle dynamics observed in traditional DLD systems is also present in the anchored-liquid case, enabling analogous size-based separation of suspended particles. The use of liquid-bridges as the stationary phase presents additional possibilities in separation technologies, potentially eliminating or significantly reducing clogging, enabling renewable and/or reconfigurable systems, allowing a different set of fabrication methods and providing alternative ways to separate particles based on their interaction with liquid-liquid interfaces. Some of these advantages could also extend to filtration methods based on similar liquid-based stationary phases.
确定性侧向位移(DLD)是微流控系统中一种很有前途的分离方案。在传统的 DLD 中,周期性的固体柱阵列诱导悬浮颗粒在通过系统时进行分离迁移。在这里,我们对传统的 DLD 系统进行了彻底的改进,在 DLD 装置中使用固定的液桥阵列作为固定相。液桥是在两块平行板之间形成的,并通过圆柱形井固定在底部。我们表明,在传统的 DLD 系统中观察到的非线性颗粒动力学也存在于固定液桥的情况下,从而能够实现类似的基于尺寸的悬浮颗粒分离。将液桥用作固定相在分离技术中提供了额外的可能性,可能消除或显著减少堵塞,实现可再生和/或可重构系统,允许采用不同的制造方法,并提供基于颗粒与液-液界面相互作用的分离颗粒的替代方法。这些优势中的一些也可能扩展到基于类似液基固定相的过滤方法。