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使用虚拟确定性侧向位移(vDLD)进行颗粒分离。

Particle separation using virtual deterministic lateral displacement (vDLD).

机构信息

Laboratory for Micro Systems, Department of Mechanical and Aerospace Engineering, Monash University, Clayton, VIC 3800, Australia.

出版信息

Lab Chip. 2014 May 7;14(9):1595-603. doi: 10.1039/c3lc51367j. Epub 2014 Mar 18.

Abstract

We present a method for sensitive and tunable particle sorting that we term virtual deterministic lateral displacement (vDLD). The vDLD system is composed of a set of interdigital transducers (IDTs) within a microfluidic chamber that produce a force field at an angle to the flow direction. Particles above a critical diameter, a function of the force induced by viscous drag and the force field, are displaced laterally along the minimum force potential lines, while smaller particles continue in the direction of the fluid flow without substantial perturbations. We demonstrate the effective separation of particles in a continuous-flow system with size sensitivity comparable or better than other previously reported microfluidic separation techniques. Separation of 5.0 μm from 6.6 μm, 6.6 μm from 7.0 μm and 300 nm from 500 nm particles are all achieved using the same device architecture. With the high sensitivity and flexibility vDLD affords we expect to find application in a wide variety of microfluidic platforms.

摘要

我们提出了一种灵敏可调的粒子分选方法,称为虚拟确定性侧向位移(vDLD)。vDLD 系统由微流腔中的一组叉指换能器(IDT)组成,它们在与流动方向成一定角度的方向上产生力场。大于临界直径的颗粒(这是粘性阻力和力场引起的力的函数)会沿着最小力位线侧向位移,而较小的颗粒则继续沿流体流动的方向流动,没有实质性的干扰。我们在连续流系统中展示了有效的粒子分离,其尺寸灵敏度与其他先前报道的微流控分离技术相当或更好。使用相同的器件结构可以实现 5.0 μm 与 6.6 μm、6.6 μm 与 7.0 μm 和 300 nm 与 500 nm 颗粒的有效分离。vDLD 具有高灵敏度和灵活性,我们预计它将在各种微流控平台中得到应用。

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