Department of Bio and Brain Engineering, College of Life Science and Bioengineering, KAIST, 335 Gwahangno, Yuseong-gu, Daejeon 305-701, Republic of Korea.
Lab Chip. 2009 Nov 7;9(21):3155-60. doi: 10.1039/b910712f. Epub 2009 Aug 10.
We report a contraction-expansion array (CEA) microchannel that allows three-dimensional hydrodynamic focusing with a single sheath flow in a single-layer device. The CEA microchannel exploits centrifugal forces acting on fluids travelling along the contraction and expansion regions of the microchannel. Around an entrance of the contraction region, the centrifugal forces induce a secondary flow field where two counter-rotating vortices enable to envelop a sample flow with a sheath flow in three dimensions. We herein describe an underlying principle and a design of the CEA microchannel and demonstrate complete sheathing of a sample fluid (water and human red blood cells) in three dimensions. The focusing characteristics of the CEA microchannel are investigated in terms of the number of the rectangular structures, flow rate, and flow ratio between sample and sheath flows. This microfluidic channel for three-dimensional hydrodynamic focusing is easy to fabricate in a single-layer fabrication process and simple to operate with a single sheath flow.
我们报告了一种收缩-扩张阵列(CEA)微通道,该通道允许在单层设备中通过单一鞘流实现三维流体动力学聚焦。CEA 微通道利用作用于沿微通道收缩和扩张区域流动的流体的离心力。在收缩区域的入口处,离心力引起二次流场,其中两个反向旋转的涡流能够在三维空间中用鞘流包围样品流。我们在此描述了 CEA 微通道的基本原理和设计,并证明了三维空间中样品流体(水和人红细胞)的完全鞘流。CEA 微通道的聚焦特性是根据矩形结构的数量、流速以及样品和鞘流之间的流量比来研究的。这种用于三维流体动力学聚焦的微流道易于在单层制造工艺中制造,并且易于通过单一鞘流操作。