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基于往复流动的离心式微流控混合器。

Reciprocating flow-based centrifugal microfluidics mixer.

作者信息

Noroozi Zahra, Kido Horacio, Micic Miodrag, Pan Hansheng, Bartolome Christian, Princevac Marko, Zoval Jim, Madou Marc

机构信息

Department of Mechanical and Aerospace Engineering, University of California, Irvine, 4200 Engineering Gateway, Irvine, California 92697-3975, USA.

出版信息

Rev Sci Instrum. 2009 Jul;80(7):075102. doi: 10.1063/1.3169508.

Abstract

Proper mixing of reagents is of paramount importance for an efficient chemical reaction. While on a large scale there are many good solutions for quantitative mixing of reagents, as of today, efficient and inexpensive fluid mixing in the nanoliter and microliter volume range is still a challenge. Complete, i.e., quantitative mixing is of special importance in any small-scale analytical application because the scarcity of analytes and the low volume of the reagents demand efficient utilization of all available reaction components. In this paper we demonstrate the design and fabrication of a novel centrifugal force-based unit for fast mixing of fluids in the nanoliter to microliter volume range. The device consists of a number of chambers (including two loading chambers, one pressure chamber, and one mixing chamber) that are connected through a network of microchannels, and is made by bonding a slab of polydimethylsiloxane (PDMS) to a glass slide. The PDMS slab was cast using a SU-8 master mold fabricated by a two-level photolithography process. This microfluidic mixer exploits centrifugal force and pneumatic pressure to reciprocate the flow of fluid samples in order to minimize the amount of sample and the time of mixing. The process of mixing was monitored by utilizing the planar laser induced fluorescence (PLIF) technique. A time series of high resolution images of the mixing chamber were analyzed for the spatial distribution of light intensities as the two fluids (suspension of red fluorescent particles and water) mixed. Histograms of the fluorescent emissions within the mixing chamber during different stages of the mixing process were created to quantify the level of mixing of the mixing fluids. The results suggest that quantitative mixing was achieved in less than 3 min. This device can be employed as a stand alone mixing unit or may be integrated into a disk-based microfluidic system where, in addition to mixing, several other sample preparation steps may be included.

摘要

试剂的正确混合对于高效化学反应至关重要。虽然在大规模情况下有许多用于试剂定量混合的良好解决方案,但截至目前,在纳升和微升体积范围内进行高效且廉价的流体混合仍然是一项挑战。在任何小规模分析应用中,完全即定量混合尤为重要,因为分析物稀缺且试剂体积小,需要有效利用所有可用的反应成分。在本文中,我们展示了一种基于离心力的新型装置的设计与制造,该装置用于在纳升至微升体积范围内快速混合流体。该装置由多个腔室(包括两个加载腔室、一个压力腔室和一个混合腔室)组成,这些腔室通过微通道网络相连,并通过将聚二甲基硅氧烷(PDMS)平板与载玻片键合制成。PDMS平板是使用通过两级光刻工艺制造的SU - 8母模浇铸而成的。这种微流体混合器利用离心力和气压使流体样本往复流动,以尽量减少样本量和混合时间。通过利用平面激光诱导荧光(PLIF)技术监测混合过程。当两种流体(红色荧光颗粒悬浮液和水)混合时,分析混合腔室的高分辨率图像的时间序列以获取光强度的空间分布。创建混合过程不同阶段混合腔内荧光发射的直方图,以量化混合流体的混合程度。结果表明,在不到3分钟内实现了定量混合。该装置既可以用作独立的混合单元,也可以集成到基于圆盘的微流体系统中,在该系统中,除了混合之外,还可以包括其他几个样品制备步骤。

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