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基于尺寸的微流控多模式微颗粒分选仪。

Size-based microfluidic multimodal microparticle sorter.

机构信息

BioMicroSystems Laboratory, Department of Electrical Engineering and Computing Systems, Ohio Center for Microfluidic Innovation, University of Cincinnati, Cincinnati, OH 45220, USA.

出版信息

Lab Chip. 2015 Mar 7;15(5):1350-9. doi: 10.1039/c4lc00803k.

Abstract

Microfluidic sorting of synthetic and biological microparticles has attracted much interest in recent years. Inertial microfluidics uses hydrodynamic forces to manipulate migration of such microparticles in microfluidic channels to achieve passive sorting based on size with high throughput. However, most inertial microfluidic devices are only capable of bimodal separation with a single cutoff diameter and a well-defined size difference. These limitations inhibit efficient separation of real-world samples that often include heterogeneous mixtures of multiple microparticle components. Our design overcomes these challenges to achieve continuous multimodal sorting of microparticles with high resolution and high tunability of separation cutoff diameters. We demonstrate separations with flexible modulation of the separation bandwidth and the passband location. Our approach offers a number of benefits, including straightforward system design, easily and precisely tuned cutoff diameters, high separation resolution, and high throughput. Ultimately, the unique multimodal separation functionality significantly broadens applications of inertial microfluidics in sorting of complex microparticle samples.

摘要

近年来,合成和生物微颗粒的微流控分选引起了广泛关注。惯性微流控利用流体动力来操纵此类微颗粒在微流道中的迁移,以实现基于尺寸的高通量被动分选。然而,大多数惯性微流控器件仅能够进行双模态分离,具有单一截止直径和明确的尺寸差异。这些限制阻碍了对真实样品的有效分离,而真实样品通常包含多种微颗粒成分的不均匀混合物。我们的设计克服了这些挑战,实现了具有高分辨率和高截止直径可调性的微颗粒连续多模态分选。我们展示了具有分离带宽和通带位置灵活调节的分离。我们的方法具有许多优点,包括简单的系统设计、易于精确调整的截止直径、高分离分辨率和高通量。最终,独特的多模态分离功能显著拓宽了惯性微流控在复杂微颗粒样品分选中的应用。

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