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Separation of Sub-micron Particles from Micron Particles using Acoustic Fluid Relocation Combined with Acoustophoresis

机译:声流体重定位与声泳结合从亚微米颗粒中分离亚微米颗粒

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摘要

Acoustophoresis has gained increasing attention as a gentle, non-contact, and high throughput cell and particle separation technique. It is conveniently used to isolate and enrich particles that are greater than 2 μm; however, its use in manipulating particles smaller than 2 μm is limited. In this work, we present an alternative way of using acoustic forces to manipulate sub-micrometer particles in continuous flow fashion. It has been shown that acoustic forces can be employed to relocate parallel laminar flow streams of two impedance mis-matched fluids. We demonstrate the separation of sub-micron particles from micron particles by the combination of acoustophoresis and acoustic fluid relocation. The micron particles are focused into the middle of the flow channel via primary acoustic forces while sub-micron particles are moved to the side via drag forces created by the relocating fluid. We demonstrate the proof of the concept using binary mixtures of particles comprised of sub-micron/micron particles, micron/micron particles, and bovine red blood cells with E. coli. The efficiency of the particle enrichment is determined via flow cytometry analysis of the collected streams. This study demonstrates that by combining acoustic fluid relocation with acoustophoresis, sub-micron particles can be effectively separated from micron particles at high flow rates and it can be further implemented to separate binary mixtures of micron particles if the volumetric ratio of two particles is greater than 10 and the larger particle diameter is about 10 μm. The combined method is more appropriate to use than acoustophoresis in situations where acoustic streaming and differences in acoustic impedance of fluids can be concerns.In the presence of a resonance acoustic field, the clean high-density fluid (dark grey) and the low-density sample fluid are relocated. During this process, E coli are separated from the red blood cells (RBC).
机译:作为一种温和,非接触,高通量的细胞和颗粒分离技术,声电泳已引起越来越多的关注。它方便地用于分离和富集大于2μm的颗粒;但是,它在处理小于2μm的颗粒中的使用受到限制。在这项工作中,我们提出了一种使用声力以连续流动方式操纵亚微米颗粒的替代方法。已经表明,可以使用声力来重新定位两种阻抗不匹配的流体的平行层流。我们展示了通过声泳和声流体重定位相结合从亚微米颗粒中分离出亚微米颗粒。微米颗粒通过一次声力被聚焦到流动通道的中部,而亚微米颗粒则通过由重新定位的流体产生的拉力被移动到侧面。我们使用由亚微米/微米颗粒,微米/微米颗粒和牛红细胞与大肠杆菌组成的颗粒的二元混合物证明了这一概念。通过收集的流的流式细胞仪分析确定颗粒富集的效率。这项研究表明,通过结合声流体重定位和声泳,可以在高流速下有效地将亚微米颗粒与微米颗粒分离,并且如果两个颗粒的体积比大于2,则可以进一步分离微米颗粒的二元混合物。 10和更大的粒径约为10微米。在可能会产生声流和流体声阻抗差异的情况下,组合方法比声学电泳更适合使用。在存在共振声场的情况下,清洁的高密度流体(深灰色)和低密度样品液被重新定位。在此过程中,大肠杆菌与红细胞(RBC)分离。

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