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Acoustofluidics and Whole-Blood Manipulation in Surface Acoustic Wave Counterflow Devices

机译:表面声波逆流装置中的声流体和全血处理

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On-chip functional blocks for sample preprocessing are necessary elements for the implementation of fully portable micrototal analysis systems (μTAS). We demonstrate and characterize the microparticle and whole-blood manipulation capabilities of surface acoustic wave (SAW) driven counterflow micropumps. The motion of suspended cells in this system is governed by the two dominant acoustic forces associated with the scattered SAW (of wavelength λ_f): acoustic-radiation force and acoustic-streaming Stokesian drag force. We show that by reducing the microchannel height (h) beyond a threshold value the balance of these forces is shifted toward the acoustic-radiation force and that this yields control of two different regimes of microparticle dynamics. In the regime dominated by the acoustic radiation force (h approx.< λ_f), microparticles are collected in the seminodes of the partial standing sound-wave arising from reflections off microchannel walls. This enables the complete separation of plasma and corpuscular components of whole blood in periodical predetermined positions without any prior sample dilution. Conversely, in the regime dominated by acoustic streaming (h λ_f), the microbeads follow vortical streamlines in a pattern characterized by three different phases during microchannel filling. This makes it possible to generate a cell-concentration gradient within whole-blood samples, a behavior not previously reported in any acoustic-streaming device. By careful device design, a new class of SAW pumping devices is presented that allows the manipulation and pretreatment of whole-blood samples for portable and integrable biological chips and is compatible with handheld battery-operated devices.
机译:样品预处理的片上功能块是实现完全便携式微量分析系统(μTAS)的必要元素。我们演示并表征了表面声波(SAW)驱动​​的逆流微型泵的微粒和全血处理能力。该系统中悬浮细胞的运动由与散射声表面波(波长λ_f)相关的两个主要声力控制:声辐射力和声流斯托克斯阻力。我们表明,通过减小微通道高度(h)超过阈值,这些力的平衡向声辐射力转移,并且这产生了两种不同的微粒动力学机制的控制。在由声辐射力(h大约<λ_f)支配的状态下,微粒聚集在由微通道壁反射产生的部分驻声波的半节点中。这样就可以在预定的定期位置上完全分离全血的血浆和红细胞成分,而无需事先稀释样品。相反,在以声流(h λ_f)为主导的状态下,微珠遵循涡流线,其模式以微通道填充过程中的三个不同阶段为特征。这样就可以在全血样本中生成细胞浓度梯度,这是以前在任何声流设备中都没有报道过的行为。通过精心的设备设计,提出了一种新型的SAW抽水设备,该设备可以对便携式和可集成生物芯片的全血样品进行操作和预处理,并且与手持式电池供电设备兼容。

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