论文标题
可编程泵送,混合,细胞聚焦和诱捕的尖锐边缘的尖锐流动性芯片
Sharp-edge-based acoustofluidic chip for programmable pumping, mixing, cell focusing and trapping
论文作者
论文摘要
微观尺度上的流体和物体的精确操纵很少是一项简单的任务,但对于生命科学和化学工程中的许多应用至关重要。我们提出了一个用硅玻璃制造的微流体芯片,在侧通道处有一对或几对激动的锋利边缘,该尖锐边缘在整个芯片中驱动泵浦流动,并在其附近产生强烈的混合流。该芯片同时能够聚焦在流中的细胞和微粒。多功能微型泵提供了跨多种激发频率(80kHz-2mHz)的连续流,其流量范围从NL/min到$μ$ L/min,具体取决于激发参数。在低压状态下,流速四四式地取决于施加到压电传感器的电压,使泵可编程。使用有限元方法模拟阐明了系统中的行为,这与实验观察到的行为非常吻合。由于流体通道共振而产生的声辐射力是细胞和微粒的聚焦,而由锋利边缘产生的流媒体产生的流媒体产生了泵送和混合流。如果细胞聚焦对某个应用有害,则可以通过激发系统的谐振频率来避免这种细胞。该设备具有独特的功能束,为各种生物化学应用提供了巨大的潜力。
Precise manipulation of fluids and objects on the micro scale is seldom a simple task, but nevertheless crucial for many applications in life sciences and chemical engineering. We present a microfluidic chip fabricated in silicon-glass, featuring one or several pairs of acoustically excited sharp edges at side channels that drive a pumping flow throughout the chip and produce a strong mixing flow in their vicinity. The chip is simultaneously capable of focusing cells and microparticles that are suspended in the flow. The multifunctional micropump provides a continuous flow across a wide range of excitation frequencies (80kHz-2MHz), with flow rates ranging from nL/min to $μ$L/min, depending on the excitation parameters. In the low-voltage regime, the flow rate depends quadratically on the voltage applied to the piezoelectric transducer, making the pump programmable. The behaviour in the system is elucidated with finite element method simulations, which are in good agreement with experimentally observed behaviour. The acoustic radiation force arising due to a fluidic channel resonance is responsible for the focusing of cells and microparticles, while the streaming produced by the pair of sharp edges generates the pumping and the mixing flow. If cell focusing is detrimental for a certain application, it can also be avoided by exciting the system away from the resonance frequency of the fluidic channel. The device, with its unique bundle of functionalities, displays great potential for various bio-chemical applications.