Bachman Hunter, Chen Chuyi, Rufo Joseph, Zhao Shuaiguo, Yang Shujie, Tian Zhenhua, Nama Nitesh, Huang Po-Hsun, Huang Tony Jun
Department of Mechanical Engineering and Material Science, Duke University, Durham, NC 27708, USA.
Lab Chip. 2020 Apr 7;20(7):1238-1248. doi: 10.1039/c9lc01171d. Epub 2020 Feb 27.
Whether reagents and samples need to be combined to achieve a desired reaction, or precise concentrations of solutions need to be mixed and delivered downstream, thorough mixing remains a critical step in many microfluidics-based biological and chemical assays and analyses. To achieve complete mixing of fluids in microfluidic devices, researchers have utilized novel channel designs or active intervention to facilitate mass transport and exchange of fluids. However, many of these solutions have a major limitation: their design inherently limits their operational throughput; that is, different designs work at specific flow rates, whether that be low or high ranges, but have difficulties outside of their tailored design regimes. In this work, we present an acoustofluidic mixer that is capable of achieving efficient, thorough mixing across a broad range of flow rates (20-2000 μL min) using a single device. Our mixer combines active acoustofluidic mixing, which is responsible for mixing fluids at lower flow rates, with passive hydrodynamic mixing, which accounts for mixing fluids at higher flow rates. The mechanism, functionality, and performance of our acoustofluidic device are both numerically and experimentally validated. Additionally, the real-world potential of our device is demonstrated by synthesizing polymeric nanoparticles with comparable sizes over a two-order-of-magnitude wide range of flow rates. This device can be valuable in many biochemical, biological, and biomedical applications. For example, using our platform, one may synthesize nanoparticles/nanomaterials at lower flow rates to first identify optimal synthesis conditions without having to waste significant amounts of reagents, and then increase the flow rate to perform high-throughput synthesis using the optimal conditions, all using the same single device and maintaining performance.
无论是试剂和样品需要混合以实现预期反应,还是需要精确混合溶液浓度并向下游输送,充分混合在许多基于微流体的生物和化学检测及分析中仍然是关键步骤。为了在微流体装置中实现流体的完全混合,研究人员采用了新颖的通道设计或主动干预措施来促进流体的质量传输和交换。然而,这些解决方案大多存在一个主要限制:其设计本质上限制了操作通量;也就是说,不同的设计在特定流速下工作,无论是低流速范围还是高流速范围,但在其定制设计范围之外存在困难。在这项工作中,我们展示了一种声流体混合器,它能够使用单个装置在广泛的流速范围(20 - 2000 μL/min)内实现高效、充分的混合。我们的混合器将负责在较低流速下混合流体的主动声流体混合与负责在较高流速下混合流体的被动流体动力混合相结合。我们的声流体装置的机制、功能和性能通过数值模拟和实验得到了验证。此外,通过在两个数量级的宽流速范围内合成具有可比尺寸的聚合物纳米颗粒,展示了我们装置在实际应用中的潜力。该装置在许多生物化学、生物学和生物医学应用中可能具有重要价值。例如,使用我们的平台,可以在较低流速下合成纳米颗粒/纳米材料,首先确定最佳合成条件而无需浪费大量试剂,然后提高流速以使用最佳条件进行高通量合成,所有这些都使用同一个装置并保持性能。