Synchrotron SOLEIL, l'Orme des Merisiers, 91192, Gif-sur-Yvette, France.
IamFluidics BV, High Tech Factory, De Veldmaat 17, 7522 NM, Enschede, The Netherlands.
Sci Rep. 2021 Oct 11;11(1):20119. doi: 10.1038/s41598-021-99471-x.
Fast mixing of small volumes of solutions in microfluidic devices is essential for an accurate control and observation of the dynamics of a reaction in biological or chemical studies. It is often, however, a challenging task, as the Reynolds number (Re) in microscopic devices is typically < 100. In this report, we detail a novel mixer based on the "staggered herring bone" (SHB) pattern and "split-recombination" strategies with an optimized geometry, the periodic rotation of the flow structure can be controlled and recombined in a way that the vortices and phase shifts of the flow induce intertwined lamellar structures, thus increasing the contact surface and enhancing mixing. The optimization improves the mixing while using a low flow rate, hence a small volume for mixing and moderate pressure drops. The performances of the patterns were first simulated using COMSOL Multiphysics under different operating conditions. The simulation indicates that at very low flow rate (1-12 µL·min) and Re (3.3-40), as well as a very small working volume (~ 3 nL), a very good mixing (~ 98%) can be achieved in the ms time range (4.5-78 ms). The most promising design was then visualized experimentally, showing results that are consistent with the outcomes of the simulations. Importantly, the devices were fabricated using a classical soft-lithography method, as opposed to additive manufacturing often used to generate complex mixing structures. This new device minimizes the sample consumption and could therefore be applied for studies using precious samples.
在生物或化学研究中,快速混合微流控装置中的小体积溶液对于准确控制和观察反应动力学至关重要。然而,由于微观设备中的雷诺数(Re)通常小于 100,因此这通常是一项具有挑战性的任务。在本报告中,我们详细介绍了一种基于“交错人字形”(SHB)图案和“分裂-重组”策略的新型混合器,其具有优化的几何形状,可以控制周期性旋转的流结构并以一种方式重新组合,使流的涡旋和相移引起交织的层状结构,从而增加接触面积并增强混合。优化后的设计可以在使用低流速的情况下提高混合效率,因此混合所需的体积较小,压降也适中。首先使用 COMSOL Multiphysics 在不同的操作条件下对图案的性能进行了模拟。模拟表明,在非常低的流速(1-12 μL·min)和 Re(3.3-40)以及非常小的工作体积(约 3 nL)下,在 ms 时间范围内(4.5-78 ms)可以实现非常好的混合(~98%)。然后,最有前途的设计通过实验可视化,结果与模拟结果一致。重要的是,该设备是使用经典的软光刻方法制造的,而不是通常用于生成复杂混合结构的增材制造。这种新设备最小化了样品消耗,因此可以应用于使用珍贵样品的研究。