Department of Laser and Electron Beam Technologies, Korea Institute of Machinery and Materials, Daejeon 34103, Republic of Korea.
Lab Chip. 2020 Nov 24;20(23):4474-4485. doi: 10.1039/d0lc00823k.
The performance of micromixers, namely their mixing efficiency and throughput, is a critical component in increasing the overall efficiency of microfluidic systems (e.g., lab-on-a-chip and μ-TAS). Most previously reported high-performance micromixers use active elements with some external power to induce turbulence, or contain long and complex fluidic channels with obstacles to increase diffusion. In this paper, we introduce a new type of 3D impeller micromixer built within a single fused silica substrate. The proposed device is composed of microchannels with three inlets and a tank, with a mixing impeller passively rotated by axial flow. The passive micromixer is directly fabricated inside a glass plate using a selective laser-induced etching technique. The mixing tank, with its rotating shaft and 3D pitched blade impeller, exists within a micro-cavity with a volume of only 0.28 mm3. A mixing efficiency of 99% is achieved in mixing experiments involving three dye colours over flow rates ranging from 1.5-30 mL min-1, with the same flow rates also applied to a sodium hydroxide-based bromothymol blue indicator and a hydrochloric acid chemical solution. To verify the reliable performance of the proposed device, we compare the mixing index with a general self-circulation-type chamber mixer to demonstrate the improved mixing efficiency achieved by rotating the impeller. No cracking or breakage of the device is observed under high inner pressures or when the maximum flow rate is applied to the mixer. The proposed microfluidic system based on a compact built-in 3D micromixer with an impeller opens the door to robust, highly efficient, and high-throughput glass-based platforms for micro-centrifuges, cell sorters, micro-turbines, and micro-pumps.
微混合器的性能,即其混合效率和通量,是提高微流控系统(例如,芯片实验室和 μ-TAS)整体效率的关键组成部分。大多数以前报道的高性能微混合器使用带有一些外部电源的主动元件来诱导湍流,或者包含长而复杂的带有障碍物的流体通道来增加扩散。在本文中,我们介绍了一种新型的 3D 叶轮微混合器,它构建在单个熔融石英基板内。所提出的装置由带有三个入口和一个槽的微通道组成,混合叶轮由轴向流被动旋转。无源微混合器使用选择性激光诱导蚀刻技术直接在玻璃片内部制造。混合槽及其旋转轴和 3D 倾斜叶片叶轮存在于只有 0.28 mm3 体积的微腔中。在涉及三种染料颜色的混合实验中,实现了 99%的混合效率,流速范围为 1.5-30 mL min-1,相同的流速也适用于基于氢氧化钠的溴百里酚蓝指示剂和盐酸化学溶液。为了验证所提出的装置的可靠性能,我们将混合指数与通用的自循环式室混合器进行比较,以证明通过旋转叶轮实现的混合效率提高。在高内部压力或当最大流速施加到混合器时,没有观察到装置的开裂或破裂。基于带有内置 3D 叶轮的紧凑微混合器的微流控系统为基于玻璃的微离心机、细胞分选器、微型涡轮机和微泵提供了稳健、高效和高通量的平台。