Nano Science and Technology Program and KAUST-HKUST Micro/Nanofluidic Joint Laboratory, The Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong.
Lab Chip. 2015 May 7;15(9):2125-32. doi: 10.1039/c5lc00173k.
Magnetically functionalized PDMS-based micropillar arrays have been successfully designed, fabricated and implanted for controllable microfluidic mixing. The arrangement of PDMS micropillar arrays inside the microchannel can be flexibly controlled by an external magnetic field. As a consequence, the flow fields inside the microchannel can be regulated at will via magnetic activation conveniently. When a microchannel is implanted with such micropillar arrays, two microstreams can be mixed easily and controllably upon the simple application of an on/off magnetic signal. Mixing efficiencies based on micropillar arrays with different densities were investigated and compared. It was found that micropillar arrays with higher density (i.e. smaller pillar pitch) would render better mixing performance. Our microfluidic system is capable of generating highly reproducible results within many cycles of mixing/non-mixing conversion. We believe that the simple mixing-triggering method together with rapid and controllable mixing control will be extraordinarily valuable for various biological or chemical applications in the future.
基于 PDMS 的磁性功能化微柱阵列已成功设计、制造和植入,可实现可控微流混合。微通道内 PDMS 微柱阵列的排列可以通过外部磁场灵活控制。因此,通过磁激活可以方便地随意调节微通道内的流场。当微通道中植入这种微柱阵列时,只需简单地施加开/关磁信号,就可以轻松、可控地混合两个微流。研究并比较了不同密度的微柱阵列的混合效率。结果发现,密度较高(即柱距较小)的微柱阵列具有更好的混合性能。我们的微流控系统能够在多次混合/不混合转换循环内产生高度可重复的结果。我们相信,这种简单的混合触发方法以及快速可控的混合控制,在未来对于各种生物或化学应用将具有非常重要的价值。